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Cavini, I. A.

Publications and source records attributed to Cavini, I. A..

2 recordsLinked to original sources

Experimental Validation of Coiled-Coil Architecture and Folding Dynamics in the Golgin Bug1

Golgins are widely described as long coiled-coil proteins that contribute to the structural organisation and trafficking functions of the Golgi apparatus. Although experimental structures have been determined for a limited number of golgin regions, atomic-level information on their extended coiled-coil segments remains scarce, and the oligomeric state, topology, and register of most predicted regions remain unestablished. Here, we characterise a predicted coiled-coil region of the yeast golgin Bug1 (BUG1cc) using structural, biophysical, and computational approaches. X-ray crystallography revealed a parallel, in-register dimeric coiled-coil containing ten heptad repeats and a predominantly hydrophobic core, with specific polar interactions contributing to dimer stabilisation. In solution, BUG1cc was dimeric under SEC-MALS conditions and remained highly alpha-helical across the pH and ionic strength conditions examined. CD measurements revealed pronounced scan-rate-dependent hysteresis, while DSC independently confirmed an asymmetry between heating and cooling transitions. Increasing protein concentration shifted both apparent transition temperatures while preserving thermal hysteresis, supporting chain association and conformational rearrangements in structural recovery. Structure-based simulations indicated that interface contacts and intra-chain helicity are thermodynamically coupled and melt as a single cooperative unit, and that the monomer released on dissociation is compact and only partially helical, so that reassociation proceeds through a coupled folding-binding mechanism whose rate-limiting step is conformational rather than bimolecular. Together, these results establish the molecular architecture of a predicted coiled-coil region of Bug1 and reveal a complex folding landscape in which oligomerisation, secondary-structure recovery, and kinetic barriers are tightly coupled.

biophysics↗

Coiled-coil homo-oligomerization and disaggregase Hsp104 act in parallel to stabilize orphan septins

Multiple septin family proteins co-assemble with strict subunit stoichiometry into hetero-oligomers. In the absence of native septin partners, purified septins aggregate in vitro, and "orphan" septins are found in pathological aggregates associated with neurodegenerative diseases. Cytosolic chaperones bind the septin GTPase domain to promote on-pathway septin folding but it was unclear how cells manage orphan septins to maintain septin subunit stoichiometry. Most septins have C-terminal domains (CTDs) that form heteromeric coiled coils within or between septin complexes. Here we present evidence that orphan yeast septins are protected from proteasomal degradation by forming transient coiled-coil homodimers and trimers and, in parallel, by the disaggregase chaperone Hsp104. Septins unable to undergo CTD-mediated homo-oligomerization require Hsp104 to accumulate to super-stoichiometric levels. We show that the number of septin-encoding mRNAs per yeast cell is low and variable, creating opportunities for transient subunit imbalances. These findings reveal a novel role for coiled coils and the cellular proteostasis machinery in the fidelity of higher-order septin assembly.

molecular biology↗