Down Syndrome Cell Adhesion Molecule Triggers Membrane-to-Nucleus Signaling–Regulated Hemocyte Proliferation against Bacterial Infection in Invertebrates
Li Hao, Jin Xing-Kun, Zhou Kai-Min, Zhao Hui, Zhao Yue-Hong, Wang Qun, Li Wei-Wei
Journal:JOURNAL OF IMMUNOLOGY
IF:5.42
DOI:10.4049/jimmunol.2100575
PMID:
Published:2021-11-01
research field:分子生物学细胞生物学免疫学传染病学
Abstract
Key Points Protease ADAM10 cleaves the ectodomain of Dscam upon bacterial infection. IPO5 binds and translocates Dscam intracellular domains from cytoplasm into nuclei. Nuclear imported Dscam regulates hemocytes proliferation. Down syndrome cell adhesion molecule (Dscam) generates tens of thousands of isoforms by alternative splicing, thereby providing crucial functions during immune responses. In this study, a novel Dscam signaling pathway was investigated in crab, which remains poorly characterized in invertebrates. Bacterial infection induced the cytoplasmic cleavage of Dscam intracellular domains (ICDs) by γ-secretase, and then the released ICDs carrying specific alternatively spliced exons could directly interact with IPO5 to facilitate nuclear translocation. Nuclear imported ICDs thus promoted hemocyte proliferation and protect the host from bacterial infection. Protein-interaction studies revealed that the ectodomain of Dscam bound to a disintegrin and metalloprotease domain 10 (ADAM10) rather than ADAM17. Inhibition or overexpression of ADAM10 impaired or accelerated Dscam shedding activity post–bacterial stimulation, respectively. Moreover, the shedding signal then mediated Dscam with an intact cytoplasmic domain to promote the cleavage of ICDs by γ-secretase. Furthermore, the transcription of ADAM10 was regulated by Dscam-induced canonical signaling, but not nuclear imported ICDs, to serve as a feedback regulation between two different Dscam pathways. Thus, membrane-to-nuclear signaling of Dscam regulated hemocyte proliferation in response to bacterial infection.
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