新疆大学生命科学与技术学院新疆生物资源基因工程重点实验室
纸质出版:2023
移动端阅览
[1]迪丽娜孜·阿布都吉力勒,樊栩,董昱良,等.BMPs在脂肪胰岛素抵抗中的研究进展[J].新疆大学学报(自然科学版)(中英文),2023,40(03):342-350.
[1]迪丽娜孜·阿布都吉力勒,樊栩,董昱良,等.BMPs在脂肪胰岛素抵抗中的研究进展[J].新疆大学学报(自然科学版)(中英文),2023,40(03):342-350. DOI: 10.13568/j.cnki.651094.651316.2022.06.03.0001.
DOI:10.13568/j.cnki.651094.651316.2022.06.03.0001.
根据骨形态发生蛋白(BMPs)现有研究探讨其在脂肪胰岛素抵抗中的作用机制.综述了在白色脂肪组织(WAT)和棕色脂肪组织(BAT)中的相关BMP信号通路,BMPs通过激活过氧化物酶体增生物激活受体γ(PPARγ)决定脂肪细胞命运和调节脂肪细胞功能来改善胰岛素敏感性.WAT中,BMPs促进脂肪分化、降低炎症、增强胰岛素信号以及葡萄糖转运;BAT中,可以增加棕色脂肪细胞以及增强其活性来促进产热.总结探讨了近年来BMPs在脂肪胰岛素抵抗中的作用进展,以期为脂肪胰岛素抵抗的防治提供新思路.
According to the existing researches on bone morphogenetic proteins(BMPs)
their mechanism in adipose tissue insulin resistance was discussed. Relevant BMP signaling pathways in white adipose tissue(WAT)and brown adipose tissue(BAT) were reviewed
and BMPs improved the insulin sensitivity by the regulation of adipocyte fate and function through peroxisome proliferators activated receptor γ(PPARγ) activation. In WAT
BMPs can promote adipocyte differentiation
reduce infammation
enhance insulin signaling and glucose transport;In BAT
brown adipocytes can be increased and their activity can be enhanced to promote thermogenesis. This review summarized and discussed the role of BMPs in adipose tissue insulin resistance in recent years to provide new ideas for the prevention and treatment of insulin resistance.
佚名.《中国居民营养与慢性病状况报告(2020年)》:我国超过一半成年居民超重或肥胖[J].中华医学信息导报, 2020, 35(24):15.
KAHN C R, WANG G, LEE K Y. Altered adipose tissue and adipocyte function in the pathogenesis of metabolic syndrome[J].Journal of Clinical Investigation, 2019, 129(10):3990-4000.
CHENG L, WANG J, DAI H, et al. Brown and beige adipose tissue:a novel therapeutic strategy for obesity and type 2 diabetes mellitus[J]. Adipocyte, 2021, 10(1):48-65.
ONG F J, AHMED B A, ORESKOVICH S M, et al. Recent advances in the detection of brown adipose tissue in adult humans:a review[J]. Clinical Science(Lond), 2018, 132(10):1039-1054.
IKEDA K, MARETICH P, KAJIMURA S. The common and distinct features of brown and beige adipocytes[J]. Trends in Endocrinology and Metabolism, 2018, 29(3):191-200.
GOMEZ-PUERTO M C, IYENGAR P V, GARCIA DE VINUESA A, et al. Bone morphogenetic protein receptor signal transduction in human disease[J]. Journal of Pathology, 2019, 247(1):9-20.
BLAZQUEZ-MEDELA A M, JUMABAY M, BOSTROM K I. Beyond the bone:bone morphogenetic protein signaling in adipose tissue[J]. Obesity Reviews, 2019, 20(5):648-658.
SCHREIBER I, DORPHOLZ G, OTT C E, et al. BMPs as new insulin sensitizers:enhanced glucose uptake in mature 3T3-L1adipocytes via PPARgamma and GLUT4 upregulation[J]. Scientific Reports, 2017, 7(1):17192.
