Skip to main content
Top
Published in: Inflammation 6/2017

Open Access 01-12-2017 | ORIGINAL ARTICLE

Prenatal Exposure to Lipopolysaccharide Induces PTX3 Expression and Results in Obesity in Mouse Offspring

Authors: Shugang Qin, Xin Chen, Meng Gao, Jianzhi Zhou, Xiaohui Li

Published in: Inflammation | Issue 6/2017

Login to get access

Abstract

This study tested the hypothesis whether inflammation will directly lead to obesity. This study was designed to investigate the relationship between inflammation and obesity by intraperitoneally injecting pregnant mice with lipopolysaccharide (LPS) (75 μg kg−1). The results showed that inflammation during pregnancy could lead to a significant increase in the levels of the inflammatory factor PTX3. The offspring of the LPS-treated mice displayed abnormal levels of fat development, blood lipids, and glucose metabolism, and fat differentiation markers were significantly increased. Our study also confirmed that PTX3 can increase the susceptibility to obesity by regulating the expression of adipogenic markers; this regulatory role of PTX3 is most likely caused by MAPK pathway hyperactivation. Our study is the first to find strong evidence of inflammation as a cause of obesity. We determined that PTX3 was an important moderator of obesity, and we elucidated its mechanism, thus providing new targets and theories for obesity therapy. Moreover, our study provides new ideas and directions for the early intervention of anti-inflammation in pregnancy.
Literature
1.
go back to reference Denis, G.V., and M.S. Obin. 2013. ‘Metabolically healthy obesity’: origins and implications. Molecular Aspects of Medicine 34 (1): 59–70.CrossRefPubMed Denis, G.V., and M.S. Obin. 2013. ‘Metabolically healthy obesity’: origins and implications. Molecular Aspects of Medicine 34 (1): 59–70.CrossRefPubMed
2.
go back to reference Zhou, M., et al. 2016. Cause-specific mortality for 240 causes in China during 1990-2013: a systematic subnational analysis for the Global Burden of Disease Study 2013. Lancet 387 (10015): 251–272.CrossRefPubMed Zhou, M., et al. 2016. Cause-specific mortality for 240 causes in China during 1990-2013: a systematic subnational analysis for the Global Burden of Disease Study 2013. Lancet 387 (10015): 251–272.CrossRefPubMed
4.
go back to reference van der Klaauw, A.A., and I.S. Farooqi. 2015. The hunger genes: pathways to obesity. Cell 161 (1): 119–132.CrossRefPubMed van der Klaauw, A.A., and I.S. Farooqi. 2015. The hunger genes: pathways to obesity. Cell 161 (1): 119–132.CrossRefPubMed
5.
go back to reference Reddon, H., et al. 2016. The importance of gene-environment interactions in human obesity. Clinical Science (London, England) 130 (18): 1571–1597.CrossRef Reddon, H., et al. 2016. The importance of gene-environment interactions in human obesity. Clinical Science (London, England) 130 (18): 1571–1597.CrossRef
6.
go back to reference Nishimoto, S., et al. 2016. Obesity-induced DNA released from adipocytes stimulates chronic adipose tissue inflammation and insulin resistance. Science Advances 2 (3): e1501332.CrossRefPubMedPubMedCentral Nishimoto, S., et al. 2016. Obesity-induced DNA released from adipocytes stimulates chronic adipose tissue inflammation and insulin resistance. Science Advances 2 (3): e1501332.CrossRefPubMedPubMedCentral
7.
go back to reference Kimura, H., et al. 2016. Caspase-1 deficiency promotes high-fat diet-induced adipose tissue inflammation and the development of obesity. American Journal of Physiology. Endocrinology and Metabolism 311 (5): E881–E890.CrossRefPubMed Kimura, H., et al. 2016. Caspase-1 deficiency promotes high-fat diet-induced adipose tissue inflammation and the development of obesity. American Journal of Physiology. Endocrinology and Metabolism 311 (5): E881–E890.CrossRefPubMed
8.
go back to reference Heilbronn, L.K., and B. Liu. 2014. Do adipose tissue macrophages promote insulin resistance or adipose tissue remodelling in humans? Horm Mol Biol Clin Investig 20 (1): 3–13.PubMed Heilbronn, L.K., and B. Liu. 2014. Do adipose tissue macrophages promote insulin resistance or adipose tissue remodelling in humans? Horm Mol Biol Clin Investig 20 (1): 3–13.PubMed
