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Cherot, H.

Publications and source records attributed to Cherot, H..

2 recordsLinked to original sources

In-cell residue-resolved NMR of micromolar α-synuclein and tau at 310K

Aggregates of non-globular proteins are associated to several degenerative disorders, e.g. -synuclein and tau involved in Parkinsons and Alzheimers diseases. Do these proteins suffer progressive changes in conformations and interactions in pathologic situations? In-cell NMR provides atomic-scale information in live cells but, until now, only at ~283 K in the case of unfolded proteins. Here, we report new labeling and acquisition methods enabling in-cell NMR at 310 K to study these proteins at micromolar concentrations, i.e. native cellular abundances. We used stable human cell lines expressing -synuclein or tau upon induction in a culture medium supplemented with 13C-labeled amino acids, or precursors thereof. Acquiring 13C-13CO spectra permitted an early residue-resolved analysis of -synuclein and tau at 310 K and <10 M in HEK cells at 700 MHz. We detected disordered conformations and identical patterns of cellular interactions for -synuclein wild-type and two mutants (F4A, A30P). Only the disordered N-terminus of tau was observable, even upon microtubule dismantling by colchicin. Our approach offers an excellent scalability -in signal and resolution-up to 1.2 GHz. 13C-labeling and 13C-detected NMR in live human cells are thus viable techniques for in-cell structural biology.

biochemistry↗

α-Synuclein acts as a cholesteryl-ester sensor on lipid droplets regulating organelle size and abundance.

While aggregated alpha-Synuclein (Syn) is commonly associated with Parkinsons disease, its physiological function as a membrane-binding protein is poorly understood. Here, we show that endogenous Syn binds lipid droplets (LDs) in multiple human cell lines and in stem cell-derived dopaminergic neurons. LD-binding encompasses Syn residues 1-100, which masks their detection by immunofluorescence microscopy, probably explaining the scarcity of similar observations in earlier studies. Syn-LD interactions are highly temperature-sensitive and selective for cholesteryl-ester-rich LDs. They promote the formation of Syn multimers that dissociate from LDs at non-permissive temperatures. Syn remains LD-bound throughout starvation-induced lipolysis, whereas siRNA-knockdown diminishes LD abundance and compromises cell viability upon nutrient depletion, without affecting LD biosynthesis. Reciprocally, excess Syn stimulates LD accumulation in dependence of lipid availability, restricts organelle size and ensures intracellular LD organization, which strictly depends on functional membrane-binding. Supporting a general role of Syn in cellular lipid and cholesterol metabolism, our results point to additional loss-of-function similarities between Parkinsons, Alzheimers and Gauchers disease.

cell biology↗