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07-12-2024 | Osteoporosis | Review

Gut microbiome and bone health: update on mechanisms, clinical correlations, and possible treatment strategies

Authors: Andrea Ticinesi, Carmine Siniscalchi, Tiziana Meschi, Antonio Nouvenne

Published in: Osteoporosis International | Issue 2/2025

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Abstract

The intestinal microbiome is increasingly regarded as a relevant modulator of the pathophysiology of several age-related conditions, including frailty, sarcopenia, and cognitive decline. Aging is in fact associated with alteration of the equilibrium between symbiotic bacteria and opportunistic pathogens, leading to dysbiosis. The microbiome is able to regulate intestinal permeability and systemic inflammation, has a central role in intestinal amino acid metabolism, and produces a large number of metabolites and byproducts, with either beneficial or detrimental consequences for the host physiology. Recent evidence, from both preclinical animal models and clinical studies, suggests that these microbiome-centered pathways could contribute to bone homeostasis, regulating the balance between osteoblast and osteoclast function. In this systematic review, we provide an overview of the mechanisms involved in the gut–bone axis, with a particular focus on microbiome function and microbiome-derived mediators including short-chain fatty acids. We also review the current evidence linking gut microbiota dysbiosis with osteopenia and osteoporosis, and the results of the intervention studies on pre-, pro-, or post-biotics targeting bone mineral density loss in both animal models and human beings, indicating knowledge gaps and highlighting possible avenues for future research.
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Literature
1.
go back to reference Fan Y, Pedersen O (2021) Gut microbiota in human metabolic health and disease. Nat Rev Microbiol 19(1):55–71PubMed Fan Y, Pedersen O (2021) Gut microbiota in human metabolic health and disease. Nat Rev Microbiol 19(1):55–71PubMed
2.
go back to reference Gacesa R, Kurilshikov A, Vich Vila A et al (2022) Environmental factors shaping the gut microbiome in a Dutch population. Nature 604(7907):732–739PubMed Gacesa R, Kurilshikov A, Vich Vila A et al (2022) Environmental factors shaping the gut microbiome in a Dutch population. Nature 604(7907):732–739PubMed
3.
go back to reference Mancabelli L, Milani C, De Biase R et al (2024) Taxonomic and metabolic development of the human gut microbiome across life stages: a worldwide metagenomic investigation. mSystems 9((4)):e0129423PubMed Mancabelli L, Milani C, De Biase R et al (2024) Taxonomic and metabolic development of the human gut microbiome across life stages: a worldwide metagenomic investigation. mSystems 9((4)):e0129423PubMed
4.
go back to reference Kurilshikov A, Medina-Gomez C, Bacigalupe R et al (2021) Large-scale association analyses identify host factors influencing human gut microbiome composition. Nat Genet 53(2):156–165PubMedPubMedCentral Kurilshikov A, Medina-Gomez C, Bacigalupe R et al (2021) Large-scale association analyses identify host factors influencing human gut microbiome composition. Nat Genet 53(2):156–165PubMedPubMedCentral
5.
go back to reference Geuking MB, Köller Y, Rupp S, McCoy KD (2014) The interplay between the gut microbiota and the immune system. Gut Microbes 5(3):411–418PubMedPubMedCentral Geuking MB, Köller Y, Rupp S, McCoy KD (2014) The interplay between the gut microbiota and the immune system. Gut Microbes 5(3):411–418PubMedPubMedCentral
6.
go back to reference Ling Z, Liu X, Cheng Y, Yan X, Wu S (2022) Gut microbiota and ageing. Crit Rev Food Sci Nutr 62(13):3509–3534PubMed Ling Z, Liu X, Cheng Y, Yan X, Wu S (2022) Gut microbiota and ageing. Crit Rev Food Sci Nutr 62(13):3509–3534PubMed
7.
go back to reference Ghosh TS, Shanahan F, O’Toole PW (2022) Toward an improved definition of a healthy microbiome for healthy aging. Nat Aging 2(11):1054–1069PubMedPubMedCentral Ghosh TS, Shanahan F, O’Toole PW (2022) Toward an improved definition of a healthy microbiome for healthy aging. Nat Aging 2(11):1054–1069PubMedPubMedCentral
8.
go back to reference López-Otín C, Blasco MA, Partridge L, Serrano M, Kroemer G (2023) Hallmarks of aging: an expanding universe. Cell 186(2):243–278PubMed López-Otín C, Blasco MA, Partridge L, Serrano M, Kroemer G (2023) Hallmarks of aging: an expanding universe. Cell 186(2):243–278PubMed
9.
go back to reference Rashidah NH, Lim SM, Neoh CF et al (2022) Differential gut microbiota and intestinal permeability between frail and healthy older adults: a systematic review. Ageing Res Rev 82:101744PubMed Rashidah NH, Lim SM, Neoh CF et al (2022) Differential gut microbiota and intestinal permeability between frail and healthy older adults: a systematic review. Ageing Res Rev 82:101744PubMed
10.
go back to reference Claesson MJ, Jeffery IB, Conde S et al (2012) Gut microbiota composition correlates with diet and health in the elderly. Nature 488(7410):178–184PubMed Claesson MJ, Jeffery IB, Conde S et al (2012) Gut microbiota composition correlates with diet and health in the elderly. Nature 488(7410):178–184PubMed
11.
go back to reference Haran JP, Zeamer A, Ward DV, Dutta P, Bucci V, McCormick BA (2021) The nursing home older adult gut microbiome composition shows time-dependent dysbiosis and is influenced by medication exposures, age, environment, and frailty. J Gerontol A Biol Sci Med Sci 76(11):1930–1938PubMedPubMedCentral Haran JP, Zeamer A, Ward DV, Dutta P, Bucci V, McCormick BA (2021) The nursing home older adult gut microbiome composition shows time-dependent dysbiosis and is influenced by medication exposures, age, environment, and frailty. J Gerontol A Biol Sci Med Sci 76(11):1930–1938PubMedPubMedCentral
12.
go back to reference Almeida HM, Sardeli AV, Conway J, Duggal NA, Cavaglieri CR (2022) Comparison between frail and non-frail older adults’ gut microbiota: a systematic review and meta-analysis. Ageing Res Rev 82:101773PubMed Almeida HM, Sardeli AV, Conway J, Duggal NA, Cavaglieri CR (2022) Comparison between frail and non-frail older adults’ gut microbiota: a systematic review and meta-analysis. Ageing Res Rev 82:101773PubMed
13.
go back to reference Wilmanski T, Diener C, Rappaport N et al (2021) Gut microbiome pattern reflects healthy ageing and predicts survival in humans. Nat Metab 3(2):274–286PubMedPubMedCentral Wilmanski T, Diener C, Rappaport N et al (2021) Gut microbiome pattern reflects healthy ageing and predicts survival in humans. Nat Metab 3(2):274–286PubMedPubMedCentral
14.
go back to reference Muñoz-Fernandez SS, Garcez FB, Alencar JCG et al (2024) Gut microbiota disturbances in hospitalized older adults with malnutrition and clinical outcomes. Nutrients 122:112369 Muñoz-Fernandez SS, Garcez FB, Alencar JCG et al (2024) Gut microbiota disturbances in hospitalized older adults with malnutrition and clinical outcomes. Nutrients 122:112369
15.
go back to reference Cryan JF, O’Riordan KJ, Cowan CSM et al (2019) The microbiota-gut-brain axis. Physiol Rev 99(4):1877–2013PubMed Cryan JF, O’Riordan KJ, Cowan CSM et al (2019) The microbiota-gut-brain axis. Physiol Rev 99(4):1877–2013PubMed
16.
go back to reference Escobar YNH, O’Piela D, Wold LE, Mackos AR (2022) Influence of the microbiota-gut-brain axis on cognition in Alzheimer’s disease. J Alzheimers Dis 87(1):17–31PubMedPubMedCentral Escobar YNH, O’Piela D, Wold LE, Mackos AR (2022) Influence of the microbiota-gut-brain axis on cognition in Alzheimer’s disease. J Alzheimers Dis 87(1):17–31PubMedPubMedCentral
17.
go back to reference Ticinesi A, Lauretani F, Milani C et al (2017) Aging gut microbiota at the cross-road between nutrition, physical frailty, and sarcopenia: is there a gut-muscle axis? Nutrients 9(12):1303PubMedPubMedCentral Ticinesi A, Lauretani F, Milani C et al (2017) Aging gut microbiota at the cross-road between nutrition, physical frailty, and sarcopenia: is there a gut-muscle axis? Nutrients 9(12):1303PubMedPubMedCentral
18.
go back to reference Liu C, Cheung WH, Li J et al (2021) Understanding the gut microbiota and sarcopenia: a systematic review. J Cachexia Sarcopenia Muscle 12(6):1393–1407PubMedPubMedCentral Liu C, Cheung WH, Li J et al (2021) Understanding the gut microbiota and sarcopenia: a systematic review. J Cachexia Sarcopenia Muscle 12(6):1393–1407PubMedPubMedCentral
19.
go back to reference Prajapati SK, Shah R, Alford N et al (2023) The triple alliance: microbiome, mitochondria, and metabolites in the context of age-related cognitive decline and Alzheimer’s disease. J Gerontol A Biol Sci Med Sci 78(12):2187–2202PubMedPubMedCentral Prajapati SK, Shah R, Alford N et al (2023) The triple alliance: microbiome, mitochondria, and metabolites in the context of age-related cognitive decline and Alzheimer’s disease. J Gerontol A Biol Sci Med Sci 78(12):2187–2202PubMedPubMedCentral
20.
go back to reference Carloni S, Bertocchi A, Mancinelli S et al (2021) Identification of a choroid plexus vascular barrier closing during intestinal inflammation. Science 374(6566):439–448PubMed Carloni S, Bertocchi A, Mancinelli S et al (2021) Identification of a choroid plexus vascular barrier closing during intestinal inflammation. Science 374(6566):439–448PubMed
21.
go back to reference Ticinesi A, Tana C, Nouvenne A (2019) The intestinal microbiome and its relevance for functionality in older persons. Curr Opin Clin Nutr Metab Care 22(1):4–12PubMed Ticinesi A, Tana C, Nouvenne A (2019) The intestinal microbiome and its relevance for functionality in older persons. Curr Opin Clin Nutr Metab Care 22(1):4–12PubMed
22.
go back to reference Ruggiero C, Baroni M, Xenos D et al (2024) Dementia, osteoporosis and fragility fractures: intricate epidemiological relationships, plausible biological connections, and twisted clinical practices. Ageing Res Rev 93:102130PubMed Ruggiero C, Baroni M, Xenos D et al (2024) Dementia, osteoporosis and fragility fractures: intricate epidemiological relationships, plausible biological connections, and twisted clinical practices. Ageing Res Rev 93:102130PubMed
23.
go back to reference Clynes MA, Gregson CL, Bruyère O, Cooper C, Dennison EM (2021) Osteosarcopenia: where osteoporosis and sarcopenia collide. Rheumatology 60:529–537PubMed Clynes MA, Gregson CL, Bruyère O, Cooper C, Dennison EM (2021) Osteosarcopenia: where osteoporosis and sarcopenia collide. Rheumatology 60:529–537PubMed
24.
