Folliculin Interacting Protein 1 (FNIP-1) expression and capillary density in gastrocnemius muscle tissue of mice after biological maturation period
DOI:
https://doi.org/10.47197/retos.v64.110950Keywords:
FNIP-1, Maturity, Endurance, Capillary, Muscle, Healthy LifestyleAbstract
Introduction: The biological maturity period is the time or tempo of progress toward adulthood or maturity. The hormonal fluctuations play an important role in changing the characteristics of human body tissues during the biological maturity period. However, changes in tissue characteristics during biological maturity period have not been revealed. Skeletal muscle tissue is one of those believed to experience changes. Muscle fibers are thought to experience switching types from type 2 muscle fibers to type 1 muscle fibers. The transition of muscle fibers from type 2 to type 1 requires miR-499 activity from the expression of the Myh7b gene. MiR-499 directly inhibits FNIP-1. However, the biological maturity period of changing FNIP-1 expression has not been confirmed.
Objective: This study aimed to analyse the effect of the biological maturity period on FNIP-1 expression and capillary density in the gastrocnemius muscle.
Methodology: Thirty-six male mice were divided into mature groups aged eight weeks and immature groups aged four weeks. This study analyzed FNIP-1 and capillary density gastrocnemius muscle of mice using immunohistochemistry.
Results: FNIP-1 expression test showed higher in immature mice than mature mice. In comparison, the capillary density test and endurance showed higher expression in mature mice than in immature mice.
Conclusion: This study concludes maturation was characterized by a low distribution of FNIP-1 expression in the gastrocnemius muscle and a longer duration ability to run on the treadmill. Unfortunately the capillary density was not a specific mark to determine maturation in mice.
References
Abdillah, R., Risma, R., & Rofi, U. A. (2021). Kontribusi Daya Tahan Otot Fleksor Siku Dengan Ekstensor Bahu Terhadap Daya Tahan Otot Lengan Pada Siswa Ekstrakurikuler Bolabasket. Jurnal Keolahragaan, 7(2), 21. https://doi.org/10.25157/jkor.v7i2.5627
Beneke, R., Leithäuser, R. M., & Ochentel, O. (2011). Blood lactate diagnostics in exercise testing and training. International Journal of Sports Physiology and Performance, 6(1), 8–24. https://doi.org/10.1123/ijspp.6.1.8
Bergkamp, S. C., Smith, V., Kuijpers, T. W., Cutolo, M., van den Berg, J. M., & Schonenberg-Meinema, D. (2023). Correlations between capillary density and degree of skin pigmentation in healthy children analysed by nailfold video capillaroscopy. Quantitative Imaging in Medicine and Surgery, 13(6), 3938–3947. https://doi.org/10.21037/qims-22-993
Cameron, N. (2002). Human Growth and Development. Elsevier Health Sciences.
Costa, T., Murara, P., Vancini, R. L., de Lira, C. A. B., & Andrade, M. S. (2021). Influence of Biological Maturity on the Muscular Strength of Young Male and Female Swimmers. Journal of Human Kinetics, 78, 67–77. https://doi.org/10.2478/hukin-2021-0029
Dougherty, J. P., Springer, D. A., & Gershengorn, M. C. (2016). The treadmill fatigue test: A simple, high-throughput assay of fatigue-like behavior for the mouse. Journal of Visualized Experiments, 2016(111), 1–7. https://doi.org/10.3791/54052
Egger, A. C., Oberle, L. M., & Saluan, P. (2019). The effects of endurance sports on children and youth. Sports Medicine and Arthroscopy Review, 27(1), 35–39. https://doi.org/10.1097/JSA.0000000000000230
Forsyth, J., Burt, D., Ridley, F., & Mann, C. (2017). Using lactate threshold to predict 5-km treadmill running performance in veteran athletes. Biology of Sport, 34(3), 233–237. https://doi.org/10.5114/biolsport.2017.65999
Glancy, B., Kane, D. A., Kavazis, A. N., Goodwin, M. L., Willis, W. T., & Gladden, L. B. (2021). Mitochondrial lactate metabolism: history and implications for exercise and disease. Journal of Physiology, 599(3), 863–888. https://doi.org/10.1113/JP278930
Glenn, R., Adeel, S., & Zolt, A. (2014). Running Forward: New Frontiers in Endurance Exercise Biology. Circulation, 129(7), 798–810. https://doi.org/10.1161/CIRCULATIONAHA.113.001590.Running
Gokhin, D. S., Ward, S. R., Bremner, S. N., & Lieber, R. L. (2008). Quantitative analysis of neonatal skeletal muscle functional improvement in the mouse. Journal of Experimental Biology, 211(6), 837–843. https://doi.org/10.1242/jeb.014340
Hariharan, V. S. (2018). Phase fraction calculation of microstructure using ImageJ. Research Gate, December, 17. https://doi.org/10.13140/RG.2.2.22990.51521
Hendrickse, P., & Degens, H. (2019). The role of the microcirculation in muscle function and plasticity. Journal of Muscle Research and Cell Motility, 40(2), 127–140. https://doi.org/10.1007/s10974-019-09520-2
Hoeger, W., & Hoeger, S. (2014). Lifetime Physical Fitness and Wellness: A Personalized Program 13th Edition. Paper Back Cengage Learning.