9.
go back to reference Breviario, F., et al. 1992. Interleukin-1-inducible genes in endothelial cells. Cloning of a new gene related to C-reactive protein and serum amyloid P component. Journal of Biological Chemistry 267 (31): 22190–22197.PubMed Breviario, F., et al. 1992. Interleukin-1-inducible genes in endothelial cells. Cloning of a new gene related to C-reactive protein and serum amyloid P component. Journal of Biological Chemistry 267 (31): 22190–22197.PubMed
10.
go back to reference Lee, G.W., T.H. Lee, and J. Vilcek. 1993. TSG-14, a tumor necrosis factor- and IL-1-inducible protein, is a novel member of the pentaxin family of acute phase proteins[J]. Journal of Immunology 150 (5): 1804–1812. Lee, G.W., T.H. Lee, and J. Vilcek. 1993. TSG-14, a tumor necrosis factor- and IL-1-inducible protein, is a novel member of the pentaxin family of acute phase proteins[J]. Journal of Immunology 150 (5): 1804–1812.
11.
go back to reference Abderrahim-Ferkoune, A., O. Bezy, C. Chiellini, et al. 2003. Characterization of the long pentraxin PTX3 as a TNFalpha-induced secreted protein of adipose cells[J]. Journal of Lipid Research 44 (5): 994–1000.CrossRefPubMed Abderrahim-Ferkoune, A., O. Bezy, C. Chiellini, et al. 2003. Characterization of the long pentraxin PTX3 as a TNFalpha-induced secreted protein of adipose cells[J]. Journal of Lipid Research 44 (5): 994–1000.CrossRefPubMed
12.
go back to reference Mansouri-Attia, N., et al. 2012. Pivotal role for monocytes/macrophages and dendritic cells in maternal immune response to the developing embryo in cattle. Biology of Reproduction 87 (5): 123.CrossRefPubMed Mansouri-Attia, N., et al. 2012. Pivotal role for monocytes/macrophages and dendritic cells in maternal immune response to the developing embryo in cattle. Biology of Reproduction 87 (5): 123.CrossRefPubMed
13.
go back to reference Daigo, K., et al. 2016. Pentraxins in the activation and regulation of innate immunity. Immunological Reviews 274 (1): 202–217.CrossRefPubMed Daigo, K., et al. 2016. Pentraxins in the activation and regulation of innate immunity. Immunological Reviews 274 (1): 202–217.CrossRefPubMed
14.
16.
go back to reference Alles, V.V., et al. 1994. Inducible expression of PTX3, a new member of the pentraxin family, in human mononuclear phagocytes. Blood 84 (10): 3483–3493.PubMed Alles, V.V., et al. 1994. Inducible expression of PTX3, a new member of the pentraxin family, in human mononuclear phagocytes. Blood 84 (10): 3483–3493.PubMed
17.
go back to reference Garlanda, C., et al. 2016. PTX3, a humoral pattern recognition molecule at the interface between microbe and matrix recognition. Current Opinion in Immunology 38: 39–44.CrossRefPubMed Garlanda, C., et al. 2016. PTX3, a humoral pattern recognition molecule at the interface between microbe and matrix recognition. Current Opinion in Immunology 38: 39–44.CrossRefPubMed
18.
go back to reference Ying, T. H., et al. 2016. Knockdown of pentraxin 3 suppresses tumorigenicity and metastasis of human cervical cancer cells. Sci Rep 6: 29385. Ying, T. H., et al. 2016. Knockdown of pentraxin 3 suppresses tumorigenicity and metastasis of human cervical cancer cells. Sci Rep 6: 29385.
19.
go back to reference Kim, M.J., et al. 2016. Sputum pentraxin 3 as a candidate to assess airway inflammation and remodeling in childhood asthma. Medicine (Baltimore) 95 (51): e5677.CrossRef Kim, M.J., et al. 2016. Sputum pentraxin 3 as a candidate to assess airway inflammation and remodeling in childhood asthma. Medicine (Baltimore) 95 (51): e5677.CrossRef
20.
go back to reference Kardas, F., et al. 2015. Plasma pentraxin 3 as a biomarker of metabolic syndrome. Indian Journal of Pediatrics 82 (1): 35–38.CrossRefPubMed Kardas, F., et al. 2015. Plasma pentraxin 3 as a biomarker of metabolic syndrome. Indian Journal of Pediatrics 82 (1): 35–38.CrossRefPubMed
21.
go back to reference Bottazzi, B., et al. 2010. An integrated view of humoral innate immunity: pentraxins as a paradigm. Annual Review of Immunology 28: 157–183.CrossRefPubMed Bottazzi, B., et al. 2010. An integrated view of humoral innate immunity: pentraxins as a paradigm. Annual Review of Immunology 28: 157–183.CrossRefPubMed