go back to reference Gharpure M, Vyavare S, Ahluwalia P et al (2024) Alterations in Alzheimer’s disease microglia transcriptome might be involved in bone pathophysiology. Neurobiol Dis 191:106404PubMed Gharpure M, Vyavare S, Ahluwalia P et al (2024) Alterations in Alzheimer’s disease microglia transcriptome might be involved in bone pathophysiology. Neurobiol Dis 191:106404PubMed
25.
go back to reference Belchior GF, Kirk B, Pereira da Silva EA, Duque G (2020) Osteosarcopenia: beyond age-related muscle and bone loss. Eur Geriatr Med 11(5):715–724 Belchior GF, Kirk B, Pereira da Silva EA, Duque G (2020) Osteosarcopenia: beyond age-related muscle and bone loss. Eur Geriatr Med 11(5):715–724
26.
go back to reference Cronin O, Lanham-New SA, Corfe BM et al (2022) Role of the microbiome in regulating bone metabolism and susceptibility to osteoporosis. Calcif Tissue Int 110:273–284PubMed Cronin O, Lanham-New SA, Corfe BM et al (2022) Role of the microbiome in regulating bone metabolism and susceptibility to osteoporosis. Calcif Tissue Int 110:273–284PubMed
27.
go back to reference Sjögren K, Engdahl C, Henning P et al (2012) The gut microbiota regulates bone mass in mice. J Bone Miner Res 27(6):1357–1367PubMed Sjögren K, Engdahl C, Henning P et al (2012) The gut microbiota regulates bone mass in mice. J Bone Miner Res 27(6):1357–1367PubMed
28.
go back to reference Quach D, Collins F, Parameswaran N, McCabe L, Britton RA (2018) Microbiota reconstitution does not cause bone loss in germ free mice. mSphere 3((1)):e00545-17PubMedPubMedCentral Quach D, Collins F, Parameswaran N, McCabe L, Britton RA (2018) Microbiota reconstitution does not cause bone loss in germ free mice. mSphere 3((1)):e00545-17PubMedPubMedCentral
29.
go back to reference Li JY, Chassaing B, Tyagi AM et al (2016) Sex steroid deficiency-associated bone loss is microbiota dependent and prevented by probiotics. J Clin Invest 126(6):2049–2062PubMedPubMedCentral Li JY, Chassaing B, Tyagi AM et al (2016) Sex steroid deficiency-associated bone loss is microbiota dependent and prevented by probiotics. J Clin Invest 126(6):2049–2062PubMedPubMedCentral
30.
go back to reference Li J, Ho WTP, Liu C et al (2021) The role of gut microbiota in bone homeostasis. A systematic review of preclinical animal studies. Bone Joint Res 10((1)):51–59PubMedPubMedCentral Li J, Ho WTP, Liu C et al (2021) The role of gut microbiota in bone homeostasis. A systematic review of preclinical animal studies. Bone Joint Res 10((1)):51–59PubMedPubMedCentral
31.
go back to reference Qiao X, Li X, Wang Z et al (2024) Gut microbial community and fecal metabolomic signatures in different types of osteoporosis animal models. Aging 16(2):1192–1217PubMedPubMedCentral Qiao X, Li X, Wang Z et al (2024) Gut microbial community and fecal metabolomic signatures in different types of osteoporosis animal models. Aging 16(2):1192–1217PubMedPubMedCentral
32.
go back to reference Ma S, Qin J, Hao Y, Shi Y, Fu J (2020) Structural and functional changes of gut microbiota in ovariectomized rats and their correlations with altered bone mass. Aging 12(11):10736–10753PubMedPubMedCentral Ma S, Qin J, Hao Y, Shi Y, Fu J (2020) Structural and functional changes of gut microbiota in ovariectomized rats and their correlations with altered bone mass. Aging 12(11):10736–10753PubMedPubMedCentral
33.
go back to reference Wen K, Tao L, Tao Z et al (2020) Fecal and serum metabolomic signatures and microbial community profiling of postmenopausal osteoporosis mice model. Front Cell Infect Microbiol 10:535310PubMedPubMedCentral Wen K, Tao L, Tao Z et al (2020) Fecal and serum metabolomic signatures and microbial community profiling of postmenopausal osteoporosis mice model. Front Cell Infect Microbiol 10:535310PubMedPubMedCentral
34.
go back to reference Wang N, Meng F, Ma S, Fu L (2022) Species-level gut microbiota analysis in ovariectomized osteoporotic rats by shallow shotgun metagenomics sequencing. Gene 817:146205PubMed Wang N, Meng F, Ma S, Fu L (2022) Species-level gut microbiota analysis in ovariectomized osteoporotic rats by shallow shotgun metagenomics sequencing. Gene 817:146205PubMed
35.
go back to reference Sun Y, Zhang HJ, Chen R, Zhao HB, Lee WH (2021) 16S rDNA analysis of the intestinal microbes in osteoporotic rats. Biosci Microbiota Food Health 40(3):156–167PubMedPubMedCentral Sun Y, Zhang HJ, Chen R, Zhao HB, Lee WH (2021) 16S rDNA analysis of the intestinal microbes in osteoporotic rats. Biosci Microbiota Food Health 40(3):156–167PubMedPubMedCentral
36.
go back to reference Qiao X, Zhang K, Li X et al (2022) Gut microbiota and fecal metabolic signatures in rat models of disuse-induced osteoporosis. Front Cell Infect Microbiol 12:1018897PubMedPubMedCentral Qiao X, Zhang K, Li X et al (2022) Gut microbiota and fecal metabolic signatures in rat models of disuse-induced osteoporosis. Front Cell Infect Microbiol 12:1018897PubMedPubMedCentral
37.
go back to reference Ma S, Qin J, Hao Y, Fu L (2020) Association of gut microbiota composition and function with an aged rate model of senile osteoporosis using 16S rRNA and metagenomic sequencing analysis. Aging 12(11):10795–10808PubMedPubMedCentral Ma S, Qin J, Hao Y, Fu L (2020) Association of gut microbiota composition and function with an aged rate model of senile osteoporosis using 16S rRNA and metagenomic sequencing analysis. Aging 12(11):10795–10808PubMedPubMedCentral
38.
go back to reference Wang S, Ma S, Fu L (2022) Gut microbiota feature of senile osteoporosis by shallow shotgun sequencing using aged rats model. Genes 13:619PubMedPubMedCentral Wang S, Ma S, Fu L (2022) Gut microbiota feature of senile osteoporosis by shallow shotgun sequencing using aged rats model. Genes 13:619PubMedPubMedCentral
39.
go back to reference Huang KC, Chuang PY, Yang TY, Tsai YH, Li YY, Chang SF (2024) Diabetic rats induced using a high-fat diet and low-dose streptozotocin treatment exhibit gut microbiota dysbiosis and osteoporotic bone pathologies. Nutrients 16:1220PubMedPubMedCentral Huang KC, Chuang PY, Yang TY, Tsai YH, Li YY, Chang SF (2024) Diabetic rats induced using a high-fat diet and low-dose streptozotocin treatment exhibit gut microbiota dysbiosis and osteoporotic bone pathologies. Nutrients 16:1220PubMedPubMedCentral
40.
go back to reference Lu L, Tang M, Li J et al (2021) Gut microbiota and serum metabolic signatures of high-fat-induced bone loss in mice. Front Cell Infect Microbiol 11:788576PubMedPubMedCentral Lu L, Tang M, Li J et al (2021) Gut microbiota and serum metabolic signatures of high-fat-induced bone loss in mice. Front Cell Infect Microbiol 11:788576PubMedPubMedCentral
41.
go back to reference Luna M, Guss JD, Vasquez-Bolanos LS et al (2021) Components of the gut microbiome that influence bone tissue-level strength. J Bone Miner Res 36(9):1823–1834PubMed Luna M, Guss JD, Vasquez-Bolanos LS et al (2021) Components of the gut microbiome that influence bone tissue-level strength. J Bone Miner Res 36(9):1823–1834PubMed
42.
go back to reference Kosaka S, Nadatani Y, Higashimori A et al (2021) Ovariectomy-induced dysbiosis may have a minor effect on bone in mice. Microorganisms 9:2563PubMedPubMedCentral Kosaka S, Nadatani Y, Higashimori A et al (2021) Ovariectomy-induced dysbiosis may have a minor effect on bone in mice. Microorganisms 9:2563PubMedPubMedCentral
43.
go back to reference Guss JD, Horsfield MW, Fontenele FF et al (2017) Alterations to the gut microbiome impair bone strength and tissue material properties. J Bone Miner Res 32(6):1343–1353PubMed Guss JD, Horsfield MW, Fontenele FF et al (2017) Alterations to the gut microbiome impair bone strength and tissue material properties. J Bone Miner Res 32(6):1343–1353PubMed
44.
go back to reference Castaneda M, Smith KM, Nixon JC, Hernandez CJ, Rowan S (2021) Alterations to the gut microbiome impair bone tissue strength in aged mice. Bone Rep 14:101065PubMedPubMedCentral Castaneda M, Smith KM, Nixon JC, Hernandez CJ, Rowan S (2021) Alterations to the gut microbiome impair bone tissue strength in aged mice. Bone Rep 14:101065PubMedPubMedCentral
45.
go back to reference Castaneda M, Strong JM, Alabi DA, Hernandez CJ (2020) The gut microbiome and bone strength. Curr Osteoporosis Rep 18:677–683 Castaneda M, Strong JM, Alabi DA, Hernandez CJ (2020) The gut microbiome and bone strength. Curr Osteoporosis Rep 18:677–683
46.
go back to reference Zhang YW, Cao MM, Li YJ et al (2022) Fecal microbiota transplantation ameliorates bone loss in mice with ovariectomy-induced osteoporosis via modulating gut microbiota and metabolic function. J Orthoped Transl 37:46–60 Zhang YW, Cao MM, Li YJ et al (2022) Fecal microbiota transplantation ameliorates bone loss in mice with ovariectomy-induced osteoporosis via modulating gut microbiota and metabolic function. J Orthoped Transl 37:46–60
47.
go back to reference Ma S, Wang N, Zhang P, Wu W, Fu L (2021) Fecal microbiota transplantation mitigates bone loss by improving gut microbiome composition and gut barrier function in aged rats. PeerJ 9:e12293PubMedPubMedCentral Ma S, Wang N, Zhang P, Wu W, Fu L (2021) Fecal microbiota transplantation mitigates bone loss by improving gut microbiome composition and gut barrier function in aged rats. PeerJ 9:e12293PubMedPubMedCentral
48.
go back to reference Schepper JD, Collins F, Rios-Arce ND et al (2020) Involvement of the gut microbiota and barrier function in glucocorticoid-induced osteoporosis. J Bone Miner Res 35(4):801–820PubMed Schepper JD, Collins F, Rios-Arce ND et al (2020) Involvement of the gut microbiota and barrier function in glucocorticoid-induced osteoporosis. J Bone Miner Res 35(4):801–820PubMed
49.
go back to reference Wang N, Ma S, Fu L (2022) Gut microbiota dysbiosis as one cause of osteoporosis by impairing intestinal barrier function. Calcif Tissue Int 110:225–235PubMed Wang N, Ma S, Fu L (2022) Gut microbiota dysbiosis as one cause of osteoporosis by impairing intestinal barrier function. Calcif Tissue Int 110:225–235PubMed
50.
