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Nielsen, T. T. E.

Publications and source records attributed to Nielsen, T. T. E..

2 recordsLinked to original sources

A proteome-wide screen for membrane-interactions in intrinsically disordered regions of transmembrane proteins reveals a role in disease

Transmembrane proteins mediate essential cellular processes including signaling, transport, and ion flux. Besides their well-characterized structured domains, most contain intrinsically disordered regions, whose biological roles remain poorly understood. Evidence suggests that the functions of intrinsically disordered regions are context-dependent, a trait particularly relevant when anchored to cellular membranes. In this study, we probed peptide arrays with fluorescent liposomes to generate a high-resolution, proteome-wide map of membrane-interaction sites within intrinsically disordered regions of human transmembrane proteins. Screening 4,000 proteins, we identified membrane-interaction sites in [~]60% of cases. Among these, [~]63% represent amphipathic helices, while [~]17% resemble cationic cell-penetrating peptides. We demonstrate that membrane-interaction motifs can influence subcellular localization and may contribute to both physiological and pathological processes. Our findings establish membrane association as a key functional aspect of intrinsically disordered regions and provide a valuable resource for discovering non-canonical regulatory mechanisms in transmembrane proteins. The resource is available at MemRIDRdb.

cell biology↗

Membrane curvature association of amphipathic helix 8 drives constitutive GPCR endocytosis

Cellular signaling relies on the activity of transmembrane receptors and their presentation on the cellular surface. Their continuous insertion in the plasma membrane is balanced by constitutive and activity dependent internalization, which is orchestrated by adaptor proteins recognizing semi-specific motifs within the receptors intracellular regions. Here we describe a complementary and evolutionary conserved and refined trafficking mechanism for G-protein coupled receptors (GPCR). This mechanism relies on the insertion of their amphipathic helix 8 into the inner leaflet of lipid membranes, orthogonal to the transmembrane helices. These amphipathic helices dictate subcellular localization of the receptors and autonomously drive their endocytosis by cooperative assembly and association with areas of high membrane curvature. The strength of helix 8 membrane insertion propensity quantitatively predicts the rate of constitutive internalization of GPCRs. This discovery advances our understanding of membrane protein trafficking and highlights a new principle of receptor-lipid interactions that may have broader implications for cellular signaling and therapeutic targeting. One-Sentence SummaryReceptor proteins navigate cellular membranes by interacting with their curvature using an evolutionary conserved mechanism that relies on amphipathic helices and complements direct coupling to the endocytic protein machinery.

cell biology↗