[1] 李代萍,黄宁,葛美玲,等.中国骨骼肌衰老标志物专家共识(2024)计划书[J].中国循证医学杂志,2024,24(10):1137-1140.
[2] LV J, WANG J, CHEN Q, et al. NIPSNAP1 and NIPSNAP2 facilitate healthy aging independent of mitophagy. Metabolism. 2025;170(4):156324.
[3] 解瑛傲,孔健达,陈芸,等.骨骼肌中卫星细胞衰老生物学机制及潜在的应对策略[J].中国组织工程研究,2024,28(25):4094-4100.
[4] MALATESTA M, CISTERNA B. Aging in the Skeletal Muscle Revealed by Molecular Immunohistochemical Imaging. Int J Mol Sci. 2025;26(13):5986.
[5] KIM JT, JEON DH, LEE HJ. Molecular mechanism of skeletal muscle loss and its prevention by natural resources. Food Sci Biotechnol. 2024;33(15): 3387-3400.
[6] LIBERGOLI M, ALMADA AE. Stem Cell Aging and Rejuvenation in the Skeletal Muscle System. Rejuvenation Res. 2025;3(15):1380-1390.
[7] AGARWAL V, GUPTA A, CHAUDHARY R, et al. Elucidating the potential mechanism and therapeutic targets of chronic stress-induced muscle atrophy. Int Immunopharmacol. 2025; 5(10):1180-1185.
[8] 甘彦明,张宇航,张学林,等.骨骼肌细胞骨架与被动刚度[J].生命科学,2023,35(9):1207-1214.
[9] TSUJI R, HAYASHI T, TAKAHASHI S, et al. The multifaceted role of MyoD in adult skeletal muscle: homeostasis, regeneration, and diseases. Am J Physiol Cell Physiol. 2025;329(1):200-212.
[10] 朱师宇,吕安康,赵宇星,等.基质金属蛋白酶-1、金属蛋白酶组织抑制因子-1在老年肌少症大鼠中的表达及意义[J].南方医科大学学报,2020,40(1):104-109.
[11] 孔健达,穆玉晶,朱磊,等.骨骼肌再生过程中卫星细胞调控机制及其生态位信号的作用[J].中国组织工程研究,2024,28(7):1105-1111.
[12] ELENA ZK, REIMER C, HERRMANN D, et al. Substrate stiffness modifies gene expression and transcriptional response of equine endometrial fibroblasts to TGF-β1. Anim Reprod Sci. 2025; 278(2):107873.
[13] 靳庆瑞,边汝涛,徐学功.成纤维细胞与巨噬细胞交互作用在心肌纤维化中的研究进展[J].中华老年心脑血管病杂志,2025,27(3):389-391.
[14] KANAZAWA Y, TAKAHASHI T, INOUE T, et al. Effects of Aging on Intramuscular Collagen-Related Factors After Injury to Mouse Tibialis Anterior Muscle. Int J Mol Sci. 2025;26(2):801.
[15] KAMAL M, SHANMUGANATHAN M, KROEZEN Z, et al. Senescent myoblasts exhibit an altered exometabolome that is linked to senescence-associated secretory phenotype signaling. Am J Physiol Cell Physiol. 2025;328(2):440-451.
[16] OLSON LC, JAWAD AY, CROCKER ES, et al. Glycations on Decellularized Muscle Matrix Reduce Muscle Regeneration and Increase Inflammation. Tissue Eng Part A. 2025;24(4):319-325.
[17] CHANDRA P, FAIZAN M, PORWAL M, et al. An Overview and Review of Growth Factors in Wound Healing: Emerging Trends and Innovations. Curr Diabetes Rev. 2025;14(2):1219-1225.
[18] YAO Y, LUO Y, LIANG X, et al. The role of oxidative stress-mediated fibro-adipogenic progenitor senescence in skeletal muscle regeneration and repair. Stem Cell Res Ther. 2025;16(1):104.
[19] RODA MA, XU X, ABDALLA TH, et al. Proline-Glycine-Proline Peptides Are Critical in the Development of Smoke-induced Emphysema. Am J Respir Cell Mol Biol. 2019;61(5):560-566.