go back to reference Lawenius L, Cowardin C, Grahnemo L et al (2023) Transplantation of gut microbiota from old mice into young healthy mice reduces lean mass but not bone mass. Gut Microbes 15(1):2236755PubMedPubMedCentral Lawenius L, Cowardin C, Grahnemo L et al (2023) Transplantation of gut microbiota from old mice into young healthy mice reduces lean mass but not bone mass. Gut Microbes 15(1):2236755PubMedPubMedCentral
51.
go back to reference Hou Y, Li J, Ying S (2023) Tryptophan metabolism and gut microbiota: a novel regulatory axis integrating the microbiome, immunity, and cancer. Metabolites 13(11):1166PubMedPubMedCentral Hou Y, Li J, Ying S (2023) Tryptophan metabolism and gut microbiota: a novel regulatory axis integrating the microbiome, immunity, and cancer. Metabolites 13(11):1166PubMedPubMedCentral
52.
go back to reference Agus A, Planchais E, Sokol H (2015) Gut microbiota regulation of tryptophan metabolism in health and disease. Cell Host Microbe 23(6):713–724 Agus A, Planchais E, Sokol H (2015) Gut microbiota regulation of tryptophan metabolism in health and disease. Cell Host Microbe 23(6):713–724
53.
go back to reference Martin-Gallausiaux C, Larraufie P, Jarry A et al (2018) Butyrate produced by commensal bacteria down-regulates indolamine 2,3-dioxygenase 1 (IDO-1) expression via a dual mechanism in human intestinal epithelial cells. Front Immunol 9:2838PubMedPubMedCentral Martin-Gallausiaux C, Larraufie P, Jarry A et al (2018) Butyrate produced by commensal bacteria down-regulates indolamine 2,3-dioxygenase 1 (IDO-1) expression via a dual mechanism in human intestinal epithelial cells. Front Immunol 9:2838PubMedPubMedCentral
54.
go back to reference Ballestreros J, Rivas D, Duque G (2023) The role of the kynurenine pathway in the pathophysiology of frailty, sarcopenia, and osteoporosis. Nutrients 15(14):3132 Ballestreros J, Rivas D, Duque G (2023) The role of the kynurenine pathway in the pathophysiology of frailty, sarcopenia, and osteoporosis. Nutrients 15(14):3132
55.
go back to reference Patel D, Potter M, Marcano Anaya J et al (2021) Kynurenine induces an age-related phenotype in bone marrow stromal cells. Mech Ageing Dev 195:111464PubMed Patel D, Potter M, Marcano Anaya J et al (2021) Kynurenine induces an age-related phenotype in bone marrow stromal cells. Mech Ageing Dev 195:111464PubMed
56.
go back to reference Salminen A (2022) Role of indoleamine-2,3-dioxygenase 1 (IDO1) and kynurenine pathway in the regulation of the aging process. Ageing Res Rev 75:101573PubMed Salminen A (2022) Role of indoleamine-2,3-dioxygenase 1 (IDO1) and kynurenine pathway in the regulation of the aging process. Ageing Res Rev 75:101573PubMed
57.
go back to reference Al Saedi A, Sharma S, Summers MA, Nurgali K, Duque G (2020) The multiple faces of tryptophan in bone biology. Exp Gerontol 129:110778PubMed Al Saedi A, Sharma S, Summers MA, Nurgali K, Duque G (2020) The multiple faces of tryptophan in bone biology. Exp Gerontol 129:110778PubMed
58.
go back to reference Yadav VK, Ryu JH, Suda N et al (2008) Lrp5 controls bone formation by inhibiting serotonin synthesis in the duodenum. Cell 135(5):825–837PubMedPubMedCentral Yadav VK, Ryu JH, Suda N et al (2008) Lrp5 controls bone formation by inhibiting serotonin synthesis in the duodenum. Cell 135(5):825–837PubMedPubMedCentral
59.
go back to reference Lavoie B, Roberts JA, Haag MM et al (2019) Gut-derived serotonin contributes to bone deficits in colitis. Pharmacol Res 140:75–84PubMed Lavoie B, Roberts JA, Haag MM et al (2019) Gut-derived serotonin contributes to bone deficits in colitis. Pharmacol Res 140:75–84PubMed
60.
go back to reference Liu Z, Xu X, Shen Y et al (2022) Altered gut microbiota and metabolites profile are associated with reduced bone metabolism in ethanol-induced osteoporosis. Cell Prolif 55:e13245PubMedPubMedCentral Liu Z, Xu X, Shen Y et al (2022) Altered gut microbiota and metabolites profile are associated with reduced bone metabolism in ethanol-induced osteoporosis. Cell Prolif 55:e13245PubMedPubMedCentral
61.
go back to reference Sugiyama Y, Mori Y, Nara M et al (2022) Gut bacterial aromatic amine production: aromatic amino acid decarboxylase and its effects on peripheral serotonin production. Gut Microbes 14(1):2128605PubMedPubMedCentral Sugiyama Y, Mori Y, Nara M et al (2022) Gut bacterial aromatic amine production: aromatic amino acid decarboxylase and its effects on peripheral serotonin production. Gut Microbes 14(1):2128605PubMedPubMedCentral
62.
go back to reference Yano JM, Yu K, Donaldson GP et al (2015) Indigenous bacteria from the gut microbiota regulate host serotonin biosynthesis. Cell 161(2):264–276PubMedPubMedCentral Yano JM, Yu K, Donaldson GP et al (2015) Indigenous bacteria from the gut microbiota regulate host serotonin biosynthesis. Cell 161(2):264–276PubMedPubMedCentral
63.
go back to reference Chen Y, Yang C, Deng Z et al (2024) Gut microbially produced tryptophan metabolite melatonin ameliorates osteoporosis via modulating SCFA and TMAO metabolism. J Pineal Res 76:e12954PubMed Chen Y, Yang C, Deng Z et al (2024) Gut microbially produced tryptophan metabolite melatonin ameliorates osteoporosis via modulating SCFA and TMAO metabolism. J Pineal Res 76:e12954PubMed
64.
go back to reference Yang K, Qiu X, Cao L, Qiu S (2022) The role of melatonin in the development of postmenopausal osteoporosis. Front Pharmacol 13:975181PubMedPubMedCentral Yang K, Qiu X, Cao L, Qiu S (2022) The role of melatonin in the development of postmenopausal osteoporosis. Front Pharmacol 13:975181PubMedPubMedCentral
66.
go back to reference Zhang YW, Cao MM, Li YJ et al (2023) The regulative effect and repercussion of probiotics and prebiotics on osteoporosis: involvement of brain-gut-bone axis. Crit Rev Food Sci Nutr 63(25):7510–7528PubMed Zhang YW, Cao MM, Li YJ et al (2023) The regulative effect and repercussion of probiotics and prebiotics on osteoporosis: involvement of brain-gut-bone axis. Crit Rev Food Sci Nutr 63(25):7510–7528PubMed
67.
go back to reference Peng R, Song C, Gou S et al (2024) Gut Clostridium sporogenes-derived indole propionic acid suppresses osteoclast formation by activating pregnane X receptor. Pharmacol Res 202:107121PubMed Peng R, Song C, Gou S et al (2024) Gut Clostridium sporogenes-derived indole propionic acid suppresses osteoclast formation by activating pregnane X receptor. Pharmacol Res 202:107121PubMed
68.
go back to reference Zhang L, Jiao G, You Y et al (2023) Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation. Clin Transl Med 13(9):e1369PubMedPubMedCentral Zhang L, Jiao G, You Y et al (2023) Arginine methylation of PPP1CA by CARM1 regulates glucose metabolism and affects osteogenic differentiation and osteoclastic differentiation. Clin Transl Med 13(9):e1369PubMedPubMedCentral
69.
go back to reference Shen Y, Wang H, Xie H et al (2024) l-arginine promotes angio-osteogenesis to enhance oxidative stress-inhibited bone formation by ameliorating mitophagy. J Orthop Transl 46:43–54 Shen Y, Wang H, Xie H et al (2024) l-arginine promotes angio-osteogenesis to enhance oxidative stress-inhibited bone formation by ameliorating mitophagy. J Orthop Transl 46:43–54
70.
go back to reference Wang D, Xai J, Pei Q et al (2024) Gut microbial alterations in arginine metabolism determine bone mechanical adaptation. Cell Metab 36:1–17 Wang D, Xai J, Pei Q et al (2024) Gut microbial alterations in arginine metabolism determine bone mechanical adaptation. Cell Metab 36:1–17
71.
go back to reference Pacifici R (2021) The role of gut microbiota in skeletal response to PTH. J Clin Endocrinol Metab 106(3):636–645PubMed Pacifici R (2021) The role of gut microbiota in skeletal response to PTH. J Clin Endocrinol Metab 106(3):636–645PubMed
72.
go back to reference Li JY, Yu M, Pal S et al (2020) Parathyroid hormone-dependent bone formation requires butyrate production by intestinal microbiota. J Clin Invest 130(4):1767–1781PubMedPubMedCentral Li JY, Yu M, Pal S et al (2020) Parathyroid hormone-dependent bone formation requires butyrate production by intestinal microbiota. J Clin Invest 130(4):1767–1781PubMedPubMedCentral
73.
go back to reference Zhou J, Wang R, Zhao R et al (2022) Intermittent parathyroid hormone alters gut microbiota in ovariectomized osteoporotic rats. Orthoped Surg 14(9):2330–2338 Zhou J, Wang R, Zhao R et al (2022) Intermittent parathyroid hormone alters gut microbiota in ovariectomized osteoporotic rats. Orthoped Surg 14(9):2330–2338
74.
go back to reference Yu M, Tyagi AM, Li JY et al (2020) PTH induces bone loss via microbial-dependent expansion of intestinal TNF+ T cells and Th17 cells. Nat Commun 11:468PubMedPubMedCentral Yu M, Tyagi AM, Li JY et al (2020) PTH induces bone loss via microbial-dependent expansion of intestinal TNF+ T cells and Th17 cells. Nat Commun 11:468PubMedPubMedCentral
75.
go back to reference Guo X, Zhong K, Zhang J et al (2022) Gut microbiota can affect bone quality by regulating serum estrogen levels. Am J Transl Res 14(9):6043–6055PubMedPubMedCentral Guo X, Zhong K, Zhang J et al (2022) Gut microbiota can affect bone quality by regulating serum estrogen levels. Am J Transl Res 14(9):6043–6055PubMedPubMedCentral
76.
go back to reference Guan Z, Xuanqi Z, Zhu J et al (2023) Estrogen deficiency induces bone loss through the gut microbiota. Pharmacol Res 196:106930PubMed Guan Z, Xuanqi Z, Zhu J et al (2023) Estrogen deficiency induces bone loss through the gut microbiota. Pharmacol Res 196:106930PubMed
77.
go back to reference Wang FS, Lian WS, Weng WT et al (2016) Neuropeptide Y mediates glucocorticoid-induced osteoporosis and marrow adiposity in mice. Osteoporosis Int 27(9):2777–2789 Wang FS, Lian WS, Weng WT et al (2016) Neuropeptide Y mediates glucocorticoid-induced osteoporosis and marrow adiposity in mice. Osteoporosis Int 27(9):2777–2789
78.
go back to reference Zhang Y, Chen CY, Liu YW et al (2021) Neuronal induction of bone-fat imbalance through osteocyte neuropeptide Y. Adv Sci 8(24):e2100808 Zhang Y, Chen CY, Liu YW et al (2021) Neuronal induction of bone-fat imbalance through osteocyte neuropeptide Y. Adv Sci 8(24):e2100808
79.
