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Biology subjects

Dhonnar, N.

Publications and source records attributed to Dhonnar, N..

2 recordsLinked to original sources

A metabolic labelling-based lipid imaging technology establishes VPS13A as a phosphatidylethanolamine lipid transfer protein

The ability to image specific lipid subtypes within cells can have a transformative impact on the study of lipid dynamics and trafficking mechanisms. Herein, we describe a technology for imaging phosphatidylethanolamine (PE) lipids in live mammalian cells that involved screening a library of ethanolamine derivatives to identify an azido compound that efficiently metabolically labels PE. Crucially, this probe evades the cellular methylation machinery specifically labelling PE without forming labelled methylated PE and phosphatidylcholine (PC) lipids. The administration of cyclooctyne dyes to cells metabolically labelled with this probe rendered azido PE lipids fluorescent via strain-promoted click chemistry, enabling imaging. We employed this technology to image PE in various cellular organelles, visualize PE externalization during apoptosis, and discover that the VPS13A protein transports PE from the endoplasmic reticulum to the mitochondria. This technology will facilitate addressing fundamental questions in PE biology and studying dysregulation of PE dynamics and trafficking in disease states.

cell biology↗

Secretion and signaling properties of Wnt11 and Wnt3 are determined by their N-terminus

Wnt proteins are evolutionarily conserved signaling molecules that control cell-cell communication in health and disease. While different Wnt proteins share a requirement for palmitoleoylation and the cargo receptor Evi/Wls for their secretion, they interact with diverse signaling receptors and co-receptors to elicit distinct outcomes in signal-receiving cells. The molecular mechanisms underlying this contrast between conserved post-translational modification and secretion and diverse receptor interactions remain poorly understood. Here, we demonstrate that Wnt11 maintains partial secretion capability in the absence of Evi/Wls. Unexpectedly, the secreted protein is also non-palmitoleoylated, yet retains its ability to activate downstream signaling in receiving cells through the Frizzled 6 receptor. We identify the N-terminus as the mediator of this unusual behavior, as Wnt3, which strictly requires Evi/Wls, becomes Evi/Wls-independent when its N-terminus is replaced with that of Wnt11. In different cell lines and in Xenopus laevis embryos, the chimeric Wnt11Nterm-Wnt3 protein recapitulates known Wnt11 phenotypes, demonstrating that the N-terminal portion of Wnt11 is sufficient to determine signaling specificity. Our findings reveal novel determinants of Wnt protein specificity and provide mechanistic insights into the molecular basis of Wnt secretion and downstream signaling.

cell biology↗