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Secondary structure and thermostability of the phage P22 tailspike. XX. Analysis by Raman spectroscopy of the wild-type protein and a temperature-sensitive folding mutant.

作者信息

Sargent D, Benevides J M, Yu M H, King J, Thomas G J

机构信息

Division of Cell Biology and Biophysics, School of Basic Life Sciences, University of Missouri-Kansas City 64110.

出版信息

J Mol Biol. 1988 Feb 5;199(3):491-502. doi: 10.1016/0022-2836(88)90620-1.

DOI:10.1016/0022-2836(88)90620-1
PMID:2965250
Abstract

The thermostable tailspike endorhamnosidase of bacteriophage P22 has been investigated by laser Raman spectroscopy to determine the protein's secondary structure and the basis of its thermostability. The conformation of the native tailspike, determined by Raman amide I and amide III band analyses, is 52 to 61% beta-sheet, 24 to 27% alpha-helix, 15 to 21% beta-turn and 0 to 10% other structure types. The secondary structure of the wild-type tailspike, as monitored by the conformation-sensitive Raman amide bands, was stable to 80 degrees C, denatured reversibly between 80 and 90 degrees C, and irreversibly above 90 degrees C. The purified native form of a temperature-sensitive folding mutant (tsU38) contains secondary structures virtually identical to those in the wild-type in aqueous solution at physiological conditions (0.05 M-Na+ (pH 7.5], at both permissive (20 degrees C) and restrictive (40 degrees C) temperatures. This supports previous results showing that the mutational defect at 40 degrees C affects intermediates in the folding pathway rather than the native structure. At temperatures above 60 degrees C the wild-type and mutant forms were distinguishable: the reversible and irreversible denaturation thresholds were approximately 15 to 20 degrees C lower in the mutant than in the wild-type protein. The irreversible denaturation of the mutant tailspikes led to different aggregation/polymerization products from the wild-type, indicating that the mutation altered the unfolding pathway. In both cases only a small percentage of the native secondary structure was altered by irreversible thermal denaturation, indicating that the aggregated states retain considerable native structure.

摘要

相似文献

1
Secondary structure and thermostability of the phage P22 tailspike. XX. Analysis by Raman spectroscopy of the wild-type protein and a temperature-sensitive folding mutant.
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2
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3
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引用本文的文献

1
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2
C-terminal hydrophobic interactions play a critical role in oligomeric assembly of the P22 tailspike trimer.C 末端疏水相互作用在 P22 尾刺三聚体的寡聚组装中起关键作用。
Protein Sci. 2003 Dec;12(12):2732-47. doi: 10.1110/ps.03150303.
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Nonnative interactions between cysteines direct productive assembly of P22 tailspike protein.
半胱氨酸之间的非天然相互作用指导P22尾刺蛋白的有效组装。
Biophys J. 2003 Nov;85(5):3237-47. doi: 10.1016/S0006-3495(03)74741-9.
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The interdigitated beta-helix domain of the P22 tailspike protein acts as a molecular clamp in trimer stabilization.P22尾刺蛋白的指状β-螺旋结构域在三聚体稳定中起分子钳的作用。
Protein Sci. 2002 Apr;11(4):820-30. doi: 10.1110/ps.3440102.
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Role for cysteine residues in the in vivo folding and assembly of the phage P22 tailspike.半胱氨酸残基在噬菌体P22尾刺蛋白体内折叠和组装中的作用。
Protein Sci. 2001 Feb;10(2):397-410. doi: 10.1110/ps.34701.
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7
Isolation of suppressors of temperature-sensitive folding mutations.
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8
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