go back to reference Chen Z, Lv M, Liang J et al (2023) Neuropetide Y-mediated gut microbiota alterations aggravate postmenopausal osteoporosis. Adv Sci 10:2303015 Chen Z, Lv M, Liang J et al (2023) Neuropetide Y-mediated gut microbiota alterations aggravate postmenopausal osteoporosis. Adv Sci 10:2303015
80.
go back to reference Xie W, Han Y, Li F et al (2020) Neuropeptide Y1 receptor antagonist alters gut microbiota and alleviates the ovariectomy-induced osteoporosis in rats. Calcif Tissue Int 104(4):444–454 Xie W, Han Y, Li F et al (2020) Neuropeptide Y1 receptor antagonist alters gut microbiota and alleviates the ovariectomy-induced osteoporosis in rats. Calcif Tissue Int 104(4):444–454
81.
go back to reference Blaak EE, Canfora EE, Theis S et al (2020) Short chain fatty acids in human gut and metabolic health. Benef Microbes 11(5):411–455PubMed Blaak EE, Canfora EE, Theis S et al (2020) Short chain fatty acids in human gut and metabolic health. Benef Microbes 11(5):411–455PubMed
82.
go back to reference Strasser B, Ticinesi A (2023) Intestinal microbiome in normal ageing, frailty, and cognition decline. Curr Opin Clin Nutr Metab Care 26(1):8–16PubMed Strasser B, Ticinesi A (2023) Intestinal microbiome in normal ageing, frailty, and cognition decline. Curr Opin Clin Nutr Metab Care 26(1):8–16PubMed
83.
go back to reference Yan J, Takakura A, Zandi-Nejad K, Charles JF (2018) Mechanisms of gut microbiota-mediated bone remodeling. Gut Microbes 9(1):84–92PubMed Yan J, Takakura A, Zandi-Nejad K, Charles JF (2018) Mechanisms of gut microbiota-mediated bone remodeling. Gut Microbes 9(1):84–92PubMed
84.
go back to reference Yan J, Herzog JW, Tsang K et al (2016) Gut microbiota induce IGF-1 and promote bone formation and growth. Proc Natl Acad Sci USA 113(47):E7554–E7563PubMedPubMedCentral Yan J, Herzog JW, Tsang K et al (2016) Gut microbiota induce IGF-1 and promote bone formation and growth. Proc Natl Acad Sci USA 113(47):E7554–E7563PubMedPubMedCentral
85.
go back to reference Lucas S, Omata Y, Hofmann J et al (2018) Short-chain fatty acids regulate systemic bone mass and protect from pathological bone loss. Nat Commun 9(1):55PubMedPubMedCentral Lucas S, Omata Y, Hofmann J et al (2018) Short-chain fatty acids regulate systemic bone mass and protect from pathological bone loss. Nat Commun 9(1):55PubMedPubMedCentral
86.
go back to reference Yang KL, Mullins BJ, Lejeune A et al (2024) Mitigation of osteoclast-mediated arthritic bone remodeling by short-chain fatty acids. Arthritis Rheum 76(4):647–659 Yang KL, Mullins BJ, Lejeune A et al (2024) Mitigation of osteoclast-mediated arthritic bone remodeling by short-chain fatty acids. Arthritis Rheum 76(4):647–659
87.
go back to reference Dong J, Shu G, Yang J et al (2024) Mechanistic study on the alleviation of postmenopausal osteoporosis by Lactobacillus acidophilus through butyrate-mediated inhibition of osteoclast activity. Sci Rep 14(1):7042PubMedPubMedCentral Dong J, Shu G, Yang J et al (2024) Mechanistic study on the alleviation of postmenopausal osteoporosis by Lactobacillus acidophilus through butyrate-mediated inhibition of osteoclast activity. Sci Rep 14(1):7042PubMedPubMedCentral
88.
go back to reference Tang X, Ma S, Li Y et al (2020) Evaluating the activity of sodium butyrate to prevent osteoporosis in rats by promoting osteal GSK-3β/Nrf2 signaling and mitochondrial function. J Agric Food Chem 68:6588–6603PubMed Tang X, Ma S, Li Y et al (2020) Evaluating the activity of sodium butyrate to prevent osteoporosis in rats by promoting osteal GSK-3β/Nrf2 signaling and mitochondrial function. J Agric Food Chem 68:6588–6603PubMed
89.
go back to reference Guss JD, Taylor E, Rouse Z et al (2019) The microbial metagenome and bone tissue composition in mice with microbiome-induced reductions in bone strength. Bone 127:146–154PubMedPubMedCentral Guss JD, Taylor E, Rouse Z et al (2019) The microbial metagenome and bone tissue composition in mice with microbiome-induced reductions in bone strength. Bone 127:146–154PubMedPubMedCentral
90.
go back to reference Wagatsuma K, Yamada S, Ao M et al (2019) Diversity of gut microbiota affecting serum level of undercarboxylated osteocalcin in patients with Crohn’s disease. Nutrients 11(7):1541PubMedPubMedCentral Wagatsuma K, Yamada S, Ao M et al (2019) Diversity of gut microbiota affecting serum level of undercarboxylated osteocalcin in patients with Crohn’s disease. Nutrients 11(7):1541PubMedPubMedCentral
91.
go back to reference Ozaki D, Kubota R, Maeno T, Abdelhakim M, Hitosugi N (2021) Association between gut microbiota, bone metabolism, and fracture risk in postmenopausal Japanese women. Osteoporosis Int 32(1):145–156 Ozaki D, Kubota R, Maeno T, Abdelhakim M, Hitosugi N (2021) Association between gut microbiota, bone metabolism, and fracture risk in postmenopausal Japanese women. Osteoporosis Int 32(1):145–156
92.
go back to reference Chevalier C, Kieser S, Çolakoğlu M et al (2020) Warmth prevents bone loss through the gut microbiota. Cell Metab 32:575–590PubMedPubMedCentral Chevalier C, Kieser S, Çolakoğlu M et al (2020) Warmth prevents bone loss through the gut microbiota. Cell Metab 32:575–590PubMedPubMedCentral
93.
go back to reference Madeo F, Eisenberg T, Pietrocola F, Kroemer G (2018) Spermidine in health and disease. Science 359(6374):eaan2788PubMed Madeo F, Eisenberg T, Pietrocola F, Kroemer G (2018) Spermidine in health and disease. Science 359(6374):eaan2788PubMed
94.
go back to reference Kong SH, Kim JH, Shin CS (2021) Serum spermidine as a novel potential predictor for fragility fractures. J Clin Endocrinol Metab 106(2):e582–e591PubMed Kong SH, Kim JH, Shin CS (2021) Serum spermidine as a novel potential predictor for fragility fractures. J Clin Endocrinol Metab 106(2):e582–e591PubMed
95.
go back to reference Li D, Lu Y, Yuan S et al (2022) Gut microbiota-derived metabolite trimethylamine-N-oxide and multiple health outcomes: an umbrella review and updated meta-analysis. Am J Clin Nutr 116(1):230–243PubMedPubMedCentral Li D, Lu Y, Yuan S et al (2022) Gut microbiota-derived metabolite trimethylamine-N-oxide and multiple health outcomes: an umbrella review and updated meta-analysis. Am J Clin Nutr 116(1):230–243PubMedPubMedCentral
96.
go back to reference Liu Y, Guo YL, Meng S et al (2020) Gut microbiota-dependent trimethylamine N-oxide are related with hip fracture in postmenopausal women: a matched case-control study. Aging 12(11):10633–10641PubMedPubMedCentral Liu Y, Guo YL, Meng S et al (2020) Gut microbiota-dependent trimethylamine N-oxide are related with hip fracture in postmenopausal women: a matched case-control study. Aging 12(11):10633–10641PubMedPubMedCentral
97.
go back to reference Elam RE, Bůžková P, Barzilay JI et al (2022) Trimethylamine N-oxide and hip fracture and bone mineral density in older adults: the cardiovascular health study. Bone 161:116431PubMedPubMedCentral Elam RE, Bůžková P, Barzilay JI et al (2022) Trimethylamine N-oxide and hip fracture and bone mineral density in older adults: the cardiovascular health study. Bone 161:116431PubMedPubMedCentral
98.
go back to reference Yuan Y, Gan C, Wang M et al (2024) Association of serum trimethylamine N-oxide levels and bone mineral density in type 2 diabetes mellitus. Endocrine 84(3):958–968PubMed Yuan Y, Gan C, Wang M et al (2024) Association of serum trimethylamine N-oxide levels and bone mineral density in type 2 diabetes mellitus. Endocrine 84(3):958–968PubMed
99.
go back to reference Zhou T, Heianza Y, Chen Y et al (2019) Circulating gut microbiota metabolite trimethylamine N-oxide (TMAO) and changes in bone density in response to weight loss diets: The POUNDS Lost Trial. Diabetes Care 42(8):1365–1371PubMedPubMedCentral Zhou T, Heianza Y, Chen Y et al (2019) Circulating gut microbiota metabolite trimethylamine N-oxide (TMAO) and changes in bone density in response to weight loss diets: The POUNDS Lost Trial. Diabetes Care 42(8):1365–1371PubMedPubMedCentral
100.
go back to reference Wang N, Hao Y, Fu L (2022) Trimethylamine-N-oxide promotes osteoclast differentiation and bone loss via activating ROS-dependent NF-kB signaling pathway. Nutrients 14:3955PubMedPubMedCentral Wang N, Hao Y, Fu L (2022) Trimethylamine-N-oxide promotes osteoclast differentiation and bone loss via activating ROS-dependent NF-kB signaling pathway. Nutrients 14:3955PubMedPubMedCentral
101.
go back to reference Zhao Y, Wang C, Qiu F et al (2024) Trimethylamine-N-oxide promotes osteoclast differentiation and oxidative stress by activating NF-κB pathway. Aging 16(10):9251–9263PubMedPubMedCentral Zhao Y, Wang C, Qiu F et al (2024) Trimethylamine-N-oxide promotes osteoclast differentiation and oxidative stress by activating NF-κB pathway. Aging 16(10):9251–9263PubMedPubMedCentral
102.
go back to reference Lin H, Liu T, Li X, Gao X, Wu T, Li P (2020) The role of gut microbiota metabolite trimethylamine N-oxide in functional impairment of bone marrow mesenchymal stem cells in osteoporosis disease. Ann Transl Med 8(16):1009PubMedPubMedCentral Lin H, Liu T, Li X, Gao X, Wu T, Li P (2020) The role of gut microbiota metabolite trimethylamine N-oxide in functional impairment of bone marrow mesenchymal stem cells in osteoporosis disease. Ann Transl Med 8(16):1009PubMedPubMedCentral
103.
go back to reference Bedree JK, Kerns K, Chen T et al (2023) Specific host metabolite and gut microbiome alterations are associated with bone loss during spaceflight. Cell Rep 42:112299PubMedPubMedCentral Bedree JK, Kerns K, Chen T et al (2023) Specific host metabolite and gut microbiome alterations are associated with bone loss during spaceflight. Cell Rep 42:112299PubMedPubMedCentral
104.
go back to reference Liang X, Dai N, Sheng K et al (2022) Gut bacterial extracellular vesicles: important players in regulating intestinal microenvironment. Gut Microbes 14(1):e2134689 Liang X, Dai N, Sheng K et al (2022) Gut bacterial extracellular vesicles: important players in regulating intestinal microenvironment. Gut Microbes 14(1):e2134689
105.
