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Sai, K. V.

Publications and source records attributed to Sai, K. V..

2 recordsLinked to original sources

A Sterol-Binding Cavity Underlies Sterol Recognition and Differential Activation of the ABCG5/G8

Sterol homeostasis depends on the coordinated regulation of endogenous cholesterol synthesis, dietary sterol absorption, and sterol excretion. The heterodimeric ATP-binding cassette sterol transporter ABCG5/G8 plays an important role in eliminating excess sterols by participating in reverse cholesterol transport and transintestinal cholesterol efflux. The molecular mechanism of sterol recognition and transport by ABCG5/G8 remains poorly understood. Here, we determined the cryo-electron microscopy (cryo-EM) structure of human ABCG5/G8 in complex with ergosterol. The structure revealed a sterol-binding site at the transmembrane domain (TMD) interface between the subunits ABCG5 and ABCG8, adjacent to the conserved aromatic clamp motif. Tyrosine 432 (Y432) on ABCG5, a key residue within the aromatic clamp, lies near the tetracyclic ring of ergosterol. Additionally, to assess the effect of different sterols on transporter activity, we performed molecular dynamic simulations and in vitro ATPase assays in the presence of cholesterol, cholesteryl hemisuccinate (CHS), and ergosterol. Ergosterol exhibited more favorable interactions with ABCG5/G8 and stimulated ATPase activity more effectively than either cholesterol or CHS, representing the first biochemical characterization of ABCG5/G8 activity in response to a non-cholesterol sterol. Furthermore, substitution of Y432 with the canonical phenylalanine in ABCG family abolished the differential ATPase response to ergosterol, with the mutant displaying similar activity levels in the presence of ergosterol and cholesterol. Together, our structural and biochemical findings reveal a conserved sterol-binding site within ABCG5/G8 and demonstrate direct evidence that distinct sterols differentially modulate ABCG sterol transporter activity and that the degenerative aromatic clamp motif in ABCG5 contributes to sterol-dependent functional selectivity.

biochemistry↗

Sequence Analysis of P4-ATPases Reveals the Structural Determinants for the Stable Monomeric P4B-ATPase Phospholipid Transporters.

The P4-ATPase family of phospholipid flippases plays a critical role in maintenance of membrane asymmetry and cellular protein traffic and eukaryotic homeostasis. Several structures of these phospholipid flippases have been resolved, along with extensive biochemical characterization of the substrate transport properties. However, an essential subfamily of monomeric phospholipid flippases, the P4B-ATPases, remains to be characterized in depth. While P4B-ATPases appear to share similar lipid transport properties to their heterodimeric counterparts, the P4A-ATPases, the basis of their substrate translocation as monomers is currently unknown. In this study, we investigated the divergence of P4B-ATPases from other P-type ATPases using a structure-based analysis of sequence conservation. Our results showed conservative and non-conservative pockets and pathways in the P4B-ATPases near critical residues for the substrate transport pathway. P4B-ATPases also exhibit a unique interaction of an invariant proline near a conserved TM1-2 aromatic cluster, where dynamics simulation confirmed interactions with phospholipids and cholesterol by this conserved aromatic cluster. A critical TM6 residue was observed orienting into a conserved P4B-pathway whose function is currently unknown but a disease mutation hotspot, suggesting that P4B-ATPases exhibit novel transport and/or regulatory mechanisms. Our results provide a molecular framework for further studies on this essential subfamily of monomeric phospholipid flippases.

bioinformatics↗