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bai, x.

Publications and source records attributed to bai, x..

2 recordsLinked to original sources

Regulation of STING activation by phosphoinositide and cholesterol

Stimulator of interferon genes (STING) is an essential adaptor in the cytosolic DNA sensing innate immune pathway. STING is activated by cyclic-GMP-AMP (cGAMP) produced by the DNA sensor cGAMP synthase (cGAS). cGAMP-induced high-order oligomerization and translocation of STING from the endoplasmic reticulum to Golgi and post-Golgi vesicles are critical for STING activation. Recent studies have shown that phosphatidylinositol phosphates (PIPs) and cholesterol also play important roles in STING activation, but the underlying mechanisms remain unclear. Here, we demonstrate that cGAMP-induced high-order oligomerization of STING is enhanced strongly by PI(3,5)P2 and PI(4,5)P2, and by PI(4)P to a less extent. Our cryo-EM structures reveal that PIPs together with cholesterol bind at the interface between STING dimers, directly promoting the high-order oligomerization. The structures also provide an explanation for the preference of the STING oligomer to different PIPs. Mutational and biochemical analyses confirm the binding modes of PIPs and cholesterol and their roles in STING activation. Our findings shed light on the regulatory mechanisms of STING by specific lipids, which may underlie the role of intracellular compartment trafficking in dictating STING signaling.

immunology↗

Structural basis for ACT1 oligomerization induced by IL-17 receptor hetero-tetramer

The IL-17 receptors (IL-17Rs) play critical roles in immunity and inflammatory diseases. IL-17-induced heteromeric complexes between IL-17RA and another IL-17R trigger signaling by binding the downstream transducer ACT1 through interactions between their intracellular SEF/IL-17R (SEFIR) domains. The molecular mechanism of this process remains unclear. Here we present the cryo-EM structure of the complex of IL-17RA, IL-17RB and ACT1, showing that the IL-17RA and IL-17RB SEFIR domains form an asymmetric hetero-tetramer. The two IL-17RA SEFIR domains serve as the base to recruit ACT1, while IL-17RB stabilizes the IL-17RA dimer but makes no interaction with ACT1. IL-17RB, IL-17RA and multiple ACT1 together form a double-stranded helical assembly. The C-terminal SEFIR extension (SEFEX) of IL-17RA acts as a molecular tendril to help anchor the ACT1 protomers. The structural model is supported by our mutational analyses. These findings reveal the basis for the formation for the signalosome of the IL-17 receptors and ACT1 critical for immune signaling.

immunology↗