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捕获自动抑制的 PDK1 揭示了接头的调节作用,为创新抑制剂的设计提供了信息。

Capturing Autoinhibited PDK1 Reveals the Linker's Regulatory Role, Informing Innovative Inhibitor Design.

机构信息

Computational Structural Biology Section, Frederick National Laboratory for Cancer Research in the Cancer Innovation Laboratory, National Cancer Institute, Frederick, Maryland 21702, United States.

Department of Human Molecular Genetics and Biochemistry, Sackler School of Medicine, Tel Aviv University, Tel Aviv 69978, Israel.

出版信息

J Chem Inf Model. 2024 Oct 14;64(19):7709-7724. doi: 10.1021/acs.jcim.4c01392. Epub 2024 Sep 30.

Abstract

PDK1 is crucial for PI3K/AKT/mTOR and Ras/MAPK cancer signaling. It phosphorylates AKT in a PIP-dependent but S6K, SGK, and RSK kinases in a PIP-independent manner. Unlike its substrates, its autoinhibited monomeric state has been unclear, likely due to its low population time, and phosphorylation in the absence of PIP has been puzzling too. Here, guided by experimental data, we constructed models and performed all-atom molecular dynamics simulations. In the autoinhibited PDK1 conformation that resembles autoinhibited AKT, binding of the linker between the kinase and PH domains to the PIF-binding pocket promotes the formation of the Glu-Lys salt bridge and weakens the association of the kinase domain with the PH domain, shifting the population from the autoinhibited state to states accessible to the membrane and its kinase substrates. The interaction of the substrates' hydrophobic motif and the PDK1 PIF-binding pocket facilitates the release of the autoinhibition even in . Phosphorylation of the serine-rich motif within the linker further attenuates the association of the PH domain with the kinase domain. These suggest that while the monomeric autoinhibited state is relatively stable, it can readily shift to its active, catalysis-prone state to phosphorylate its diverse substrates. Our findings reveal the PDK1 activation mechanism and discover the regulatory role of PDK1's linker, which lead to two innovative linker-based inhibitor strategies: (i) locking the autoinhibited PDK1 through optimization of the interactions of AKT inhibitors with the PH domain of PDK1 and (ii) analogs (small molecules or peptidomimetics) that mimic the linker interactions with the PIF-binding pocket.

摘要

PDK1 对于 PI3K/AKT/mTOR 和 Ras/MAPK 癌症信号通路至关重要。它以 PIP 依赖性方式磷酸化 AKT,但以 PIP 非依赖性方式磷酸化 S6K、SGK 和 RSK 激酶。与它的底物不同,其自身抑制的单体状态尚不清楚,这可能是由于其低种群时间,以及在没有 PIP 的情况下的磷酸化也令人困惑。在这里,我们根据实验数据构建了模型并进行了全原子分子动力学模拟。在类似于自身抑制 AKT 的 PDK1 构象中,激酶和 PH 结构域之间的连接子与 PIF 结合口袋的结合促进了 Glu-Lys 盐桥的形成,并削弱了激酶结构域与 PH 结构域的结合,从而使种群从自身抑制状态转变为可与膜及其激酶底物相互作用的状态。底物的疏水基序与 PDK1 PIF 结合口袋的相互作用有助于即使在. 情况下释放自身抑制。连接子中富含丝氨酸的基序的磷酸化进一步削弱了 PH 结构域与激酶结构域的结合。这些表明,虽然单体自身抑制状态相对稳定,但它可以很容易地转变为其活跃的、易于催化的状态,以磷酸化其多样化的底物。我们的研究结果揭示了 PDK1 的激活机制,并发现了 PDK1 连接子的调节作用,这导致了两种创新的基于连接子的抑制剂策略:(i)通过优化 AKT 抑制剂与 PDK1 PH 结构域的相互作用来锁定自身抑制的 PDK1,(ii)模拟连接子与 PIF 结合口袋相互作用的类似物(小分子或肽模拟物)。

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