Alberto Iannuzzo, Selket Delafontaine, Rana El Masri, Rachida Tacine, Giusi Prencipe, Masahiko Nishitani-Isa, Rogier T. A. van Wijck, Farzana Bhuyan, Adriana A. de Jesus Rasheed, Simona Coppola, Paul L. A. van Daele, Antonella Insalaco, Raphaela Goldbach-Mansky, Takahiro Yasumi, Marco Tartaglia, Isabelle Meyts, Jérôme Delon
{"title":"高尔基体捕获 CDC42 的自身炎症患者表现出细胞内转运缺陷,导致 STING 过度激活和 ER 压力","authors":"Alberto Iannuzzo, Selket Delafontaine, Rana El Masri, Rachida Tacine, Giusi Prencipe, Masahiko Nishitani-Isa, Rogier T. A. van Wijck, Farzana Bhuyan, Adriana A. de Jesus Rasheed, Simona Coppola, Paul L. A. van Daele, Antonella Insalaco, Raphaela Goldbach-Mansky, Takahiro Yasumi, Marco Tartaglia, Isabelle Meyts, Jérôme Delon","doi":"10.1038/s41467-024-54294-y","DOIUrl":null,"url":null,"abstract":"<p>Most autoinflammatory diseases are caused by mutations in innate immunity genes. Previously, four variants in the RHO GTPase CDC42 were discovered in patients affected by syndromes generally characterized by neonatal-onset of cytopenia and auto-inflammation, including hemophagocytic lymphohistiocytosis and rash in the most severe form (NOCARH syndrome). However, the mechanisms responsible for these phenotypes remain largely elusive. Here, we show that the recurrent p.R186C CDC42 variant, which is trapped in the Golgi apparatus, elicits a block in both anterograde and retrograde transports. Consequently, it favours STING accumulation in the Golgi in a COPI-dependent manner. This is also observed for the other Golgi-trapped p.*192 C*24 CDC42 variant, but not for the p.Y64C and p.C188Y variants that do not accumulate in the Golgi. We demonstrate that the two Golgi-trapped CDC42 variants are the only ones that exhibit overactivation of the STING pathway and the type I interferon response, and elicit endoplasmic reticulum stress. Consistent with these results, patients carrying Golgi-trapped CDC42 mutants present very high levels of circulating IFNα at the onset of their disease. In conclusion, we report further mechanistic insights on the impact of the Golgi-trapped CDC42 variants. This increase in STING activation provides a rationale for combination treatments for these severe cases.</p>","PeriodicalId":19066,"journal":{"name":"Nature Communications","volume":"166 1","pages":""},"PeriodicalIF":15.7000,"publicationDate":"2024-11-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Autoinflammatory patients with Golgi-trapped CDC42 exhibit intracellular trafficking defects leading to STING hyperactivation and ER stress\",\"authors\":\"Alberto Iannuzzo, Selket Delafontaine, Rana El Masri, Rachida Tacine, Giusi Prencipe, Masahiko Nishitani-Isa, Rogier T. A. van Wijck, Farzana Bhuyan, Adriana A. de Jesus Rasheed, Simona Coppola, Paul L. A. van Daele, Antonella Insalaco, Raphaela Goldbach-Mansky, Takahiro Yasumi, Marco Tartaglia, Isabelle Meyts, Jérôme Delon\",\"doi\":\"10.1038/s41467-024-54294-y\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Most autoinflammatory diseases are caused by mutations in innate immunity genes. Previously, four variants in the RHO GTPase CDC42 were discovered in patients affected by syndromes generally characterized by neonatal-onset of cytopenia and auto-inflammation, including hemophagocytic lymphohistiocytosis and rash in the most severe form (NOCARH syndrome). However, the mechanisms responsible for these phenotypes remain largely elusive. Here, we show that the recurrent p.R186C CDC42 variant, which is trapped in the Golgi apparatus, elicits a block in both anterograde and retrograde transports. Consequently, it favours STING accumulation in the Golgi in a COPI-dependent manner. This is also observed for the other Golgi-trapped p.*192 C*24 CDC42 variant, but not for the p.Y64C and p.C188Y variants that do not accumulate in the Golgi. We demonstrate that the two Golgi-trapped CDC42 variants are the only ones that exhibit overactivation of the STING pathway and the type I interferon response, and elicit endoplasmic reticulum stress. Consistent with these results, patients carrying Golgi-trapped CDC42 mutants present very high levels of circulating IFNα at the onset of their disease. In conclusion, we report further mechanistic insights on the impact of the Golgi-trapped CDC42 variants. 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Autoinflammatory patients with Golgi-trapped CDC42 exhibit intracellular trafficking defects leading to STING hyperactivation and ER stress
Most autoinflammatory diseases are caused by mutations in innate immunity genes. Previously, four variants in the RHO GTPase CDC42 were discovered in patients affected by syndromes generally characterized by neonatal-onset of cytopenia and auto-inflammation, including hemophagocytic lymphohistiocytosis and rash in the most severe form (NOCARH syndrome). However, the mechanisms responsible for these phenotypes remain largely elusive. Here, we show that the recurrent p.R186C CDC42 variant, which is trapped in the Golgi apparatus, elicits a block in both anterograde and retrograde transports. Consequently, it favours STING accumulation in the Golgi in a COPI-dependent manner. This is also observed for the other Golgi-trapped p.*192 C*24 CDC42 variant, but not for the p.Y64C and p.C188Y variants that do not accumulate in the Golgi. We demonstrate that the two Golgi-trapped CDC42 variants are the only ones that exhibit overactivation of the STING pathway and the type I interferon response, and elicit endoplasmic reticulum stress. Consistent with these results, patients carrying Golgi-trapped CDC42 mutants present very high levels of circulating IFNα at the onset of their disease. In conclusion, we report further mechanistic insights on the impact of the Golgi-trapped CDC42 variants. This increase in STING activation provides a rationale for combination treatments for these severe cases.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.