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高效细胞类型配比的要求:调控时间尺度、随机性和侧向抑制。

Requirements for efficient cell-type proportioning: regulatory timescales, stochasticity and lateral inhibition.

作者信息

Pfeuty B, Kaneko K

机构信息

Université de Lille, CNRS, Laboratoire de Physique des Lasers, Atomes, et Molécules, F-59000, Lille, France.

出版信息

Phys Biol. 2016 May 11;13(2):026007. doi: 10.1088/1478-3975/13/2/026007.

Abstract

The proper functioning of multicellular organisms requires the robust establishment of precise proportions between distinct cell types. This developmental differentiation process typically involves intracellular regulatory and stochastic mechanisms to generate cell-fate diversity as well as intercellular signaling mechanisms to coordinate cell-fate decisions at tissue level. We thus surmise that key insights about the developmental regulation of cell-type proportion can be captured by the modeling study of clustering dynamics in population of inhibitory-coupled noisy bistable systems. This general class of dynamical system is shown to exhibit a very stable two-cluster state, but also metastability, collective oscillations or noise-induced state hopping, which can prevent from timely and reliably reaching a robust and well-proportioned clustered state. To circumvent these obstacles or to avoid fine-tuning, we highlight a general strategy based on dual-time positive feedback loops, such as mediated through transcriptional versus epigenetic mechanisms, which improves proportion regulation by coordinating early and flexible lineage priming with late and firm commitment. This result sheds new light on the respective and cooperative roles of multiple regulatory feedback, stochasticity and lateral inhibition in developmental dynamics.

摘要

多细胞生物的正常运作需要在不同细胞类型之间稳健地建立精确的比例。这种发育分化过程通常涉及细胞内调节和随机机制以产生细胞命运多样性,以及细胞间信号传导机制以在组织水平协调细胞命运决定。因此,我们推测,关于细胞类型比例发育调控的关键见解可以通过对抑制耦合噪声双稳系统群体中的聚类动力学进行建模研究来获得。这类一般的动力系统显示出非常稳定的双聚类状态,但也存在亚稳定性、集体振荡或噪声诱导的状态跳跃,这可能会阻止及时且可靠地达到稳健且比例恰当的聚类状态。为了规避这些障碍或避免微调,我们强调一种基于双时正反馈回路的通用策略,例如通过转录与表观遗传机制介导的策略,该策略通过协调早期灵活的谱系启动与晚期坚定的分化来改善比例调节。这一结果为发育动力学中多种调节反馈、随机性和侧向抑制的各自及协同作用提供了新的视角。

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