An insight into the thermostability of a pair of xylanases: the role of hydrogen bonds
| Contribuinte(s) |
UNIVERSIDADE DE SÃO PAULO |
|---|---|
| Data(s) |
19/10/2012
19/10/2012
2009
|
| Resumo |
Xylanases are enzymes that are very tolerant to temperature. Their potential use in several biotechnological applications, such as animal food manufacture and pulp bleaching, is due to their intrinsic thermostability. The present report deals with two xylanases, the mesophilic xylanase from Bacillus circulans, BCX, and the thermophilic xylanase from Thermomyces lanuginosus,TLX. These enzymes belong to family 11, and they are the most structurally similar mesophilic-thermophilic pair. Molecular dynamics simulations were employed to investigate the factors responsible for the different thermostabilities exhibited by these structurally similar enzymes. Their active site is their most rigid region, and it is equally rigid at all temperatures. Inter and intramolecular interactions, hydrogen bonds in particular, are the key to the main differences between BCX and TLX. The intramolecular hydrogen bonds and salt bridges are important for maintenance of the backbone rigidity even at high temperature, and the highly solvated surface is a clear optimization in TLX compared with BCX. The main differences between these two enzymes can be found on the fingers domain, which indicates that this domain must be the target for the site-directed mutagenesis responsible for improving the temperature tolerance of this family of enzymes. CNPq Conselho Nacional de Desenvolvimento Cientifico e Tecnologico FAPESP Fundacao de Amparo a Pesquisa do Estado de Sao Paulo |
| Identificador |
MOLECULAR PHYSICS, v.107, n.1, p.59-69, 2009 0026-8976 http://producao.usp.br/handle/BDPI/20720 10.1080/00268970902717959 |
| Idioma(s) |
eng |
| Publicador |
TAYLOR & FRANCIS LTD |
| Relação |
Molecular Physics |
| Direitos |
restrictedAccess Copyright TAYLOR & FRANCIS LTD |
| Palavras-Chave | #thermostability #xylanases #molecular dynamics #structure #activity relationship #hydrogen bonds and structural stability #BACILLUS-CIRCULANS XYLANASE #MOLECULAR-DYNAMICS #THERMOPHILIC XYLANASE #TRICHODERMA-REESEI #STRUCTURAL BASIS #ACTIVE-SITE #STABILITY #SIMULATIONS #PROTEINS #SOLVENTS #Physics, Atomic, Molecular & Chemical |
| Tipo |
article original article publishedVersion |