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Biology subjects

Trugnan, G.

Publications and source records attributed to Trugnan, G..

2 recordsLinked to original sources

Sterols regulate ciliary membrane dynamics and hedgehog signaling in health and disease

The primary cilium is a specialized signaling hub whose function depends on a tightly regulated membrane composition. While its protein content is well-characterized, its lipid identity, particularly regarding sterols, remains poorly defined. Here, we used mass spectrometry-based lipidomics to map the sterol profile of isolated primary cilia from MDCK cells. We found that ciliary membranes are enriched in cholesterol and desmosterol while excluding precursors like 7-lathosterol and limiting others, suggesting a selective sterol barrier. Inhibiting cholesterol biosynthesis at distinct enzymatic steps led to sterol accumulation, altered ciliary membrane fluidity, and impaired Hedgehog signaling, including defective Smoothened (Smo) retention-- even in the presence of a constitutively active form of Smo. These findings link sterol homeostasis to ciliary membrane properties and signaling fidelity. Our work provides a molecular framework for understanding Hedgehog-related phenotypes in disorders like Smith-Lemli-Opitz Syndrome, highlighting the importance of membrane lipid composition in developmental signaling.

cell biology↗

A receptor-independent signaling pathway for BDNF

In addition to its well-known receptor-mediated function in cell survival, differentiation and growth, we report that the extracellular brain-derived neurotrophic factor (BDNF) also controls the intracellular KEAP1-NRF2 cytoprotective system by a receptor-independent pathway. Extracellular BDNF can cross the cell membrane as it possesses a protein-translocation domain, also known as cell-penetrating peptide. This membrane crossing process is energy-independent, ruling out endocytosis and receptor-dependent mechanisms. Once in the cytosol, BDNF binds to KEAP1 with a nanomolar affinity, enabling nuclear translocation of NRF2 and transcription of NRF2-target genes. BDNF is thus a major regulator of NRF2 activation. A dysfunction of this BDNF-KEAP1-NRF2 pathway may be involved in most diseases where antioxidant and cytoprotective functions are altered. This novel form of communication, whereby a receptor ligand protein exerts a biological activity by crossing the cell membrane, opens new avenues for cell signaling.

cell biology↗