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The brace helices of MLKL mediate interdomain communication and oligomerisation to regulate cell death by necroptosis

机译:MLKL的括号螺旋介导域间通讯和寡聚化以调节坏死性细胞死亡

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摘要

The programmed cell death pathway, necroptosis, relies on the pseudokinase, Mixed Lineage Kinase domain-Like (MLKL), for cellular execution downstream of death receptor or Toll-like receptor ligation. Receptor-interacting protein kinase-3 (RIPK3)-mediated phosphorylation of MLKL’s pseudokinase domain leads to MLKL switching from an inert to activated state, where exposure of the N-terminal four-helix bundle (4HB) ‘executioner’ domain leads to cell death. The precise molecular details of MLKL activation, including the stoichiometry of oligomer assemblies, mechanisms of membrane translocation and permeabilisation, remain a matter of debate. Here, we dissect the function of the two ‘brace’ helices that connect the 4HB to the pseudokinase domain of MLKL. In addition to establishing that the integrity of the second brace helix is crucial for the assembly of mouse MLKL homotrimers and cell death, we implicate the brace helices as a device to communicate pseudokinase domain phosphorylation event(s) to the N-terminal executioner 4HB domain. Using mouse:human MLKL chimeras, we defined the first brace helix and adjacent loop as key elements of the molecular switch mechanism that relay pseudokinase domain phosphorylation to the activation of the 4HB domain killing activity. In addition, our chimera data revealed the importance of the pseudokinase domain in conferring host specificity on MLKL killing function, where fusion of the mouse pseudokinase domain converted the human 4HB + brace from inactive to a constitutive killer of mouse fibroblasts. These findings illustrate that the brace helices play an active role in MLKL regulation, rather than simply acting as a tether between the 4HB and pseudokinase domains.
机译:程序化的细胞死亡途径坏死性坏死依赖于假激酶,即混合谱系激酶结构域类似物(MLKL),用于死亡受体或Toll样受体连接下游的细胞执行。受体相互作用蛋白激酶3(RIPK3)介导的MLKL假激酶结构域的磷酸化导致MLKL从惰性转变为激活状态,其中N末端四螺旋束(4HB)“执行子”结构域的暴露导致细胞死亡。 MLKL活化的确切分子细节,包括低聚物组装的化学计量,膜易位和通透性机制,仍是一个有争议的问题。在这里,我们剖析了将4HB连接到MLKL的假激酶结构域的两个“括号”螺旋的功能。除了确定第二大括号螺旋的完整性对于小鼠MLKL同源三聚体的组装和细胞死亡至关重要外,我们还暗示了大括号螺旋是将伪激酶结构域磷酸化事件传达给N末端执行者4HB结构域的一种装置。使用mouse:human MLKL嵌合体,我们将第一个大括号螺旋和相邻环定义为将伪激酶结构域磷酸化传递至4HB域杀伤活性的激活的分子开关机制的关键元素。此外,我们的嵌合体数据揭示了假激酶结构域在赋予宿主MLKL杀伤功能特异性方面的重要性,其中小鼠假激酶结构域的融合将人类4HB ++支架从无活性转变为小鼠成纤维细胞的组成性杀伤剂。这些发现表明,括号螺旋在MLKL调节中起着积极的作用,而不是简单地充当4HB和假激酶结构域之间的系链。

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