[20] DE SAEYTYD L, WANG Z, BLOEMEN M, et al. Effect of transforming growth factor beta receptor I inhibitors on myotube formation in vitro. Sci Rep. 2025;15(1):23692.
[21] COLLAO N, JOHANNSEN EB, JUST J, et al. Single-cell transcriptomic analysis reveals alterations to cellular dynamics and paracrine signaling in radiation-induced muscle pathology. Am J Physiol Cell Physiol. 2025;328(6):1995-2012.
[22] MA X, LIU B, JIANG Z, et al. Physical Exercise: A Promising Treatment Against Organ Fibrosis. Int J Mol Sci. 2025;26(1):343.
[23] KASPRZYCKA P, CIEMERYCH MA, ZIMOWSKA M. Differential regulation of MMP activity by TGFβ1 in fast- and slow- twitch muscle repair: insights from EDL and soleus muscle-derived myoblasts. Front Cell Dev Biol. 2025;328(2):440-451.
[24] BAGHY K, SZAKADATI H, KOVALSZKY I. Decorin the antifibrotic proteoglycan and its progression in therapy. Am J Physiol Cell Physiol. 2025;328(6):1853-1865.
[25] ZHONG W, JIA H, ZHU H, et al. Sarcopenia is attenuated by mairin in SAMP8 mice via the inhibition of FAPs fibrosis through the AMPK-TGF-β-SMAD axis. Gene. 2024;931(1):148873.
[26] ATLANTE S, GOTTARDI ZAMPERLA M, CIS L, et al. Senolytic therapies for cardiovascular aging: tackling fibrosis and metabolic dysfunction. Eur J Intern Med. 2025;318(6):1153-1165.
[27] ALEXAKOU E, BAKOPOULOU A, APATZIDOU DA, et al. Biological Effects of “Inflammageing” on Human Oral Cells: Insights into a Potential Confounder of Age-Related Diseases. Int J Mol Sci. 2023;25(1):5.
[28] KIM IS, YANG WS, KIM CH. Physiological Properties, Functions, and Trends in the Matrix Metalloproteinase Inhibitors in Inflammation-Mediated Human Diseases. Curr Med Chem. 2023;30(18):2075-2112.
[29] CHEN WJ, LIN IH, LEE CW, et al. Aged Skeletal Muscle Retains the Ability to Remodel Extracellular Matrix for Degradation of Collagen Deposition after Muscle Injury. Int J Mol Sci. 2021;22(4):2123.
[30] BONNEMA DD, WEBB CS, PENNINGTON WR, et al. Effects of age on plasma matrix metalloproteinases (MMPs) and tissue inhibitor of metalloproteinases (TIMPs). J Card Fail. 2007;13(7):530-540.
[31] ALAKHDAR AA, SIVAKUMAR S, KOPCHAK RM, et al. Age-Related ECM Stiffness Mediates TRAIL Activation in Muscle Stem Cell Differentiation. Adv Biol (Weinh). 2024;8(12):e2400334.
[32] DIll MN, TURNER Z, KAPUSCINSKA PW, et al. Exploring the Unique Extracellular Matrix Composition of Acomys as a Potential Key to Resisting Fibrosis. ACS Biomater Sci Eng. 2025; 11(6):3616-3633.
[33] GRIGORIEVA O, BASALOVA N, DYACHKOVA U, et al. Modeling the profibrotic microenvironment in vitro: Model validation. Biochem Biophys Res Commun. 2024;733(2):150574.
[34] MARCUCCI L, REGGIANI C. Increase of resting muscle stiffness, a less considered component of age-related skeletal muscle impairment. Eur J Transl Myol. 2020;30(2):8982.
[35] MADI CM, WANG YX, HOLBROOK CA, et al. Hydrogel biomaterials that stiffen and soften on demand reveal that skeletal muscle stem cells harbor a mechanical memory. Proc Natl Acad Sci U S A. 2024;121(35):e2406787121.
[36] GISH P, STEWART M, KHUU B, et al. The impact of extracellular matrix proteins on bovine fibro-adipogenic progenitor cell adhesion, proliferation, and differentiation in vitro. Physiol Rep. 2025; 13(9):e70283.