go back to reference Zhang W, Huang P, Lin J, Zeng H (2022) The role of extracellular vesicles in osteoporosis: a scoping review. Membranes 12:324PubMedPubMedCentral Zhang W, Huang P, Lin J, Zeng H (2022) The role of extracellular vesicles in osteoporosis: a scoping review. Membranes 12:324PubMedPubMedCentral
106.
go back to reference Liu JH, Chen CY, Liu ZZ et al (2021) Extracellular vesicles from child gut microbiota enter into bone to preserve bone mass and strength. Adv Sci 8:2004831 Liu JH, Chen CY, Liu ZZ et al (2021) Extracellular vesicles from child gut microbiota enter into bone to preserve bone mass and strength. Adv Sci 8:2004831
107.
go back to reference Liu H, Song P, Zhang H et al (2024) Synthetic biology-based bacterial extracellular vesicles displaying BMP-2 and CXCR4 to ameliorate osteoporosis. J Extracell Vesicles 13:e12429PubMedPubMedCentral Liu H, Song P, Zhang H et al (2024) Synthetic biology-based bacterial extracellular vesicles displaying BMP-2 and CXCR4 to ameliorate osteoporosis. J Extracell Vesicles 13:e12429PubMedPubMedCentral
108.
go back to reference Cheng M, Tan B, Wu X, Liao F, Wang F, Huang Z (2021) Gut microbiota is involved in alcohol-induced osteoporosis in young and old rats through immune regulation. Front Cell Infect Microbiol 11:636231PubMedPubMedCentral Cheng M, Tan B, Wu X, Liao F, Wang F, Huang Z (2021) Gut microbiota is involved in alcohol-induced osteoporosis in young and old rats through immune regulation. Front Cell Infect Microbiol 11:636231PubMedPubMedCentral
109.
go back to reference Ding P, Tan Q, Wei Z et al (2022) Toll-like receptor 9 deficiency induces osteoclastic bone loss via gut microbiota-associated systemic chronic inflammation. Bone Res 10:42PubMedPubMedCentral Ding P, Tan Q, Wei Z et al (2022) Toll-like receptor 9 deficiency induces osteoclastic bone loss via gut microbiota-associated systemic chronic inflammation. Bone Res 10:42PubMedPubMedCentral
110.
go back to reference Jia Y, Sun J, Zhao Y et al (2022) Chinese patent medicine for osteoporosis: a systematic review and meta-analysis. Bioengineered 13(3):5581–5597PubMedPubMedCentral Jia Y, Sun J, Zhao Y et al (2022) Chinese patent medicine for osteoporosis: a systematic review and meta-analysis. Bioengineered 13(3):5581–5597PubMedPubMedCentral
111.
go back to reference Jin YX, Wu P, Mao YF et al (2017) Chinese herbal medicine for osteoporosis: a meta-analysis of randomized controlled trials. J Clin Densitom 20(4):516–525PubMed Jin YX, Wu P, Mao YF et al (2017) Chinese herbal medicine for osteoporosis: a meta-analysis of randomized controlled trials. J Clin Densitom 20(4):516–525PubMed
112.
go back to reference Li K, Jiang Y, Wang N et al (2023) Traditional Chinese medicine in osteoporosis intervention and the related regulatory mechanism of gut microbiome. Am J Chinese Med 51(8):1957–1981 Li K, Jiang Y, Wang N et al (2023) Traditional Chinese medicine in osteoporosis intervention and the related regulatory mechanism of gut microbiome. Am J Chinese Med 51(8):1957–1981
113.
go back to reference Smith BJ, Hatter B, Washburn K et al (2022) Dried plum’s polyphenolic compounds and carbohydrates contribute to its osteoprotective effects and exhibit prebiotic activity in estrogen deficient C57BL/6 mice. Nutrients 14:1685PubMedPubMedCentral Smith BJ, Hatter B, Washburn K et al (2022) Dried plum’s polyphenolic compounds and carbohydrates contribute to its osteoprotective effects and exhibit prebiotic activity in estrogen deficient C57BL/6 mice. Nutrients 14:1685PubMedPubMedCentral
114.
go back to reference Chargo NJ, Keugebauer K, Guzior DV et al (2024) Glucocorticoid-induced osteoporosis is prevented by dietary prune in female mice. Front Cell Dev Biol 11:1324649PubMedPubMedCentral Chargo NJ, Keugebauer K, Guzior DV et al (2024) Glucocorticoid-induced osteoporosis is prevented by dietary prune in female mice. Front Cell Dev Biol 11:1324649PubMedPubMedCentral
115.
go back to reference Dou J, Liang Z, Liu J et al (2024) Quinoa alleviates osteoporosis in ovariectomized rats by regulating gut microbiota imbalance. J Sci Food Agric 104:5052–5063PubMed Dou J, Liang Z, Liu J et al (2024) Quinoa alleviates osteoporosis in ovariectomized rats by regulating gut microbiota imbalance. J Sci Food Agric 104:5052–5063PubMed
116.
go back to reference Zhang J, Zhang Q, Liu H et al (2022) Soy-whey dual-protein alleviates osteoporosis of ovariectomized rats via regulating bone fate metabolism through gut-liver-bone axis. Nutrition 103–104:111723PubMed Zhang J, Zhang Q, Liu H et al (2022) Soy-whey dual-protein alleviates osteoporosis of ovariectomized rats via regulating bone fate metabolism through gut-liver-bone axis. Nutrition 103–104:111723PubMed
117.
go back to reference Xiao X, Wang J, Zhu Y et al (2023) Phytosterols protect against osteoporosis by regulating gut microbiota. J Agric Food Chem 71:14539–14549PubMed Xiao X, Wang J, Zhu Y et al (2023) Phytosterols protect against osteoporosis by regulating gut microbiota. J Agric Food Chem 71:14539–14549PubMed
118.
go back to reference Zhang F, Xu J, Hu Y et al (2023) Diallyl trisulfide ameliorates bone loss and alters specific gut microbiota and serum metabolites in natural aging mice. Food Funct 14(16):7642–7653PubMed Zhang F, Xu J, Hu Y et al (2023) Diallyl trisulfide ameliorates bone loss and alters specific gut microbiota and serum metabolites in natural aging mice. Food Funct 14(16):7642–7653PubMed
119.
go back to reference Hao H, Liu Q, Zheng T et al (2024) Oral milk-derived extracellular vesicles inhibit osteoclastogenesis and ameliorate bone loss in ovariectomized mice by improving gut microbiota. J Agric Food Chem 72:4726–4736PubMed Hao H, Liu Q, Zheng T et al (2024) Oral milk-derived extracellular vesicles inhibit osteoclastogenesis and ameliorate bone loss in ovariectomized mice by improving gut microbiota. J Agric Food Chem 72:4726–4736PubMed
120.
go back to reference Tu MY, Han KY, Chang CRL et al (2020) Kefir peptides prevent estrogen deficiency-induced bone loss and modulate the structure of the gut microbiota in ovariectomized mice. Nutrients 12:3432PubMedPubMedCentral Tu MY, Han KY, Chang CRL et al (2020) Kefir peptides prevent estrogen deficiency-induced bone loss and modulate the structure of the gut microbiota in ovariectomized mice. Nutrients 12:3432PubMedPubMedCentral
121.
go back to reference He W, Xie Z, Wittig NK et al (2022) Yogurt benefits bone mineralization in ovariectomized rats with concomitant modulation of gut microbiome. Mol Nutr Food Res 66:2200174PubMedPubMedCentral He W, Xie Z, Wittig NK et al (2022) Yogurt benefits bone mineralization in ovariectomized rats with concomitant modulation of gut microbiome. Mol Nutr Food Res 66:2200174PubMedPubMedCentral
122.
go back to reference Guo D, Liu W, Zhang X et al (2019) Duck egg white-derived peptide VSEE (Val-Ser-Glu-Glu) regulates bone and lipid metabolisms by Wnt/β-catenin signaling pathway and intestinal microbiota. Mol Nutr Food Res 63:1900525 Guo D, Liu W, Zhang X et al (2019) Duck egg white-derived peptide VSEE (Val-Ser-Glu-Glu) regulates bone and lipid metabolisms by Wnt/β-catenin signaling pathway and intestinal microbiota. Mol Nutr Food Res 63:1900525
123.
go back to reference Li J, Yang M, Lu C et al (2020) Tuna bone powder alleviates glucocorticoid-induced osteoporosis via coregulation of the NF-kB and Wnt/β-catenin signaling pathways and modulation of gut microbiota composition and metabolism. Mol Nutr Food Res 64:1900861 Li J, Yang M, Lu C et al (2020) Tuna bone powder alleviates glucocorticoid-induced osteoporosis via coregulation of the NF-kB and Wnt/β-catenin signaling pathways and modulation of gut microbiota composition and metabolism. Mol Nutr Food Res 64:1900861
124.
go back to reference Ticinesi A, Mancabelli L, Carnevali L et al (2022) Interaction between diet and microbiota in the pathophysiology of Alzheimer’s disease: focus on polyphenols and dietary fibers. J Alzheimers Dis 86(3):961–982PubMed Ticinesi A, Mancabelli L, Carnevali L et al (2022) Interaction between diet and microbiota in the pathophysiology of Alzheimer’s disease: focus on polyphenols and dietary fibers. J Alzheimers Dis 86(3):961–982PubMed
125.
go back to reference Ticinesi A, Nouvenne A, Cerundolo N, Parise A, Meschi T (2023) Accounting gut microbiota as the mediator of beneficial effects of dietary (poly)phenols on skeletal muscle in aging. Nutrients 15(10):2367PubMedPubMedCentral Ticinesi A, Nouvenne A, Cerundolo N, Parise A, Meschi T (2023) Accounting gut microbiota as the mediator of beneficial effects of dietary (poly)phenols on skeletal muscle in aging. Nutrients 15(10):2367PubMedPubMedCentral
126.
go back to reference Cortés-Martín A, Selma MV, Tomás-Barberán FA, González-Sarrías A, Espín JC (2020) Where to look into the puzzle of polyphenols and health? The postbiotics and gut microbiota associated with human metabotypes. Mol Nutr Food Res 64(9):e1900952PubMed Cortés-Martín A, Selma MV, Tomás-Barberán FA, González-Sarrías A, Espín JC (2020) Where to look into the puzzle of polyphenols and health? The postbiotics and gut microbiota associated with human metabotypes. Mol Nutr Food Res 64(9):e1900952PubMed
127.
go back to reference Cortés-Martín A, García-Villalba R, González-Sarrías A et al (2018) The gut microbiota urolithin metabotypes revisited: the human metabolism of ellagic acid is mainly determined by aging. Food Funct 9(8):4100–4106PubMed Cortés-Martín A, García-Villalba R, González-Sarrías A et al (2018) The gut microbiota urolithin metabotypes revisited: the human metabolism of ellagic acid is mainly determined by aging. Food Funct 9(8):4100–4106PubMed
128.
go back to reference Tao H, Li W, Zhang W et al (2021) Urolithin A suppresses RANKL-induced osteoclastogenesis and postmenopausal osteoporosis by, suppresses inflammation and downstream NF-kB activated pyroptosis pathways. Pharmacol Res 174:105967PubMed Tao H, Li W, Zhang W et al (2021) Urolithin A suppresses RANKL-induced osteoclastogenesis and postmenopausal osteoporosis by, suppresses inflammation and downstream NF-kB activated pyroptosis pathways. Pharmacol Res 174:105967PubMed
129.
