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Published in: Calcified Tissue International 5/2017

01-05-2017 | Review

Adipose, Bone, and Myeloma: Contributions from the Microenvironment

Authors: Michelle M. McDonald, Heather Fairfield, Carolyne Falank, Michaela R. Reagan

Published in: Calcified Tissue International | Issue 5/2017

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Abstract

Researchers globally are working towards finding a cure for multiple myeloma (MM), a destructive blood cancer diagnosed yearly in ~750,000 people worldwide (Podar et al. in Expert Opin Emerg Drugs 14:99–127, 2009). Although MM targets multiple organ systems, it is the devastating skeletal destruction experienced by over 90 % of patients that often most severely impacts patient morbidity, pain, and quality of life. Preventing bone disease is therefore a priority in MM treatment, and understanding how and why myeloma cells target the bone marrow (BM) is fundamental to this process. This review focuses on a key area of MM research: the contributions of the bone microenvironment to disease origins, progression, and drug resistance. We describe some of the key cell types in the BM niche: osteoclasts, osteoblasts, osteocytes, adipocytes, and mesenchymal stem cells. We then focus on how these key cellular players are, or could be, regulating a range of disease-related processes spanning MM growth, drug resistance, and bone disease (including osteolysis, fracture, and hypercalcemia). We summarize the literature regarding MM-bone cell and MM-adipocyte relationships and subsequent phenotypic changes or adaptations in MM cells, with the aim of providing a deeper understanding of how myeloma cells grow in the skeleton to cause bone destruction. We identify avenues and therapies that intervene in these networks to stop tumor growth and/or induce bone regeneration. Overall, we aim to illustrate how novel therapeutic target molecules, proteins, and cellular mediators may offer new avenues to attack this disease while reviewing currently utilized therapies.
Literature
2.
go back to reference Noopur R, Vescio R, Montgomery CW et al (2015) Bone marker-directed dosing of zoledronic acid for the prevention of skeletal complications in patients with multiple myeloma: results of the Z-MARK study. Clin Cancer Res. doi:10.1158/1078-0432.CCR-15-1864 Noopur R, Vescio R, Montgomery CW et al (2015) Bone marker-directed dosing of zoledronic acid for the prevention of skeletal complications in patients with multiple myeloma: results of the Z-MARK study. Clin Cancer Res. doi:10.​1158/​1078-0432.​CCR-15-1864
18.
go back to reference Miyakoshi N, Sato K, Abe T et al (1999) Histomorphometric evaluation of the effects of ovariectomy on bone turnover in rat caudal vertebrae. Calcif Tissue Int 64:318–324PubMedCrossRef Miyakoshi N, Sato K, Abe T et al (1999) Histomorphometric evaluation of the effects of ovariectomy on bone turnover in rat caudal vertebrae. Calcif Tissue Int 64:318–324PubMedCrossRef
21.
24.
go back to reference Martin RB, Zissimos SL (1991) Relationships between marrow fat and bone turnover in ovariectomized and intact rats. Bone 12:123–131PubMedCrossRef Martin RB, Zissimos SL (1991) Relationships between marrow fat and bone turnover in ovariectomized and intact rats. Bone 12:123–131PubMedCrossRef
26.
29.
go back to reference Shen W, Scherzer R, Gantz M et al (2012) Relationship between MRI-measured bone marrow adipose tissue and hip and spine bone mineral density in African-American and Caucasian participants: the CARDIA study. J Clin Endocrinol Metab 97:1337–1346. doi:10.1210/jc.2011-2605 PubMedPubMedCentralCrossRef Shen W, Scherzer R, Gantz M et al (2012) Relationship between MRI-measured bone marrow adipose tissue and hip and spine bone mineral density in African-American and Caucasian participants: the CARDIA study. J Clin Endocrinol Metab 97:1337–1346. doi:10.​1210/​jc.​2011-2605 PubMedPubMedCentralCrossRef
32.
40.
go back to reference Abboud C, Lichtman M (2001) Williams’ hematology, 6th edn. McGraw-Hil, New York Abboud C, Lichtman M (2001) Williams’ hematology, 6th edn. McGraw-Hil, New York
47.
49.
