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Ludlam, W. G.

Publications and source records attributed to Ludlam, W. G..

2 recordsLinked to original sources

Visualizing the chaperone-mediated folding trajectory of the G protein β5 β-propeller

The cytosolic Chaperonin Containing Tailless polypeptide 1 (CCT) complex is an essential protein folding machine with a diverse clientele of substrates, including many proteins with {beta}- propeller domains. Here, we determined structures of CCT in complex with its accessory co chaperone, phosducin-like protein 1 (PhLP1), in the process of folding G{beta}5, a component of Regulator of G protein Signaling (RGS) complexes. Cryo-EM and image processing revealed an ensemble of distinct snapshots that represent the folding trajectory of G{beta}5 from an unfolded molten globule to a fully folded {beta}-propeller. These structures reveal the mechanism by which CCT directs G{beta}5 folding through initiating specific intermolecular contacts that facilitate the sequential folding of individual {beta}-sheets until the propeller closes into its native structure. This work directly visualizes chaperone-mediated protein folding and establishes that CCT directs folding by stabilizing intermediates through interactions with surface residues that permit the hydrophobic core to coalesce into its folded state.

biochemistry↗

Molecular Architecture of the Bardet-Biedl Syndrome 2-7-9 Subcomplex

Bardet-Biedl syndrome (BBS) is a genetic disease caused by mutations that disrupt the function of the BBSome, an eight-subunit complex that plays an important role in transport of proteins in primary cilia. To better understand the molecular basis of the disease, we analyzed the structure of a BBSome subcomplex consisting of three homologous BBS proteins (BBS2, BBS7, and BBS9) by an integrative structural modeling approach using electron microscopy and chemical crosslinking coupled with mass spectrometry. The resulting molecular model revealed an overall structure that resembles a flattened triangle. Within the structure, BBS2 and BBS7 form a tight dimer based on a coiled-coil interaction, and BBS9 associates with the dimer via an interaction with the -helical domain of BBS2. Interestingly, a BBS-linked mutation of BBS2 (R632P) is located in the -helical domain at the interface between BBS2 and BBS9, and binding experiments showed that this mutation disrupted the interaction of BBS2 with BBS9. This finding suggests that BBSome assembly is disrupted by the R632P substitution, providing a molecular explanation for BBS in patients harboring this mutation.

biochemistry↗