Shaffer Joy M, Jiou Jenny, Tripathi Kiran, Olaluwoye Oladimeji S, Fung Ho Yee Joyce, Chook Yuh Min, D'Arcy Sheena
Department of Chemistry and Biochemistry, The University of Texas at Dallas, Richardson, United States, 75080.
Department of Pharmacology, University of Texas Southwestern Medical Center, Dallas, United States, 75390.
bioRxiv. 2023 Jan 28:2023.01.27.525896. doi: 10.1101/2023.01.27.525896.
Padavannil et al. 2019 show that Importin-9 (Imp9) transports Histones H2A-H2B from the cytoplasm to the nucleus using a non-canonical mechanism whereby binding of a GTP-bound Ran GTPase (RanGTP) fails to evict the H2A-H2B cargo. Instead, a stable complex forms, comprised of equimolar RanGTP, Imp9, and H2A-H2B. Unlike the binary Imp9•H2A-H2B complex, this RanGTP•Imp9•H2A-H2B ternary complex can release H2A-H2B to an assembling nucleosome. Here, we define the molecular basis for this RanGTP-activated nucleosome assembly by Imp9. We use hydrogen-deuterium exchange coupled with mass spectrometry and compare the dynamics and interfaces of the RanGTP•Imp9•H2A-H2B ternary complex to those in the Imp9•H2A-H2B or Imp9•RanGTP binary complexes. Our data are consistent with the Imp9•H2A-H2B structure by Padavannil et al. 2019 showing that Imp9 HEAT repeats 4-5 and 18-19 contact H2A-H2B, as well as many homologous importin•RanGTP structures showing that importin HEAT repeats 1 and 3, and the h8 loop, contact RanGTP. We show that Imp9 stabilizes H2A-H2B beyond the direct binding site, similar to other histone chaperones. Importantly, we reveal that binding of RanGTP releases H2A-H2B interaction at Imp9 HEAT repeats 4-5, but not 18-19. This exposes DNA- and histone-binding surfaces of H2A-H2B, thereby facilitating nucleosome assembly. We also reveal that RanGTP has a weaker affinity for Imp9 when H2A-H2B is bound. This may ensure that H2A-H2B is only released in high RanGTP concentrations near chromatin. We delineate the molecular link between the nuclear import of H2A-H2B and its deposition into chromatin by Imp9.
Imp9 is the primary importin for shuttling H2A-H2B from the cytoplasm to the nucleus. It employs an unusual mechanism where the binding of RanGTP alone is insufficient to release H2A-H2B. The resulting stable RanGTP•Imp9•H2A-H2B complex gains nucleosome assembly activity as H2A-H2B can be deposited onto an assembling nucleosome. We show that H2A-H2B is allosterically stabilized via interactions with both N- and C-terminal portions of Imp9, reinforcing its chaperone-like behavior. RanGTP binding causes H2A-H2B release from the N-terminal portion of Imp9 only. The newly-exposed H2A-H2B surfaces can interact with DNA or H3-H4 in nucleosome assembly. Imp9 thus plays a multi-faceted role in histone import, storage, and deposition regulated by RanGTP, controlling histone supply in the nucleus and to chromatin.
帕达瓦尼尔等人在2019年表明,输入蛋白9(Imp9)通过一种非经典机制将组蛋白H2A - H2B从细胞质转运到细胞核,在这种机制中,结合了GTP的Ran GTP酶(RanGTP)的结合无法驱逐H2A - H2B货物。相反,会形成一个稳定的复合物,由等摩尔的RanGTP、Imp9和H2A - H2B组成。与二元Imp9•H2A - H2B复合物不同,这种RanGTP•Imp9•H2A - H2B三元复合物可以将H2A - H2B释放到正在组装的核小体上。在这里,我们确定了Imp9介导的这种RanGTP激活的核小体组装的分子基础。我们使用氢 - 氘交换结合质谱法,并将RanGTP•Imp9•H2A - H2B三元复合物的动力学和界面与Imp9•H2A - H2B或Imp9•RanGTP二元复合物的进行比较。我们的数据与帕达瓦尼尔等人在2019年报道的Imp9•H2A - H2B结构一致,该结构表明Imp9的HEAT重复序列4 - 5和18 - 19与H2A - H2B接触,以及许多同源输入蛋白•RanGTP结构表明输入蛋白的HEAT重复序列1和3以及h8环与RanGTP接触。我们表明,Imp9在直接结合位点之外稳定H2A - H2B,类似于其他组蛋白伴侣。重要的是,我们揭示RanGTP的结合会释放Imp9的HEAT重复序列4 - 5处的H2A - H2B相互作用,但不会释放18 - 19处的。这暴露了H2A - H2B的DNA和组蛋白结合表面,从而促进核小体组装。我们还揭示当H2A - H2B结合时,RanGTP对Imp9的亲和力较弱。这可能确保H2A - H2B仅在染色质附近的高RanGTP浓度下释放。我们描绘了H2A - H2B的核输入与其通过Imp9沉积到染色质之间的分子联系。
Imp9是将H2A - H2B从细胞质穿梭到细胞核的主要输入蛋白。它采用一种不寻常的机制,仅RanGTP的结合不足以释放H2A - H2B。由此产生的稳定RanGTP•Imp9•H2A - H2B复合物获得了核小体组装活性,因为H2A - H2B可以沉积到正在组装的核小体上。我们表明,H2A - H2B通过与Imp9的N端和C端部分相互作用而被变构稳定,增强了其类似伴侣的行为。RanGTP结合仅导致H2A - H2B从Imp9的N端部分释放。新暴露的H2A - H2B表面可以在核小体组装中与DNA或H3 - H4相互作用。因此,Imp9在由RanGTP调节的组蛋白输入、储存和沉积中发挥多方面作用,控制细胞核和染色质中的组蛋白供应。