The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.

BACKGROUND: Understanding the mechanisms that govern protein stability under poly-extreme conditions continues to be a major challenge. Xylanase (BSX) from Bacillus sp. NG-27, which has a TIM-barrel structure, shows optimum activity at high temperature and alkaline pH, and is resistant to denaturati...

Full description

Bibliographic Details
Main Authors: Amit Bhardwaj, Sadhu Leelavathi, Sudeshna Mazumdar-Leighton, Amit Ghosh, Suryanarayanarao Ramakumar, Vanga S Reddy
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2008-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2516601?pdf=render
id doaj-0cf129e0cd7c45feb0903b7f1a45dab1
record_format Article
spelling doaj-0cf129e0cd7c45feb0903b7f1a45dab12020-11-25T02:20:07ZengPublic Library of Science (PLoS)PLoS ONE1932-62032008-01-0138e306310.1371/journal.pone.0003063The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.Amit BhardwajSadhu LeelavathiSudeshna Mazumdar-LeightonAmit GhoshSuryanarayanarao RamakumarVanga S ReddyBACKGROUND: Understanding the mechanisms that govern protein stability under poly-extreme conditions continues to be a major challenge. Xylanase (BSX) from Bacillus sp. NG-27, which has a TIM-barrel structure, shows optimum activity at high temperature and alkaline pH, and is resistant to denaturation by SDS and degradation by proteinase K. A comparative circular dichroism analysis was performed on native BSX and a recombinant BSX (R-BSX) with just one additional methionine resulting from the start codon. The results of this analysis revealed the role of the partially exposed N-terminus in the unfolding of BSX in response to an increase in temperature. METHODOLOGY: We investigated the poly-extremophilicity of BSX to deduce the structural features responsible for its stability under one set of conditions, in order to gain information about its stability in other extreme conditions. To systematically address the role of the partially exposed N-terminus in BSX stability, a series of mutants was generated in which the first hydrophobic residue, valine (Val1), was either deleted or substituted with various amino acids. Each mutant was subsequently analyzed for its thermal, SDS and proteinase K stability in comparison to native BSX. CONCLUSIONS: A single conversion of Val1 to glycine (Gly) changed R-BSX from being thermo- and alkali- stable and proteinase K and SDS resistant, to being thermolabile and proteinase K-, alkali- and SDS- sensitive. This result provided insight into the structure-function relationships of BSX under poly-extreme conditions. Molecular, biochemical and structural data revealed that the poly-extremophilicity of BSX is governed by a partially exposed N-terminus through hydrophobic interactions. Such hitherto unidentified N-terminal hydrophobic interactions may play a similar role in other proteins, especially those with TIM-barrel structures. The results of the present study are therefore of major significance for protein folding and protein engineering.http://europepmc.org/articles/PMC2516601?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Amit Bhardwaj
Sadhu Leelavathi
Sudeshna Mazumdar-Leighton
Amit Ghosh
Suryanarayanarao Ramakumar
Vanga S Reddy
spellingShingle Amit Bhardwaj
Sadhu Leelavathi
Sudeshna Mazumdar-Leighton
Amit Ghosh
Suryanarayanarao Ramakumar
Vanga S Reddy
The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
PLoS ONE
author_facet Amit Bhardwaj
Sadhu Leelavathi
Sudeshna Mazumdar-Leighton
Amit Ghosh
Suryanarayanarao Ramakumar
Vanga S Reddy
author_sort Amit Bhardwaj
title The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
title_short The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
title_full The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
title_fullStr The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
title_full_unstemmed The critical role of partially exposed N-terminal valine residue in stabilizing GH10 xylanase from Bacillus sp.NG-27 under poly-extreme conditions.
title_sort critical role of partially exposed n-terminal valine residue in stabilizing gh10 xylanase from bacillus sp.ng-27 under poly-extreme conditions.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2008-01-01
description BACKGROUND: Understanding the mechanisms that govern protein stability under poly-extreme conditions continues to be a major challenge. Xylanase (BSX) from Bacillus sp. NG-27, which has a TIM-barrel structure, shows optimum activity at high temperature and alkaline pH, and is resistant to denaturation by SDS and degradation by proteinase K. A comparative circular dichroism analysis was performed on native BSX and a recombinant BSX (R-BSX) with just one additional methionine resulting from the start codon. The results of this analysis revealed the role of the partially exposed N-terminus in the unfolding of BSX in response to an increase in temperature. METHODOLOGY: We investigated the poly-extremophilicity of BSX to deduce the structural features responsible for its stability under one set of conditions, in order to gain information about its stability in other extreme conditions. To systematically address the role of the partially exposed N-terminus in BSX stability, a series of mutants was generated in which the first hydrophobic residue, valine (Val1), was either deleted or substituted with various amino acids. Each mutant was subsequently analyzed for its thermal, SDS and proteinase K stability in comparison to native BSX. CONCLUSIONS: A single conversion of Val1 to glycine (Gly) changed R-BSX from being thermo- and alkali- stable and proteinase K and SDS resistant, to being thermolabile and proteinase K-, alkali- and SDS- sensitive. This result provided insight into the structure-function relationships of BSX under poly-extreme conditions. Molecular, biochemical and structural data revealed that the poly-extremophilicity of BSX is governed by a partially exposed N-terminus through hydrophobic interactions. Such hitherto unidentified N-terminal hydrophobic interactions may play a similar role in other proteins, especially those with TIM-barrel structures. The results of the present study are therefore of major significance for protein folding and protein engineering.
url http://europepmc.org/articles/PMC2516601?pdf=render
work_keys_str_mv AT amitbhardwaj thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT sadhuleelavathi thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT sudeshnamazumdarleighton thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT amitghosh thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT suryanarayanaraoramakumar thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT vangasreddy thecriticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT amitbhardwaj criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT sadhuleelavathi criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT sudeshnamazumdarleighton criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT amitghosh criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT suryanarayanaraoramakumar criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
AT vangasreddy criticalroleofpartiallyexposednterminalvalineresidueinstabilizinggh10xylanasefrombacillusspng27underpolyextremeconditions
_version_ 1724873452080332800