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结构相似配体与组蛋白去乙酰化酶8结合的热力学为该酶高效且具有同工酶选择性抑制剂的合理设计面临的挑战提供了线索。

Thermodynamics of binding of structurally similar ligands to histone deacetylase 8 sheds light on challenges in the rational design of potent and isozyme-selective inhibitors of the enzyme.

作者信息

Singh Raushan K, Suzuki Takayoshi, Mandal Tanmay, Balsubramanian Narayanaganesh, Haldar Manas, Mueller Dustin J, Strode Jerrod A, Cook Gregory, Mallik Sanku, Srivastava D K

机构信息

Department of Chemistry and Biochemistry, North Dakota State University , Fargo, North Dakota 58102, United States.

出版信息

Biochemistry. 2014 Dec 9;53(48):7445-58. doi: 10.1021/bi500711x. Epub 2014 Nov 26.

Abstract

Among the different histone deacetylase (HDAC) isozymes, HDAC8 is the most highly malleable enzyme, and it exhibits the potential to accommodate structurally diverse ligands (albeit with moderate binding affinities) in its active site pocket. To probe the molecular basis of this feature, we performed detailed thermodynamic studies of the binding of structurally similar ligands, which differed with respect to the "cap", "linker", and "metal-binding" regions of the suberoylanilide hydroxamic acid (SAHA) pharmacophore, to HDAC8. The experimental data revealed that although the enthalpic (ΔH°) and entropic (ΔS°) changes for the binding of individual SAHA analogues to HDAC8 were substantially different, their binding free energies (ΔG°) were markedly similar, conforming to a strong enthalpy-entropy compensation effect. This effect was further observed in the temperature-dependent thermodynamics of binding of all SAHA analogues to the enzyme. Notably, in contrast to other metalloenzymes, our isothermal titration calorimetry experiments (performed in different buffers of varying ionization enthalpies) suggest that depending on the ligand, its zinc-binding group may or may not be deprotonated upon the binding to HDAC8. Furthermore, the heat capacity changes (ΔCp°) associated with the ligand binding to HDAC8 markedly differed from one SAHA analogue to the other, and such features could primarily be rationalized in light of the dynamic flexibility in the enzyme structure in conjunction with the reorganization of the active site resident water molecules. Arguments are presented that although the binding thermodynamic features described above would facilitate identification of weak to moderately tight-binding HDAC8 inhibitors (by a high-throughput and/or virtual screening of libraries of small molecules), they would pose major challenges for the structure-based rational design of highly potent and isozyme-selective inhibitors of human HDAC8.

摘要

在不同的组蛋白去乙酰化酶(HDAC)同工酶中,HDAC8是可塑性最强的酶,它在其活性位点口袋中表现出容纳结构多样配体(尽管结合亲和力适中)的潜力。为了探究这一特性的分子基础,我们对结构相似的配体与HDAC8的结合进行了详细的热力学研究,这些配体在辛二酰苯胺异羟肟酸(SAHA)药效基团的“帽”、“连接子”和“金属结合”区域存在差异。实验数据表明,尽管各个SAHA类似物与HDAC8结合时的焓变(ΔH°)和熵变(ΔS°)有很大不同,但其结合自由能(ΔG°)却显著相似,符合强烈的焓 - 熵补偿效应。在所有SAHA类似物与该酶结合的温度依赖性热力学中进一步观察到了这种效应。值得注意的是,与其他金属酶不同,我们的等温滴定量热法实验(在不同电离焓的缓冲液中进行)表明,取决于配体,其锌结合基团在与HDAC8结合时可能会或不会去质子化。此外,与配体结合到HDAC8相关的热容变化(ΔCp°)在不同的SAHA类似物之间明显不同,这些特征主要可以根据酶结构的动态灵活性以及活性位点驻留水分子的重新排列来解释。有观点认为,尽管上述结合热力学特征将有助于(通过对小分子库进行高通量和/或虚拟筛选)鉴定弱至中等紧密结合的HDAC8抑制剂,但它们将给基于结构的合理设计高效且同工酶选择性的人HDAC8抑制剂带来重大挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd28/4263425/bd729a15e55f/bi-2014-00711x_0008.jpg

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