全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Effect of Sijunzi Decoction on the Myonuclear Domain of Rat Soleus in Spleen Qi Deficiency

DOI: 10.4236/cm.2023.144015, PP. 276-285

Keywords: Sijunzi Decoction, Spleen Qi Deficiency, Limb Weakness, Myonuclear Domain, Muscle Stem Cell

Full-Text   Cite this paper   Add to My Lib

Abstract:

Objective: To study the mechanism of Sijunzi decoction treating limb weakness in spleen Qi deficiency (SQD) based on the myonuclear domain (MND) theory. Methods: 40 male Sprague-Dawley rats were randomly divided into the normal group, SQD model group (model group), SQD+ still water group (SW group) and SQD+ Sijunzi decoction group (CM group), 10 rats each group; Grip-Strength Meter was used to measure limb grip strength; transmission electron microscope was employed to observe the ultrastructural changes of the myofibers, Image Pro 6.0 was used to measure the myonuclear numbers, cross-section area (CSA) and then their ratios (the MND sizes) were calculated, immunofluorescence assay was chosen to test the expressions of paired box gene 7 (Pax7) and myogenic differentiation antigen (MyoD). Results: Compared with those in the normal group, limb grip strength was decreased, sarcomeres were abnormal, and all the myonuclear numbers, CSA and MND sizes were reduced, but the Pax7+ cell numbers were increased, significantly, in the model and SW groups; Compared with those in the model and SW groups, limb grip strength was increased, sarcomeres were basically normal, the myonuclear number and CSA were both greater, and the Pax7+ and MyoD+ cell numbers were both increased, significantly, in the CM group. Conclusion: Sijunzi decoction might increase the myonuclear number by activating the MSCs to treat limb weakness in SQD.

References

[1]  Bagley, J.R., Denes, L.T., McCarthy, J.J., et al. (2023) The Myonuclear Domain in Adult Skeletal Muscle Fibres: Past, Present and Future. The Journal of Physiology, 601, 723-741.
https://doi.org/10.1113/JP283658
[2]  Hansson, K.A. and Eftestøl, E. (2023) Scaling of Nuclear Numbers and Their Spatial Arrangement in Skeletal Muscle Cell Size Regulation. Molecular Biology of the Cell, 34, pe3.
https://doi.org/10.1091/mbc.E22-09-0424
[3]  Koopmans, P.J., Ismaeel, A., Goljanek-Whysall, K., et al. (2023) The Roles of miRNAs in Adult Skeletal Muscle Satellite Cells. Free Radical Biology and Medicine, 209, 228-238.
https://doi.org/10.1016/j.freeradbiomed.2023.10.403
[4]  Memczak, S. and Belmonte, J.C. (2023) Overcoming Muscle Stem Cell Aging. Current Opinion in Genetics & Development, 83, Article ID: 102127.
https://doi.org/10.1016/j.gde.2023.102127
[5]  Ma, D., Liu, W.J., Wang, L., et al. (2019) Mitophagy in the Skeletal Muscle Is Suppressed in Spleen Qi Deficiency. Chinese Medicine, 10, 11-18.
https://doi.org/10.4236/cm.2019.101002
[6]  Sara, B., Tatiane, G., Van Roie, E., et al. (2020) The Effect of Resistance Training, Detraining and Retraining on Muscle Strength and Power, Myofibre Size, Satellite Cells and Myonuclei in Older Men. Experimental Gerontology, 133, 531-565.
https://doi.org/10.1016/j.exger.2020.110860
[7]  Karlsen, A., Bechshøft, R.L., Malmgaard-Clausen, et al. (2019) Lack of Muscle Fibre Hypertrophy, Myonuclear Addition, and Satellite Cell Pool Expansion with Resistance Training in 83-94-Year-Old Men and Women. Acta Physiol, 227, e13271.
[8]  Zhao, S., Chen, J., Wu, L., Tao, X., et al. (2023) Induced Pluripotent Stem Cells for Tissue-Engineered Skeletal Muscles. International Journal of Molecular Sciences, 24, 11520-11539.
https://doi.org/10.3390/ijms241411520
[9]  Yagi, M., Ji, F., Charlton, J., Cristea, S., et al. (2021) Dissecting Dual Roles of MyoD during Lineage Conversion to Mature Myocytes and Myogenic Stem Cells. Genes & Development, 35, 1209-1228.
https://doi.org/10.1101/gad.348678.121
[10]  Hromowyk, K.J., Talbot, J.C., Martin, B.L., et al. (2020) Cell Fusion is Differentially Regulated in Zebrafish Post-Embryonic Slow and Fast Muscle. Developmental Biology, 462, 85-100.
https://doi.org/10.1016/j.ydbio.2020.03.005
[11]  Brooks, N.E. and Myburgh, K.H. (2014) Skeletal Muscle Wasting with Disuse Atrophy Is Multi-Dimensional: The Response and Interaction of Myonuclei, Satellite Cells and Signaling Pathways. Frontiers in Physiology, 5, 99.
https://doi.org/10.3389/fphys.2014.00099
[12]  Southerland, K.W., Xu, Y., Peters, D.T., et al. (2023) Skeletal Muscle Regeneration Failure in Ischemic-Damaged Limbs Is Associated with Pro-Inflammatory Macrophages and Premature Differentiation of Satellite Cells. Genome Medicine, 5, 95.
https://doi.org/10.1186/s13073-023-01250-y
[13]  Keefe, A.C., Lawson, J.A., Flygare, S.D., et al. (2015) Muscle Stem Cells Contribute to Myofibres in Sedentary Adult Mice. Nature Communications, 6, 7087-7097.
https://doi.org/10.1038/ncomms8087
[14]  Lee, J., Park, J., Choe, H. and Shim, K. (2022) Insect Peptide CopA3 Promotes Proliferation and PAX7 and MYOD Expression in Porcine Muscle Satellite Cells. Journal of Animal Science and Technology, 64, 1132-1143.
https://doi.org/10.5187/jast.2022.e81
[15]  Loperfido, M., Steele-Stallard, H.B., Tedesco, F.S., et al. (2015) Pluripotent Stem Cells for Gene Therapy of Degenerative Muscle Diseases. Current Gene Therapy, 15, 364-380.
https://doi.org/10.2174/1566523215666150630121207
[16]  Tian, Z.L., Wang, R.L., Yang, Q.F., et al. (2023) Detection of Multiple Biomarkers Associated with Satellite Cell Fate in the Contused Skeletal Muscle of Rats for Wound Age Estimation. International Journal of Legal Medicine, 137, 875-886.
https://doi.org/10.1007/s00414-023-02971-w
[17]  Liu, W.J., Xu, X.Z., Duan, Z.Y., et al. (2021) Efficacy of Sijunzi Decoction on Limb Weakness in Spleen Qi Deficiency Model Rats through Adenosine Monophosphate-Activated Protein Kinase/Unc-51 like Autophagy Activating Kinase 1 Signaling. Journal of Traditional Chinese Medicine, 41, 617-623.

Full-Text

Contact Us

[email protected]

QQ:3279437679

WhatsApp +8615387084133