CASANA E, JIMENEZ V, JAMBRINA C, et al. AAV-mediated BMP7 gene therapy counteracts insulin resistance and obesity[J].Molecular Therapy Methods&Clinical Development, 2022, 25:190-204.
KUMAR S, LAKSHMI DEVI H, SINGH JALMERIA N, et al. Expression and functional role of bone morphogenetic proteins(BMPs)in placenta during different stages of pregnancy in water buffalo(Bubalus bubalis)[J]. General and Comparative Endocrinology, 2020, 285:113249.
GARCIA E V, HAMDI M, BARRERA A D, et al. Bovine embryo-oviduct interaction in vitro reveals an early cross talk mediated by BMP signaling[J]. Reproduction, 2017, 153(5):631-643.
PERERA N, RITCHIE R H, TATE M. The role of bone morphogenetic proteins in diabetic complications[J]. ACS Pharmacology&Translational Science, 2020, 3(1):11-20.
WOZNEY J M, ROSEN V, CELESTE A J, et al. Novel regulators of bone formation:molecular clones and activities[J]. Science,1988, 242(4885):1528-1534.
MAY R D, FRAUCHIGER D A, ALBERS C E, et al. Application of cytokines of the bone morphogenetic protein(BMP)family in spinal fusion-effects on the bone, intervertebral disc and mesenchymal stromal cells[J]. Current Stem Cell Research&Therapy,2019, 14(8):618-643.
HUNTLEY R, JENSEN E, GOPALAKRISHNAN R, et al. Bone morphogenetic proteins:their role in regulating osteoclast differentiation[J]. Bone Reports, 2019, 10:100207.
GUIU-JURADO E, UNTHAN M, BOHLER N, et al. Bone morphogenetic protein 2(BMP2)may contribute to partition of energy storage into visceral and subcutaneous fat depots[J]. Obesity(Silver Spring), 2016, 24(10):2092-2100.
BABOOTA R K, BLUHER M, SMITH U. Emerging role of bone morphogenetic protein 4 in metabolic disorders[J]. Diabetes,2021, 70(2):303-312.
PAUK M, BORDUKALO-NIKSIC T, BRKLJACIC J, et al. A novel role of bone morphogenetic protein 6(BMP6)in glucose homeostasis[J]. Acta Diabetologica, 2019, 56(3):365-371.
CHATTOPADHYAY T, SINGH R R, GUPTA S, et al. Bone morphogenetic protein-7(BMP-7)augments insulin sensitivity in mice with type II diabetes mellitus by potentiating PI3K/AKT pathway[J]. Biofactors, 2017, 43(2):195-209.
XU X, LI X, YANG G, et al. Circulating bone morphogenetic protein-9 in relation to metabolic syndrome and insulin resistance[J].Scientific Reports, 2017, 7(1):17529.
RAHMAN M S, AKHTAR N, JAMIL H M, et al. TGF-beta/BMP signaling and other molecular events:regulation of osteoblastogenesis and bone formation[J]. Bone Research, 2015, 3:15005.
PERERA N, RITCHIE R H, TATE M. The role of bone morphogenetic proteins in diabetic complications[J]. ACS Pharmacol Transl Sci, 2020, 3(1):11-20.
LEIVA M, MATESANZ N, PULGARIN-ALFARO M, et al. Uncovering the role of p38 family members in adipose tissue physiology[J]. Front Endocrinol(Lausanne), 2020, 11:572089.
MIYAZONO K, KAMIYA Y, MORIKAWA M. Bone morphogenetic protein receptors and signal transduction[J]. Journal of Biochemistry, 2010, 147(1):35-51.
AL-SAMMARRAIE N, RAY S K. Bone morphogenic protein signaling in spinal cord injury[J]. Neuroimmunology&Neuroinflammation, 2021, 8:53-63.
