Abstract
The small heat shock proteins (sHSPs) recently have been reported to have molecular chaperone activity in vitro; however, the mechanism of this activity is poorly defined. We found that HSP18.1, a dodecameric sHSP from pea, prevented the aggregation of malate dehydrogenase (MDH) and glyceraldehyde-3-phosphate dehydrogenase heated to 45 degrees C. Under conditions in which HSP18.1 prevented aggregation of substrates, size-exclusion chromatography and electron microscopy revealed that denatured substrates coated the HSP18.1 dodecamers to form expanded complexes. SDS-PAGE of isolated complexes demonstrated that each HSP18.1 dodecamer can bind the equivalent of 12 MDH monomers, indicating that HSP18.1 has a large capacity for non-native substrates compared with other known molecular chaperones. Photoincorporation of the hydrophobic probe 1,1'-bi(4-anilino)naphthalene-5,5'-disulfonic acid (bis-ANS) into a conserved C-terminal region of HSP18.1 increased reversibly with increasing temperature, but was blocked by prior binding of MDH, suggesting that bis-ANS incorporates proximal to substrate binding regions and that substrate-HSP18.1 interactions are hydrophobic. We also show that heat-denatured firefly luciferase bound to HSP18.1, in contrast to heat-aggregated luciferase, can be reactivated in the presence of rabbit reticulocyte or wheat germ extracts in an ATP-dependent process. These data support a model in which sHSPs prevent protein aggregation and facilitate substrate refolding in conjunction with other molecular chaperones.
MeSH Terms
Amino Acid Sequence
Anilino Naphthalenesulfonates
Animals
Chromatography, Gel
Citrate (si)-Synthase/metabolism
Electrophoresis, Polyacrylamide Gel
Fluorescent Dyes/metabolism
Glyceraldehyde-3-Phosphate Dehydrogenases/metabolism
Heat-Shock Proteins/chemistry,metabolism
Immunoglobulin G/metabolism
Luciferases/metabolism
Malate Dehydrogenase/metabolism
Microscopy, Electron
Molecular Sequence Data
Molecular Weight
Peas/metabolism
Peptide Fragments/chemistry
Plant Proteins/chemistry,metabolism
Protein Conformation
Protein Denaturation
Protein Folding
Scattering, Radiation
Sequence Analysis
Temperature
Chemicals
Anilino Naphthalenesulfonates
Fluorescent Dyes
Heat-Shock Proteins
Immunoglobulin G
Peptide Fragments
Plant Proteins
5,5'-bis(8-(phenylamino)-1-naphthalenesulfonate)
Malate Dehydrogenase
Luciferases
Glyceraldehyde-3-Phosphate Dehydrogenases
Citrate (si)-Synthase
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Lee G J
Department of Biochemistry, The University of Arizona, Tucson 85721-0106, USA.
Roseman A M
Saibil H R
Vierling E
References (25)
25 references, click to expand
-
Expression of Drosophila's 27 kDa heat shock protein into rodent cells confers thermal resistance.
Biochem Biophys Res Commun. 1992 May 29;185(1):116-20
PMID: 1599446
-
Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
Nature. 1970 Aug 15;227(5259):680-5
PMID: 5432063
-
Structure and in vitro molecular chaperone activity of cytosolic small heat shock proteins from pea.
J Biol Chem. 1995 May 5;270(18):10432-8
PMID: 7737977
-
Residues in chaperonin GroEL required for polypeptide binding and release.
Nature. 1994 Oct 13;371(6498):614-9
PMID: 7935796
-
The heat-shock proteins.
Annu Rev Genet. 1988;22:631-77
PMID: 2853609
-
The chaperone activity of bovine alpha crystallin. Interaction with other lens crystallins in native and denatured states.
J Biol Chem. 1994 May 6;269(18):13601-8
PMID: 7909809
-
Tricine-sodium dodecyl sulfate-polyacrylamide gel electrophoresis for the separation of proteins in the range from 1 to 100 kDa.
Anal Biochem. 1987 Nov 1;166(2):368-79
PMID: 2449095
-
ATP-dependent chaperoning activity of reticulocyte lysate.
J Biol Chem. 1994 Apr 1;269(13):9493-9
PMID: 8144534
-
Small heat shock proteins are molecular chaperones.
J Biol Chem. 1993 Jan 25;268(3):1517-20
PMID: 8093612
-
Alpha-crystallin, a molecular chaperone, forms a stable complex with carbonic anhydrase upon heat denaturation.
Biochem Biophys Res Commun. 1993 Feb 15;190(3):786-93
PMID: 8094957
-
Acquisition of Thermotolerance in Soybean Seedlings : Synthesis and Accumulation of Heat Shock Proteins and their Cellular Localization.
Plant Physiol. 1984 Jan;74(1):152-60
PMID: 16663370
-
Alpha-crystallin can function as a molecular chaperone.
Proc Natl Acad Sci U S A. 1992 Nov 1;89(21):10449-53
PMID: 1438232
-
Characterization and Physiological Function of Class I Low-Molecular-Mass, Heat-Shock Protein Complex in Soybean.
Plant Physiol. 1995 Jun;108(2):693-701
PMID: 12228501
-
Structural and functional similarities of bovine alpha-crystallin and mouse small heat-shock protein. A family of chaperones.
J Biol Chem. 1993 Jan 15;268(2):1046-52
PMID: 8093449
-
Induction of Chinese hamster HSP27 gene expression in mouse cells confers resistance to heat shock. HSP27 stabilization of the microfilament organization.
J Biol Chem. 1993 Feb 15;268(5):3420-9
PMID: 8429018
-
Molecular chaperones and protein folding in plants.
Plant Mol Biol. 1996 Oct;32(1-2):191-222
PMID: 8980480
-
Temperature dependent chaperone-like activity of alpha-crystallin.
FEBS Lett. 1995 May 29;365(2-3):133-6
PMID: 7781765
-
Modulation of cellular thermoresistance and actin filament stability accompanies phosphorylation-induced changes in the oligomeric structure of heat shock protein 27.
Mol Cell Biol. 1995 Jan;15(1):505-16
PMID: 7799959
-
Expression of a Conserved Family of Cytoplasmic Low Molecular Weight Heat Shock Proteins during Heat Stress and Recovery.
Plant Physiol. 1991 Aug;96(4):1038-47
PMID: 16668295
-
Disruption of the gene for hsp30, an alpha-crystallin-related heat shock protein of Neurospora crassa, causes defects in thermotolerance.
Proc Natl Acad Sci U S A. 1995 May 23;92(11):5032-6
PMID: 7761443
-
The molecular evolution of the small heat-shock proteins in plants.
Genetics. 1995 Oct;141(2):785-95
PMID: 8647410
-
DnaK, DnaJ and GrpE form a cellular chaperone machinery capable of repairing heat-induced protein damage.
EMBO J. 1993 Nov;12(11):4137-44
PMID: 7900997
-
The crystal structure of the bacterial chaperonin GroEL at 2.8 A.
Nature. 1994 Oct 13;371(6498):578-86
PMID: 7935790
-
The function of heat-shock proteins in stress tolerance: degradation and reactivation of damaged proteins.
Annu Rev Genet. 1993;27:437-96
PMID: 8122909
-
Folding of firefly luciferase during translation in a cell-free system.
EMBO J. 1994 Aug 1;13(15):3631-7
PMID: 8062837