[37] KIM J, KIM IU, LEE ZF, et al. Detrimental effects of advanced glycation end-products (AGEs) on a 3D skeletal muscle model in microphysiological system. Biosens Bioelectron. 2025;12(278):117316.
[38] GUO Z, LI H, JIANG S, et al. The role of AGEs in muscle ageing and sarcopenia. Bone Joint Res. 2025;14(3):185-198.
[39] GUVATOVA ZG, KUDASHEVA ER, EFREMOV YM, et al. Changes in Gene Expression Patterns in Young and Senescent Fibroblasts in Glycated Three-Dimensional Collagen Matrices. Int J Mol Sci. 2025;26(10):4769.
[40] KOSUGE H, NAKAKIDO M, DE VEGA S, et al. Prelp functions via multiple interactions with intrinsically weak affinity relying on ECM anchoring and remodeling. Sci Rep. 2025;15(1):24634.
[41] SANKHE CS, SACCO JL, CRUNKLETON VL, et al. Matrix Stiffness Regulates TGFβ1-Induced αSMA Expression via a G9a-LATS-YAP Signaling Cascade. FASEB Bioadv. 2025;7(7):e70035.
[42] NELSON AC, MOLLEY TG, GONZALEZ G, et al. Vinculin haploinsufficiency impairs integrin-mediated costamere remodeling on stiffer microenvironments. J Mol Cell Cardiol. 2025;200: 1-10.
[43] YOUSEFI F, FOSTER LA, SELIM OA, et al. Integrating Physical and Biochemical Cues for Muscle Engineering: Scaffolds and Graft Durability. Bioengineering (Basel). 2024;11(12):1245.
[44] PODRAZA-FARHANIEH A, SPINELLI R, ZATTERALE F, et al. Physical training reduces cell senescence and associated insulin resistance in skeletal muscle. Mol Metab. 2025;95:102130.
[45] SCHWEITZER AM, KOEHLE MS, FLISS MD, et al. Collagen remodeling increases after acute resistance exercise in healthy skeletal muscle irrespective of age. Am J Physiol Cell Physiol. 2025; 329(1):68-81.
[46] CAVANAUGH CA, MOORE AE, FITZ NF, et al. Transcriptomic Response to Neuromuscular Electrical Stimulation in Muscle, Brain, and Plasma EVs in WT and Klotho-Deficient Mice. Int J Mol Sci. 2025;26(16):7849.
[47] KUMAR P, UMAKANTH S, N G. Photobiomodulation therapy as an adjunct to resistance exercises on muscle metrics, functional balance, functional capacity, and physical performance among older adults: A systematic scoping review. Lasers Med Sci. 2024;39(1):232.
[48] PARK SW, SHIN J, JEONG BK, et al. The Effects of Extracorporeal Shock Wave Therapy on Cutaneous Radiation Injury in a Mouse Model. Plast Reconstr Surg. 2025;155(5):813-825.
[49] 赵娜,张玮,庞赓,等.基于TGF-β1/CTGF作用途径探讨推拿干预骨骼肌纤维化的作用机制[J].辽宁中医杂志,2016,43(12):2539-2541.
[50] 庞赓,李沙,唐新月,等.推拿疗法对骨骼肌纤维化大鼠MMP-1和TIMP-1表达的影响[J].天津中医药大学学报,2020,39(2):209-214.
[51] 陈玉佩,刘通,许玥,等.电针“委中”穴对大鼠腰多裂肌损伤后细胞外基质中相关蛋白表达的影响[J].针刺研究,2019,44(5):341-346.
[52] ANCEL S, MICHAUD J, MIGLIAVACCA E, et al. Nicotinamide and pyridoxine stimulate muscle stem cell expansion and enhance regenerative capacity during aging. J Clin Invest. 2024;134(24):e163648.
[53] BANG S, KIM DE, KANG HT, et al. Metformin restores autophagic flux and mitochondrial function in late passage myoblast to impede age-related muscle loss. Biomed Pharmacother. 2024;180:116981.
[54] JI F, LEE HS, LEE H, et al. The impact of frailty syndrome on skeletal muscle histology: preventive effects of exercise. FEBS Open Bio. 2025;329(1): 68-81.
