Bacterial Biocatalysts: Molecular Biology, Three-Dimensional Structures, and Biotechnological Applications of Lipases
Бактериальные биокатализаторы: молекулярная биология, трехмерные структуры и биотехнологическое применение липаз
1999-10-01
SCID: 54.1/dnbbkn6k
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Sec-dependent secretionalpha/beta hydrolase foldbacterial lipasescatalytic triaddirected evolution
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Abstract (AI)
Bacteria produce and secrete lipases, which can catalyze both the hydrolysis and the synthesis of long-chain acylglycerols. These reactions usually proceed with high regioselectivity and enantioselectivity, and, therefore, lipases have become very important stereoselective biocatalysts used in organic chemistry. High-level production of these biocatalysts requires the understanding of the mechanisms underlying gene expression, folding, and secretion. Transcription of lipase genes may be regulated by quorum sensing and two-component systems; secretion can proceed either via the Sec-dependent general secretory pathway or via ABC transporters. In addition, some lipases need folding catalysts such as the lipase-specific foldases and disulfide-bond-forming proteins to achieve a secretion-competent conformation. Three-dimensional structures of bacterial lipases were solved to understand the catalytic mechanism of lipase reactions. Structural characteristics include an alpha/beta hydrolase fold, a catalytic triad consisting of a nucleophilic serine located in a highly conserved Gly-X-Ser-X-Gly pentapeptide, and an aspartate or glutamate residue that is hydrogen bonded to a histidine. Four substrate binding pockets were identified for triglycerides: an oxyanion hole and three pockets accommodating the fatty acids bound at position sn-1, sn-2, and sn-3. The differences in size and the hydrophilicity/hydrophobicity of these pockets determine the enantiopreference of a lipase. The understanding of structure-function relationships will enable researchers to tailor new lipases for biotechnological applications. At the same time, directed evolution in combination with appropriate screening systems will be used extensively as a novel approach to develop lipases with high stability and enantioselectivity.
Key Findings
1
Bacterial lipases catalyze both hydrolysis and synthesis of long-chain acylglycerols with high regioselectivity and enantioselectivity.
2
Bacterial lipases possess an alpha/beta hydrolase fold and a conserved catalytic triad featuring serine in a Gly-X-Ser-X-Gly motif, an acidic residue, and histidine.
3
Four substrate-binding pockets, including an oxyanion hole and three fatty-acid pockets, determine substrate recognition and enantiopreference through differences in size and hydrophobicity.
4
Lipase production depends on coordinated regulation of gene expression, protein folding, and secretion through Sec-dependent pathways or ABC transporters.
5
Some bacterial lipases require lipase-specific foldases and disulfide-bond-forming proteins to attain secretion-competent conformations.
6
Structural understanding combined with directed evolution and suitable screening systems can support engineering lipases with improved stability and enantioselectivity.
Research Object
Bacterial lipases and their production, secretion, folding, and three-dimensional structures
Research Subject
The molecular mechanisms, structure–function relationships, catalytic specificity, and biotechnological engineering of bacterial lipases
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1999-10-01
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