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6Y0S

X-ray structure of Lactobacillus brevis alcohol dehydrogenase mutant T102E

これはPDB形式変換不可エントリーです。
6Y0S の概要
エントリーDOI10.2210/pdb6y0s/pdb
関連するPDBエントリー6h07 6h1m 6hlf
分子名称R-specific alcohol dehydrogenase, MAGNESIUM ION (3 entities in total)
機能のキーワードnucleotide binding oxidoreductase activity, oxidoreductase
由来する生物種Lactobacillus brevis
タンパク質・核酸の鎖数2
化学式量合計56023.51
構造登録者
Hermann, J.,Bischoff, D.,Janowski, R.,Niessing, D.,Grob, P.,Hekmat, D.,Weuster-Botz, D. (登録日: 2020-02-10, 公開日: 2020-02-19, 最終更新日: 2024-01-24)
主引用文献Grob, P.,Huber, M.,Walla, B.,Hermann, J.,Janowski, R.,Niessing, D.,Hekmat, D.,Weuster-Botz, D.
Crystal Contact Engineering Enables Efficient Capture and Purification of an Oxidoreductase by Technical Crystallization.
Biotechnol J, 15:e2000010-e2000010, 2020
Cited by
PubMed Abstract: Technical crystallization is an attractive method to purify recombinant proteins. However, it is rarely applied due to the limited crystallizability of many proteins. To overcome this limitation, single amino acid exchanges are rationally introduced to enhance intermolecular interactions at the crystal contacts of the industrially relevant biocatalyst Lactobacillus brevis alcohol dehydrogenase (LbADH). The wildtype (WT) and the best crystallizing and enzymatically active LbADH mutants K32A, D54F, Q126H, and T102E are produced with Escherichia coli and subsequently crystallized from cell lysate in stirred mL-crystallizers. Notwithstanding the high host cell protein (HCP) concentrations in the lysate, all mutants crystallize significantly faster than the WT. Combinations of mutations result in double mutants with faster crystallization kinetics than the respective single mutants, demonstrating a synergetic effect. The almost entire depletion of the soluble LbADH fraction at crystallization equilibrium is observed, proving high yields. The HCP concentration is reduced to below 0.5% after crystal dissolution and recrystallization, and thus a 100-fold HCP reduction is achieved after two successive crystallization steps. The combination of fast kinetics, high yields, and high target protein purity highlights the potential of crystal contact engineering to transform technical crystallization into an efficient protein capture and purification step in biotechnological downstream processes.
PubMed: 32302461
DOI: 10.1002/biot.202000010
主引用文献が同じPDBエントリー
実験手法
X-RAY DIFFRACTION (1.44 Å)
構造検証レポート
Validation report summary of 6y0s
検証レポート(詳細版)ダウンロードをダウンロード

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件を2025-04-30に公開中

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