go back to reference Hashimoto T, Abe M, Oshima T et al (2004) Ability of myeloma cells to secrete macrophage inflammatory protein (MIP)-1alpha and MIP-1beta correlates with lytic bone lesions in patients with multiple myeloma. Br J Haematol 125:38–41PubMedCrossRef Hashimoto T, Abe M, Oshima T et al (2004) Ability of myeloma cells to secrete macrophage inflammatory protein (MIP)-1alpha and MIP-1beta correlates with lytic bone lesions in patients with multiple myeloma. Br J Haematol 125:38–41PubMedCrossRef
56.
65.
go back to reference Yaccoby S, Wezeman MJ, Zangari M et al (2006) Inhibitory effects of osteoblasts and increased bone formation on myeloma in novel culture systems and a myelomatous mouse model. Haematologica 91:192–199PubMedPubMedCentral Yaccoby S, Wezeman MJ, Zangari M et al (2006) Inhibitory effects of osteoblasts and increased bone formation on myeloma in novel culture systems and a myelomatous mouse model. Haematologica 91:192–199PubMedPubMedCentral
67.
go back to reference Eda H, Santo L, Wein MN et al (2016) regulation of sclerostin expression in multiple myeloma by Dkk-1: a potential therapeutic strategy for myeloma bone disease. J Bone Miner Res. doi:10.1002/jbmr.2789 PubMed Eda H, Santo L, Wein MN et al (2016) regulation of sclerostin expression in multiple myeloma by Dkk-1: a potential therapeutic strategy for myeloma bone disease. J Bone Miner Res. doi:10.​1002/​jbmr.​2789 PubMed
72.
79.
go back to reference Greenfield DM, Boland E, Ezaydi Y et al (2014) Endocrine, metabolic, nutritional and body composition abnormalities are common in advanced intensively-treated (transplanted) multiple myeloma. Bone Marrow Transplant 49:907–912. doi:10.1038/bmt.2014.63 PubMedCrossRef Greenfield DM, Boland E, Ezaydi Y et al (2014) Endocrine, metabolic, nutritional and body composition abnormalities are common in advanced intensively-treated (transplanted) multiple myeloma. Bone Marrow Transplant 49:907–912. doi:10.​1038/​bmt.​2014.​63 PubMedCrossRef
82.
87.
go back to reference Alexandrakis MG, Neonakis IK, Pappa CA et al (2015) Immunohistochemical expression of endoglin offers a reliable estimation of bone marrow neoangiogenesis in multiple myeloma. J Cancer Res Clin Oncol 141:1503–1509. doi:10.1007/s00432-015-1952-z PubMedCrossRef Alexandrakis MG, Neonakis IK, Pappa CA et al (2015) Immunohistochemical expression of endoglin offers a reliable estimation of bone marrow neoangiogenesis in multiple myeloma. J Cancer Res Clin Oncol 141:1503–1509. doi:10.​1007/​s00432-015-1952-z PubMedCrossRef
88.
95.
go back to reference Muz B, Ghazarian RN, Ou M et al (2016) Spotlight on ixazomib: potential in the treatment of multiple myeloma. Drug Des Dev Ther 10:217–226. doi:10.2147/DDDT.S93602 Muz B, Ghazarian RN, Ou M et al (2016) Spotlight on ixazomib: potential in the treatment of multiple myeloma. Drug Des Dev Ther 10:217–226. doi:10.​2147/​DDDT.​S93602
97.
go back to reference San Miguel J, Weisel K, Moreau P et al (2013) Pomalidomide plus low-dose dexamethasone versus high-dose dexamethasone alone for patients with relapsed and refractory multiple myeloma (MM-003): a randomised, open-label, phase 3 trial. Lancet Oncol 14:1055–1066. doi:10.1016/S1470-2045(13)70380-2 PubMedCrossRef San Miguel J, Weisel K, Moreau P et al (2013) Pomalidomide plus low-dose dexamethasone versus high-dose dexamethasone alone for patients with relapsed and refractory multiple myeloma (MM-003): a randomised, open-label, phase 3 trial. Lancet Oncol 14:1055–1066. doi:10.​1016/​S1470-2045(13)70380-2 PubMedCrossRef
99.
go back to reference Munemasa S, Sakai A, Kuroda Y et al (2008) Osteoprogenitor differentiation is not affected by immunomodulatory thalidomide analogs but is promoted by low bortezomib concentration, while both agents suppress osteoclast differentiation. Int J Oncol 33:129–136PubMed Munemasa S, Sakai A, Kuroda Y et al (2008) Osteoprogenitor differentiation is not affected by immunomodulatory thalidomide analogs but is promoted by low bortezomib concentration, while both agents suppress osteoclast differentiation. Int J Oncol 33:129–136PubMed
103.
