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Mouton, S. N.

Publications and source records attributed to Mouton, S. N..

4 recordsLinked to original sources

Specificity and mechanism of 1,6 hexanediol-induced disruption of nuclear transport

Selective transport through the nuclear pore complex (NPC) depends on the dynamic binding of the intrinsically disordered components of the NPC, the FG-nups, with each other and with nuclear transport receptors (NTRs). Hydrophobic interactions with the phenylalanines of FG-nups are critical for this dynamic binding. 1,6-hexanediol (1,6HD), is an aliphatic alcohol that interferes with hydrophobic interactions. Here we assessed the specificity and mechanism by which 1,6HD disrupts the permeability barrier of NPCs in live bakers yeast cells. Exposure to 1,6HD (10 min, 0-5%) leads to gradual loss of the NPC permeability. This is likely a direct effect on the nuclear transport machinery as cell viability, the pH and ATP levels in the cytosol, as well as the appearance of mitochondria, Golgi, peroxisomes, ER, vacuoles, plasma membrane, nucleolus, secretory pathway and stress granules are not notably changed. There are however effects on the cytoskeleton and Hsp104 to be noted. While 1,6HD treatment does not lead to dissociation or degradation of NPC subunits, a massive relocation of multiple NTRs from NPCs does occur. This displacement quantitatively correlates with the increased passive permeability of NPCs. The loss of NTRs and associated cargo will present a major change in the macromolecular crowding and composition and hence the physicochemical properties of the central channel. We conclude that 1,6HD provides a surprisingly specific intervention to temporarily permeate NPCs and we present evidence that the mechanism includes release of NTRs from the NPCs.

molecular biology↗

Nuclear transport under stress phenocopies transport defects in models of C9Orf72 ALS

The nucleus is the hallmark of eukaryotic life and transport to and from the nucleus occurs through the nuclear pore complex (NPC). There is a multitude of data connecting the nuclear transport machinery - i.e. the NPCs and associated nuclear transport factors - to neurodegenerative diseases, but the mechanisms are not well understood. Using Saccharomyces cerevisiae, we systematically studied how the expression of polyPR and polyGA related to C9Orf72 amyotrophic lateral sclerosis impacts the nuclear transport machinery. We measured the abundance and localization of NPC components and transport factors, and assessed the kinetics of import and export by four transport receptors. PolyPR and polyGA cause distinct, and transport receptor dependent effects. We compared the specific changes in transport to those obtained when cells were exposed to different stress situations or mutations. This comparison showed similar patterns of transport defects in cells lacking specific NTRs and cells expressing polyPR. In contrast, polyGA expressing cells bear resemblance to stress conditions where energy maintenance is decreased. The similarity of the patterns of transport deficiencies suggests that polyPR has a direct effect on nuclear transport via NTRs, while polyGA impacts the energy state of the cell and subsequently changes transport.

cell biology↗

A precise and general FRET-based method for monitoring structural transitions in protein self-organization

Proteins assemble into a tremendous variety of dynamic and functional structures. Sensitive measurements directly in cells with a high spatiotemporal resolution are needed to distinguish these different assemblies. Here, we demonstrate precise and continuous monitoring of cytoplasmic protein self-assemblies and their structural transitions. Intermolecular FRET with both the donor and acceptor protein at the same target protein provides high sensitivity while retaining the advantage of straightforward ratiometric imaging. We measure different assembly structures, transient intermediate states kinetics, and assembly formation resolved in space and time. Specifically, the method recapitulates that i) the mutant Huntingtin exon1 (mHttex1) protein first forms low-FRET and presumably less ordered assemblies in yeast and human cells, which develop into high-FRET aggregates, ii) the chaperone DNAJB6b prevents low-FRET mHttex1 assemblies, yet coassembles with mHttex1 aggregates, and iii) FUS condensates have mutation-dependent nanoscopic structures. FACS measurements allow assembly measurement in a high-throughput manner crucial for screening efforts, while fluorescence microscopy provides spatiotemporally-resolved measurements on the single-condensate level during a cells lifetime to assess the biological consequences. Implementation in other native or non-native proteins could provide insight into many studies involving protein condensation or aggregation.

biophysics↗

A physicochemical roadmap of yeast replicative aging

Cellular aging is a multifactorial process that is characterized by a decline in homeostatic capacity, best described at the molecular level. Physicochemical properties such as pH and macromolecular crowding, are essential to all molecular processes in cells and require maintenance. Whether a drift in physicochemical properties contributes to the overall decline of homeostasis in aging is not known. Here we show that the cytosol of yeast cells acidifies modestly in early aging and sharply after senescence. Using a macromolecular crowding sensor optimized for long-term FRET measurements, we show the macromolecular crowding changes less in longer-lived cells in contrast to shorter-lived cells. While the average pH and crowding levels change only modestly with aging, we observe drastic changes in organellar volume, leading to crowding on the {micro}m scale, which we term organellar crowding. Our measurements provide an initial framework of physicochemical parameters of replicatively-aged yeast cells.

biophysics↗