go back to reference Li Y, Zhuang Q, Tao L et al (2022) Urolithin B suppressed osteoclast activation and reduced bone loss of osteoporosis via inhibiting ERF/NH-kB pathway. Cell Prolif 55:e13291PubMedPubMedCentral Li Y, Zhuang Q, Tao L et al (2022) Urolithin B suppressed osteoclast activation and reduced bone loss of osteoporosis via inhibiting ERF/NH-kB pathway. Cell Prolif 55:e13291PubMedPubMedCentral
130.
go back to reference Qiu ZC, Zhang FX, Hu XL et al (2022) Genistein modified with 8-prenyl group suppresses osteoclast activity directly via its prototype but not metabolite by gut microbiota. Molecules 27:7811PubMedPubMedCentral Qiu ZC, Zhang FX, Hu XL et al (2022) Genistein modified with 8-prenyl group suppresses osteoclast activity directly via its prototype but not metabolite by gut microbiota. Molecules 27:7811PubMedPubMedCentral
131.
go back to reference Chen F, Zhang X, Chen S et al (2023) 5-(3′,4′-dihydroxyphenyl)-ϒ-valerolactone, a microbiota metabolite of flavan-3-ols, activates SIRT1-mediated autophagy to attenuate H2O2-induced inhibition of osteoclast differentiation in MC3T3-E1 cells. Free Radic Biol Med 208:309–318PubMed Chen F, Zhang X, Chen S et al (2023) 5-(3′,4′-dihydroxyphenyl)-ϒ-valerolactone, a microbiota metabolite of flavan-3-ols, activates SIRT1-mediated autophagy to attenuate H2O2-induced inhibition of osteoclast differentiation in MC3T3-E1 cells. Free Radic Biol Med 208:309–318PubMed
132.
go back to reference Inchingolo AD, Inchingolo AM, Malcangi G et al (2022) Effects of resveratrol, curcumin and quercetin supplementation on bone metabolism – A systematic review. Nutrients 14:3519PubMedPubMedCentral Inchingolo AD, Inchingolo AM, Malcangi G et al (2022) Effects of resveratrol, curcumin and quercetin supplementation on bone metabolism – A systematic review. Nutrients 14:3519PubMedPubMedCentral
133.
go back to reference Mei F, Meng K, Gu Z et al (2020) Arecanut (Areca catechu L.) seed polyphenol-ameliorated osteoporosis by altering gut microbiome via LYZ and the immune system in estrogen-deficient rats. J Agric Food Chem 69:246–258PubMed Mei F, Meng K, Gu Z et al (2020) Arecanut (Areca catechu L.) seed polyphenol-ameliorated osteoporosis by altering gut microbiome via LYZ and the immune system in estrogen-deficient rats. J Agric Food Chem 69:246–258PubMed
134.
go back to reference Wen X, Wu P, Li F, Pi G (2024) Study on the relationship between tea polyphenols alleviating osteoporosis and the changes of microorganism-metabolite-intestinal barrier. Microbial Pathog 188:106564 Wen X, Wu P, Li F, Pi G (2024) Study on the relationship between tea polyphenols alleviating osteoporosis and the changes of microorganism-metabolite-intestinal barrier. Microbial Pathog 188:106564
135.
go back to reference Xiao HH, Yu X, Yang C et al (2021) Prenylated isoflavonoids-rich extract of Erythrinae cortex exerted bone protective effects by modulating gut microbial composition and metabolites in ovariectomized rats. Nutrients 13:2943PubMedPubMedCentral Xiao HH, Yu X, Yang C et al (2021) Prenylated isoflavonoids-rich extract of Erythrinae cortex exerted bone protective effects by modulating gut microbial composition and metabolites in ovariectomized rats. Nutrients 13:2943PubMedPubMedCentral
136.
go back to reference Wu M, Chen C, Lei H et al (2023) Dietary isoquercetin ameliorates bone loss via restoration of the gut microbiota and lipopolysaccharide-triggered inflammatory status in ovariectomy mice. J Agric Food Chem 71:15981–15990PubMed Wu M, Chen C, Lei H et al (2023) Dietary isoquercetin ameliorates bone loss via restoration of the gut microbiota and lipopolysaccharide-triggered inflammatory status in ovariectomy mice. J Agric Food Chem 71:15981–15990PubMed
137.
go back to reference Han X, Fu Y, Wang K et al (2023) Epigallocatechin gallate alleviates osteoporosis by regulating the gut microbiota and serum metabolites in rats. Food Funct 14(23):10564–10580PubMed Han X, Fu Y, Wang K et al (2023) Epigallocatechin gallate alleviates osteoporosis by regulating the gut microbiota and serum metabolites in rats. Food Funct 14(23):10564–10580PubMed
138.
go back to reference Islam P, Ice JA, Alake SE et al (2024) Fructooligosaccharides act on the gut bone axis to improve bone independent of Tregs and alter osteocytes in young adult C57BL/6 mice. JBMR Plus 8:ziae021PubMedPubMedCentral Islam P, Ice JA, Alake SE et al (2024) Fructooligosaccharides act on the gut bone axis to improve bone independent of Tregs and alter osteocytes in young adult C57BL/6 mice. JBMR Plus 8:ziae021PubMedPubMedCentral
139.
go back to reference Porwal K, Pal S, Kulkarni C et al (2020) A prebiotic, short-chain fructo-oligosaccharides promotes peak bone mass and maintains bone mass in ovariectomized rats by an osteogenic mechanism. Biomed Pharmacother 129:110448PubMed Porwal K, Pal S, Kulkarni C et al (2020) A prebiotic, short-chain fructo-oligosaccharides promotes peak bone mass and maintains bone mass in ovariectomized rats by an osteogenic mechanism. Biomed Pharmacother 129:110448PubMed
140.
go back to reference Tanabe K, Nakamura S, Moriyama-Hashiguchi M et al (2019) Dietary fructooligosaccharide and glucomannan alter gut microbiota and improve bone metabolism in senescence-accelerated mouse. J Agric Food Chem 67:867–874PubMed Tanabe K, Nakamura S, Moriyama-Hashiguchi M et al (2019) Dietary fructooligosaccharide and glucomannan alter gut microbiota and improve bone metabolism in senescence-accelerated mouse. J Agric Food Chem 67:867–874PubMed
141.
go back to reference Zhang Z, Lin T, Meng Y et al (2021) FOS/GOS attenuates high-fat diet induced bone loss via reversing microbiota dysbiosis, high intestinal permeability and systemic inflammation in mice. Metab Clin Exp 119:154767PubMed Zhang Z, Lin T, Meng Y et al (2021) FOS/GOS attenuates high-fat diet induced bone loss via reversing microbiota dysbiosis, high intestinal permeability and systemic inflammation in mice. Metab Clin Exp 119:154767PubMed
142.
go back to reference Liu H, Gu R, Zhu Y et al (2020) D-mannose attenuates bone loss in mice via Treg cell proliferation and gut microbiota-dependent anti-inflammatory effects. Ther Adv Chronic Dis 11:1–17 Liu H, Gu R, Zhu Y et al (2020) D-mannose attenuates bone loss in mice via Treg cell proliferation and gut microbiota-dependent anti-inflammatory effects. Ther Adv Chronic Dis 11:1–17
143.
go back to reference Bose S, Sharan K (2024) Effect of probiotics on postmenopausal bone health: a preclinical meta-analysis. Br J Nutr 131:567–580PubMed Bose S, Sharan K (2024) Effect of probiotics on postmenopausal bone health: a preclinical meta-analysis. Br J Nutr 131:567–580PubMed
144.
go back to reference Das M, Cronin O, Keohane DM et al (2019) Gut microbiota alterations associated with reduced bone mineral density in older adults. Rheumatology 58:2295–2304PubMedPubMedCentral Das M, Cronin O, Keohane DM et al (2019) Gut microbiota alterations associated with reduced bone mineral density in older adults. Rheumatology 58:2295–2304PubMedPubMedCentral
145.
go back to reference Wang J, Wang Y, Gao W et al (2017) Diversity analysis of gut microbiota in osteoporosis and osteopenia patients. PeerJ 5:e3450PubMedPubMedCentral Wang J, Wang Y, Gao W et al (2017) Diversity analysis of gut microbiota in osteoporosis and osteopenia patients. PeerJ 5:e3450PubMedPubMedCentral
146.
go back to reference Li C, Huang Q, Yang R et al (2019) Gut microbiota composition and bone mineral loss-epidemiologic evidence from individuals in Wuhan, China. Osteoporosis Int 30:1003–1013 Li C, Huang Q, Yang R et al (2019) Gut microbiota composition and bone mineral loss-epidemiologic evidence from individuals in Wuhan, China. Osteoporosis Int 30:1003–1013
147.
go back to reference Xu Z, Xie Z, Sun J et al (2020) Gut microbiome reveals specific dysbiosis in primary osteoporosis. Front Cell Infect Microbiol 10:160PubMedPubMedCentral Xu Z, Xie Z, Sun J et al (2020) Gut microbiome reveals specific dysbiosis in primary osteoporosis. Front Cell Infect Microbiol 10:160PubMedPubMedCentral
148.
go back to reference Rettedal EA, Ilesanmi-Oyelere BL, Roy NC, Coad J, Kruger MC (2021) The gut microbiome is altered in postmenopausal women with osteoporosis and osteopenia. JMBR Plus 5(3):e10452 Rettedal EA, Ilesanmi-Oyelere BL, Roy NC, Coad J, Kruger MC (2021) The gut microbiome is altered in postmenopausal women with osteoporosis and osteopenia. JMBR Plus 5(3):e10452
149.
go back to reference Palacios-González B, Ramírez-Salazar EG, Rivera-Paredez B et al (2020) A multi-omic analysis for low bone mineral density in postmenopausal women suggests a relationship between diet, metabolites, and microbiota. Microorganisms 8:1630PubMedPubMedCentral Palacios-González B, Ramírez-Salazar EG, Rivera-Paredez B et al (2020) A multi-omic analysis for low bone mineral density in postmenopausal women suggests a relationship between diet, metabolites, and microbiota. Microorganisms 8:1630PubMedPubMedCentral
150.
go back to reference Wei M, Li C, Dai Y et al (2021) High-throughput absolute quantification sequencing revealed osteoporosis-related gut microbiota alterations in Han Chinese elderly. Front Cell Infect Microbiol 11:630372PubMedPubMedCentral Wei M, Li C, Dai Y et al (2021) High-throughput absolute quantification sequencing revealed osteoporosis-related gut microbiota alterations in Han Chinese elderly. Front Cell Infect Microbiol 11:630372PubMedPubMedCentral
151.
go back to reference Wang Z, Chen K, Wu C et al (2021) An emerging role of Prevotella histicola on estrogen deficiency induced bone loss through the gut microbiota-bone axis in postmenopausal women and in ovariectomized mice. Am J Clin Nutr 114:1304–1313PubMed Wang Z, Chen K, Wu C et al (2021) An emerging role of Prevotella histicola on estrogen deficiency induced bone loss through the gut microbiota-bone axis in postmenopausal women and in ovariectomized mice. Am J Clin Nutr 114:1304–1313PubMed
152.