22.
23.
go back to reference Bozza, S., et al. 2006. Pentraxin 3 protects from MCMV infection and reactivation through TLR sensing pathways leading to IRF3 activation. Blood 108 (10): 3387–3396.CrossRefPubMed Bozza, S., et al. 2006. Pentraxin 3 protects from MCMV infection and reactivation through TLR sensing pathways leading to IRF3 activation. Blood 108 (10): 3387–3396.CrossRefPubMed
24.
go back to reference Di Virgilio, F. 2015. A commentary on “PTX3 is an extrinsic oncosuppressor regulating complement-dependent inflammation in cancer”. Frontiers in Oncology 5: 118.CrossRefPubMedPubMedCentral Di Virgilio, F. 2015. A commentary on “PTX3 is an extrinsic oncosuppressor regulating complement-dependent inflammation in cancer”. Frontiers in Oncology 5: 118.CrossRefPubMedPubMedCentral
25.
go back to reference Soares, A.C., et al. 2006. Dual function of the long pentraxin PTX3 in resistance against pulmonary infection with Klebsiella pneumoniae in transgenic mice. Microbes and Infection 8 (5): 1321–1329.CrossRefPubMed Soares, A.C., et al. 2006. Dual function of the long pentraxin PTX3 in resistance against pulmonary infection with Klebsiella pneumoniae in transgenic mice. Microbes and Infection 8 (5): 1321–1329.CrossRefPubMed
26.
go back to reference Lekva, T., et al. 2016. Low circulating pentraxin 3 levels in pregnancy is associated with gestational diabetes and increased apoB/apoA ratio: a 5-year follow-up study. Cardiovascular Diabetology 15: 23.CrossRefPubMedPubMedCentral Lekva, T., et al. 2016. Low circulating pentraxin 3 levels in pregnancy is associated with gestational diabetes and increased apoB/apoA ratio: a 5-year follow-up study. Cardiovascular Diabetology 15: 23.CrossRefPubMedPubMedCentral
27.
go back to reference de Souza, A.P., et al. 2015. Gender-specific effects of intrauterine growth restriction on the adipose tissue of adult rats: a proteomic approach. Proteome Science 13: 32.CrossRefPubMedPubMedCentral de Souza, A.P., et al. 2015. Gender-specific effects of intrauterine growth restriction on the adipose tissue of adult rats: a proteomic approach. Proteome Science 13: 32.CrossRefPubMedPubMedCentral
28.
go back to reference Kalagiri, R.R., et al. 2016. Inflammation in complicated pregnancy and its outcome. American Journal of Perinatology 33 (14): 1337–1356.CrossRefPubMed Kalagiri, R.R., et al. 2016. Inflammation in complicated pregnancy and its outcome. American Journal of Perinatology 33 (14): 1337–1356.CrossRefPubMed
29.
go back to reference Chen, X., et al. 2015. Prenatal exposure to lipopolysaccharide results in myocardial fibrosis in rat offspring. International Journal of Molecular Sciences 16 (5): 10986–10996.CrossRefPubMedPubMedCentral Chen, X., et al. 2015. Prenatal exposure to lipopolysaccharide results in myocardial fibrosis in rat offspring. International Journal of Molecular Sciences 16 (5): 10986–10996.CrossRefPubMedPubMedCentral
30.
go back to reference Gao, M., et al. 2014. Prenatal exposure to lipopolysaccharide results in local RAS activation in the adipose tissue of rat offspring. PloS One 9 (10): e111376.CrossRefPubMedPubMedCentral Gao, M., et al. 2014. Prenatal exposure to lipopolysaccharide results in local RAS activation in the adipose tissue of rat offspring. PloS One 9 (10): e111376.CrossRefPubMedPubMedCentral
31.
go back to reference Murphy, J., et al. 2017. Factors associated with adipocyte size reduction after weight loss interventions for overweight and obesity: a systematic review and meta-regression. Metabolism-Clinical and Experimental 67: 31–40.CrossRefPubMed Murphy, J., et al. 2017. Factors associated with adipocyte size reduction after weight loss interventions for overweight and obesity: a systematic review and meta-regression. Metabolism-Clinical and Experimental 67: 31–40.CrossRefPubMed
32.
