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Ciancone, A.

Publications and source records attributed to Ciancone, A..

2 recordsLinked to original sources

Interface swapping orchestrates carbon transfer in the archaeal acetyl-CoA decarbonylase/synthase

The Wood-Ljungdahl pathway is one of biologys most ancient routes for carbon fixation and energy metabolism, used by organisms such as methanogenic archaea. One of its central metabolic complexes is the acetyl-CoA decarbonylase/synthase (ACDS) complex, catalyzing acetyl-CoA synthesis and cleavage through the co-ordinated action of carbon monoxide dehydrogenase (CODH), acetyl-CoA synthase (ACS), and corrinoid iron-sulfur protein (CoFeSP). Unlike bacterial CODH/ACS, archaeal ACDS lacks a stable bifunctional CODH-ACS architecture, raising the question of how reactive CO and methyl intermediates are efficiently transferred between catalytic modules. Using cryo-electron microscopy, crosslinking mass spectrometry, small-angle X-ray scattering, and biophysical analyses, we resolved the organization and dynamics of the [~]2 MDa archaeal ACDS supercomplex from Methanosarcina acetivorans. We identified CoFeSP as a central architectural scaffold that self-assembles into hexa- to octameric oligomers via a conserved N-terminal region of the CdhD subunit. This scaffold likely tethers CODH and ACS through conserved disordered terminal regions, positioning the catalytic modules in the complexs periphery. We propose a mechanism in which ACS transiently alternates between CODH and CoFeSP, enabling efficient CO and methyl-group transfer without stable binary complexes. This dynamic organization represents a fundamental difference to the stable bifunctional CODH/ACS in bacteria, highlighting how transient interactions enable efficient acetyl-CoA metabolism in archaea.

biochemistry↗

Structures of dynamic interactors at native proteasomes by PhIX-MS and cryoelectron microscopy

Proteasome function depends on a network of transient interactions that remain structurally and functionally unresolved. We developed PhIX-MS (Photo-induced In situ Crosslinking-Mass Spectrometry), a structural proteomics workflow that stabilizes transient interactions in cells by UV-activated crosslinking to capture topological information. Applying PhIX-MS with cryo-electron microscopy (cryo-EM), we mapped redox sensor TXNL1 at the proteasome regulatory particle (RP), placing its PITH domain above deubiquitinase RPN11 and resolving its dynamic thioredoxin domain near RPN2/PSMD1 and RPN13/ADRM1, ideally located to reduce substrates prior to proteolysis. We also resolved chaperone PSMD5 bound to RP without the proteolytic core particle (CP) where its C-terminus inserts into the ATPase pore blocking CP binding. PhIX-MS and AlphaFold modeling tether ubiquitin ligase UBE3C/Hul5 along the RP placing its catalytic site above the RPN11 active site, enabling their coupled activities. Our integrative approach enables the localization of native, low-affinity protein interactions and is broadly applicable to dynamic macromolecular assemblies.

cell biology↗