go back to reference Terpos E, Kastritis E, Christoulas D et al (2012) Circulating activin-A is elevated in patients with advanced multiple myeloma and correlates with extensive bone involvement and inferior survival; no alterations post-lenalidomide and dexamethasone therapy. Ann Oncol 23:2681–2686. doi:10.1093/annonc/mds068 PubMedCrossRef Terpos E, Kastritis E, Christoulas D et al (2012) Circulating activin-A is elevated in patients with advanced multiple myeloma and correlates with extensive bone involvement and inferior survival; no alterations post-lenalidomide and dexamethasone therapy. Ann Oncol 23:2681–2686. doi:10.​1093/​annonc/​mds068 PubMedCrossRef
104.
go back to reference Chantry AD, Heath D, Mulivor AW et al (2010) Inhibiting activin-A signaling stimulates bone formation and prevents cancer-induced bone destruction in vivo. J Bone Miner Res 25:2633–2646. doi:10.1002/jbmr.142 PubMedCrossRef Chantry AD, Heath D, Mulivor AW et al (2010) Inhibiting activin-A signaling stimulates bone formation and prevents cancer-induced bone destruction in vivo. J Bone Miner Res 25:2633–2646. doi:10.​1002/​jbmr.​142 PubMedCrossRef
106.
go back to reference Iyer SP, Beck JT, Stewart AK et al (2014) A Phase IB multicentre dose-determination study of BHQ880 in combination with anti-myeloma therapy and zoledronic acid in patients with relapsed or refractory multiple myeloma and prior skeletal-related events. Br J Haematol 167:366–375. doi:10.1111/bjh.13056 PubMedCrossRef Iyer SP, Beck JT, Stewart AK et al (2014) A Phase IB multicentre dose-determination study of BHQ880 in combination with anti-myeloma therapy and zoledronic acid in patients with relapsed or refractory multiple myeloma and prior skeletal-related events. Br J Haematol 167:366–375. doi:10.​1111/​bjh.​13056 PubMedCrossRef
108.
go back to reference Croucher PI, De Hendrik R, Perry MJ et al (2003) Zoledronic acid treatment of 5T2MM-bearing mice inhibits the development of myeloma bone disease: evidence for decreased osteolysis, tumor burden and angiogenesis, and increased survival. J Bone Miner Res 18:482–492. doi:10.1359/jbmr.2003.18.3.482 PubMedCrossRef Croucher PI, De Hendrik R, Perry MJ et al (2003) Zoledronic acid treatment of 5T2MM-bearing mice inhibits the development of myeloma bone disease: evidence for decreased osteolysis, tumor burden and angiogenesis, and increased survival. J Bone Miner Res 18:482–492. doi:10.​1359/​jbmr.​2003.​18.​3.​482 PubMedCrossRef
109.
go back to reference Vanderkerken K, De Leenheer E, Shipman C et al (2003) Recombinant osteoprotegerin decreases tumor burden and increases survival in a murine model of multiple myeloma. Cancer Res 63:287–289PubMed Vanderkerken K, De Leenheer E, Shipman C et al (2003) Recombinant osteoprotegerin decreases tumor burden and increases survival in a murine model of multiple myeloma. Cancer Res 63:287–289PubMed
111.
go back to reference Smith MR, Saad F, Coleman R et al (2012) Denosumab and bone-metastasis-free survival in men with castration-resistant prostate cancer: results of a phase 3, randomised, placebo-controlled trial. Lancet (Lond Engl) 379:39–46. doi:10.1016/S0140-6736(11)61226-9 CrossRef Smith MR, Saad F, Coleman R et al (2012) Denosumab and bone-metastasis-free survival in men with castration-resistant prostate cancer: results of a phase 3, randomised, placebo-controlled trial. Lancet (Lond Engl) 379:39–46. doi:10.​1016/​S0140-6736(11)61226-9 CrossRef
115.
go back to reference Heath DJ, Chantry AD, Buckle CH et al (2009) Inhibiting Dickkopf-1 (Dkk1) removes suppression of bone formation and prevents the development of osteolytic bone disease in multiple myeloma. J Bone Miner Res 24:425–436. doi:10.1359/jbmr.081104 PubMedCrossRef Heath DJ, Chantry AD, Buckle CH et al (2009) Inhibiting Dickkopf-1 (Dkk1) removes suppression of bone formation and prevents the development of osteolytic bone disease in multiple myeloma. J Bone Miner Res 24:425–436. doi:10.​1359/​jbmr.​081104 PubMedCrossRef
Metadata
Title
Adipose, Bone, and Myeloma: Contributions from the Microenvironment
Authors
Michelle M. McDonald
Heather Fairfield
Carolyne Falank
Michaela R. Reagan
Publication date
01-05-2017
Publisher
Springer US
Published in
Calcified Tissue International / Issue 5/2017
Print ISSN: 0171-967X
Electronic ISSN: 1432-0827
DOI
https://doi.org/10.1007/s00223-016-0162-2

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