Water Migration through Enzyme Tunnels Is Sensitive to the Choice of Explicit Water Model.

IF 5.6 2区 化学 Q1 CHEMISTRY, MEDICINAL Journal of Chemical Information and Modeling Pub Date : 2024-12-16 DOI:10.1021/acs.jcim.4c01177
Aravind Selvaram Thirunavukarasu, Katarzyna Szleper, Gamze Tanriver, Igor Marchlewski, Karolina Mitusinska, Artur Gora, Jan Brezovsky
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Abstract

The utilization of tunnels and water transport within enzymes is crucial for their catalytic function as water molecules can stabilize bound substrates and help with unbinding processes of products and inhibitors. Since the choice of water models for molecular dynamics simulations was shown to determine the accuracy of various calculated properties of the bulk solvent and solvated proteins, we have investigated if and to what extent water transport through the enzyme tunnels depends on the selection of the water model. Here, we focused on simulating enzymes with various well-defined tunnel geometries. In a systematic investigation using haloalkane dehalogenase as a model system, we focused on the well-established TIP3P, OPC, and TIP4P-Ew water models to explore their impact on the use of tunnels for water molecule transport. The TIP3P water model showed significantly faster migration, resulting in the transport of approximately 2.5 times more water molecules compared to that of the OPC and 1.7 times greater than that of the TIP4P-Ew. Finally, the transport was 1.4-fold more pronounced in TIP4P-Ew than in OPC. The increase in migration of TIP3P water molecules was mainly due to faster transit times through dehalogenase tunnels. We observed similar behavior in two different enzymes with buried active sites and different tunnel network topologies, i.e., alditol oxidase and cytochrome P450, indicating that our findings are likely not restricted to a particular enzyme family. Overall, this study showcases the critical importance of water models in comprehending the use of enzyme tunnels for small molecule transport. Given the significant role of water availability in various stages of the catalytic cycle and the solvation of substrates, products, and drugs, choosing an appropriate water model may be crucial for accurate simulations of complex enzymatic reactions, rational enzyme design, and predicting drug residence times.

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水在酶隧道中的迁移对显式水模型的选择很敏感
由于水分子可以稳定结合的底物,并有助于产物和抑制剂的解结合过程,因此利用酶内的隧道和水传输对酶的催化功能至关重要。由于用于分子动力学模拟的水模型的选择被证明决定了大体积溶剂和溶解蛋白质的各种计算特性的准确性,我们研究了通过酶隧道的水传输是否以及在多大程度上取决于水模型的选择。在这里,我们重点模拟了具有各种明确隧道几何形状的酶。在以卤代烃脱卤酶为模型系统的系统调查中,我们重点研究了成熟的 TIP3P、OPC 和 TIP4P-Ew 水模型,以探索它们对利用隧道进行水分子运输的影响。TIP3P 水模型的迁移速度明显更快,与 OPC 相比,水分子的迁移量大约增加了 2.5 倍,是 TIP4P-Ew 的 1.7 倍。最后,TIP4P-Ew 的迁移速度是 OPC 的 1.4 倍。TIP3P 水分子迁移的增加主要是由于通过脱卤酶隧道的时间更快。我们在具有埋藏活性位点和不同隧道网络拓扑结构的两种不同酶(即醛糖醇氧化酶和细胞色素 P450)中观察到了类似的行为,这表明我们的发现可能并不局限于特定的酶家族。总之,这项研究展示了水模型在理解利用酶隧道进行小分子运输方面的极端重要性。鉴于水的可用性在催化循环的各个阶段以及底物、产物和药物的溶解过程中起着重要作用,选择合适的水模型对于准确模拟复杂的酶促反应、合理设计酶以及预测药物的停留时间至关重要。
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来源期刊
CiteScore
9.80
自引率
10.70%
发文量
529
审稿时长
1.4 months
期刊介绍: The Journal of Chemical Information and Modeling publishes papers reporting new methodology and/or important applications in the fields of chemical informatics and molecular modeling. Specific topics include the representation and computer-based searching of chemical databases, molecular modeling, computer-aided molecular design of new materials, catalysts, or ligands, development of new computational methods or efficient algorithms for chemical software, and biopharmaceutical chemistry including analyses of biological activity and other issues related to drug discovery. Astute chemists, computer scientists, and information specialists look to this monthly’s insightful research studies, programming innovations, and software reviews to keep current with advances in this integral, multidisciplinary field. As a subscriber you’ll stay abreast of database search systems, use of graph theory in chemical problems, substructure search systems, pattern recognition and clustering, analysis of chemical and physical data, molecular modeling, graphics and natural language interfaces, bibliometric and citation analysis, and synthesis design and reactions databases.
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