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UHRF1 TTD-PHD双结构域中的负协同性掩盖了三甲基赖氨酸与TTD芳香笼之间阳离子-π相互作用的贡献。

Negative Cooperativity in the UHRF1 TTD-PHD Dual Domain Masks the Contributions of Cation-π Interactions between Trimethyllysine and the TTD Aromatic Cage.

作者信息

Travis Christopher R, Wilkinson Jake R, Dumais Ryan G, Henriksen Hanne C, Treacy Joseph W, Schomburg Noah K, Houk K N, Waters Marcey L

机构信息

Department of Chemistry, University of North Carolina at Chapel Hill, CB 3290, Chapel Hill, North Carolina, 27599, USA.

Department of Chemistry and Biochemistry, University of California at Los Angeles, Los Angeles, California, 90095-1569, USA.

出版信息

Chemistry. 2025 May 19;31(28):e202500848. doi: 10.1002/chem.202500848. Epub 2025 Apr 27.

Abstract

UHRF1 is a promising epigenetic target in oncology, but inhibitor development has proven challenging due to the interplay between its tandem Tudor domain (TTD) and plant homeodomain (PHD). The TTD binds trimethyllysine (Kme3) at position 9 while the PHD binds Arg at position 2 on histone 3. Herein, we report how the PHD influences TTD recognition of the histone 3 tail containing Kme3 (H3K9me3) versus its neutral isostere, tert-butyl norleucine (tBuNle). Our findings show that the dual domain binds both peptides equally, supporting tBuNle's potential for inhibitor development. However, unexpectedly, the binding mechanism of H3K9me3 differs between the single and dual domains. In the TTD alone, Kme3 is bound in the aromatic cage via electrostatically tunable cation-π interactions, but in the dual domain, Kme3 binding is independent of electrostatics in the aromatic cage-an unprecedented observation. Computational studies suggest cation-π interactions should contribute in both cases. The contrasting experimental and computational results point to an unusual example of negative chelate cooperativity: interactions between the histone and PHD mask the mechanism of TTD recognition of K9me3. This work underscores the complexity of histone post-translational modification (PTM) readout in multi-domain proteins and demonstrates the first example of a masked cation-π interaction.

摘要

UHRF1是肿瘤学中一个很有前景的表观遗传靶点,但由于其串联 Tudor 结构域(TTD)和植物同源结构域(PHD)之间的相互作用,抑制剂的开发已被证明具有挑战性。TTD 结合组蛋白 3 上第 9 位的三甲基赖氨酸(Kme3),而 PHD 结合组蛋白 3 上第 2 位的精氨酸。在此,我们报告了 PHD 如何影响 TTD 对含有 Kme3 的组蛋白 3 尾巴(H3K9me3)与其中性等排体叔丁基正亮氨酸(tBuNle)的识别。我们的研究结果表明,双结构域对两种肽的结合能力相同,这支持了 tBuNle 在抑制剂开发方面的潜力。然而,出乎意料的是,H3K9me3 在单结构域和双结构域中的结合机制有所不同。仅在 TTD 中,Kme3 通过静电可调的阳离子-π相互作用结合在芳香笼中,但在双结构域中,Kme3 的结合与芳香笼中的静电作用无关——这是一个前所未有的观察结果。计算研究表明,阳离子-π相互作用在两种情况下都应起作用。实验结果与计算结果的对比指向了一个负螯合协同作用的不寻常例子:组蛋白与 PHD 之间的相互作用掩盖了 TTD 对 K9me3 的识别机制。这项工作强调了多结构域蛋白中组蛋白翻译后修饰(PTM)读出的复杂性,并证明了掩盖阳离子-π相互作用的首个例子。

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