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Study 10 of 20Matrixyl literatureNatureTop journal2026

Structure and mechanism of the human bile acid transporter OSTα-OSTβ.

Not reported in abstract.

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this study against the rest of the matrixyl corpus
7
Preclinical · this one
12
Observational
0
Open-label
0
Randomised
1
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Summary and findings

Not reported in abstract.

How much of this paper we could read: title only (0.10). The feed gave us little more than the title, so our summary is thin. This says nothing about the study's quality — read the source. What this means →
2026

Abstract

The authors’ words, as Nature supplied them

Bile acids (BAs) are crucial amphipathic surfactants that function as multifaceted regulators in various physiological processes, including nutrient absorption and distribution, lipid metabolism and inflammation<sup>1,2</sup>. The human organic solute transporter αβ (OSTα-OSTβ; hereafter referred to as OSTα/β) is a BA transporter that has a key role in the secretion and distribution of BAs<sup>3-6</sup>. Pathogenic mutations in OSTα/β have been associated with cholestasis<sup>7,8</sup>. Despite the functional importance of OSTα/β in BA homeostasis, the stoichiometry and assembly of the complex and the molecular mechanism that underlies BA transport by OSTα/β remain unknown. Here we present cryo-electron microscopy structures of human OSTα/β in complex with cholesterols and an endogenous substrate, elucidating the structural basis for the function of OSTα/β. OSTα/β is assembled in a novel dimer-of-heterodimers manner: two OSTα units form the homodimeric core, with two OSTβ units bound to the periphery. OSTα adopts the G-protein-coupled-receptor (GPCR) fold and contains a unique cysteine-rich loop with seven palmitoylation sites; these cooperate with transmembrane helices 5 and 6, constituting a BA recognition site. A positive cavity in OSTα connects the BA site and facilitates the transmembrane translocation of BAs through OSTα/β. Together, this study reveals the architecture and transport mechanism of OSTα/β and provides insights into the structure-function relationships of this crucial transporter in BA homeostasis.

Background

Not reported in abstract.

Methods

Not reported in abstract.

Results

Not reported in abstract.

Interpretation

Not reported in abstract.

Limitations

Not reported in abstract.

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