Department of Medicine, Division of Hematology and Medical Oncology, Tisch Cancer Institute, Icahn School of Medicine at Mount Sinai, New York, NY, USA.
Department of Cell, Developmental and Regenerative Biology, The Graduate School of Biomedical Sciences, Icahn School of Medicine at Mount Sinai, New York, NY, USA.
Nat Commun. 2024 Oct 24;15(1):9195. doi: 10.1038/s41467-024-53412-0.
SUMOylation regulates numerous cellular stress responses, yet targets in the apoptotic machinery remain elusive. We show that a single, DNA damage-induced monoSUMOylation event controls PIDDosome (PIDD1/RAIDD/caspase-2) formation and apoptotic death in response to unresolved DNA interstrand crosslinks (ICLs). SUMO-1 conjugation occurs on conserved K879 in the PIDD1 death domain (DD); is catalyzed by PIAS1 and countered by SENP3; and is triggered by ATR phosphorylation of neighboring T788 in the PIDD1 DD, which enables PIAS1 docking. Phospho/SUMO-PIDD1 proteins are captured by nucleolar RAIDD monomers via a SUMO-interacting motif (SIM) in the RAIDD DD, thus compartmentalizing nascent PIDDosomes for caspase-2 recruitment. Denying SUMOylation or the SUMO-SIM interaction spares the onset of PIDDosome assembly but blocks its completion, thus eliminating the apoptotic response to ICL repair failure. Conversely, removal of SENP3 forces apoptosis, even in cells with tolerable ICL levels. SUMO-mediated PIDDosome control is also seen in response to DNA breaks but not supernumerary centrosomes. These results illuminate PIDDosome formation in space and time and identify a direct role for SUMOylation in the assembly of a major pro-apoptotic device.
SUMOylation 调控了许多细胞应激反应,但凋亡机制中的靶标仍不明确。我们发现,单个 DNA 损伤诱导的单 SUMOylation 事件控制了 PIDDosome(PIDD1/RAIDD/caspase-2)的形成,并响应未解决的 DNA 链间交联(ICLs)引发凋亡死亡。SUMO-1 缀合发生在 PIDD1 死亡域(DD)的保守 K879 上;由 PIAS1 催化,由 SENP3 拮抗;并由 ATR 在 PIDD1 DD 中邻近的 T788 上的磷酸化触发,从而使 PIAS1 对接。磷酸化/SUMO-PIDD1 蛋白通过 RAIDD DD 中的 SUMO 相互作用基序(SIM)被核仁 RAIDD 单体捕获,从而将新生的 PIDDosome 分隔开,以便招募 caspase-2。否认 SUMOylation 或 SUMO-SIM 相互作用会延迟 PIDDosome 组装的开始,但会阻止其完成,从而消除了对 ICL 修复失败的凋亡反应。相反,去除 SENP3 即使在 ICL 水平可耐受的细胞中也会引发细胞凋亡。SUMO 介导的 PIDDosome 控制也见于 DNA 断裂的反应中,但不涉及多余的中心体。这些结果阐明了 PIDDosome 在空间和时间上的形成,并确定了 SUMOylation 在组装主要促凋亡装置中的直接作用。