工程增强了白蜡地杆菌腈水合酶的热稳定性

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2022-01-01 DOI:10.1016/j.crstbi.2022.07.002
Jennifer C. Van Wyk , B. Trevor Sewell , Michael J. Danson , Tsepo L. Tsekoa , Muhammed F. Sayed , Don A. Cowan
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引用次数: 0

摘要

腈水合酶(nase)是将腈酶转化为工业上重要的酰胺(如丙烯酰胺和烟酰胺)的重要生物催化剂。虽然这类酶的热稳定性普遍较低,但人们对其合理设计酶的基础还没有足够的了解。对表达co型nase的温和嗜热菌苍白地杆菌RAPc8 (NRRL B-59396)基因进行随机诱变。选择了4个比野生型nase耐热性高3 ~ 15倍的突变体,在63℃时热失活的活化能提高了3.4 ~ 7.6 kJ/mol。获得了野生型和4个突变型酶的高分辨率x射线晶体结构(1.15-1.80 Å)。突变体9E,分辨率为1.15 Å,是迄今为止获得的最高分辨率的腈水合酶晶体结构。野生型和突变型酶的结构比较说明了盐桥和氢键对增强nase热稳定性的重要性。这些额外的相互作用通过增加亚基内部和亚基之间的相互作用来改善热稳定性,防止α-螺旋的协同展开和稳定环区。一些氢键是通过水分子介导的,特别强调了结构水分子在蛋白质热稳定性中的重要性。尽管对突变结构的了解使其行为合理化成为可能,但要提前预测这些突变是否会趋于稳定仍是一项挑战。
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Engineering enhanced thermostability into the Geobacillus pallidus nitrile hydratase

Nitrile hydratases (NHases) are important biocatalysts for the enzymatic conversion of nitriles to industrially-important amides such as acrylamide and nicotinamide. Although thermostability in this enzyme class is generally low, there is not sufficient understanding of its basis for rational enzyme design. The gene expressing the Co-type NHase from the moderate thermophile, Geobacillus pallidus RAPc8 (NRRL B-59396), was subjected to random mutagenesis. Four mutants were selected that were 3 to 15-fold more thermostable than the wild-type NHase, resulting in a 3.4–7.6 ​kJ/mol increase in the activation energy of thermal inactivation at 63 ​°C. High resolution X-ray crystal structures (1.15–1.80 ​Å) were obtained of the wild-type and four mutant enzymes. Mutant 9E, with a resolution of 1.15 ​Å, is the highest resolution crystal structure obtained for a nitrile hydratase to date. Structural comparisons between the wild-type and mutant enzymes illustrated the importance of salt bridges and hydrogen bonds in enhancing NHase thermostability. These additional interactions variously improved thermostability by increased intra- and inter-subunit interactions, preventing cooperative unfolding of α-helices and stabilising loop regions. Some hydrogen bonds were mediated via a water molecule, specifically highlighting the significance of structured water molecules in protein thermostability. Although knowledge of the mutant structures makes it possible to rationalize their behaviour, it would have been challenging to predict in advance that these mutants would be stabilising.

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CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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