go back to reference Qin Q, Yan S, Yang Y et al (2021) The relationship between osteoporosis and intestinal microbes in the Henan province of China. Front Cell Dev Biol 9:752990PubMedPubMedCentral Qin Q, Yan S, Yang Y et al (2021) The relationship between osteoporosis and intestinal microbes in the Henan province of China. Front Cell Dev Biol 9:752990PubMedPubMedCentral
153.
go back to reference Azizi Raftar SK, Tavassol ZH, Amiri M et al (2021) Assessment of fecal Akkermansia muciniphila in patients with osteoporosis and osteopenia: a pilot study. J Diabetes Metab Disord 20:279–284 Azizi Raftar SK, Tavassol ZH, Amiri M et al (2021) Assessment of fecal Akkermansia muciniphila in patients with osteoporosis and osteopenia: a pilot study. J Diabetes Metab Disord 20:279–284
154.
go back to reference Wang Q, Sun Q, Li X et al (2021) Linking gut microbiome to bone mineral density: a shotgun metagenomic dataset from 361 elderly women. GigaByte 2021:1–13 Wang Q, Sun Q, Li X et al (2021) Linking gut microbiome to bone mineral density: a shotgun metagenomic dataset from 361 elderly women. GigaByte 2021:1–13
155.
go back to reference Cheng J, Zhong WL, Zhao JW et al (2022) Alterations in the composition of the gut microbiota affect absorption of cholecalciferol in severe osteoporosis. J Bone Miner Metab 40:478–486PubMed Cheng J, Zhong WL, Zhao JW et al (2022) Alterations in the composition of the gut microbiota affect absorption of cholecalciferol in severe osteoporosis. J Bone Miner Metab 40:478–486PubMed
156.
go back to reference Greenbaum J, Lin X, Su KJ et al (2022) Integration of the human gut microbiome and serum metabolome reveals novel biological factors involved in the regulation of bone mineral density. Front Cell Infect Microbiol 12:853499PubMedPubMedCentral Greenbaum J, Lin X, Su KJ et al (2022) Integration of the human gut microbiome and serum metabolome reveals novel biological factors involved in the regulation of bone mineral density. Front Cell Infect Microbiol 12:853499PubMedPubMedCentral
157.
go back to reference Wang Y, Gao X, Lv J et al (2022) Gut microbiome signature are correlated with bone mineral density alterations in the Chinese elders. Front Cell Infect Microbiol 12:827575PubMedPubMedCentral Wang Y, Gao X, Lv J et al (2022) Gut microbiome signature are correlated with bone mineral density alterations in the Chinese elders. Front Cell Infect Microbiol 12:827575PubMedPubMedCentral
158.
go back to reference Huang D, Wang J, Zeng Y et al (2023) Identifying microbial signatures for patients with postmenopausal osteoporosis using gut microbiota analyses and feature selection approaches. Front Microbiol 14:1113174PubMedPubMedCentral Huang D, Wang J, Zeng Y et al (2023) Identifying microbial signatures for patients with postmenopausal osteoporosis using gut microbiota analyses and feature selection approaches. Front Microbiol 14:1113174PubMedPubMedCentral
159.
go back to reference Wang H, Liu J, Wu Z et al (2023) Gut microbiota signatures and fecal metabolites in postmenopausal women with osteoporosis. Gut Pathog 15:33PubMedPubMedCentral Wang H, Liu J, Wu Z et al (2023) Gut microbiota signatures and fecal metabolites in postmenopausal women with osteoporosis. Gut Pathog 15:33PubMedPubMedCentral
160.
go back to reference Kuo YJ, Chen CJ, Hussain B et al (2023) Inferring bacterial community interactions and functionalities associated with osteopenia and osteoporosis in Taiwanese postmenopausal women. Microorganisms 11:234PubMedPubMedCentral Kuo YJ, Chen CJ, Hussain B et al (2023) Inferring bacterial community interactions and functionalities associated with osteopenia and osteoporosis in Taiwanese postmenopausal women. Microorganisms 11:234PubMedPubMedCentral
161.
go back to reference Mei Z, Yin MT, Sharma A et al (2023) Gut microbiota and plasma metabolites associated with bone mineral density in women with or at risk of HIV infection. AIDS 37:149–159PubMed Mei Z, Yin MT, Sharma A et al (2023) Gut microbiota and plasma metabolites associated with bone mineral density in women with or at risk of HIV infection. AIDS 37:149–159PubMed
162.
go back to reference Coskun M, Babayeva A, Barlas T et al (2024) Relationship between gut microbiome and bone deficits in primary hyperparathyroidism: a proof of concept pilot study. J Investig Med 15:10815589241251696 Coskun M, Babayeva A, Barlas T et al (2024) Relationship between gut microbiome and bone deficits in primary hyperparathyroidism: a proof of concept pilot study. J Investig Med 15:10815589241251696
163.
go back to reference Ling C, Miao Z, Xiao M et al (2021) The association of gut microbiota with osteoporosis is mediated by amino acid metabolism: multiomics in a large cohort. J Clin Endocrinol Metab 10:e3852–e3864 Ling C, Miao Z, Xiao M et al (2021) The association of gut microbiota with osteoporosis is mediated by amino acid metabolism: multiomics in a large cohort. J Clin Endocrinol Metab 10:e3852–e3864
164.
go back to reference Okoro PC, Orwoll ES, Huttenhower C et al (2023) A two-cohort study on the association between the gut microbiota and bone density, microarchitecture, and strength. Front Endocrinol 14:1237727 Okoro PC, Orwoll ES, Huttenhower C et al (2023) A two-cohort study on the association between the gut microbiota and bone density, microarchitecture, and strength. Front Endocrinol 14:1237727
165.
go back to reference Cheng S, Qi X, Ma M et al (2020) Assessing the relationship between gut microbiota and bone mineral density. Front Genet 11:6PubMedPubMedCentral Cheng S, Qi X, Ma M et al (2020) Assessing the relationship between gut microbiota and bone mineral density. Front Genet 11:6PubMedPubMedCentral
166.
go back to reference Cao RR, He P, Lei SF (2021) Novel microbiota-related gene set enrichment analysis identified osteoporosis associated gut microbiota from autoimmune diseases. J Bone Miner Metab 39:984–996PubMed Cao RR, He P, Lei SF (2021) Novel microbiota-related gene set enrichment analysis identified osteoporosis associated gut microbiota from autoimmune diseases. J Bone Miner Metab 39:984–996PubMed
167.
go back to reference Cheng B, Wen Y, Yang X et al (2021) Gut microbiota is associated with bone mineral density. An observational and genome-wide environmental interaction analysis in the UK Biobank Cohort. Bone Joint Res 10(11):734–741PubMedPubMedCentral Cheng B, Wen Y, Yang X et al (2021) Gut microbiota is associated with bone mineral density. An observational and genome-wide environmental interaction analysis in the UK Biobank Cohort. Bone Joint Res 10(11):734–741PubMedPubMedCentral
168.
go back to reference Di DS, Li C, Dai Y et al (2021) Integrative analysis of LGR5/6 gene variants, gut microbiota composition and osteoporosis risk in elderly population. Front Microbiol 12:765008PubMedPubMedCentral Di DS, Li C, Dai Y et al (2021) Integrative analysis of LGR5/6 gene variants, gut microbiota composition and osteoporosis risk in elderly population. Front Microbiol 12:765008PubMedPubMedCentral
169.
go back to reference Ni JJ, Yang XL, Zhang H et al (2021) Assessing causal relationship from gut microbiota to heel bone mineral density. Bone 143:115652PubMed Ni JJ, Yang XL, Zhang H et al (2021) Assessing causal relationship from gut microbiota to heel bone mineral density. Bone 143:115652PubMed
170.
go back to reference Zeng HQ, Li G, Zhou KX et al (2024) Causal link between gut microbiota and osteoporosis analyzed via Mendelian randomization. Eur Rev Med Pharmacol Sci 28:542–555PubMed Zeng HQ, Li G, Zhou KX et al (2024) Causal link between gut microbiota and osteoporosis analyzed via Mendelian randomization. Eur Rev Med Pharmacol Sci 28:542–555PubMed
171.
go back to reference Akinsuyi OS, Roesch LFW (2023) Meta-analysis reveals compositional and functional microbial changes associated with osteoporosis. Microbiol Spectr 11(3):e0032223PubMed Akinsuyi OS, Roesch LFW (2023) Meta-analysis reveals compositional and functional microbial changes associated with osteoporosis. Microbiol Spectr 11(3):e0032223PubMed
172.
go back to reference Huang R, Liu P, Bai Y et al (2022) Changes in the gut microbiota of osteoporosis patients based on 16S rRNA gene sequencing: a systematic review an meta-analysis. J Zhejiang Univ Sci B 23(12):1002–1013PubMedPubMedCentral Huang R, Liu P, Bai Y et al (2022) Changes in the gut microbiota of osteoporosis patients based on 16S rRNA gene sequencing: a systematic review an meta-analysis. J Zhejiang Univ Sci B 23(12):1002–1013PubMedPubMedCentral
173.
go back to reference Roselló-Añon A, Chiappe C, Valverde-Vázquez MR et al (2023) Pilot study to determine the association between gut microbiota and fragility hip fracture. Rev Esp Cir Ortop Traumatol 67(4):279–289PubMed Roselló-Añon A, Chiappe C, Valverde-Vázquez MR et al (2023) Pilot study to determine the association between gut microbiota and fragility hip fracture. Rev Esp Cir Ortop Traumatol 67(4):279–289PubMed
174.
go back to reference Karl JP, Meydani M, Barnett JB et al (2017) Fecal concentrations of bacterially derived vitamin K forms are associated with gut microbiota composition but not plasma or fecal cytokine concentrations in healthy adults. Am J Clin Nutr 106(4):1052–1061PubMedPubMedCentral Karl JP, Meydani M, Barnett JB et al (2017) Fecal concentrations of bacterially derived vitamin K forms are associated with gut microbiota composition but not plasma or fecal cytokine concentrations in healthy adults. Am J Clin Nutr 106(4):1052–1061PubMedPubMedCentral
175.
go back to reference Zhou T, Wang M, Ma H, Li X, Heianza Y, Qi L (2021) Dietary fiber, genetic variations of gut microbiota-derived short-chain fatty acids, and bone health in UK Biobank. J Clin Endocrinol Metab 106(1):201–210PubMed Zhou T, Wang M, Ma H, Li X, Heianza Y, Qi L (2021) Dietary fiber, genetic variations of gut microbiota-derived short-chain fatty acids, and bone health in UK Biobank. J Clin Endocrinol Metab 106(1):201–210PubMed
176.
go back to reference Chen F, Wei Q, Xu D et al (2021) The associations of gut microbiota and fecal short-chain fatty acids with bone mass were largely mediated by weight status: a cross-sectional study. Eur J Nutr 60:4505–4517PubMed Chen F, Wei Q, Xu D et al (2021) The associations of gut microbiota and fecal short-chain fatty acids with bone mass were largely mediated by weight status: a cross-sectional study. Eur J Nutr 60:4505–4517PubMed
177.
go back to reference Lin X, Xiao HM, Liu HM et al (2023) Gut microbiota impacts bone via Bacteroides vulgatus-valeric acid-related pathways. Nat Comm 14:6853 Lin X, Xiao HM, Liu HM et al (2023) Gut microbiota impacts bone via Bacteroides vulgatus-valeric acid-related pathways. Nat Comm 14:6853
178.
