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Biology subjects

Fauvet, B.

Publications and source records attributed to Fauvet, B..

2 recordsLinked to original sources

Bacterial Hsp90 mediates the degradation of aggregation-prone Hsp70-Hsp40 substrates preferentially by HslUV proteolysis

Whereas in eukaryotic cells, the Hsp90s are profusely-studied molecular chaperones controlling protein homeostasis together with Hsp70s, in bacteria, the function of Hsp90 (HtpG) and its collaboration with Hsp70 (DnaK) remains unknown. To uncover physiological processes depending on HtpG and DnaK, we performed comparative quantitative proteomic analyses of insoluble and total protein fractions from unstressed wild type E. coli, and from knockout mutants{Delta} dnaKdnaJ ({Delta}KJ),{Delta} htpG ({Delta}G) and{Delta} dnaKdnaJ{Delta}htpG ({Delta}KJG) and compared their growth rates under heat-stress also with{Delta} dnaKdnaJ{Delta}hslV. Whereas, expectedly, mutant {Delta}G showed no proteomic differences with wild-type, {Delta}KJ expressed more chaperones, proteases and ribosomes and dramatically less metabolic and respiratory enzymes. Unexpectedly, we found that {Delta}KJG showed higher levels of metabolic and respiratory enzymes and both {Delta}KJG and{Delta} dnaKdnaJ{Delta}hslV grew better at 37oC than {Delta}KJ. The results indicate that bacterial Hsp90 mediates the degradation of aggregation-prone Hsp70-Hsp40 substrates, preferably by the HslUV protease.\n\nSignificance statementThe molecular chaperones Hsp70 and Hsp90 are among the most abundant and well-conserved proteins in all realms of life, forming together the core of the cellular proteostasis network. In eukaryotes, Hsp90 functions in collaboration with Hsp70; we studied this collaboration in E. coli, combining genetic studies with label-free quantitative proteomics in which both protein abundance and protein solubility were quantified. Bacteria lacking Hsp70 (DnaK) and its co-chaperone DnaJ ({Delta}dnaKdnaJ) grew slower and contained significantly less key metabolic and respiratory enzymes. Unexpectedly, an additional deletion of the Hsp90 (htpG) gene partially restored the WT phenotype. Deletion of the HslV protease in the {Delta}dnaKdnaJ background also improved growth, suggesting that bacterial Hsp90 mediates the degradation of Hsp70 substrates, preferentially through HslV.\n\nAt 37oC{Delta} dnaKdnaJ E. coli mutants grow slower than wild type cells. Quantitative proteomics shows that compared to wild type cells,{Delta} dnaKdnaJ cells grown at 30oC contain significantly less key metabolic and respiratory enzymes. Unexpectedly, deletion of the HtpG gene in the {Delta} dnaKdnaJ background ameliorates growth at 37oC and partially restores the cellular levels of some metabolic and respiratory enzymes.

molecular biology

Molecular chaperones inject energy from ATP hydrolysis into the non-equilibrium stabilisation of native proteins

Protein homeostasis, namely the ensemble of cellular mechanisms collectively controlling the activity, stability and conformational states of proteins, depends on energy-consuming processes. De novo protein synthesis requires ATP hydrolysis for peptide bond formation. Controlled degradation by the chaperone-gated proteases requires ATP hydrolysis to unfold target proteins and render their peptide bonds accessible to hydrolysis. During and following translation, different classes of molecular chaperones require ATP hydrolysis to control the conformational state of proteins, favor their folding into their active conformation and avoid, under stress, their conversion into potentially harmful aggregates. Furthermore, specific ATP-fueled unfolding chaperones can dynamically revert aggregation itself. We used here various biochemical assays and physical modeling to show that both bacterial chaperones GroEL (HSP60) and DnaK (HSP70) can use the energy liberated by ATP hydrolysis to maintain proteins in their active state even under conditions that do not favor, thermodynamically, the native state. The energy from ATP hydrolysis is thus injected by the chaperones in the system and converted into an enhanced, non-equilibrium steady-state stabilization of the native state of their substrates. Upon ATP consumption, the chaperone substrates spontaneously revert to their equilibrium non-native state.

biochemistry