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Controlling Depth of Cellular Quiescence by an Rb-E2F Network Switch

机译:通过Rb-E2F网络交换​​机控制细胞休眠的深度

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摘要

Quiescence is a non-proliferative cellular state that is critical to tissue repair and regeneration. Although often described as the G0 phase, quiescence is not a single homogeneous state. As cells remain quiescent for longer durations, they move progressively deeper and display a reduced sensitivity to growth signals. Deep quiescent cells, unlike senescent cells, can still re-enter the cell cycle under physiological conditions. Mechanisms controlling quiescence depth are poorly understood, representing a currently underappreciated layer of complexity in growth control. Here, we show that the activation threshold of a Retinoblastoma (Rb)-E2F network switch controls quiescence depth. Particularly, deeper quiescent cells feature a higher E2F-switching threshold and exhibit a delayed traverse through the restriction point (R-point). We further show that different components of the Rb-E2F network can be experimentally perturbed, following computer model predictions, to coarse-or fine-tune the E2F-switching threshold and drive cells into varying quiescence depths.
机译:静止是一种非增殖性细胞状态,对组织修复和再生至关重要。尽管通常被描述为G0相,但静态不是单一的均质状态。随着细胞在更长的时间内保持静止状态,它们会逐渐向更深处移动,并且对生长信号的敏感性降低。与衰老细胞不同,深层静止细胞在生理条件下仍可以重新进入细胞周期。对静止深度的控制机制了解甚少,代表了生长控制中当前未充分意识到的复杂性层。在这里,我们显示视网膜母细胞瘤(Rb)-E2F网络交换​​机的激活阈值控制静态深度。特别是,较深的静态单元格具有较高的E2F切换阈值,并且在限制点(R点)上显示出延迟的遍历。我们进一步表明,根据计算机模型预测,可以对Rb-E2F网络的不同组件进行实验性扰动,以粗略或微调E2F切换阈值并驱动单元进入不同的静态深度。

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