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非肌肉肌球蛋白 IIB 是细胞重编程的驱动因素。

Nonmuscle myosin IIB is a driver of cellular reprogramming.

机构信息

Department of Cell Biology, Johns Hopkins University School of Medicine, Baltimore, MD 21205.

Departments of Pharmacology and Molecular Sciences, Medicine, and Oncology, Johns Hopkins University School of Medicine, Baltimore, MD 21205.

出版信息

Mol Biol Cell. 2023 Jun 1;34(7):ar71. doi: 10.1091/mbc.E21-08-0386. Epub 2023 Apr 19.

Abstract

Nonmuscle myosin IIB (NMIIB) is considered a primary force generator during cell motility. Yet many cell types, including motile cells, do not necessarily express NMIIB. Given the potential of cell engineering for the next wave of technologies, adding back NMIIB could be a strategy for creating supercells with strategically altered cell morphology and motility. However, we wondered what unforeseen consequences could arise from such an approach. Here, we leveraged pancreatic cancer cells, which do not express NMIIB. We generated a series of cells where we added back NMIIB and strategic mutants that increase the ADP-bound time or alter the phosphorylation control of bipolar filament assembly. We characterized the cellular phenotypes and conducted RNA-seq analysis. The addition of NMIIB and the different mutants all have specific consequences for cell morphology, metabolism, cortical tension, mechanoresponsiveness, and gene expression. Major modes of ATP production are shifted, including alterations in spare respiratory capacity and the dependence on glycolysis or oxidative phosphorylation. Several metabolic and growth pathways undergo significant changes in gene expression. This work demonstrates that NMIIB is highly integrated with many cellular systems and simple cell engineering has a profound impact that extends beyond the primary contractile activity presumably being added to the cells.

摘要

非肌肉肌球蛋白 IIB(NMIIB)被认为是细胞运动过程中的主要力发生器。然而,许多细胞类型,包括运动细胞,并不一定表达 NMIIB。鉴于细胞工程在下一代技术中的潜力,添加 NMIIB 可能是一种策略,可以创建具有战略改变的细胞形态和运动性的超级细胞。然而,我们想知道这种方法可能会带来哪些意想不到的后果。在这里,我们利用不表达 NMIIB 的胰腺癌细胞。我们生成了一系列细胞,其中我们添加了 NMIIB 和战略突变体,这些突变体增加了 ADP 结合时间或改变了双极丝组装的磷酸化控制。我们对细胞表型进行了表征,并进行了 RNA-seq 分析。添加 NMIIB 和不同的突变体都会对细胞形态、代谢、皮质张力、机械响应和基因表达产生特定的影响。主要的 ATP 产生模式发生了转变,包括备用呼吸能力的改变以及对糖酵解或氧化磷酸化的依赖。几种代谢和生长途径的基因表达发生了显著变化。这项工作表明,NMIIB 与许多细胞系统高度整合,简单的细胞工程具有深远的影响,超出了可能添加到细胞中的主要收缩活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e120/10295488/1f1f004539ff/mbc-34-ar71-g001.jpg

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