[55] CARRICK-RANSON G, FUJIMOTO N, SHAFER KM, et al. The effect of 1 year of Alagebrium and moderate-intensity exercise training on left ventricular function during exercise in seniors: a randomized controlled trial. J Appl Physiol (1985). 2016;121(2):528-536.
[56] BALAYAN A, DEBOUTRAY M, MOLLEY TG, et al. Dispase/collagenase cocktail allows for coisolation of satellite cells and fibroadipogenic progenitors from human skeletal muscle. Am J Physiol Cell Physiol. 2024;326(4):C1193-C1202.
[57] SEARA FAC, KASAI-BRUNSWICK TH, NASCIMENTO JHM, et al. Anthracycline-induced cardiotoxicity and cell senescence: new therapeutic option? Cell Mol Life Sci. 2022;79(11):568.
[58] NOVAIS EJ, TRAN VA, JOHNSTON SN, et al. Long-term treatment with senolytic drugs Dasatinib and Quercetin ameliorates age-dependent intervertebral disc degeneration in mice. Nat Commun. 2021;12(1):5213.
[59] GAN C, WEI W, XUE T, et al. Focal adhesion kinase inhibitors in fibrotic diseases therapy: Development and therapeutic potential. Eur J Med Chem. 2025;296:117882.
[60] BHATT J, GHIGO A, HIRSCH E. PI3K/Akt in IPF: untangling fibrosis and charting therapies. Front Immunol. 2025;16:1549277.
[61] LUO YE, ABE-TEH Z, ALSAGHIR TY, et al. Fibro-Adipogenic Progenitors require autocrine IGF-I in homeostatic and regenerating skeletal muscle. Preprint. bioRxiv. 2025;2025.04.11.648330.
[62] DEWI NM, MEILIANA A, DEFI IR, et al. Targeted Therapy for Skeletal Muscle Fibrosis: Regulation of Myostatin, TGF-β, MMP, and TIMP to Maintain Extracellular Matrix Homeostasis. Biologics. 2025;17(19):213-229.
[63] OSTASZEWSKA A, MICHALSKA Z, DZIERZYNSKA M, et al. Beneficial but diverse influence of custom-designed hydrogels modified with IL-4 and SDF-1 peptides on selected populations of cells essential for skeletal muscle regeneration. Int J Biol Macromol. 2025;317(1):144282.
[64] MORAIS LIMA V, CARRE A, POQUE E, et al. Biohybrid microstructured hydrogels obtained via in situ extracellular matrix deposition and decellularization using supercritical CO2. Biofabrication. 2025;213(2):123-134.
[65] ZHANG C, LIU J. Engineered tumor microspheres via microfluidics and decellularized extracellular matrix for high-throughput organoid-based drug screening. Biofabrication. 2025;33(15):3387-3400.
[66] TAN YH, ALCAZAR-DALEO CA, HOLBROOK JG, et al. Shear-Induced Patterning of Decellularized Skeletal Muscle Extracellular Matrix for Enhanced Myogenesis. Adv Healthc Mater. 2025;67(5): 103-112.
[67] CHOI S, LEE MJ, KIM M, et al. Durable Muscle Extracellular Matrix Engineered with Adhesive Phenolic Moieties for Effective Skeletal Muscle Regeneration in Muscle Atrophy. Adv Healthc Mater. 2024;13(32):e2401826.
[68] MENDES MC, SANTOS SC, CUSTODIO CA, et al. Advanced Injectable Human-Derived Microgels for Improved Cell Delivery and Tissue Regeneration. Adv Healthc Mater. 2025;21(2):65-76.
[69] LI Y, ZHANG Y, WANG S, et al. Synergistic reversal of inflammation-mediated degeneration in intervertebral discs: Phenylboric acid-grafted hyaluronic acid hydrogel as an anti-oxidative vehicle for Timp-3 delivery and promotion of extracellular matrix synthesis. Acta Biomater. 2025;201:156-170.
[70] LV Y, LIANG L, QIN M, et al. RGD peptide hydrogel downregulates mechanosignal YAP to inhibit postoperative scarring. Acta Biomater. 2025;199:132-141.
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