Mechanical regulation of mitochondrial morphodynamics in cancer cells by extracellular microenvironment

Q3 Biochemistry, Genetics and Molecular Biology
Mariia Lunova , Milan Jirsa , Alexandr Dejneka , Gareth John Sullivan , Oleg Lunov
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引用次数: 0

Abstract

Recently, it has been recognized that physical abnormalities (e.g. elevated solid stress, elevated interstitial fluid pressure, increased stiffness) are associated with tumor progression and development. Additionally, these mechanical forces originating from tumor cell environment through mechanotransduction pathways can affect metabolism. On the other hand, mitochondria are well-known as bioenergetic, biosynthetic, and signaling organelles crucial for sensing stress and facilitating cellular adaptation to the environment and physical stimuli. Disruptions in mitochondrial dynamics and function have been found to play a role in the initiation and advancement of cancer. Consequently, it is logical to hypothesize that mitochondria dynamics subjected to physical cues may play a pivotal role in mediating tumorigenesis. Recently mitochondrial biogenesis and turnover, fission and fusion dynamics was linked to mechanotransduction in cancer. However, how cancer cell mechanics and mitochondria functions are connected, still remain poorly understood. Here, we discuss recent studies that link mechanical stimuli exerted by the tumor cell environment and mitochondria dynamics and functions. This interplay between mechanics and mitochondria functions may shed light on how mitochondria regulate tumorigenesis.

细胞外微环境对癌细胞线粒体形态动力学的机械调控
最近,人们认识到物理异常(如固体应力升高、间质压力升高、硬度增加)与肿瘤的进展和发展有关。此外,这些来自肿瘤细胞环境的机械力通过机械传导途径会影响新陈代谢。另一方面,线粒体是众所周知的生物能、生物合成和信号细胞器,对感知压力、促进细胞适应环境和物理刺激至关重要。线粒体动力学和功能的紊乱已被发现在癌症的发生和发展中起了作用。因此,我们可以合乎逻辑地推测,线粒体的动力学受到物理因素的影响,可能在介导肿瘤发生方面发挥关键作用。最近,线粒体的生物生成和周转、裂变和融合动力学与癌症中的机械传导有关。然而,人们对癌细胞力学与线粒体功能之间的联系仍然知之甚少。在此,我们将讨论将肿瘤细胞环境施加的机械刺激与线粒体动力学和功能联系起来的最新研究。力学与线粒体功能之间的相互作用可能会揭示线粒体如何调控肿瘤发生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.10
自引率
0.00%
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0
审稿时长
25 days
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