生长细胞中的基因表达:生物物理引物

Ido Golding, Ariel Amir
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引用次数: 0

摘要

细胞生长和基因表达是所有生命系统的基本要素,长期以来一直是生物物理学研究的焦点。单细胞方法的进步激发了对这些过程的理论研究。然而,直到最近,这两个研究领域之间几乎没有对话。大多数基因调控的理论模型都假定基因活性与细胞出生和分裂之间的周期进程无关。但是,所有可观察到的细胞的周期性特征都可以通过多种方式调节基因表达。转录和翻译所需的分子因子在细胞周期中数量增加,但也因细胞体积的不断增加而被稀释。基因组的复制改变了这些细胞参与者的剂量,但也为调节结合提供了竞争目标。最后,细胞分裂再次减少它们的数量,以此类推。随机性是所有这些生物过程所固有的,表现为新细胞成分合成和降解的波动,以及每次细胞分裂时分子的随机分配。因此,基因表达是静止的观点很难站得住脚。在这篇综述中,我们综述了细胞周期调控基因表达的新范式,重点是全球表达模式,而不是基因特异性调控。我们讨论了最近的实验报告,其中细胞生长和基因表达在单个细胞中同时测量,提供了第一次瞥见两者之间的耦合。虽然实验结果在基因和生物体之间存在差异,但已经出现了几个理论模型,试图调和这些差异,并形成一个统一的框架来理解生长细胞中的基因表达。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gene expression in growing cells: A biophysical primer
Cell growth and gene expression, essential elements of all living systems, have long been the focus of biophysical interrogation. Advances in single-cell methods have invigorated theoretical studies into these processes. However, until recently, there was little dialog between the two areas of study. Most theoretical models for gene regulation assumed gene activity to be oblivious to the progression of the cell cycle between birth and division. But there are numerous ways in which the periodic character of all cellular observables can modulate gene expression. The molecular factors required for transcription and translation increase in number during the cell cycle, but are also diluted due to the continuous increase in cell volume. The replication of the genome changes the dosage of those same cellular players but also provides competing targets for regulatory binding. Finally, cell division reduces their number again, and so forth. Stochasticity is inherent to all these biological processes, manifested in fluctuations in the synthesis and degradation of new cellular components as well as the random partitioning of molecules at each cell division. The notion of gene expression as stationary is thus hard to justify. In this review, we survey the emerging paradigm of cell-cycle regulated gene expression, with an emphasis on the global expression patterns rather than gene-specific regulation. We discuss recent experimental reports where cell growth and gene expression were simultaneously measured in individual cells, providing first glimpses into the coupling between the two. While the experimental findings, not surprisingly, differ among genes and organisms, several theoretical models have emerged that attempt to reconcile these differences and form a unifying framework for understanding gene expression in growing cells.
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