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PMID: 11517217 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Chemical chaperones regulate molecular chaperones in vitro and in cells under combined salt and heat stresses.

The Journal of biological chemistry ·Vol. 276 ·No. 43 ·2001-10-26 ·Pages 39586-91

Diamant S, Eliahu N, Rosenthal D, Goloubinoff P

Abstract

Salt and heat stresses, which are often combined in nature, induce complementing defense mechanisms. Organisms adapt to high external salinity by accumulating small organic compounds known as osmolytes, which equilibrate cellular osmotic pressure. Osmolytes can also act as "chemical chaperones" by increasing the stability of native proteins and assisting refolding of unfolded polypeptides. Adaptation to heat stress depends on the expression of heat-shock proteins, many of which are molecular chaperones, that prevent protein aggregation, disassemble protein aggregates, and assist protein refolding. We show here that Escherichia coli cells preadapted to high salinity contain increased levels of glycine betaine that prevent protein aggregation under thermal stress. After heat shock, the aggregated proteins, which escaped protection, were disaggregated in salt-adapted cells as efficiently as in low salt. Here we address the effects of four common osmolytes on chaperone activity in vitro. Systematic dose responses of glycine betaine, glycerol, proline, and trehalose revealed a regulatory effect on the folding activities of individual and combinations of chaperones GroEL, DnaK, and ClpB. With the exception of trehalose, low physiological concentrations of proline, glycerol, and especially glycine betaine activated the molecular chaperones, likely by assisting local folding in chaperone-bound polypeptides and stabilizing the native end product of the reaction. High osmolyte concentrations, especially trehalose, strongly inhibited DnaK-dependent chaperone networks, such as DnaK+GroEL and DnaK+ClpB, likely because high viscosity affects dynamic interactions between chaperones and folding substrates and stabilizes protein aggregates. Thus, during combined salt and heat stresses, cells can specifically control protein stability and chaperone-mediated disaggregation and refolding by modulating the intracellular levels of different osmolytes.

MeSH Terms
Adaptation, Biological/physiology Bacterial Proteins/metabolism Betaine/pharmacology Chaperonin 60/metabolism Escherichia coli/physiology Escherichia coli Proteins Glycerol/pharmacology HSP40 Heat-Shock Proteins HSP70 Heat-Shock Proteins/metabolism Heat-Shock Proteins/metabolism Hot Temperature Malate Dehydrogenase/metabolism Molecular Chaperones/metabolism Osmotic Pressure Proline/pharmacology Protein Denaturation/drug effects Protein Folding Salts Trehalose/pharmacology Urea/pharmacology Viscosity
Chemicals
Bacterial Proteins Chaperonin 60 Escherichia coli Proteins GrpE protein, Bacteria GrpE protein, E coli HSP40 Heat-Shock Proteins HSP70 Heat-Shock Proteins Heat-Shock Proteins Molecular Chaperones Salts Betaine Urea Proline Trehalose Malate Dehydrogenase dnaK protein, E coli Glycerol
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Diamant S
Department of Plant Sciences, Institute of Life Sciences, The Hebrew University of Jerusalem, 91904 Jerusalem, Israel.
Eliahu N
Rosenthal D
Goloubinoff P
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2001-10-26
Epub
2001-00-21
Pages
39586-91
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
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