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细胞大小的内稳态在整个细胞周期中都受到严格控制。

Cell size homeostasis is tightly controlled throughout the cell cycle.

机构信息

Department of Systems Biology, Harvard Medical School, Boston, Massachusetts, United States of America.

Department of Chemistry, Stanford University, Stanford, California, United States of America.

出版信息

PLoS Biol. 2024 Jan 5;22(1):e3002453. doi: 10.1371/journal.pbio.3002453. eCollection 2024 Jan.

Abstract

To achieve a stable size distribution over multiple generations, proliferating cells require a means of counteracting stochastic noise in the rate of growth, the time spent in various phases of the cell cycle, and the imprecision in the placement of the plane of cell division. In the most widely accepted model, cell size is thought to be regulated at the G1/S transition, such that cells smaller than a critical size pause at the end of G1 phase until they have accumulated mass to a predetermined size threshold, at which point the cells proceed through the rest of the cell cycle. However, a model, based solely on a specific size checkpoint at G1/S, cannot readily explain why cells with deficient G1/S control mechanisms are still able to maintain a very stable cell size distribution. Furthermore, such a model would not easily account for stochastic variation in cell size during the subsequent phases of the cell cycle, which cannot be anticipated at G1/S. To address such questions, we applied computationally enhanced quantitative phase microscopy (ceQPM) to populations of cultured human cell lines, which enables highly accurate measurement of cell dry mass of individual cells throughout the cell cycle. From these measurements, we have evaluated the factors that contribute to maintaining cell mass homeostasis at any point in the cell cycle. Our findings reveal that cell mass homeostasis is accurately maintained, despite disruptions to the normal G1/S machinery or perturbations in the rate of cell growth. Control of cell mass is generally not confined to regulation of the G1 length. Instead mass homeostasis is imposed throughout the cell cycle. In the cell lines examined, we find that the coefficient of variation (CV) in dry mass of cells in the population begins to decline well before the G1/S transition and continues to decline throughout S and G2 phases. Among the different cell types tested, the detailed response of cell growth rate to cell mass differs. However, in general, when it falls below that for exponential growth, the natural increase in the CV of cell mass is effectively constrained. We find that both mass-dependent cell cycle regulation and mass-dependent growth rate modulation contribute to reducing cell mass variation within the population. Through the interplay and coordination of these 2 processes, accurate cell mass homeostasis emerges. Such findings reveal previously unappreciated and very general principles of cell size control in proliferating cells. These same regulatory processes might also be operative in terminally differentiated cells. Further quantitative dynamical studies should lead to a better understanding of the underlying molecular mechanisms of cell size control.

摘要

为了在多代中实现稳定的大小分布,增殖细胞需要一种对抗生长速率、细胞周期各阶段所花费时间以及细胞分裂平面定位不精确的随机噪声的方法。在最广泛接受的模型中,细胞大小被认为是在 G1/S 转换时进行调节的,使得小于临界大小的细胞在 G1 期结束时暂停,直到它们积累到预定大小的阈值,此时细胞通过细胞周期的其余部分。然而,仅基于 G1/S 特定大小检查点的模型不能轻易解释为什么缺乏 G1/S 控制机制的细胞仍然能够维持非常稳定的细胞大小分布。此外,这样的模型不容易解释在细胞周期的后续阶段中细胞大小的随机变化,而这种变化在 G1/S 时是无法预料的。为了解决这些问题,我们将计算增强型定量相位显微镜(ceQPM)应用于培养的人类细胞系群体中,该方法能够在整个细胞周期中对单个细胞的干质量进行高度精确的测量。通过这些测量,我们评估了在细胞周期的任何一点维持细胞质量平衡的因素。我们的发现表明,尽管 G1/S 机制受到干扰或细胞生长速度发生波动,细胞质量平衡仍能被准确维持。细胞质量的控制通常不限于 G1 长度的调节。相反,质量平衡是贯穿整个细胞周期施加的。在所检查的细胞系中,我们发现细胞群体中细胞干质量的变异系数(CV)在 G1/S 转换之前就开始下降,并在 S 和 G2 期继续下降。在测试的不同细胞类型中,细胞生长速率对细胞质量的详细响应有所不同。然而,一般来说,当它低于指数生长的速度时,细胞质量的 CV 自然增加就会受到有效限制。我们发现,细胞周期的质量依赖性调节和生长速率的质量依赖性调节都有助于减少群体中细胞质量的变化。通过这两个过程的相互作用和协调,就会出现准确的细胞质量平衡。这些发现揭示了增殖细胞中以前未被认识到的、非常普遍的细胞大小控制原理。这些相同的调节过程也可能在终末分化细胞中起作用。进一步的定量动力学研究应该会导致对细胞大小控制的潜在分子机制的更好理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec0a/10769027/7ff83ce31552/pbio.3002453.g001.jpg

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