| [1] |
Jeong G J, Castels H, Kang I, Aliya B, Jang Y C. Nanomaterial for skeletal muscle regeneration[J]. Tissue Engineering and Regenerative Medicine, 2022, 19(2):253-261.doi: 10.1007/s13770-022-00446-4.
|
| [2] |
Mo M J, Zhang Z H, Wang X T, Shen W J, Zhang L, Lin S D. Molecular mechanisms underlying the impact of muscle fiber types on meat quality in livestock and poultry[J]. Frontiers in Veterinary Science, 2023, 10:1284551.doi: 10.3389/fvets.2023.1284551.
URL
|
| [3] |
Vemula S, Muvavarirwa T, Doornbos F, Whitman M C. Neuromuscular junction development differs between extraocular and skeletal muscles and between different extraocular muscles[J]. Investigative Ophthalmology & Visual Science, 2024, 65(5):28.doi: 10.1167/iovs.65.5.28.
|
| [4] |
Özen S D, Kir S. Ectodysplasin A2 receptor signaling in skeletal muscle pathophysiology[J]. Trends in Molecular Medicine, 2024, 30(5):471-483.doi: 10.1016/j.molmed.2024.02.002.
pmid: 38443222
|
| [5] |
Sousa-Victor P, García-Prat L, Muñoz-Cánoves P. Control of satellite cell function in muscle regeneration and its disruption in ageing[J]. Nature Reviews Molecular Cell Biology, 2022, 23(3):204-226.doi: 10.1038/s41580-021-00421-2.
|
| [6] |
Schmidt M, Schüler S C, Hüttner S S, von Eyss B, von Maltzahn J. Adult stem cells at work:regenerating skeletal muscle[J]. Cellular and Molecular Life Sciences, 2019, 76(13):2559-2570.doi: 10.1007/s00018-019-03093-6.
pmid: 30976839
|
| [7] |
Buckingham M, Relaix F. PAX3 and PAX7 as upstream regulators of myogenesis[J]. Seminars in Cell & Developmental Biology, 2015, 44:115-125.doi: 10.1016/j.semcdb.2015.09.017.
|
| [8] |
Yue Y Q, Wang Y H, Wen C L, Meng Y Y, Peng Y, Li X. Lnc-Malat1 promotes slow myofiber-type transformation through sponging miR-129-5p in C 2C 12 myotubes[J]. Experimental Cell Research, 2023, 431(1):113761.doi: 10.1016/j.yexcr.2023.113761.
URL
|
| [9] |
Zammit P S. Function of the myogenic regulatory factors Myf5,MyoD,Myogenin and MRF4 in skeletal muscle,satellite cells and regenerative myogenesis[J]. Seminars in Cell & Developmental Biology, 2017, 72:19-32.doi: 10.1016/j.semcdb.2017.11.011.
|
| [10] |
|
|
Zhu C Y, Yang P M, Liu Z H, Zhang B X, Zhang J, Hu Z Y. Cloning and tissue expression analysis of MyoG gene in Coilia nasus[J]. Tianjin Agricultural Sciences, 2024, 30(10):33-39,49.
|
| [11] |
Agosti E, Antonietti S, Ius T, Fontanella M M, Zeppieri M, Panciani P P. Glioma stem cells as promoter of glioma progression:a systematic review of molecular pathways and targeted therapies[J]. International Journal of Molecular Sciences, 2024, 25(14):7979.doi: 10.3390/ijms25147979.
URL
|
| [12] |
Girardi F, Le Grand F. Wnt signaling in skeletal muscle development and regeneration[J]. Progress in Molecular Biology and Translational Science, 2018, 153:157-179.doi: 10.1016/bs.pmbts.2017.11.026.
pmid: 29389515
|
| [13] |
Liu D, Li S, Cui Y F, Tong H L, Li S F, Yan Y Q. Podocan affects C 2C 12 myogenic differentiation by enhancing Wnt/β-catenin signaling[J]. Journal of Cellular Physiology, 2019, 234(7):11130-11139.doi: 10.1002/jcp.27763.
