[1] CHANG C, GREENSPAN A, GERSHWIN ME. The pathogenesis, diagnosis and clinical manifestations of steroid-induced osteonecrosis. J Autoimmun. 2020;110:102460.
[2] 单彬,王进,左振柏,等.柚皮苷对大鼠激素性股骨头坏死组织修复的影响[J].中国矫形外科杂志,2025,33(9):806-814.
[3] ZHAO DW, YU M, HU K, et al. Prevalence of Nontraumatic Osteonecrosis of the Femoral Head and its Associated Risk Factors in the Chinese Population: Results from a Nationally Representative Survey. Chin Med J (Engl). 2015; 128(21):2843-2850.
[4] LIU N, ZHENG C, WANG Q, et al. Treatment of non-traumatic avascular necrosis of the femoral head (Review). Exp Ther Med. 2022;23(5):321.
[5] VU LP, CHENG Y, KHARAS MG. The Biology of m(6)A RNA Methylation in Normal and Malignant Hematopoiesis. Cancer Discov. 2019;9(1):25-33.
[6] ZACCARA S, RIES RJ, JAFFREY SR. Reading, writing and erasing mRNA methylation[J]. Nat Rev Mol Cell Biol. 2019;20(10):608-624.
[7] HUANG M, XU S, LIU L, et al. m6A Methylation Regulates Osteoblastic Differentiation and Bone Remodeling. Front Cell Dev Biol. 2021;9:783322.
[8] LI B, QIN K, WANG B, et al. Crocin promotes osteogenesis differentiation of bone marrow mesenchymal stem cells[. In Vitro Cell Dev Biol Anim. 2020;56(8):680-688.
[9] 张亚奇,李博,汤建成,等.中医药调控PI3K/Akt通路治疗激素性股骨头坏死的研究进展[J].中国实验方剂学杂志,2025,31(5):141-149.
[10] GAO Y, YOU Y, ZHANG P, et al. Cortistatin prevents glucocorticoid-associated osteonecrosis of the femoral head via the GHSR1a/Akt pathway. Commun Biol. 2024;7(1):132.
[11] BEN-HAIM MS, MOSHITCH-MOSHKOVITZ S, RECHAVI G. FTO: linking m6A demethylation to adipogenesis. Cell Res. 2015;25(1):3-4.
[12] WANG X, ZHU L, CHEN J, et al. mRNA m(6)A methylation downregulates adipogenesis in porcine adipocytes. Biochem Biophys Res Commun. 2015;459(2):201-207.
[13] WU Y, XIE L, WANG M, et al. Mettl3-mediated m(6)A RNA methylation regulates the fate of bone marrow mesenchymal stem cells and osteoporosis. Nat Commun. 2018;9(1):4772.
[14] YANG J, SUN B, WANG Z, et al. Exosome-targeted delivery of METTL14 regulates NFATc1 m6A methylation levels to correct osteoclast-induced bone resorption. Cell Death Dis. 2023;14(11):738.
[15] YOU Y, LIU J, ZHANG L, et al. WTAP-mediated m(6)A modification modulates bone marrow mesenchymal stem cells differentiation potential and osteoporosis. Cell Death Dis. 2023;14(1):33.
[16] JIN Y, HAN X, WANG Y, et al. METTL7A-mediated m6A modification of corin reverses bisphosphonates-impaired osteogenic differentiation of orofacial BMSCs. Int J Oral Sci. 2024;16(1):42.
[17] LU L, WANG L, YANG M, et al. Role of METTL16 in PPARgamma methylation and osteogenic differentiation. Cell Death Dis. 2025;16(1):271.
[18] KONARSKI W, POBOZY T, SLIWCZYNSKI A, et al. Avascular Necrosis of Femoral Head-Overview and Current State of the Art. Int J Environ Res Public Health. 2022;19(12):7348.
[19] 陈志健,张苏雅,丁龙龙,等.从“病-证-方”关联视角探讨熟地强筋丸治疗激素性股骨头坏死的疗效特点和机制[J].中国实验方剂学杂志,2026,32(2):88-99.
[20] CHEN K, LIU Y, HE J, et al. Steroid-induced osteonecrosis of the femoral head reveals enhanced reactive oxygen species and hyperactive osteoclasts. Int J Biol Sci. 2020; 16(11):1888-1900.
