The catalytic mechanism and unique low pH optimum of Caldicellulosiruptor bescii family 3 pectate lyase.

Markus Alahuhta, Larry E Taylor, Roman Brunecky, Deanne W Sammond, William Michener, Michael W W Adams, Michael E Himmel, Yannick J Bomble, Vladimir Lunin
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引用次数: 11

Abstract

The unique active site of the Caldicellulosiruptor bescii family 3 pectate lyase (PL3) enzyme has been thoroughly characterized using a series of point mutations, X-ray crystallography, pK(a) calculations and biochemical assays. The X-ray structures of seven PL3 active-site mutants, five of them in complex with intact trigalacturonic acid, were solved and characterized structurally, biochemically and computationally. The results confirmed that Lys108 is the catalytic base, but there is no clear candidate for the catalytic acid. However, the reaction mechanism can also be explained by an antiperiplanar trans-elimination reaction, in which Lys108 abstracts a proton from the C5 atom without the help of simultaneous proton donation by an acidic residue. An acidified water molecule completes the anti β-elimination reaction by protonating the O4 atom of the substrate. Both the C5 hydrogen and C4 hydroxyl groups of the substrate must be orientated in axial configurations, as for galacturonic acid, for this to be possible. The wild-type C. bescii PL3 displays a pH optimum that is lower than that of Bacillus subtilis PL1 according to activity measurements, indicating that C. bescii PL3 has acquired a lower pH optimum by utilizing lysine instead of arginine as the catalytic base, as well as by lowering the pK(a) of the catalytic base in a unique active-site environment.

Abstract Image

Abstract Image

贝氏钙纤维素裂解酶家族3果胶裂解酶的催化机理及独特的低pH条件。
利用一系列的点突变、x射线晶体学、pK(a)计算和生化分析,对Caldicellulosiruptor bescii家族3果胶裂解酶(PL3)酶的独特活性位点进行了彻底的表征。对7个PL3活性位点突变体(其中5个与完整的三半乳糖醛酸复合物)的x射线结构进行了解析和结构、生化和计算表征。结果证实Lys108是催化碱,但没有明确的候选催化酸。然而,反应机理也可以用反周面反式消除反应来解释,在这个反应中,Lys108从C5原子中提取了一个质子,而没有酸性残留物同时提供质子。酸化水分子通过使底物的O4原子质子化来完成抗β消除反应。底物的C5氢和C4羟基都必须以轴向构型定向,就像半乳糖醛酸一样,这样才有可能。根据活性测定,野生型贝氏芽孢杆菌PL3的pH最优值低于枯草芽孢杆菌PL1,说明贝氏芽孢杆菌PL3在独特的活性位点环境下,利用赖氨酸而不是精氨酸作为催化碱,降低了催化碱的pK(a),从而获得了更低的pH最优值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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