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A Ras-induced conformational switch in the Ras activator Son of sevenless

机译:Ras活化剂Son of Sevenless中Ras诱导的构象转换

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The Ras-specific guanine nucleotide-exchange factors Son of sevenless (Sos) and Ras guanine nucleotide-releasing factor 1 (RasGRF1) transduce extracellular stimuli into Ras activation by catalyzing the exchange of Ras-bound GDP for GTP. A truncated form of RasGRF1 containing only the core catalytic Cdc25 domain is sufficient for stimulating Ras nucleotide exchange, whereas the isolated Cdc25 domain of Sos is inactive. At a site distal to the catalytic site, nucleotide-bound Ras binds to Sos, making contacts with the Cdc25 domain and with a Ras exchanger motif (Rem) domain. This allosteric Ras binding stimulates nucleotide exchange by Sos, but the mechanism by which this stimulation occurs has not been defined. We present a crystal structure of the Rem and Cdc25 domains of Sos determined at 2.0-A resolution in the absence of Ras. Differences between this structure and that of Sos bound to two Ras molecules show that allosteric activation of Sos by Ras occurs through a rotation of the Rem domain that is coupled to a rotation of a helical hairpin at the Sos catalytic site. This motion relieves steric occlusion of the catalytic site, allowing substrate Ras binding and nucleotide exchange. A structure of the isolated RasGRF1 Cdc25 domain determined at 2.2-angstrom resolution, combined with computational analyses, suggests that the Cdc25 domain of RasGRF1 is able to maintain an active conformation in isolation because the helical hairpin has strengthened interactions with the Cdc25 domain core. These results indicate that RasGRF1 lacks the allosteric activation switch that is crucial for Sos activity.
机译:Ras特异性鸟嘌呤核苷酸交换因子Son ofless(Sos)和Ras鸟嘌呤核苷酸释放因子1(RasGRF1)通过催化与Ras结合的GDP交换GTP,将细胞外刺激转化为Ras激活。仅包含核心催化Cdc25域的截短形式的RasGRF1足以刺激Ras核苷酸交换,而Sos的分离的Cdc25域则没有活性。在远离催化位点的位点,核苷酸结合的Ras与Sos结合,与Cdc25域和Ras交换子基序(Rem)域接触。这种变构Ras结合可通过Sos刺激核苷酸交换,但尚未确定这种刺激发生的机理。我们提出了在没有Ras的情况下以2.0-A分辨率确定的Sos的Rem和Cdc25域的晶体结构。这种结构与结合到两个Ras分子上的Sos的结构之间的差异表明,Ras的变构活化是通过Rem结构域的旋转发生的,而Rem结构域的旋转与Sos催化位点的螺旋发夹的旋转耦合。该运动减轻了催化位点的空间阻塞,从而允许底物Ras结合和核苷酸交换。分离的RasGRF1 Cdc25结构域的结构在2.2埃分辨率下确定,结合计算分析表明,RasGRF1的Cdc25结构域能够孤立地维持活性构象,因为螺旋发夹增强了与Cdc25结构域核心的相互作用。这些结果表明RasGRF1缺乏对Sos活性至关重要的变构激活开关。

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