[21] ZHANG J, CAO J, LIU Y, et al. Advances in the Pathogenesis of Steroid-Associated Osteonecrosis of the Femoral Head. Biomolecules. 2024;14(6):667.
[22] 区志坚,李希文,邱华耀,等.基于OPG/RANKL/RANK信号通路探究“引血下行法”调控激素性股骨头坏死骨代谢表达的影响[J].实用医学杂志,2023,39(23):3058-3064.
[23] ZHU J, ZHAO T, ZHU L, et al. Dexamethasone promotes osteoblast apoptosis through the Chk2/p53 signaling pathway. Adv Clin Exp Med. 2022;31(12):1365-1374.
[24] RONG X, KOU Y, ZHANG Y, et al. ED-71 Prevents Glucocorticoid-Induced Osteoporosis by Regulating Osteoblast Differentiation via Notch and Wnt/beta-Catenin Pathways. Drug Des Devel Ther. 2022;16:3929-3946.
[25] YANG L, LIU S, MU S, et al. Paeoniflorin Attenuates Dexamethasone-Induced Apoptosis of Osteoblast Cells and Promotes Bone Formation via Regulating AKT/mTOR/Autophagy Signaling Pathway. Evid Based Complement Alternat Med. 2021; 2021:6623464.
[26] CHOTIYARNWONG P, MCCLOSKEY EV. Pathogenesis of glucocorticoid-induced osteoporosis and options for treatment. Nat Rev Endocrinol. 2020; 16(8):437-447.
[27] CHEN M, FU W, XU H, et al. Pathogenic mechanisms of glucocorticoid-induced osteoporosis. Cytokine Growth Factor Rev. 2023; 70:54-66.
[28] LIU Q, WU Y, LI S, et al. Ursolic acid alleviates steroid-induced avascular necrosis of the femoral head in mouse by inhibiting apoptosis and rescuing osteogenic differentiation. Toxicol Appl Pharmacol. 2023;475:116649.
[29] TANG B, CHEN Y, ZHAO P, et al. MiR-601-induced BMSCs senescence accelerates steroid-induced osteonecrosis of the femoral head progression by targeting SIRT1. Cell Mol Life Sci. 2023;80(9):261.
[30] OKUNO Y, FUKUHARA A, SHIMOMURA I. The role of oxidative stress, glucocorticoid receptor and ARMC5 in lipid metabolism. Endocr J. 2024; 71(12):1097-1101.
[31] HINES JT, JO WL, CUI Q, et al. Osteonecrosis of the Femoral Head: an Updated Review of ARCO on Pathogenesis, Staging and Treatment. J Korean Med Sci. 2021;36(24):e177.
[32] DUAN P, YU YL, CHENG YN, et al. Exosomal miR-1a-3p derived from glucocorticoid-stimulated M1 macrophages promotes the adipogenic differentiation of BMSCs in glucocorticoid-associated osteonecrosis of the femoral head by targeting Cebpz. J Nanobiotechnology. 2024; 22(1):648.
[33] CHENG CH, CHEN LR, CHEN KH. Osteoporosis Due to Hormone Imbalance: An Overview of the Effects of Estrogen Deficiency and Glucocorticoid Overuse on Bone Turnover. Int J Mol Sci. 2022;23(3):1376.
[34] ZHONG C, LI N, WANG S, et al. Targeting osteoblastic 11beta-HSD1 to combat high-fat diet-induced bone loss and obesity. Nat Commun. 2024;15(1):8588.
[35] MA J, SHEN M, YUE D, et al. Extracellular Vesicles from BMSCs Prevent Glucocorticoid-Induced BMECs Injury by Regulating Autophagy via the PI3K/Akt/mTOR Pathway. Cells. 2022;11(13):2104.
[36] JIANG H, LIN C, CAI T, et al. Taxifolin-mediated Nrf2 activation ameliorates oxidative stress and apoptosis for the treatment of glucocorticoid-induced osteonecrosis of the femoral head. Phytother Res. 2024;38(1):156-173.
[37] GENG Q, WANG S, HENG K, et al. Astaxanthin attenuates irradiation-induced osteoporosis in mice by inhibiting oxidative stress, osteocyte senescence, and SASP. Food Funct. 2022;13(22): 11770-11779.
[38] 马天成,马剑雄,马信龙,等.基于微血管研究激素性股骨头坏死发生机制系统综述[J].医用生物力学,2024,39(S1):630.
