Targeting type I DED interactions at the DED filament serves as a sensitive switch for cell fate decisions

IF 6.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Chemical Biology Pub Date : 2024-07-24 DOI:10.1016/j.chembiol.2024.06.014
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Abstract

Activation of procaspase-8 in the death effector domain (DED) filaments of the death-inducing signaling complex (DISC) is a key step in apoptosis. In this study, a rationally designed cell-penetrating peptide, DEDid, was engineered to mimic the h2b helical region of procaspase-8-DED2 containing a highly conservative FL motif. Furthermore, mutations were introduced into the DEDid binding site of the procaspase-8 type I interface. Additionally, our data suggest that DEDid targets other type I DED interactions such as those of FADD. Both approaches of blocking type I DED interactions inhibited CD95L-induced DISC assembly, caspase activation and apoptosis. We showed that inhibition of procaspase-8 type I interactions by mutations not only diminished procaspase-8 recruitment to the DISC but also destabilized the FADD core of DED filaments. Taken together, this study offers insights to develop strategies to target DED proteins, which may be considered in diseases associated with cell death and inflammation.

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在DED丝上靶向I型DED相互作用是细胞命运决定的敏感开关
死亡诱导信号复合体(DISC)的死亡效应域(DED)丝中的procaspase-8被激活是细胞凋亡的关键步骤。在这项研究中,我们设计了一种合理的细胞穿透肽--DEDid,它模仿了procaspase-8-DED2的h2b螺旋区,其中包含一个高度保守的FL基序。此外,我们还在 procaspase-8 I 型界面的 DEDid 结合位点引入了突变。此外,我们的数据还表明,DEDid靶向其他I型DED相互作用,如FADD的相互作用。阻断 I 型 DED 相互作用的两种方法都抑制了 CD95L 诱导的 DISC 组装、caspase 激活和细胞凋亡。我们发现,通过突变抑制procaspase-8的I型相互作用不仅会减少procaspase-8对DISC的招募,还会破坏DED丝的FADD核心的稳定性。综上所述,这项研究为开发靶向 DED 蛋白的策略提供了启示,在与细胞死亡和炎症相关的疾病中可能会考虑到这一点。
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来源期刊
Cell Chemical Biology
Cell Chemical Biology Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
14.70
自引率
2.30%
发文量
143
期刊介绍: Cell Chemical Biology, a Cell Press journal established in 1994 as Chemistry & Biology, focuses on publishing crucial advances in chemical biology research with broad appeal to our diverse community, spanning basic scientists to clinicians. Pioneering investigations at the chemistry-biology interface, the journal fosters collaboration between these disciplines. We encourage submissions providing significant conceptual advancements of broad interest across chemical, biological, clinical, and related fields. Particularly sought are articles utilizing chemical tools to perturb, visualize, and measure biological systems, offering unique insights into molecular mechanisms, disease biology, and therapeutics.
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