go back to reference Raajendiran, A., et al. 2016. Adipose tissue development and the molecular regulation of lipid metabolism. Essays in Biochemistry 60 (5): 437–450.CrossRefPubMed Raajendiran, A., et al. 2016. Adipose tissue development and the molecular regulation of lipid metabolism. Essays in Biochemistry 60 (5): 437–450.CrossRefPubMed
33.
go back to reference Hutchison, A.T., et al. 2017. Matching meals to body clocks-impact on weight and glucose metabolism. Nutrients 9 (3): 1–10.CrossRef Hutchison, A.T., et al. 2017. Matching meals to body clocks-impact on weight and glucose metabolism. Nutrients 9 (3): 1–10.CrossRef
34.
go back to reference Koohdani, F., et al. 2016. APO A2-265T/C polymorphism is associated with increased inflammatory responses in patients with type 2 diabetes mellitus. Diabetes and Metabolism Journal 40 (3): 222–229.CrossRefPubMedPubMedCentral Koohdani, F., et al. 2016. APO A2-265T/C polymorphism is associated with increased inflammatory responses in patients with type 2 diabetes mellitus. Diabetes and Metabolism Journal 40 (3): 222–229.CrossRefPubMedPubMedCentral
35.
go back to reference Yamazaki, S., et al. 2015. Glucocorticoid augments lipopolysaccharide-induced activation of the IkappaBzeta-dependent genes encoding the anti-microbial glycoproteins lipocalin 2 and pentraxin 3. Journal of Biochemistry 157 (5): 399–410.CrossRefPubMed Yamazaki, S., et al. 2015. Glucocorticoid augments lipopolysaccharide-induced activation of the IkappaBzeta-dependent genes encoding the anti-microbial glycoproteins lipocalin 2 and pentraxin 3. Journal of Biochemistry 157 (5): 399–410.CrossRefPubMed
36.
go back to reference Kim, S.Y., et al. 2016. Ramalin inhibits differentiation of 3T3-L1 preadipocytes and suppresses adiposity and body weight in a high-fat diet-fed C57BL/6J mice. Chemico-Biological Interactions 257: 71–80.CrossRefPubMed Kim, S.Y., et al. 2016. Ramalin inhibits differentiation of 3T3-L1 preadipocytes and suppresses adiposity and body weight in a high-fat diet-fed C57BL/6J mice. Chemico-Biological Interactions 257: 71–80.CrossRefPubMed
37.
go back to reference Yiew, N. K., et al. 2017. A novel role for Wnt inhibitor APCDD1 in adipocyte differentiation: implications for diet-induced obesity. Journal of Biological Chemistry 292(15): 6312–6324. Yiew, N. K., et al. 2017. A novel role for Wnt inhibitor APCDD1 in adipocyte differentiation: implications for diet-induced obesity. Journal of Biological Chemistry 292(15): 6312–6324.
39.
go back to reference Lee, M.S., et al. 2015. Effect of high hydrostatic pressure extract of fresh ginseng on adipogenesis in 3T3-L1 adipocytes. Journal of the Science of Food and Agriculture 95 (12): 2409–2415.CrossRefPubMed Lee, M.S., et al. 2015. Effect of high hydrostatic pressure extract of fresh ginseng on adipogenesis in 3T3-L1 adipocytes. Journal of the Science of Food and Agriculture 95 (12): 2409–2415.CrossRefPubMed
40.
go back to reference Zhang, J., et al. 2015. TNF up-regulates pentraxin3 expression in human airway smooth muscle cells via JNK and ERK1/2 MAPK pathways. Allergy, Asthma and Clinical Immunology 11: 37–45.CrossRef Zhang, J., et al. 2015. TNF up-regulates pentraxin3 expression in human airway smooth muscle cells via JNK and ERK1/2 MAPK pathways. Allergy, Asthma and Clinical Immunology 11: 37–45.CrossRef
41.
go back to reference Han, B., et al. 2005. TNFalpha-induced long pentraxin PTX3 expression in human lung epithelial cells via JNK. Journal of Immunology 175 (12): 8303–8311.CrossRef Han, B., et al. 2005. TNFalpha-induced long pentraxin PTX3 expression in human lung epithelial cells via JNK. Journal of Immunology 175 (12): 8303–8311.CrossRef
43.
go back to reference Ingvorsen, C., et al. 2015. The effect of maternal inflammation on foetal programming of metabolic disease. Acta Physiologica (Oxford, England) 214 (4): 440–449.CrossRef Ingvorsen, C., et al. 2015. The effect of maternal inflammation on foetal programming of metabolic disease. Acta Physiologica (Oxford, England) 214 (4): 440–449.CrossRef
44.
45.