URL
|
| [14] |
Adhikari A, Davie J. JARID2 and the PRC2 complex regulate skeletal muscle differentiation through regulation of canonical Wnt signaling[J]. Epigenetics & Chromatin, 2018, 11(1):46.doi: 10.1186/s13072-018-0217-x.
|
| [15] |
Maeda K, Enomoto A, Hara A, Asai N Y, Kobayashi T, Horinouchi A, Maruyama S, Ishikawa Y, Nishiyama T, Kiyoi H, Kato T, Ando K, Weng L, Mii S, Asai M, Mizutani Y, Watanabe O, Hirooka Y, Goto H, Takahashi M. Identification of meflin as a potential marker for mesenchymal stromal cells[J]. Scientific Reports, 2016, 6:22288.doi: 10.1038/srep22288.
pmid: 26924503
|
| [16] |
Yui S, Azzolin L, Maimets M, Pedersen M T, Fordham R P, Hansen S L, Larsen H L, Guiu J, Alves M R P, Rundsten C F, Johansen J V, Li Y, Madsen C D, Nakamura T, Watanabe M, Nielsen O H, Schweiger P J, Piccolo S, Jensen K B. YAP/TAZ-dependent reprogramming of colonic epithelium links ECM remodeling to tissue regeneration[J]. Cell Stem Cell, 2018, 22(1):35-49.e7.doi: 10.1016/j.stem.2017.11.001.
pmid: 29249464
|
| [17] |
Zhang K, Zhang Y Y, Gu L J, Lan M M, Liu C C, Wang M, Su Y, Ge M X, Wang T T, Yu Y Y, Liu C, Li L, Li Q Y, Zhao Y F, Yu Z Q, Wang F D, Li N, Meng Q Y. Islr regulates canonical Wnt signaling-mediated skeletal muscle regeneration by stabilizing Dishevelled-2 and preventing autophagy[J]. Nature Communications, 2018, 9:5129.doi: 10.1038/s41467-018-07638-4.
pmid: 30510196
|
| [18] |
Kajiguchi T, Katsumi A, Tanizaki R, Kiyoi H, Naoe T. Y654 of β-catenin is essential for FLT3/ITD-related tyrosine phosphorylation and nuclear localization of β-catenin[J]. European Journal of Haematology, 2012, 88(4):314-320.doi: 10.1111/j.1600-0609.2011.01738.x.
|
| [19] |
Yoshida C, Takeichi M. Teratocarcinoma cell adhesion:identification of a cell-surface protein involved in calcium-dependent cell aggregation[J]. Cell, 1982, 28(2):217-224.doi: 10.1016/0092-8674(82)90339-7.
pmid: 7060128
|
| [20] |
Finch P W, He X, Kelley M J, Üren A, Schaudies R P, Popescu N C, Rudikoff S, Aaronson S A, Varmus H E, Rubin J S. Purification and molecular cloning of a secreted,frizzled-related antagonist of Wnt action[J]. Proceedings of the National Academy of Sciences of the United States of America, 1997, 94(13):6770-6775.doi: 10.1073/pnas.94.13.6770.
pmid: 9192640
|
| [21] |
Zhao H, Ming T Q, Tang S, Ren S, Yang H, Liu M L, Tao Q, Xu H B. Wnt signaling in colorectal cancer:pathogenic role and therapeutic target[J]. Molecular Cancer, 2022, 21(1):144.doi: 10.1186/s12943-022-01616-7.
pmid: 35836256
|
| [22] |
Wang H Y, Zhang R, Wu X J, Chen Y F, Ji W, Wang J S, Zhang Y W, Xia Y, Tang Y Q, Yuan J X. The Wnt signaling pathway in diabetic nephropathy[J]. Frontiers in Cell and Developmental Biology, 2022, 9:701547.doi: 10.3389/fcell.2021.701547.
URL
|
| [23] |
Xue R Z, Lin W F, Sun J K, Watanabe M, Xu A B, Araki M, Nasu Y, Tang Z Y, Huang P. The role of Wnt signaling in male reproductive physiology and pathology[J]. Molecular Human Reproduction, 2021, 27(1):gaaa085.doi: 10.1093/molehr/gaaa085.
|
| [24] |
Vuong L T, Mlodzik M. Different strategies by distinct Wnt-signaling pathways in activating a nuclear transcriptional response[J]. Current Topics in Developmental Biology, 2022, 149:59-89.doi: 10.1016/bs.ctdb.2022.02.008.
pmid: 35606062
|
| [25] |
Gajos-Michniewicz A, Czyz M. Wnt signaling in melanoma[J]. International Journal of Molecular Sciences, 2020, 21(14):4852.doi: 10.3390/ijms21144852.