HALL J A, RAMACHANDRAN D, ROH H C, et al. Obesity-linked PPARγ S273 phosphorylation promotes insulin resistance through growth differentiation factor 3[J]. Cell Metabolism, 2020, 32(4):665-675.
MAO H, LI L, FAN Q, et al. Loss of bone morphogenetic protein-binding endothelial regulator causes insulin resistance[J]. Nature Communications, 2020, 12:1927.
GHABEN A L, SCHERER P E. Adipogenesis and metabolic health[J]. Nature Reviews Molecular Cell Biology, 2019, 20(4):242-258.
WILLSON T M, BROWN P J, STERNBACH D D, et al. The PPARs:from orphan receptors to drug discovery[J]. Journal of Medicinal Chemistry, 2000, 43(4):527-550.
ZHANG K, YANG X, ZHAO Q, et al. Molecular mechanism of stem cell differentiation into adipocytes and adipocyte differentiation of malignant tumor[J]. Stem Cells International, 2020, 2020:8892300.
GANDHI G R, STALIN A, BALAKRISHNA K, et al. Insulin sensitization via partial agonism of PPARgamma and glucose uptake through translocation and activation of GLUT4 in PI3K/p-Akt signaling pathway by embelin in type 2 diabetic rats[J].Biochimica et Biophysica Acta, 2013, 1830(1):2243-2255.
DONOSO O, PINO A M, SEITZ G, et al. Osteoporosis-associated alteration in the signalling status of BMP-2 in human MSCs under adipogenic conditions[J]. Journal of Cellular Biochemistry, 2015, 116(7):1267-1277.
HUANG H, SONG T J, LI X, et al. BMP signaling pathway is required for commitment of C3H10T1/2 pluripotent stem cells to the adipocyte lineage[J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(31):12670-12675.
SUENAGA M, KUROSAWA N, ASANO H, et al. BMP4 expressed in preadipocytes is required for the onset of adipocyte differentiation[J]. Cytokine, 2013, 64(1):138-145.
GUSTAFSON B, HAMMARSTEDT A, HEDJAZIFAR S, et al. BMP4 and BMP antagonists regulate human white and beige adipogenesis[J]. Diabetes, 2015, 64(5):1670-1681.
CASANA E, JIMENEZ V, SACRISTAN V, et al. BMP7 overexpression in adipose tissue induces white adipogenesis and improves insulin sensitivity in ob/ob mice[J]. International Journal of Obesity(Lond), 2021, 45(2):449-460.
HAEUSLER R A, MCGRAW T E, ACCILI D. Biochemical and cellular properties of insulin receptor signalling[J]. Nature Reviews Molecular Cell Biology, 2018, 19(1):31-44.
QIAN S W, TANG Y, LI X, et al. BMP4-mediated brown fat-like changes in white adipose tissue alter glucose and energy homeostasis[J]. Proceedings of the National Academy of Sciences of the United States of America, 2013, 110(9):798-807.
HOFFMANN J M, GRUNBERG J R, HAMMARSTEDT A, et al. BMP4 gene therapy enhances insulin sensitivity but not adipose tissue browning in obese mice[J]. Molecular Metabolism, 2020, 32:15-26.
MODICA S, STRAUB L G, BALAZ M, et al. BMP4 promotes a brown to white-like adipocyte shift[J]. Cell Reports, 2016, 16(8):2243-2258.
ZHANG H, SCHULZ T J, ESPINOZA D O, et al. Cross talk between insulin and bone morphogenetic protein signaling systems in brown adipogenesis[J]. Molecular and Cellular Biology, 2010, 30(17):4224-4233.
CLARK J F, MEADE M, RANEPURA G, et al. Caenorhabditis elegans DBL-1/BMP regulates lipid accumulation via interaction with insulin signaling[J]. G3(Bethesda), 2018, 8(1):343-351.
CLARK J F, CICCARELLI E J, KAYASTHA P, et al. BMP pathway regulation of insulin signaling components promotes lipid storage in Caenorhabditis elegans[J]. PLoS Genet, 2021, 17(10):e1009836.
