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#NSF

3 public questions tagged with this topic.

What is the role of NSF in membrane fusion?

Secretory pathway maintains SNARE availability through constant recycling machinery whose energy source ATP hydrolysis by NSF. After lipid merger SNARE proteins locked in four-helix bundle cis-complex embedded single target membrane deep energy well impossible separate spontaneously. To regenerate fusion-competent monomers ATP-driven chaperone required. Hexameric N-ethylmaleimide sensitive factor NSF 76 kDa per protomer double ring structure associates via adaptor alpha-SNAP decorating outside SNARE rod tetramer coating. Each SNAP C-terminus contacts one N-domain NSF hexamer forming 20S partic

Ref: Alberts et al., MBC: NSF hydrolyzes ATP to disassemble cis-SNARE complexes.

Which protein facilitates vesicle uncoating after transport?

Temporal control coat association ensures vesicle budding but permits subsequent fusion because SNAREs hidden under coat cannot engage target. After detachment coat must be shed within seconds exposing v-SNAREs for tethering. Distinct uncoating mechanisms evolved: COPII shedding triggered by Sar1 GTP hydrolysis stimulated by Sec23 GAP plus Sec13-31 destabilization; COPI shedding by ARF GAP1/2 ASAP stimulating ARF1 hydrolysis plus curvature mismatch. Clathrin uncoating for AP2 and AP1/GGA vesicles requires chaperone system unique: DnaJ co-chaperone auxilin 1/2 specifically recognizes assembled

Ref: Sousa & Lafer, Traffic 2015: Hsc70 and auxilin mediate clathrin uncoating.

Which factor is required for dissociation of the SNARE complex?

After fusion membrane-embedded SNARE complex ends up as cis-complex where all helices reside in same membrane representing dead-end product incapable of further fusion blocking availability. To maintain flux complex must be disassembled into monomers. Alpha-SNAP adaptor family including alpha, beta, gamma isoforms binds along four-helix bundle recognizing charge pattern; up to four molecules coat complex serving landing pad for hexameric NSF ATPase. NSF contains N-terminal substrate binding domains, D1 ATPase providing mechanical power and D2 stabilizing hexamer. ATP hydrolysis in D1 hydrolyzi

Ref: Alberts et al., MBC: NSF ATPase disassembles SNARE complexes post-fusion for recycling.