Hu, X., Charles, J. P., Akay, T., Hutchinson, J. R., & Blemker, S. S. (2017). Are mice good models for human neuromuscular disease? Comparing muscle excursions in walking between mice and humans. Skeletal Muscle, 7(1), 1–14. https://doi.org/10.1186/s13395-017-0143-9
Jacob, W., Loenneke, J., Jo, E., & Wilson, G. (2012). THE EFFECTS OF ENDURANCE,STRENGTH, AND POWER TRAINING ON MUSCLE FIBER TYPE SHIFTING. 49, 1724–1729.
Joanisse, S., Nederveen, J. P., Snijders, T., McKay, B. R., & Parise, G. (2016). Skeletal Muscle Regeneration, Repair and Remodelling in Aging: The Importance of Muscle Stem Cells and Vascularization. Gerontology, 63(1), 91–100. https://doi.org/10.1159/000450922
Karimian, J., Khazaei, M., & Shekarchizadeh, P. (2015). Effect of resistance training on capillary density around slow and fast twitch muscle fibers in diabetic and normal rats. Asian Journal of Sports Medicine, 6(4), 1–7. https://doi.org/10.5812/asjsm.24040
Kurihara, T., Kanehisa, H., Abe, T., Tsunoda, N., Fukunaga, T., & Kawakami, Y. (2007). GASTROCNEMIUS MUSCLE ARCHITECTURE AND EXTERNAL TENDON LENGTH IN YOUNG BOYS. Journal of Biomechanics, 40, S690. https://doi.org/https://doi.org/10.1016/S0021-9290(07)70678-4
Lesmana, H. S. (2018). Bahan Ajar Fisiologi Olahraga. Universitas Negeri Padang, 79.
Lesmana, H. S. (2019). Adaptasi otot-otot skelet pada latihan. Journal Article, 1, 1–10.
Liu, J., Liang, X., Zhou, D., Lai, L., Xiao, L., Liu, L., Fu, T., Kong, Y., Zhou, Q., Vega, R. B., Zhu, M., Kelly, D. P., Gao, X., & Gan, Z. (2016). Coupling of mitochondrial function and skeletal muscle fiber type by a miR‐499/Fnip1/ AMPK circuit . EMBO Molecular Medicine, 8(10), 1212–1228. https://doi.org/10.15252/emmm.201606372
Muliani. (2016). BIOMEKANIKA LARI. Fakultas Kedokteran Universtas Udayana.