go back to reference Hao, X.Q., et al. 2014. Prenatal exposure to lipopolysaccharide combined with pre- and postnatal high-fat diet result in lowered blood pressure and insulin resistance in offspring rats. PloS One 9 (2): e88127.CrossRefPubMedPubMedCentral Hao, X.Q., et al. 2014. Prenatal exposure to lipopolysaccharide combined with pre- and postnatal high-fat diet result in lowered blood pressure and insulin resistance in offspring rats. PloS One 9 (2): e88127.CrossRefPubMedPubMedCentral
46.
go back to reference Sowers, J.R. 2008. Endocrine functions of adipose tissue: focus on adiponectin. Clinical Cornerstone 9 (1): 32–40.CrossRefPubMed Sowers, J.R. 2008. Endocrine functions of adipose tissue: focus on adiponectin. Clinical Cornerstone 9 (1): 32–40.CrossRefPubMed
47.
go back to reference Satoh, M., and K. Iwabuchi. 2016. Communication between natural killer T cells and adipocytes in obesity. Adipocytes 5 (4): 389–393.CrossRef Satoh, M., and K. Iwabuchi. 2016. Communication between natural killer T cells and adipocytes in obesity. Adipocytes 5 (4): 389–393.CrossRef
48.
go back to reference Divella, R., et al. 2016. Obesity and cancer: the role of adipose tissue and adipo-cytokines-induced chronic inflammation. Journal of Cancer 7 (15): 2346–2359.CrossRefPubMedPubMedCentral Divella, R., et al. 2016. Obesity and cancer: the role of adipose tissue and adipo-cytokines-induced chronic inflammation. Journal of Cancer 7 (15): 2346–2359.CrossRefPubMedPubMedCentral
49.
go back to reference Liu, W., et al. 2014. Pentraxin 3 promotes oxLDL uptake and inhibits cholesterol efflux from macrophage-derived foam cells. Experimental and Molecular Pathology 96 (3): 292–299.CrossRefPubMed Liu, W., et al. 2014. Pentraxin 3 promotes oxLDL uptake and inhibits cholesterol efflux from macrophage-derived foam cells. Experimental and Molecular Pathology 96 (3): 292–299.CrossRefPubMed
50.
go back to reference Norata, G.D., et al. 2008. Long pentraxin 3, a key component of innate immunity, is modulated by high-density lipoproteins in endothelial cells. Arteriosclerosis, Thrombosis, and Vascular Biology 28 (5): 925–931.CrossRefPubMed Norata, G.D., et al. 2008. Long pentraxin 3, a key component of innate immunity, is modulated by high-density lipoproteins in endothelial cells. Arteriosclerosis, Thrombosis, and Vascular Biology 28 (5): 925–931.CrossRefPubMed
51.
go back to reference Steen, K.A., et al. 2017. FABP4/aP2 regulates macrophage redox signaling and inflammasome activation via control of UCP2. Molecular and Cellular Biology 37: 2e00282–2e00216.CrossRef Steen, K.A., et al. 2017. FABP4/aP2 regulates macrophage redox signaling and inflammasome activation via control of UCP2. Molecular and Cellular Biology 37: 2e00282–2e00216.CrossRef
52.
53.
go back to reference Poulos, S.P., et al. 2016. The increasingly complex regulation of adipocyte differentiation. Experimental Biology and Medicine (Maywood, N.J.) 241 (5): 449–456.CrossRef Poulos, S.P., et al. 2016. The increasingly complex regulation of adipocyte differentiation. Experimental Biology and Medicine (Maywood, N.J.) 241 (5): 449–456.CrossRef
54.
go back to reference Kraus, N.A., et al. 2016. Quantitative assessment of adipocyte differentiation in cell culture. Adipocytes 5 (4): 351–358.CrossRef Kraus, N.A., et al. 2016. Quantitative assessment of adipocyte differentiation in cell culture. Adipocytes 5 (4): 351–358.CrossRef
55.
go back to reference Lee, M., and S.H. Sung. 2016. Platyphylloside isolated from Betula platyphylla inhibit adipocyte differentiation and induce lipolysis via regulating adipokines including PPARgamma in 3T3-L1 cells. Pharmacognosy Magazine 12 (48): 276–281.PubMedPubMedCentral Lee, M., and S.H. Sung. 2016. Platyphylloside isolated from Betula platyphylla inhibit adipocyte differentiation and induce lipolysis via regulating adipokines including PPARgamma in 3T3-L1 cells. Pharmacognosy Magazine 12 (48): 276–281.PubMedPubMedCentral
Metadata
Title
Prenatal Exposure to Lipopolysaccharide Induces PTX3 Expression and Results in Obesity in Mouse Offspring
Authors
Shugang Qin
Xin Chen
Meng Gao
Jianzhi Zhou
Xiaohui Li
Publication date
01-12-2017
Publisher
Springer US
Published in
Inflammation / Issue 6/2017
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-017-0626-1

Other articles of this Issue 6/2017

Inflammation 6/2017 Go to the issue