go back to reference Cai X, Li Z, Yao Y, Zheng Y, Zhang M, Ye Y (2024) Glycolithocolic acid increases the frequency of circulating Tregs through constitutive androstane receptor to alleviate postmenopausal osteoporosis. Biochem Pharmacol 219:115951PubMed Cai X, Li Z, Yao Y, Zheng Y, Zhang M, Ye Y (2024) Glycolithocolic acid increases the frequency of circulating Tregs through constitutive androstane receptor to alleviate postmenopausal osteoporosis. Biochem Pharmacol 219:115951PubMed
179.
go back to reference Liang Z, Hao Y, Yang L et al (2023) The potential of Klebsiella and Escherichia-Shigella and amino acids metabolism to monitor patients with postmenopausal osteoporosis in northwest China. BMC Microbiol 23:199PubMedPubMedCentral Liang Z, Hao Y, Yang L et al (2023) The potential of Klebsiella and Escherichia-Shigella and amino acids metabolism to monitor patients with postmenopausal osteoporosis in northwest China. BMC Microbiol 23:199PubMedPubMedCentral
180.
go back to reference He J, Xu S, Zhang B et al (2020) Gut microbiota and metabolite alterations associated with reduced bone mineral density or bone metabolic indexes in postmenopausal osteoporosis. Aging 12(9):8583–8604PubMedPubMedCentral He J, Xu S, Zhang B et al (2020) Gut microbiota and metabolite alterations associated with reduced bone mineral density or bone metabolic indexes in postmenopausal osteoporosis. Aging 12(9):8583–8604PubMedPubMedCentral
181.
go back to reference Rolland Y, Ticinesi A, Sokol H, De Souto BP (2024) Therapeutic perspectives of pre-, pro-, post-biotics in the treatment of sarcopenia. J Nutr Health Aging 28(7):100298PubMed Rolland Y, Ticinesi A, Sokol H, De Souto BP (2024) Therapeutic perspectives of pre-, pro-, post-biotics in the treatment of sarcopenia. J Nutr Health Aging 28(7):100298PubMed
182.
go back to reference Morato-Martínez M, López-Plaza B, Santurino C, Palma-Milla S, Gómez-Candela C (2020) A dairy product to reconstitute enriched with bioactive nutrients stops bone loss in high-risk menopausal women without pharmacological treatments. Nutrients 12(8):2203PubMedPubMedCentral Morato-Martínez M, López-Plaza B, Santurino C, Palma-Milla S, Gómez-Candela C (2020) A dairy product to reconstitute enriched with bioactive nutrients stops bone loss in high-risk menopausal women without pharmacological treatments. Nutrients 12(8):2203PubMedPubMedCentral
183.
go back to reference Nilsson AG, Sundh D, Bäckhed F, Lorentzon M (2018) Lactobacillus reuteri reduces bone loss in older women with low bone mineral density: a randomized, placebo-controlled, double-blind, clinical trial. J Intern Med 284(3):307–317PubMed Nilsson AG, Sundh D, Bäckhed F, Lorentzon M (2018) Lactobacillus reuteri reduces bone loss in older women with low bone mineral density: a randomized, placebo-controlled, double-blind, clinical trial. J Intern Med 284(3):307–317PubMed
184.
go back to reference Li P, Sundh D, Ji B et al (2021) Metabolic alterations in older women with low bone mineral density supplemented with Lactobacillus reuteri. JBMR Plus 5(4):e10478PubMedPubMedCentral Li P, Sundh D, Ji B et al (2021) Metabolic alterations in older women with low bone mineral density supplemented with Lactobacillus reuteri. JBMR Plus 5(4):e10478PubMedPubMedCentral
185.
go back to reference Li P, Ji B, Luo H, Sundh D, Lorentzon M, Nielsen J (2022) One-year supplementation with Lactobacillus reuteri ATCC PTA 6475 counteracts a degradation of gut microbiota in older women with low bone mineral density. NPJ Biofilms Microbiomes 8:84PubMedPubMedCentral Li P, Ji B, Luo H, Sundh D, Lorentzon M, Nielsen J (2022) One-year supplementation with Lactobacillus reuteri ATCC PTA 6475 counteracts a degradation of gut microbiota in older women with low bone mineral density. NPJ Biofilms Microbiomes 8:84PubMedPubMedCentral
186.
go back to reference Jansson PA, Curiac D, Lazou Ahrén I et al (2019) Probiotic treatment using a mix of three Lactobacillus strains for lumbar spine bone loss in postmenopausal women: a randomized, double-blind, placebo-controlled trial. Lancet Rheumatol 1(3):e154–e162PubMed Jansson PA, Curiac D, Lazou Ahrén I et al (2019) Probiotic treatment using a mix of three Lactobacillus strains for lumbar spine bone loss in postmenopausal women: a randomized, double-blind, placebo-controlled trial. Lancet Rheumatol 1(3):e154–e162PubMed
187.
go back to reference Zhao F, Guo Z, Kwok LY et al (2023) Bifidobacterium lactis Probio-M8 improves bone metabolism in patients with postmenopausal osteoporosis, possibly by modulating gut microbiota. Eur J Nutr 62:965–976PubMed Zhao F, Guo Z, Kwok LY et al (2023) Bifidobacterium lactis Probio-M8 improves bone metabolism in patients with postmenopausal osteoporosis, possibly by modulating gut microbiota. Eur J Nutr 62:965–976PubMed
188.
go back to reference Takimoto T, Hatanaka M, Hoshino T et al (2018) Effect of Bacillus subtilis C-3102 on bone mineral density in healthy postmenopausal Japanese women: a randomized, placebo-controlled, double-blind clinical trial. Biosci Microbiota Food Health 67(4):87–96 Takimoto T, Hatanaka M, Hoshino T et al (2018) Effect of Bacillus subtilis C-3102 on bone mineral density in healthy postmenopausal Japanese women: a randomized, placebo-controlled, double-blind clinical trial. Biosci Microbiota Food Health 67(4):87–96
189.
go back to reference Jafarnejad S, Djafarian K, Fazeli MR, Yekaninejad MS, Rostamian A, Keshavarz SA (2017) Effects of a multispecies probiotic supplement on bone health in osteopenic postmenopausal women: a randomized, double-blind, controlled trial. J Am Coll Nutr 36(7):497–506PubMed Jafarnejad S, Djafarian K, Fazeli MR, Yekaninejad MS, Rostamian A, Keshavarz SA (2017) Effects of a multispecies probiotic supplement on bone health in osteopenic postmenopausal women: a randomized, double-blind, controlled trial. J Am Coll Nutr 36(7):497–506PubMed
190.
go back to reference Tandrup Lambert MN, Bundgaard Thybo C, Lykkeboe S et al (2017) Combined bioavailable isoflavones and probiotics improve bone status and estrogen metabolism in postmenopausal osteopenic women: a randomized controlled trial. Am J Clin Nutr 106:909–920 Tandrup Lambert MN, Bundgaard Thybo C, Lykkeboe S et al (2017) Combined bioavailable isoflavones and probiotics improve bone status and estrogen metabolism in postmenopausal osteopenic women: a randomized controlled trial. Am J Clin Nutr 106:909–920
191.
go back to reference Slevin MM, Allsopp PJ, Magee PJ et al (2014) Supplementation with calcium and short-chain fructo-oligosaccharides affects markers of bone turnover but not bone mineral density in postmenopausal women. J Nutr 144:297–304PubMed Slevin MM, Allsopp PJ, Magee PJ et al (2014) Supplementation with calcium and short-chain fructo-oligosaccharides affects markers of bone turnover but not bone mineral density in postmenopausal women. J Nutr 144:297–304PubMed
192.
go back to reference Holloway L, Moynihan S, Abrams SA, Kent K, Hsu AR, Friedlander AL (2007) Effects of oligofructose-enriched inulin on intestinal absorption of calcium and magnesium and bone turnover markers in postmenopausal women. Br J Nutr 97(2):365–372PubMed Holloway L, Moynihan S, Abrams SA, Kent K, Hsu AR, Friedlander AL (2007) Effects of oligofructose-enriched inulin on intestinal absorption of calcium and magnesium and bone turnover markers in postmenopausal women. Br J Nutr 97(2):365–372PubMed
193.
go back to reference Van den Heuvel EG, Schoterman MH, Muijs T (2000) Transgalactooligosaccharides stimulate calcium absorption in post-menopausal women. J Nutr 130(12):2938–2942PubMed Van den Heuvel EG, Schoterman MH, Muijs T (2000) Transgalactooligosaccharides stimulate calcium absorption in post-menopausal women. J Nutr 130(12):2938–2942PubMed
194.
go back to reference McGrail L, Vargas-Robles D, Rojas Correa M et al (2024) Daily yogurt consumption does not affect bone turnover markers in men and postmenopausal women of Caribbean Latino descent: a randomized controlled trial. BMC Nutr 10:12PubMedPubMedCentral McGrail L, Vargas-Robles D, Rojas Correa M et al (2024) Daily yogurt consumption does not affect bone turnover markers in men and postmenopausal women of Caribbean Latino descent: a randomized controlled trial. BMC Nutr 10:12PubMedPubMedCentral
195.
go back to reference Simpson AMR, De Souza MJ, Damani J et al (2024) Gut microbes differ in postmenopausal women responding to prunes to maintain hip bone mineral density. Front Nutr 11:1389638PubMedPubMedCentral Simpson AMR, De Souza MJ, Damani J et al (2024) Gut microbes differ in postmenopausal women responding to prunes to maintain hip bone mineral density. Front Nutr 11:1389638PubMedPubMedCentral
196.
go back to reference Lecomte M, Tomassi D, Rizzoli R et al (2023) Effect of a hop extract standardized in 8-prenylnarigenin on bone health and gut microbiome in postmenopausal women with osteopenia: a one-year randomized, double-blind, placebo-controlled trial. Nutrients 15:2688PubMedPubMedCentral Lecomte M, Tomassi D, Rizzoli R et al (2023) Effect of a hop extract standardized in 8-prenylnarigenin on bone health and gut microbiome in postmenopausal women with osteopenia: a one-year randomized, double-blind, placebo-controlled trial. Nutrients 15:2688PubMedPubMedCentral
197.
go back to reference Duscha A, Hagelmaier T, Dürholz K et al (2022) Propionic acid beneficially modifies osteoporosis biomarkers in patients with multiple sclerosis. Ther Adv Neurol Disord 15:1–10 Duscha A, Hagelmaier T, Dürholz K et al (2022) Propionic acid beneficially modifies osteoporosis biomarkers in patients with multiple sclerosis. Ther Adv Neurol Disord 15:1–10
198.
go back to reference Zhang YW, Cao MM, Li YJ et al (2022) Fecal microbiota transplantation as a promising treatment option for osteoporosis. J Bone Miner Metab 40:874–889PubMedPubMedCentral Zhang YW, Cao MM, Li YJ et al (2022) Fecal microbiota transplantation as a promising treatment option for osteoporosis. J Bone Miner Metab 40:874–889PubMedPubMedCentral
Metadata
Title
Gut microbiome and bone health: update on mechanisms, clinical correlations, and possible treatment strategies
Authors
Andrea Ticinesi
Carmine Siniscalchi
Tiziana Meschi
Antonio Nouvenne
Publication date
07-12-2024
Publisher
Springer London
Published in
Osteoporosis International / Issue 2/2025
Print ISSN: 0937-941X
Electronic ISSN: 1433-2965
DOI
https://doi.org/10.1007/s00198-024-07320-0