Peptides DB
Research-centric peptide and protocol reference hub
Study 26 of 26Vasopressin literatureNatureTop journal2026

Primate-specific regulation of the human glycosphingolipid gatekeeper UGCG.

This study reveals the structural complexity of UGCG, which may influence glycosphingolipid diversity and has implications for understanding lipid metabolism in humans.

Read at NatureAdd to compare

Where it sits

this study against the rest of the vasopressin corpus
4
Preclinical · this one
19
Observational
1
Open-label
1
Randomised
1
Reviews

Summary and findings

This study investigates the regulation of UDP-glucose ceramide glucosyltransferase (UGCG) in humans, focusing on its structural properties and functional states. The research utilized cryogenic electron microscopy to analyze UGCG in eight functional states. Findings reveal a unique transmembrane architecture and a primate-specific element affecting lipid affinity.

How much of this paper we could read: partial text (0.50). We had some abstract detail. Check the source for anything decisive. What this means →
Not reported in abstract.2026

Abstract

The authors’ words, as Nature supplied them

Glycosphingolipids are essential membrane components that organize lipid microdomains and orchestrate cellular signalling, differentiation and neuronal function1-4. In humans, these functions arise from a repertoire of several hundred glycosphingolipid species generated through stepwise glycan elaboration5,6. Entry into this network is controlled by a single committed reaction catalysed by UDP-glucose ceramide glucosyltransferase (UGCG), the gatekeeper that dictates the scale and composition of glycosphingolipid diversity. Despite its biological and therapeutic importance7,8, its mechanism and regulation have remained unknown. Here we report cryogenic electron microscopy structures of full-length human UGCG in eight functional states at 2.9-3.4 Å resolution. UGCG adopts a previously unrecognized triple-pass transmembrane architecture that anchors a GT-A core at the membrane interface and creates a bipartite active site engaging soluble and membrane-embedded substrates. Contrary to canonical GT-A enzymes, UGCG uses a metal-independent catalytic mechanism driven by an arginine network. We identify a primate-specific steric element that tunes lipid affinity and catalytic turnover, modulating glycosphingolipid entry. Structures with clinically used inhibitors reveal how this architecture governs their potency and selectivity. Together, these findings define the structural and evolutionary logic by which one enzyme controls glycosphingolipid diversity and provide a framework for precision modulation of membrane lipid homeostasis in disease.

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.

Elsewhere in the Vasopressin corpus

CDeep learning-mediated detection of accelerated water drinking after aquaresis in V1b vasopressin receptor knockout micebiorxiv-preprint · 2026 · Not reported in abstract.AnimalCDesign of liquid crystalline nanoparticles: Linking composition to membrane interactions and siRNA delivery.International journal of pharmaceutics: X · 2026 · siRNA delivered by LCN-P407 showed > 1.7-fold greater uptake than that administered by LCN-P188.In vitroCFetal microglia show region-specific and morphology-dependent sex differences in their responsiveness to prenatal maternal stressbiorxiv-preprint · 2026 · Not reported in abstract.AnimalDArginine Therapy for Sickle Cell Disease Acute Pain Episodes: Research Summary.JAMA · 2026reviewDArginine Treatment and Sickle Cell Disease Pain-A Great STArT, but a Hard End Point.JAMA · 2026BArginine Therapy for Sickle Cell Disease Acute Pain Episodes: The STArT Randomized Clinical Trial.JAMA · 2026Human