[39] 邱静,王世轩,赵双利,等.补肾复脉方治疗激素性股骨头坏死的作用机制研究[J].海南医科大学学报,2026,32(9):697-706.
[40] WANG G, ZHANG L, YAN C, et al. Upregulation of microRNA-576-5p protects from steroid-induced avascular necrosis of the femoral head by suppressing ANXA2. Cell Cycle. 2022;21(1):49-62.
[41] WANG Q, YANG Z, LI Q, et al. Lithium prevents glucocorticoid-induced osteonecrosis of the femoral head by regulating autophagy. J Cell Mol Med. 2024;28(10):e18385.
[42] GUO Y, JIA X, CUI Y, et al. Sirt3-mediated mitophagy regulates AGEs-induced BMSCs senescence and senile osteoporosis. Redox Biol. 2021;41:101915.
[43] VIDONI C, FERRARESI A, SECOMANDI E, et al. Autophagy drives osteogenic differentiation of human gingival mesenchymal stem cells. Cell Commun Signal. 2019;17(1):98.
[44] LIU Q, GREGORY RI. RNAmod: an integrated system for the annotation of mRNA modifications. Nucleic Acids Res. 2019;47(W1):W548-W555.
[45] DESROSIERS R, FRIDERICI K, ROTTMAN F. Identification of methylated nucleosides in messenger RNA from Novikoff hepatoma cells. Proc Natl Acad Sci U S A. 1974;71(10):3971-3975.
[46] JIANG X, LIU B, NIE Z, et al. The role of m6A modification in the biological functions and diseases. Signal Transduct Target Ther. 2021; 6(1):74.
[47] AN Y, DUAN H. The role of m6A RNA methylation in cancer metabolism. Mol Cancer. 2022;21(1):14.
[48] OERUM S, MEYNIER V, CATALA M, et al. A comprehensive review of m6A/m6Am RNA methyltransferase structures. Nucleic Acids Res. 2021;49(13):7239-7255.
[49] HUANG W, CHEN TQ, FANG K, et al. N6-methyladenosine methyltransferases: functions, regulation, and clinical potential. J Hematol Oncol. 2021;14(1):117.
[50] LIU X, QIN J, GAO T, et al. Analysis of METTL3 and METTL14 in hepatocellular carcinoma. Aging (Albany NY). 2020;12(21):21638-21659.
[51] HE PC, HE C. m(6) A RNA methylation: from mechanisms to therapeutic potential. EMBO J. 2021;40(3):e105977.
[52] YUE Y, LIU J, CUI X, et al. VIRMA mediates preferential m(6)A mRNA methylation in 3’UTR and near stop codon and associates with alternative polyadenylation. Cell Discov. 2018;4:10.
[53] WANG T, KONG S, TAO M, et al. The potential role of RNA N6-methyladenosine in Cancer progression. Mol Cancer. 2020;19(1):88.
[54] MI B, XIONG Y, YAN C, et al. Methyltransferase-like 3-mediated N6-methyladenosine modification of miR-7212-5p drives osteoblast differentiation and fracture healing. J Cell Mol Med. 2020;24(11): 6385-6396.
[55] WANG Y, CHEN Y, XIAO H, et al. METTL3-mediated m6A modification increases Hspa1a stability to inhibit osteoblast aging. Cell Death Discov. 2024;10(1):155.
[56] LIN Y, SHEN X, KE Y, et al. Activation of osteoblast ferroptosis via the METTL3/ASK1-p38 signaling pathway in high glucose and high fat (HGHF)-induced diabetic bone loss. FASEB J. 2022;36(3):e22147.
[57] SHEN GS, ZHOU HB, ZHANG H, et al. The GDF11-FTO-PPARgamma axis controls the shift of osteoporotic MSC fate to adipocyte and inhibits bone formation during osteoporosis. Biochim Biophys Acta Mol Basis Dis. 2018;1864(12):3644-3654.
[58] FENG L, ZHAO W, FAN Y, et al. RNA N6-methyladenosine demethylase FTO inhibits glucocorticoid-induced osteoblast differentiation and function in bone marrow mesenchymal stem cells. J Cell Biochem. 2023;124(11):1835-1847.
[59] WANG W, QIAO SC, WU XB, et al. Circ_0008542 in osteoblast exosomes promotes osteoclast-induced bone resorption through m6A methylation. Cell Death Dis. 2021;12(7):628.
