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Coupled Transmembrane Substrate Docking and Helical Unwinding in Intramembrane Proteolysis of Amyloid Precursor Protein

机译:淀粉样蛋白前体蛋白蛋白蛋白分解偶联跨膜衬底对接与螺旋展开

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Intramembrane-cleaving proteases (I-CLiPs) play crucial roles in physiological and pathological processes, such as Alzheimer’s disease and cancer. However, the mechanisms of substrate recognition by I-CLiPs remain poorly understood. The aspartic I-CLiP presenilin is the catalytic subunit of the γ-secretase complex, which releases the amyloid-β peptides (Aβs) through intramembrane proteolysis of the transmembrane domain of the amyloid precursor protein (APPTM). Here we used solution NMR to probe substrate docking of APPTM to the presenilin homologs (PSHs) MCMJR1 and MAMRE50, which cleaved APPTM in the NMR tube. Chemical shift perturbation (CSP) showed juxtamembrane regions of APPTM mediate its docking to MCMJR1. Binding of the substrate to I-CLiP decreased the magnitude of amide proton chemical shifts δH at the C-terminal half of the substrate APPTM, indicating that the docking to the enzyme weakens helical hydrogen bonds and unwinds the substrate transmembrane helix around the initial ε-cleavage site. The APPTM V44M substitution linked to familial AD caused more CSP and helical unwinding around the ε-cleavage site. MAMRE50, which cleaved APPTM at a higher rate, also caused more CSP and helical unwinding in APPTM than MCMJR1. Our data suggest that docking of the substrate transmembrane helix and helical unwinding is coupled in intramembrane proteolysis and FAD mutation modifies enzyme/substrate interaction, providing novel insights into the mechanisms of I-CLiPs and AD drug discovery.
机译:肠内切割蛋白酶(I-CLIPS)在生理和病理过程中起重要作用,例如阿尔茨海默病和癌症。然而,I-CLIPS的基板识别机制仍然明显不知。天冬氨酸I-Clip Presenilin是γ-分泌酶复合物的催化亚基,其通过淀粉样蛋白前体蛋白(APPTM)的跨膜结构域的膜蛋白蛋白分解释放淀粉样蛋白-β肽(Aβ)。在这里,我们使用溶液NMR探测APPTM的基板对接到PRESENILIN同源物(PSHS)MCMJR1和MAMRE50,其在NMR管中切割APPTM。化学换档扰动(CSP)显示APPTM的juxtambrane区域将其对接其对接至MCMJR1。基材与I-夹的结合降低了氨基吡元化学位移δ h 在基板APPTM的C末端的幅度,表明对接削弱了螺旋氢键并展开初始ε-切割位点周围的衬底跨膜螺旋。与家族式广告相关的APPTM V44M替换导致ε-切割位点周围的更多CSP和螺旋展开。 MAMRE50以更高的速率切割APPTM,也在APPTM中引起比MCMJR1更多的CSP和螺旋展开。我们的数据表明,基板跨膜螺旋和螺旋展开的对接在肠内蛋白蛋白水解和FAD突变改变酶/底物相互作用中,为I形夹和AD药物发现的机制提供了新的洞察力。

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