Nederveen, J. P., Betz, M. W., Snijders, T., & Parise, G. (2021). The Importance of Muscle Capillarization for Optimizing Satellite Cell Plasticity. Exercise and Sport Sciences Reviews, 49(4), 284–290. https://doi.org/10.1249/JES.0000000000000270
Neufer, P. D., Bamman, M. M., Muoio, D. M., Bouchard, C., Cooper, D. M., Goodpaster, B. H., Booth, F. W., Kohrt, W. M., Gerszten, R. E., Mattson, M. P., Hepple, R. T., Kraus, W. E., Reid, M. B., Bodine, S. C., Jakicic, J. M., Fleg, J. L., Williams, J. P., Joseph, L., Evans, M., … Laughlin, M. R. (2015). Understanding the Cellular and Molecular Mechanisms of Physical Activity-Induced Health Benefits. Cell Metabolism, 22(1), 4–11. https://doi.org/10.1016/j.cmet.2015.05.011
Prior, S. J., Ryan, A. S., Blumenthal, J. B., Watson, J. M., Katzel, L. I., & Goldberg, A. P. (2016). Sarcopenia is Associated With Lower Skeletal Muscle Capillarization and Exercise Capacity in Older Adults. Journals of Gerontology - Series A Biological Sciences and Medical Sciences, 71(8), 1096–1101. https://doi.org/10.1093/gerona/glw017
Reyes, N. L., Banks, G. B., Tsang, M., Margineantu, D., Gu, H., Djukovic, D., Chan, J., Torres, M., Liggitt, H. D., Hirenallur-S, D. K., Hockenbery, D. M., Raftery, D., & Iritani, B. M. (2015). Fnip1 regulates skeletal muscle fiber type specification, fatigue resistance, and susceptibility to muscular dystrophy. Proceedings of the National Academy of Sciences of the United States of America, 112(2), 424–429. https://doi.org/10.1073/pnas.1413021112
Sniffen, K., Noel-London, K., Schaeffer, M., & Owoeye, O. (2022). Is Cumulative Load Associated with Injuries in Youth Team Sport? A Systematic Review. Sports Medicine - Open, 8(1). https://doi.org/10.1186/s40798-022-00516-w
Towlson, C., Salter, J., Ade, J. D., Enright, K., Harper, L. D., Page, R. M., & Malone, J. J. (2021). Maturity-associated considerations for training load, injury risk, and physical performance in youth soccer: One size does not fit all. Journal of Sport and Health Science, 10(4), 403–412. https://doi.org/https://doi.org/10.1016/j.jshs.2020.09.003
Xiao, L., Liu, J., Sun, Z., Yin, Y., Mao, Y., Id, D. X., Liu, L., Xu, Z., Guo, Q., Ding, C., Sun, W., Yang, L., Zhou, Z., Zhou, D., Fu, T., Zhou, W., Zhu, Y., Chen, X., Id, Z. L., … Id, Z. G. (2021). coordination of mitochondrial function and muscle fiber type by FNIP1. 1–27. https://doi.org/10.1371/journal.pgen.1009488
Zhou, Q., Gu, Y., Lang, H., Wang, X., Chen, K., Gong, X., Zhou, M., Ran, L., Zhu, J., & Mi, M. (2017). Dihydromyricetin prevents obesity-induced slow-twitch-fiber reduction partially via FLCN/FNIP1/AMPK pathway. Biochimica et Biophysica Acta (BBA) - Molecular Basis of Disease, 1863(6), 1282–1291. https://doi.org/https://doi.org/10.1016/j.bbadis.2017.03.019
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2025 Sinta Ayu Choiriyah, Bambang Purwanto, Viskasari Pintoko Kalanjati, Raden Argarini; Anisah Rosydiyah
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and ensure the magazine the right to be the first publication of the work as licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgment of authorship of the work and the initial publication in this magazine.
- Authors can establish separate additional agreements for non-exclusive distribution of the version of the work published in the journal (eg, to an institutional repository or publish it in a book), with an acknowledgment of its initial publication in this journal.
- Is allowed and authors are encouraged to disseminate their work electronically (eg, in institutional repositories or on their own website) prior to and during the submission process, as it can lead to productive exchanges, as well as to a subpoena more Early and more of published work (See The Effect of Open Access) (in English).
This journal provides immediate open access to its content (BOAI, http://legacy.earlham.edu/~peters/fos/boaifaq.htm#openaccess) on the principle that making research freely available to the public supports a greater global exchange of knowledge. The authors may download the papers from the journal website, or will be provided with the PDF version of the article via e-mail.