[60] WU Y, XIE L, WANG M, et al. Mettl3-mediated m(6)A RNA methylation regulates the fate of bone marrow mesenchymal stem cells and osteoporosis. Nat Commun. 2018;9(1):4772.
[61] YAN G, YUAN Y, HE M, et al. m(6)A Methylation of Precursor-miR-320/RUNX2 Controls Osteogenic Potential of Bone Marrow-Derived Mesenchymal Stem Cells. Mol Ther Nucleic Acids. 2020;19:421-436.
[62] TIAN C, HUANG Y, LI Q, et al. Mettl3 Regulates Osteogenic Differentiation and Alternative Splicing of Vegfa in Bone Marrow Mesenchymal Stem Cells. Int J Mol Sci. 2019;20(3):551.
[63] SONG M, LV K, XU Z, et al. N6 methyladenosine eraser FTO suppresses Staphylococcus aureus-induced ferroptosis of bone marrow mesenchymal stem cells to ameliorate osteomyelitis through regulating the MDM2/TLR4/SLC7A11 signaling pathway. Cell Biol Int. 2024;48(4):450-460.
[64] YUAN T, LIU H, ABUDOUKADIER M, et al. YTHDF2-Mediated m6A methylation inhibition by miR27a as a protective mechanism against hormonal osteonecrosis in BMSCs. BMC Musculoskelet Disord. 2024;25(1):359.
[65] HUANG C, WANG Y. Downregulation of METTL14 improves postmenopausal osteoporosis via IGF2BP1 dependent posttranscriptional silencing of SMAD1. Cell Death Dis. 2022;13(11):919.
[66] YANG Z, YU G L, ZHU X, et al. Critical roles of FTO-mediated mRNA m6A demethylation in regulating adipogenesis and lipid metabolism: Implications in lipid metabolic disorders. Genes Dis. 2022;9(1): 51-61.
[67] 吉万波,刘冠虹,刘锦涛,等.股密葆方对大鼠激素性股骨头坏死脂质代谢影响的实验研究[J].中国骨质疏松杂志,2016,22(12):1580-1584.
[68] WANG L, SONG C, WANG N, et al. NADP modulates RNA m(6)A methylation and adipogenesis via enhancing FTO activity. Nat Chem Biol. 2020; 16(12):1394-1402.
[69] YAO Y, BI Z, WU R, et al. METTL3 inhibits BMSC adipogenic differentiation by targeting the JAK1/STAT5/C/EBPbeta pathway via an m(6)A-YTHDF2-dependent manner. FASEB J. 2019;33(6):7529-7544.
[70] 赫龙,高爽,李志刚,等.基于三大组学探讨从“痰、虚、瘀”论治SANFH的可行性[J].时珍国医国药,2022,33(8):1947-1949.
[71] TIAN S, LI Y L, WANG J, et al. Chinese Ecliptae herba (Eclipta prostrata (L.) L.) extract and its component wedelolactone enhances osteoblastogenesis of bone marrow mesenchymal stem cells via targeting METTL3-mediated m6A RNA methylation. J Ethnopharmacol. 2023; 312:116433.
[72] JIN Y, WU A, BIAN S, et al. Icariin upregulates methyltransferase-like 14-mediated prolyl 4-hydroxylase beta subunit m6A modification to promote osteogenic differentiation of bone marrow stem cells. Exp Cell Res. 2024;440(2): 114138.
[73] LI L, WANG Y, GAO L, et al. Curcumin-carbon dots suppress periodontitis via regulating METTL3/IRE1alpha signaling. Crit Rev Eukaryot Gene Expr. 2025;35(1):25-35.
[74] WANG Y, YU W, E Y, et al. Qianggu Decoction Alleviated Osteoporosis by Promoting Osteogenesis of BMSCs through Mettl3-Mediated m(6)A Methylation. Adv Biol (Weinh). 2024;8(12):e2400341.
[75] LIAO M, HE Q, YANG J, et al. Study on the Mechanism of Xianling Gubao Capsule Regulating Runt-Related Transcription Factor 2 (RUNX2) and Promoting Osteoblast Differentiation by N6-Methyladenosine (m6A) Methyltransferase-Like 3 (METTL3). Altern Ther Health Med. 2024:AT10075.
|