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Biology subjects

Surbhi, S.

Publications and source records attributed to Surbhi, S..

2 recordsLinked to original sources

A starvation-triggered AAA+ ATPase halts chromosome replication progression by disassembling the bacterial DNA sliding clamp

Living cells should coordinate vital events such as DNA replication with the availability of nutrients. For example, when cells encounter starvation, to maintain genomic integrity they should harbour robust mechanisms to stop DNA replication. Mechanisms regulating the progression of DNA replication when bacterial cells encounter starvation remain largely unclear. Herein, we identify the role of IncA -a AAA+ ATPase homologous to the prokaryotic RarA and eukaryotic WRNIP1/Mgs1- in inhibiting the progression of chromosome replication in nutrient-starved stationary phase cells of Caulobacter crescentus. We show that the starvation-induced alarmone (p)ppGpp ensures the confinement of IncA production to the stationary phase cells. At the mechanistic level, IncA directly interacts with the {beta}-sliding clamp protein DnaN and disassembles DnaN from the replisome, thereby stalling the progression of DNA replication. Furthermore, we reveal the requirement of IncAs ATPase activity for disassembling DnaN. Remarkably, we demonstrate that the IncA homolog from E. coli is capable of inhibiting DNA replication in Caulobacter. We propose that IncA homologs serve a stress-dependent role in inhibiting DNA replication across diverse domains of life.

microbiology↗

In vivo AGO-APP identifies a module of microRNAs cooperatively controlling exit from neural stem cell state

MicroRNAs (miRNAs) are essential regulators of all developmental processes. Their function is particularly important during neurogenesis, when the production of large numbers of neurons from a limited number of neural stem cells depends on the precise control of determination, proliferation and differentiation. However, miRNA regulation of target mRNAs is highly promiscuous, one miRNA can target many mRNAs and vice versa, raising the question of how specificity is achieved to elicit a precise regulatory response. Here we introduce AGO-APP, a novel approach to purify Argonaute-bound miRNAs directly from cells and tissues in vivo, to isolate actively inhibiting miRNAs from different neural cell populations in the larval Drosophila central nervous system. We identify a defined group of miRNAs that redundantly target all iconic genes known to control the transition from neuroblasts to neurons. In vivo functional studies demonstrate that knockdown of individual miRNAs does not induce detectable cellular phenotypes. However, simultaneous knockdown of multiple miRNAs leads to precocious stem cell differentiation, demonstrating functional interdependence. Thus, miRNAs cooperate within a regulatory module to specify the targeted gene network.

developmental biology↗