Department of Medicinal Chemistry, College of Pharmacy, and The Henry Eyring Center for Theoretical Chemistry, University of Utah, Salt Lake City, UT 84112-5820, USA.
Proc Natl Acad Sci U S A. 2012 Jul 31;109(31):12509-14. doi: 10.1073/pnas.1207892109. Epub 2012 Jul 16.
The complex of lysine-specific demethylase-1 (LSD1/KDM1A) with its corepressor protein CoREST is an exceptionally relevant target for epigenetic drugs. Here, we provide insight into the local and global changes of LSD1/CoREST conformational dynamics that occur upon H3 binding on the basis of a total cumulative time of one microsecond molecular dynamics simulation. The LSD1/CoREST complex functions as an allosteric nanoscale-binding clamp, which is regulated by substrate binding. In the unbound state, LSD1/CoREST reversibly visits clamp states that are more open or significantly more closed compared with the available X-ray crystal structures. The Lys triad of residues Lys355, Lys357, and Lys359 gates the entrance of the H3 pocket. H3 binding shifts the pocket breathing dynamics toward open, higher-volume states while reducing the overall flexibility of the LSD1/CoREST nanoscale clamp. We show that the H3 pocket is an allosteric site for the regulation of the rotation of the amino oxidase domain with respect to the Tower domain. The allosteric mechanism relies on the specific reduction of nanoscale domain rotation upon local H3-tail binding. Instead, clamp opening/closing motions that do not involve domain rotation only reduce in amplitude yet are dominant in the bound state. Overall, our data suggest that the H3 binding pocket is a central target site to (i) switch off LSD1 amino oxidase activity, thus H3-tail demethylation; (ii) block the competitive binding of transcription factors; and (iii) prevent chromatin anchoring to LSD1/CoREST. This study underscores the importance of receptor flexibility for future epigenetic drug discovery.
赖氨酸特异性去甲基酶 1(LSD1/KDM1A)与其核心抑制蛋白 CoREST 的复合物是表观遗传药物的一个非常重要的靶点。在这里,我们根据总共 1 微秒的分子动力学模拟的累积时间,深入了解了 LSD1/CoREST 构象动力学的局部和全局变化,这些变化是在 H3 结合的基础上发生的。LSD1/CoREST 复合物作为一种变构纳米级结合夹,受底物结合调节。在未结合状态下,LSD1/CoREST 可逆地访问比现有 X 射线晶体结构更开放或明显更封闭的夹合状态。Lys 三联体残基 Lys355、Lys357 和 Lys359 控制 H3 口袋的入口。H3 结合将口袋呼吸动力学推向开放、高体积状态,同时降低 LSD1/CoREST 纳米级夹的整体灵活性。我们表明,H3 口袋是调节相对于塔域的氨基酸氧化酶域旋转的变构位点。变构机制依赖于局部 H3 尾部结合时纳米级域旋转的特异性降低。相反,不涉及域旋转的夹合打开/关闭运动仅降低幅度,但在结合状态下占主导地位。总体而言,我们的数据表明,H3 结合口袋是(i)关闭 LSD1 氨基酸氧化酶活性,从而使 H3 尾部去甲基化的中心靶标位点;(ii)阻止转录因子的竞争结合;和(iii)防止染色质锚定到 LSD1/CoREST。这项研究强调了受体灵活性对于未来表观遗传药物发现的重要性。