ZATTERALE F, LONGO M, NADERI J, et al. Chronic adipose tissue inflammation linking obesity to insulin resistance and type2 diabetes[J]. Frontiers in Physiology, 2019, 10:1607.
AKASH M S H, REHMAN K, LIAQAT A. Tumor necrosis factor-alpha:role in development of insulin resistance and pathogenesis of type 2 diabetes mellitus[J]. Journal of Cellular Biochemistry, 2018, 119(1):105-110.
SHIBASAKI M, TAKAHASHI K, ITOU T, et al. A PPAR agonist improves TNF-alpha-induced insulin resistance of adipose tissue in mice[J]. Biochemical and Biophysical Research Communications, 2003, 309(2):419-424.
ODEGAARD J I, GANESHAN K, CHAWLA A. Adipose tissue macrophages:amicus adipem?[J]. Cell Metabolism, 2013, 18(6):767-768.
ZHAO X, ZHANG G, WU L, et al. Inhibition of ER stress-activated JNK pathway attenuates TNF-alpha-induced inflammatory response in bone marrow mesenchymal stem cells[J]. Biochemical and Biophysical Research Communications, 2021, 541:8-14.
SOLINAS G, BECATTINI B. JNK at the crossroad of obesity, insulin resistance, and cell stress response[J]. Molecular Metabolism,2017, 6(2):174-184.
FENG J, LU S, OU B, et al. The role of JNK signaling pathway in obesity-driven insulin resistance[J]. Diabetes Metabolic Syndrome and Obesity, 2020, 13:1399-1406.
BARABAN E, CHAVAKIS T, HAMILTON B S, et al. Anti-inflammatory properties of bone morphogenetic protein 4 in human adipocytes[J]. International Journal of Obesity(Lond), 2016, 40(2):319-327.
SCHULZ T J, GRAJA A, HUANG T L, et al. Loss of BMP receptor type 1A in murine adipose tissue attenuates age-related onset of insulin resistance[J]. Diabetologia, 2016, 59(8):1769-1777.
姚丽丽,成兴波,朱晓晖,等.骨形态发生蛋白因子7对小鼠体内胰岛素信号通路的调控作用研究[J].中华内分泌代谢杂志, 2018,34(5):398-403.
URBINA P, SINGLA D K. BMP-7 attenuates adverse cardiac remodeling mediated through M2 macrophages in prediabetic cardiomyopathy[J]. American Journal of Physiology, 2014, 307(5):762-772.
SINGH R, BARRIOS A, DIRAKVAND G, et al. Human brown adipose tissue and metabolic health:potential for therapeutic avenues[J]. Cells, 2021, 10(11):3030.
WU H, LI X, SHEN C. Peroxisome proliferator-activated receptor gamma in white and brown adipocyte regulation and differentiation[J]. Physiological Research, 2020, 69(5):759-773.
CHI Y L, LIN J C. RBM4a modulates the impact of PRDM16 on development of brown adipocytes through an alternative splicing mechanism[J]. Biochimica et Biophysica Acta-Molecular Cell Research, 2018, 1865(11):1515-1525.
AZHAR Y, PARMAR A, MILLER C N, et al. Phytochemicals as novel agents for the induction of browning in white adipose tissue[J]. Nutrition&Metabolism(Lond), 2016, 13:89.
STIER A, BIZE P, HABOLD C, et al. Mitochondrial uncoupling prevents cold-induced oxidative stress:a case study using UCP1knockout mice[J]. Journal of Experimental Biology, 2014, 217(4):624-630.
HOFFMANN J M, GRUNBERG J R, CHURCH C, et al. BMP4 gene therapy in mature mice reduces BAT activation but protects from obesity by browning subcutaneous adipose tissue[J]. Cell Reports, 2017, 20(5):1038-1049.
