Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA 02138, USA.
Proc Natl Acad Sci U S A. 2010 May 4;107(18):8486-91. doi: 10.1073/pnas.1002499107. Epub 2010 Apr 19.
A model system for investigating how developmental regulatory networks determine cell fate is spore formation in Bacillus subtilis. The master regulator for sporulation is Spo0A, which is activated by phosphorylation via a phosphorelay that is subject to three positive feedback loops. The ultimate decision to sporulate is, however, stochastic in that only a portion of the population sporulates even under optimal conditions. It was previously assumed that activation of Spo0A and hence entry into sporulation is subject to a bistable switch mediated by one or more feedback loops. Here we reinvestigate the basis for bimodality in sporulation. We show that none of the feedback loops is rate limiting for the synthesis and phosphorylation of Spo0A. Instead, the loops ensure a just-in-time supply of relay components for rising levels of phosphorylated Spo0A, with phosphate flux through the relay being limiting for Spo0A activation and sporulation. In addition, genes under Spo0A control did not exhibit a bimodal pattern of expression as expected for a bistable switch. In contrast, we observed a highly heterogeneous pattern of Spo0A activation that increased in a nonlinear manner with time. We present a computational model for the nonlinear increase and propose that the phosphorelay is a noise generator and that only cells that attain a threshold level of phosphorylated Spo0A sporulate.
研究发育调控网络如何决定细胞命运的模型系统是枯草芽孢杆菌的孢子形成。孢子形成的主要调节剂是 Spo0A,它通过磷酸化作用被激活,磷酸化作用通过磷酸传递系统进行,该系统受三个正反馈环的控制。然而,孢子形成的最终决定是随机的,即使在最佳条件下,只有一部分种群会进行孢子形成。以前认为,Spo0A 的激活,因此进入孢子形成是由一个或多个反馈环介导的双稳态开关所控制的。在这里,我们重新研究了孢子形成中双峰性的基础。我们表明,在 Spo0A 的合成和磷酸化过程中,没有一个反馈环是限速的。相反,这些环确保了及时供应中继组件,以满足磷酸化 Spo0A 水平的上升,磷酸化通过中继的通量对于 Spo0A 的激活和孢子形成是有限制的。此外,受 Spo0A 控制的基因没有表现出双峰表达模式,这与双稳态开关所预期的不一致。相反,我们观察到 Spo0A 激活的高度异质模式,随着时间的推移以非线性方式增加。我们提出了一个用于非线性增加的计算模型,并提出磷酸传递系统是一个噪声发生器,只有达到一定水平的磷酸化 Spo0A 的细胞才会进行孢子形成。