Hu Delin, Dong Ziqing, Li Bin, Lu Feng, Li Ye
Department of Plastic and Cosmetic Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, P.R. China.
Tissue Eng Part B Rev. 2023 Apr;29(2):141-150. doi: 10.1089/ten.TEB.2022.0052. Epub 2022 Oct 10.
Stem cells have attracted much attention in the field of regeneration due to their unique ability to promote regeneration. Among the many approaches used to regulate directed proliferation and differentiation of stem cells, application of mechanical forces is safe, simple, and easy to implement, all of which are advantageous to practical applications. In this review, the mechanisms of mechanical regulation of stem cell proliferation and differentiation are summarized with emphasis on force transduction pathways from the extracellular matrix to the nucleus. Prospects for future clinical applications are also discussed. In conclusion, through specific signaling pathways, mechanical signals ultimately affect gene expression and thus guide cell fate. Mechanical factors can regulate proliferation and differentiation of stem cells through signaling pathways, a greater understanding of which will contribute to future research and applications of cell regeneration therapy. Impact statement Mechanical mechanics is vital for the regulation of cell fate; especially in the field of regenerative medicine, mechanical control has characteristics that are simple and comparable. Mechanically regulated pathways exist widely in cells and are distributed at various structural levels of cells. In this review, we categorized the mechanical regulatory pathways through the clue of the mechanical transmission. We tried to include some newly researched pathways, such as Piezo-related pathways, to show the recent vigorous development in this field.
干细胞因其促进再生的独特能力而在再生领域备受关注。在用于调节干细胞定向增殖和分化的众多方法中,施加机械力是安全、简单且易于实施的,所有这些都有利于实际应用。在这篇综述中,总结了干细胞增殖和分化的机械调节机制,重点是从细胞外基质到细胞核的力转导途径。还讨论了未来临床应用的前景。总之,通过特定的信号通路,机械信号最终影响基因表达,从而引导细胞命运。机械因素可通过信号通路调节干细胞的增殖和分化,对其更深入的理解将有助于细胞再生治疗的未来研究和应用。影响声明 机械力学对细胞命运的调控至关重要;尤其是在再生医学领域,机械控制具有简单且可比的特点。机械调节途径广泛存在于细胞中,并分布在细胞的各个结构层面。在本综述中,我们通过机械传递线索对机械调节途径进行了分类。我们试图纳入一些新研究的途径,如与Piezo相关的途径,以展示该领域最近的蓬勃发展。