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Mckenzie, G.

Publications and source records attributed to Mckenzie, G..

2 recordsLinked to original sources

The Structure of the Picornaviral 2C:RNA holoenzyme: Molecular Basis of RNA binding and specificity by a AAA+ protein

Picornaviruses are one of the leading agents of animal and human infectious disease with at least 8 billion infections a year and cause a range of symptoms including respiratory failure and acute flaccid myelitis1. The most conserved nonstructural protein in picornaviruses is 2C2, a member of the AAA+ family of ATPases that binds RNA, and a broad spectrum antiviral target3-5. Despite its crucial role in the viral life cycle and as a clinical target, no structure of 2C bound to RNA has been structurally determined. Here we present the first structure of 2C as a hexamer bound to single stranded RNA in its central pore; a novel AAA+ protein:substrate interaction. Using the 2C:RNA holoenzyme complex structure, we characterize the mode that this AAA+ protein employs to specifically bind single stranded RNA, and demonstrate that mutations to key residues inhibit both RNA binding and viral replication in Apthovirus and Enterovirus systems, and show that the core residues responsible for binding are broadly conserved in viruses beyond Picornaviridae. Finally, we reveal that the 2C:RNA holoenzyme complex is conformationally more similar to a protein translocase adapted to bind RNA rather than other viral DNA binding SF3 helicases, underscoring how the AAA+ core module can be adapted for a variety of biochemical substrates.

biophysics↗

Sec18 side-loading is essential for universal SNARE recycling across cellular contexts

SNARE proteins drive membrane fusion at different cell compartments as their core domains zipper into a parallel four-helix bundle. After fusion, these bundles are disassembled by the AAA+ protein Sec18/NSF and its adaptor Sec17/-SNAP to make them available for subsequent rounds of membrane fusion. SNARE domains are often flanked by C-terminal transmembrane or N-terminal domains. Previous structures of the NSF--SNAP-SNARE complex revealed binding to the D1 ATPase pore, posing a topological constraint as SNARE transmembrane domains would prevent complete substrate threading as suggested for other AAA+ systems. Using mass-spectrometry in yeast cells, we show N-terminal SNARE domain interactions with Sec18, exacerbating this topological issue. We present cryo-EM structures of a yeast SNARE complex, Sec18, and Sec17 in a non-hydrolyzing condition, which show SNARE Sso1 threaded through the D1 and D2 ATPase rings of Sec18, with its folded, N-terminal Habc domain interacting with the D2 ring. This domain does not unfold during Sec18/NSF activity. Cryo-EM structures under hydrolyzing conditions revealed substrate-released and substrate-free states of Sec18 with a coordinated opening in the side of the ATPase rings. Thus, Sec18/NSF operates by substrate side-loading and unloading topologically constrained SNARE substrates.

biophysics↗