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Boyle, K. B.

Publications and source records attributed to Boyle, K. B..

3 recordsLinked to original sources

ZNFX1, an immunoregulatory RNA helicase and E3 ubiquitin ligase, assembles into pleiomorphic polymers

ZNFX1 is an SF1-family RNA helicase essential for innate immunity. Patients with ZNFX1 mutations experience recurrent infections, yet the underlying mechanism remains unclear. We determined cryo-EM structures of ZNFX1 in apo and RNA-bound forms, revealing auto-inhibition of the helicase through a regulatory insertion occluding the RNA-binding groove. ZNFX1 also functions as a bi-catalytic E3 ubiquitin ligase, containing an RZ-finger homologous to RNF213 and a previously unidentified Miz-like domain that catalyze ubiquitylation independently or cooperatively, with activity enhanced by ubiquitin chains. Patient mutations demonstrate that the helicase, E3 ligase, and rigid zinc-finger stalk connecting them are required for function. ZNFX1 can assemble into structured, pleiomorphic polymers via multivalent protein-protein interactions, revealing a mechanism that may facilitate RNA sequestration in stress granules and antiviral activity. These findings establish ZNFX1 as a multifunctional enzyme in innate immunity that couples RNA sensing to ubiquitin signaling and assembles into higher-order structures for signal amplification.

biochemistry↗

Recognition of phylogenetically diverse pathogens through enzymatically amplified recruitment of RNF213

Innate immunity senses microbial ligands known as pathogen-associated molecular patterns (PAMPs). Except for nucleic acids, PAMPs are exceedingly taxa-specific, thus enabling pattern recognition receptors to detect cognate pathogens while ignoring others. How the E3 ubiquitin ligase RNF213 can respond to phylogenetically distant pathogens, including Gram-negative Salmonella, Gram-positive Listeria, and eukaryotic Toxoplasma, remains unknown. Here we report that the evolutionary history of RNF213 is indicative of repeated adaptation to diverse pathogen target structures, especially in and around its newly identified CBM20 carbohydrate-binding domain, which we have resolved by cryo-EM. We find that RNF213 forms coats on phylogenetically distant pathogens. ATP hydrolysis by RNF213s dynein-like domain is essential for coat formation on all three pathogens studied as is RZ finger-mediated E3 ligase activity for bacteria. Coat formation is not diffusion-limited but instead relies on rate-limiting initiation events and subsequent cooperative incorporation of further RNF213 molecules. We conclude that RNF213 responds to evolutionarily distant pathogens through enzymatically amplified cooperative recruitment.

molecular biology↗

Shigella flexneri evades LPS ubiquitylation through IpaH1.4-mediated degradation of RNF213

The evolutionary arms race between pathogens and hosts has resulted in pathogens acquiring diverse adaptive countermeasures that antagonize host immunity. Ubiquitylation of lipopolysaccharide (LPS) on cytosol-invading bacteria by the E3 ligase RNF213 creates eat-me signals for antibacterial autophagy but whether and how cytosol-adapted bacteria avoid LPS ubiquitylation remains poorly understood. Here we show that Shigella flexneri, a professional cytosol-dwelling enterobacterium, actively antagonizes LPS ubiquitylation through IpaH1.4, a secreted effector protein with ubiquitin E3 ligase activity. IpaH1.4 binds to the LPS E3 ubiquitin ligase RNF213, ubiquitylates it, and targets it for degradation by the proteasome, thus preventing LPS ubiquitylation. To understand how IpaH1.4 recognizes RNF213, we determined the structure of their complex using cryogenic electron microscopy. The specificity of the interaction is achieved via the leucine rich repeat of IpaH1.4, which binds the RING domain of RNF213 by hijacking the conserved RING interface required for binding of ubiquitin-charged E2 enzymes. Interestingly, IpaH1.4 also targets the E3 ligase LUBAC - required for the synthesis of M1-linked ubiquitin chains on cytosol-invading bacteria downstream of RNF213 - as well as multiple other E3 ligases involved in inflammation and immunity - through binding to the E2-interacting face of their RING domains. We conclude that IpaH1.4 has evolved to antagonize multiple anti-bacterial and pro-inflammatory host E3 ligases.

molecular biology↗