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Garde, R.

Publications and source records attributed to Garde, R..

4 recordsLinked to original sources

Feedback control of the heat shock response by spatiotemporal regulation of Hsp70

Cells maintain homeostasis via dynamic regulation of stress response pathways. Stress pathways transiently induce response regulons via negative feedback loops, but the extent to which individual genes provide feedback has not been comprehensively measured for any pathway. Here, we disrupted induction of each gene in the Saccharomyces cerevisiae heat shock response (HSR) and quantified cell growth and HSR dynamics following heat shock. The screen revealed a core feedback loop governing expression of the chaperone Hsp70 reinforced by an auxiliary feedback loop controlling Hsp70 subcellular localization. Mathematical modeling and live imaging demonstrated that multiple HSR targets converge to promote Hsp70 nuclear localization via its release from cytosolic condensates. Following ethanol stress, a distinct set of factors similarly converged on Hsp70, suggesting that nonredundant subsets of the HSR regulon confer feedback under different conditions. Flexible spatiotemporal feedback loops may broadly organize stress response regulons and expand their adaptive capacity.

cell biology↗

Adaptive preservation of orphan ribosomal proteins in chaperone-stirred condensates

Ribosome biogenesis is among the most resource-intensive cellular processes, with ribosomal proteins accounting for up to half of all newly synthesized proteins in eukaryotic cells. During stress, cells shut down ribosome biogenesis in part by halting rRNA synthesis, potentially leading to massive accumulation of aggregation-prone "orphan" ribosomal proteins (oRPs). Here we show that during heat shock in yeast and human cells, oRPs accumulate as reversible condensates at the nucleolar periphery recognized by the Hsp70 co-chaperone Sis1/DnaJB6. oRP condensates are liquid-like in cell-free lysate but solidify upon depletion of Sis1 or inhibition of Hsp70. When cells recover from heat shock, oRP condensates disperse in a Sis1-dependent manner, and their ribosomal protein constituents are incorporated into functional ribosomes in the cytosol, enabling cells to efficiently resume growth. One sentence summaryDuring stress, molecular chaperones preserve "orphan" ribosomal proteins (RPs) - RPs that are not bound to rRNA - in liquid-like condensates, maintaining the RPs in a usable form and enabling cells to efficiently resume growth upon recovery from stress.

cell biology↗

Induction of Sis1 promotes fitness but not feedback in the heat shock response

Previously, we combined modeling and experiments to demonstrate that the heat shock response (HSR) functions as a negative feedback loop in which undefined chaperone clients activate the HSR by sequestering Hsp70, and subsequent induction of Hsp70 deactivates the response (Zheng et al., 2016; Krakowiak et al., 2018). Here, we formally define newly synthesized proteins (NSPs) as a major class of HSR activators and determine the role of Sis1, a co-chaperone of Hsp70, in HSR regulation. We develop and experimentally validate a new mathematical model that incorporates NSPs and Sis1. Unexpectedly, genetic decoupling and pulse-labeling experiments reveal that Sis1 induction promotes fitness during prolonged stress rather than providing negative feedback to the HSR. These results support an overall model in which NSPs signal the HSR by sequestering Sis1 and Hsp70, while induction of Hsp70 - but not Sis1 - attenuates the response.

cell biology↗

Differential equation based minimal model describing metabolic oscillations in Bacillus subtilis biofilms

Biofilms offer an excellent example of ecological interaction among bacteria. Temporal and spatial oscillations in biofilms are an emerging topic. In this paper we describe the metabolic oscillations in Bacillus subtilis biofilms by applying the smallest theoretical chemical reaction system showing Hopf bifurcation proposed by Wilhelm and Heinrich in 1995. The system involves three differential equations and a single bilinear term. We perform computer simulations and a detailed analysis of the system including bifurcation analysis and quasi-steady-state approximation. We also discuss the feedback structure of the system and the correspondence of the simulations to biological observations. We also specifically select parameters that are more suitable for the biological scenario of biofilm oscillations. Our theoretical work suggests potential scenarios about the oscillatory behaviour of biofilms and also serves as an application of a previously described chemical oscillator to a biological system.

systems biology↗