Regulation of PP1 holoenzyme dynamics by p97-mediated structural remodelling
Regulation of PP1 holoenzyme dynamics by p97-mediated structural remodelling
批准号:
215186895
负责人:
Professor Dr. Hemmo Meyer
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
蛋白磷酸酶-1(PP 1)通过广泛的底物去磷酸化来调节无数的细胞过程,这依赖于PP 1全酶与替代亚基的组装。我们先前表明,新合成的PP 1首先被SDS 22和抑制剂-3(I3)捕获在一个无活性的复合物中,该复合物需要被六聚体AAA-ATP酶p97分解,以使PP 1与各种活化亚基结合。与p97介导的降解过程相反,PP 1被p97分解可以独立于泛素化而发生。我们的新的生化和结构数据现在表明,一类SEP结构域衔接子介导SDS 22-PP 1-I3(SPI)复合物以多价方式加载到p97上。然后SPI复合物被锁定到p97的N-结构域上,与SDS 22亚基直接接触。I3中的内部识别位点随后作为环插入p97的中央通道。将I3穿过通道将I3从PP 1上剥离并拆卸整个复合体。在阐明了p97如何在SPI分解中发挥作用之后,我们现在需要了解SDS 22和I3如何在调节PP 1中合作,以及它们的结合和解离如何控制PP 1全酶对细胞条件(如应激)的适应。具体来说,我们的目标是概括和破译的过渡,从非活性的SPI复合物的特定PP 1全酶在综合应激反应。为此,我们将应用复杂的生化重建,精细的Förster共振能量转移(FRET)测定以及结合细胞验证的晶体学。令人惊讶的是,我们的新数据还发现,最丰富的SEP结构域衔接子p47并不直接靶向PP 1。使用交联方法以及底物捕获和邻近生物素化策略,我们的目的是探索可能的调节作用,泛素为p47介导的靶向PP 1或其他,迄今未知,细胞底物的p97-p47考虑到泛素结合和p97调节活性,是独特的p47。 预期的结果将揭示一个多功能和重要的蛋白磷酸酶是如何调节控制关键的细胞过程和应激反应。
英文摘要
Protein phosphatase-1 (PP1) regulates a myriad of cellular processes by dephosphorylating a broad spectrum of substrates, which relies on assembly of PP1 holoenzymes with alternative subunits. We previously showed that newly synthesized PP1 is first trapped in an inactive complex by SDS22 and inhibitor-3 (I3) that needs to be disassembled by the hexameric AAA-ATPase p97 to allow association of PP1 with various activating subunits. In contrast to p97-mediated degradative processes, PP1 disassembly by p97 can occur independently of ubiquitination. Our new biochemical and structural data now demonstrate that a class of SEP-domain adapters mediates loading of the SDS22-PP1-I3 (SPI) complex onto p97 in a multivalent manner. The SPI complex is then locked onto the N-domain of p97 with direct contacts of the SDS22 subunit. An internal recognition site in I3 is subsequently inserted as a loop into the central channel of p97. Threading of I3 through the channel strips I3 off PP1 and disassembles the whole complex. After clarifying how p97 functions in SPI disassembly, we now need to understand how SDS22 and I3 cooperate in regulating PP1 and how their binding and dissociation may govern PP1 holoenzyme adaptation to cellular conditions such as stress. Specifically, we will aim to recapitulate and decipher the transition from the inactive SPI complex to a specific PP1 holoenzyme during the integrated stress response. To do so, we will apply sophisticated biochemical reconstitution, refined Förster resonance energy transfer (FRET) assays as well as crystallography combined with validation in cells. Surprisingly, our new data also uncovered that the most abundant SEP-domain adapter, p47, does not directly target PP1. Using crosslinking approaches as well as substrate trapping and proximity biotinylation strategies, we aim to explore a possible regulatory role of ubiquitin for p47-mediated targeting of either PP1 or of other, so far unknown, cellular substrates of p97-p47 taking into account ubiquitin binding and p97-modulating activities that are unique to p47. The expected results will reveal how a versatile and important protein phosphatase is regulated to control key cellular processes and stress responses.
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财政年份:--
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负责人:Professor Dr. Hemmo Meyer
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依托单位:
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