Biochemistry-Electrochemistry Research Group and School of Chemistry, Institute of Science, Suranaree University of Technology , Nakhon Ratchasima 30000, Thailand.
School of Biomolecular and Biomedical Science, University College Dublin , Belfield, Dublin 4, Ireland.
J Chem Inf Model. 2017 Mar 27;57(3):572-583. doi: 10.1021/acs.jcim.6b00536. Epub 2017 Mar 8.
GH-18 chitinases are chitinolytic enzymes, primarily responsible for the recycling of insoluble chitin biomaterials. These enzymes contain three invariant acidic active-site residues within a DXDXE motif, which play a synergistic role in the catalytic cycle of chitin degradation. We employed a pK calculation approach to approximate the protonation states of residues D1, D2, and E in the DXDXE motif of 75 GH-18 chitinases. Theoretical pH-activity profiles of these enzymes were subsequently constructed and compared with the experimentally determined pH-activity profiles. Theoretical pK data indicate that in the majority of chitinases the D1 side-chain is in the "up" and the E side-chain in the "down" position, while the position of the D2 side-chain is versatile and depends on the state of the enzyme. The pK values in 75 GH-18 chitinases were predicted to be <0 for D1, 8-13 for D2, and 6-9 for E, indicating that the D1-D2 pair holds exactly one net negative charge. On the other hand, the catalytic acid E is protonated over the active pH-range, agreeing with the pH-activity curves reported previously for most chitinases. The results obtained from this study help to elucidate the mechanistic details of the concerted participation of D1, D2, and E in the catalytic cycle of chitin hydrolysis by GH-18 chitinases.
GH-18 几丁质酶是几丁质水解酶,主要负责不溶性几丁质生物材料的回收。这些酶在 DXDXE 基序中含有三个不变的酸性活性位点残基,在几丁质降解的催化循环中发挥协同作用。我们采用 pK 计算方法来近似 75 种 GH-18 几丁质酶中 DXDXE 基序中残基 D1、D2 和 E 的质子化状态。随后构建了这些酶的理论 pH-活性曲线,并与实验测定的 pH-活性曲线进行了比较。理论 pK 值数据表明,在大多数几丁质酶中,D1 侧链处于“向上”位置,E 侧链处于“向下”位置,而 D2 侧链的位置则是多种多样的,取决于酶的状态。预测 75 种 GH-18 几丁质酶中的 D1 值小于 0,D2 值为 8-13,E 值为 6-9,这表明 D1-D2 对恰好带有一个净负电荷。另一方面,催化酸 E 在活性 pH 范围内质子化,这与之前报道的大多数几丁质酶的 pH-活性曲线一致。这项研究的结果有助于阐明 GH-18 几丁质酶中 D1、D2 和 E 协同参与几丁质水解催化循环的机制细节。