李国生,刘栩晗,李欣宇,等.黄连素调节BMP4转录通路基因表达改善2型糖尿病地鼠内脏白色脂肪组织胰岛素抵抗的研究[J].中国中药杂志, 2016, 41(3):514-520.
SHAW A, TOTH B B, ARIANTI R, et al. BMP7 increases UCP1-dependent and independent thermogenesis with a unique gene expression program in human neck area derived adipocytes[J]. Pharmaceuticals(Basel), 2021, 14(11):1078.
BOON M R, VAN DEN BERG S A, WANG Y, et al. BMP7 activates brown adipose tissue and reduces diet-induced obesity only at subthermoneutrality[J]. PLoS One, 2013, 8(9):e74083.
OKLA M, HA J H, TEMEL R E, et al. BMP7 drives human adipogenic stem cells into metabolically active beige adipocytes[J].Lipids, 2015, 50(2):111-120.
SCHULZ T J, HUANG P, HUANG T L, et al. Brown-fat paucity due to impaired BMP signalling induces compensatory browning of white fat[J]. Nature, 2013, 495(7441):379-383.
HUANG X, LIU G, GUO J, et al. The PI3K/AKT pathway in obesity and type 2 diabetes[J]. International Journal of Biological Sciences, 2018, 14(11):1483-1496.
ELSEN M, RASCHKE S, TENNAGELS N, et al. BMP4 and BMP7 induce the white-to-brown transition of primary human adipose stem cells[J]. American Journal of Physiology Cell Physiology, 2014, 306(5):431-440.
LUO Y, LI L, XU X, et al. Decreased circulating BMP-9 levels in patients with type 2 diabetes is a signature of insulin resistance[J].Clinical Science(Lond), 2017, 131(3):239-246.
HUANG H, WANG W, YANG G, et al. Circulating bone morphogenetic protein-9 levels are associated with hypertension and insulin resistance in humans[J]. Journal of the American Society of Hypertension, 2018, 12(5):372-380.
KUO M M, KIM S, TSENG C Y, et al. BMP-9 as a potent brown adipogenic inducer with anti-obesity capacity[J]. Biomaterials,2014, 35(10):3172-3179.
WHITTLE A J, CAROBBIO S, MARTINS L, et al. BMP8b increases brown adipose tissue thermogenesis through both central and peripheral actions[J]. Cell, 2012, 149(4):871-885.
FESTUCCIA W T, BLANCHARD P G, DESHAIES Y. Control of brown adipose tissue glucose and lipid metabolism by PPARgamma[J]. Frontiers in Endocrinology(Lausanne), 2011, 2:84.
HEEREN J, SCHEJA L. Brown adipose tissue and lipid metabolism[J]. Current Opinion in Lipidology, 2018, 29(3):180-185.
VILLARROYA F, CEREIJO R, GAVALDA-NAVARRO A, et al. Inflammation of brown/beige adipose tissues in obesity and metabolic disease[J]. Journal of Internal Medicine, 2018, 284(5):492-504.
BABAEI R, SCHUSTER M, MELN I, et al. Jak-TGFbeta cross-talk links transient adipose tissue inflammation to beige adipogenesis[J]. Science Signaling, 2018, 11(527):e783.
HU X, DONG X, LI G, et al. Brd4 modulates diet-induced obesity via PPARgamma-dependent Gdf3 expression in adipose tissue macrophages[J]. JCI Insight, 2021, 6(7):e143379.
VARGA T, MOUNIER R, PATSALOS A, et al. Macrophage PPARgamma, a lipid activated transcription factor controls the growth factor Gdf3 and skeletal muscle regeneration[J]. Immunity, 2016, 45(5):1038-1051.
AU H K E, ISALAN M, MIELCAREK M. Gene therapy advances:a meta-analysis of AAV usage in clinical settings[J]. Frontiers in Medicine(Lausanne), 2021, 8:809118.
0
浏览量
186
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621
