Heat shock proteins functioning as molecular chaperones: their roles in normal and stressed cells
- 29 March 1993
- journal article
- review article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 339 (1289) , 327-333
- https://doi.org/10.1098/rstb.1993.0031
Abstract
In response to either elevated temperatures or several other metabolic insults, cells from all organisms respond by increasing the expression of so-called heat shock proteins (hsp or stress proteins). In general, the stress response appears to represent a universal cellular defence mechanism. The increased expression and accumulation of the stress proteins provides the cell with an added degree of protection. Studies over the past few years have revealed a role for some of the stress proteins as being intimately involved in protein maturation. Members of the hsp 70 family, distributed throughout various intracellular compartments, interact transiently with other proteins undergoing synthesis, translocation, or higher ordered assembly. Although not yet proven, it has been suggested that members of the hsp 70 family function to slow down or retard the premature folding of proteins in the course of synthesis and translocation. Yet another family of stress proteins, the hsp 60 or GroEL proteins (chaperonins), appear to function as catalysts of protein folding. Here I discuss the role of those stress proteins functioning as molecular chaperones, both within the normal cell and in the cell subjected to metabolic stress.Keywords
This publication has 31 references indexed in Scilit:
- Secondary structure of the mammalian 70-kilodalton heat shock cognate protein analyzed by circular dichroism spectroscopy and secondary structure predictionBiochemistry, 1990
- Three-dimensional structure of the ATPase fragment of a 70K heat-shock cognate proteinNature, 1990
- Renaturation of denatured λ repressor requires heat shock proteinsCell, 1990
- Assembly of influenza hemagglutinin trimers and its role in intracellular transport.The Journal of cell biology, 1986
- Expression of wild-type and mutant forms of influenza hemagglutinin: The role of folding in intracellular transportCell, 1986
- Speculations on the functions of the major heat shock and glucose-regulated proteinsCell, 1986
- Posttranslational association of immunoglobulin heavy chain binding protein with nascent heavy chains in nonsecreting and secreting hybridomas.The Journal of cell biology, 1986
- Amino acid analogs while inducing heat shock proteins sensitize CHO cells to thermal damageJournal of Cellular Physiology, 1985
- Cultured animal cells exposed to amino acid analogues or puromycin rapidly synthesize several polypeptidesJournal of Cellular Physiology, 1980
- Principles that Govern the Folding of Protein ChainsScience, 1973