URL
|
| [26] |
Neiheisel A, Kaur M, Ma N, Havard P, Shenoy A K. Wnt pathway modulators in cancer therapeutics:an update on completed and ongoing clinical trials[J]. International Journal of Cancer, 2022, 150(5):727-740.doi: 10.1002/ijc.33811.
URL
|
| [27] |
Xia M Y, Zhao X Y, Huang Q L, Sun H Y, Sun C, Yuan J, He C, Sun Y, Huang X, Kong W, Kong W J. Activation of Wnt/β-catenin signaling by lithium chloride attenuates d-galactose-induced neurodegeneration in the auditory cortex of a rat model of aging[J]. FEBS Open Bio, 2017, 7(6):759-776.doi: 10.1002/2211-5463.12220.
URL
|
| [28] |
Morgan J, Partridge T. Skeletal muscle in health and disease[J]. Disease Models & Mechanisms, 2020, 13(2):dmm042192.doi: 10.1242/dmm.042192.
|
| [29] |
Hashemolhosseini S, Gessler L. Crosstalk among canonical Wnt and Hippo pathway members in skeletal muscle and at the neuromuscular junction[J]. Neural Regeneration Research, 2025, 20(9):2464-2479.doi: 10.4103/nrr.nrr-d-24-00417.
URL
|
| [30] |
Han S S, Cui C, He H R, Shen X X, Chen Y Q, Wang Y, Li D Y, Zhu Q, Yin H D. Myoferlin regulates Wnt/β-catenin signaling-mediated skeletal muscle development by stabilizing dishevelled-2 against autophagy[J]. International Journal of Molecular Sciences, 2019, 20(20):5130.doi: 10.3390/ijms20205130.
URL
|
| [31] |
pmid: 26453496
|
| [32] |
Patergnani S, Buchsbaum D J, Piazza G A. Editorial:targeting the Wnt/β-catenin signaling pathway in cancer[J]. Frontiers in Oncology, 2022, 12:1022174.doi: 10.3389/fonc.2022.1022174.
URL
|
| [33] |
Damsky W E, Curley D P, Santhanakrishnan M, Rosenbaum L E, Platt J T, Gould Rothberg B E, Taketo M M, Dankort D, Rimm D L, McMahon M, Bosenberg M. β-catenin signaling controls metastasis in braf-activated pten-deficient melanomas[J]. Cancer Cell, 2011, 20(6):741-754.doi: 10.1016/j.ccr.2011.10.030.
pmid: 22172720
|
| [34] |
Steinhart Z, Angers S. Wnt signaling in development and tissue homeostasis[J]. Development, 2018, 145(11):dev146589.doi: 10.1242/dev.146589.
|
| [35] |
Silva-García O, Valdez-Alarcón J J, Baizabal-Aguirre V M. The Wnt/β-catenin signaling pathway controls the inflammatory response in infections caused by pathogenic bacteria[J]. Mediators of Inflammation, 2014, 2014:310183.doi: 10.1155/2014/310183.
|
| [36] |
Hwang S Y, Deng X M, Byun S, Lee C, Lee S J, Suh H, Zhang J M, Kang Q F, Zhang T, Westover K D, Mandinova A, Lee S W. Direct targeting of β-catenin by a small molecule stimulates proteasomal degradation and suppresses oncogenic Wnt/β-catenin signaling[J]. Cell Reports, 2016, 16(1):28-36.doi: 10.1016/j.celrep.2016.05.071.
URL
|
| [37] |
Zheng X M, Wang S F, Xiao L, Han P P, Xie K K, Ivanovski S, Xiao Y, Zhou Y H. LiCl-induced immunomodulatory periodontal regeneration via the activation of the Wnt/β-catenin signaling pathway[J]. Journal of Periodontal Research, 2022, 57(4):835-848.doi: 10.1111/jre.13022.
URL
|