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Yabuki, Y.

Publications and source records attributed to Yabuki, Y..

4 recordsLinked to original sources

ER sensing of lipid metabolism drives PRA family-dependent regulation of COPII vesicle transport

Newly synthesized secretory proteins and many lipids are transported from the endoplasmic reticulum (ER) to the Golgi prior to their ultimate destinations. The ER-to-Golgi transport must be tightly regulated during adaptation to environmental stress. However, the sensing mechanism and regulatory pathways governing the consecutive formation, budding and transportation of COPII vesicles from the ER remain insufficiently explored. Here, we present evidence indicating that COPII-mediated vesicle transport is transcriptionally controlled through the phosphatidic acid-dependent Opi1-Ino2/Ino4 regulatory circuit. Our analysis indicates that YIP3, a target gene of Ino2/Ino4, exerts a negative regulatory impact on COPII-mediated vesicle transport. Furthermore, we demonstrated that Ino2/Ino4 but not Yip3 modulates Sar1 activation, the initial step in COPII vesicle formation, whereas Yip3 hinders Sec16 assembly on the ER membrane, thereby implying that Ino2/Ino4 governs COPII-mediated trafficking at multiple steps. Thus, this study provides the first evidence for an ER sensing system that transcriptionally fine-tunes multiple steps of anterograde vesicular transport in response to alterations in lipid composition of the ER membrane.

cell biology↗

RNA G-quadruplexes and calcium ions synergistically induce Tau phase transition in vitro

Tau aggregation is a defining feature of neurodegenerative tauopathies, including Alzheimers disease, corticobasal degeneration, and frontotemporal dementia. This aggregation involves the liquid-liquid phase separation (LLPS) of Tau, followed by its sol-gel phase transition, representing a crucial step in aggregate formation both in vitro and in vivo. However, the precise cofactors influencing Tau phase transition and aggregation under physiological conditions (e.g., ion concentration and temperature) remain unclear. In this study, we unveil that nucleic acid secondary structures, specifically RNA G-quadruplexes (rG4s), and calcium ions (Ca2+) synergistically facilitated the sol-gel phase transition of human Tau under mimic intracellular ion conditions (140 mM KCl, 15 mM NaCl, and 10 mM MgCl2) at 37{square} in vitro. In the presence of molecular crowding reagents, Tau formed stable liquid droplets through LLPS, maintaining fluidity for 24 h under physiological conditions. Notably, cell-derived RNA promoted Tau sol-gel phase transition, with G4-forming RNA emerging as a crucial factor. Surprisingly, polyanion heparin did not elicit a similar response, indicating a distinct mechanism not rooted in electrostatic interactions. Further exploration underscored the significance of Ca2+, which accumulate intracellularly during neurodegeneration, as additional cofactors in promoting Tau phase transition after 24 h. Importantly, our findings demonstrate that rG4s and Ca2+ synergistically enhance Tau phase transition within 1 h when introduced to Tau droplets. In conclusion, our study illuminates the pivotal roles of rG4s and Ca2+ in promoting Tau aggregation under physiological conditions in vitro, offering insights into potential triggers for tauopathy.

biochemistry↗

Structural polymorphism of the nucleic acids in pentanucleotide repeats associated with CANVAS

Short tandem repeats are highly unstable, depending on repeat length, and the expansion of the repeat length in the human genome is responsible for repeat expansion disorders. Pentanucleotide AAGGG and ACAGG repeat expansions in intron 2 of the gene encoding replication factor C subunit 1 (RFC1) cause cerebellar ataxia, neuropathy, vestibular areflexia syndrome (CANVAS) and other phenotypes of late-onset cerebellar ataxia. Herein, we reveal the structural polymorphism of the RFC1 repeat sequences associated with CANVAS in vitro. Single-stranded AAGGG repeat DNA formed a hybrid-type G-quadruplex, whereas its RNA formed a parallel-type G-quadruplex with three layers. The RNA of the ACAGG repeat sequence formed double helical hairpin structures comprising C-G and G-C base pairs with A:A and GA:AG mismatched repeats. Furthermore, both pathogenic repeat RNAs formed more rigid structures than those of the non-pathogenic sequences. These findings provide novel insights into the structural polymorphism of the RFC1 repeat sequences, which may be closely related to the disease mechanism of CANVAS.

biophysics↗

RNA G-quadruplexes forming scaffolds for alpha-synuclein aggregation lead to progressive neurodegeneration

Synucleinopathies, including Parkinsons disease, dementia with Lewy bodies, and multiple system atrophy, are triggered by the aggregation of -synuclein, leading to progressive neurodegeneration1,2,3,4,5,6,7,8. However, the intracellular mechanism of -synuclein aggregation remains unclear. Here we show that assembly of RNA G-quadruplexes forming scaffolds for -synuclein aggregation, contributing to neurodegeneration. Purified -synuclein binds RNA G-quadruplexes directly through the N-terminus. RNA G-quadruplex itself undergoes phase separation and assembly by Ca2+, accelerating the sol-gel phase transition of -synuclein. In -synuclein preformed fibrils-treated neurons, RNA G-quadruplexes assembly composed of synaptic mRNAs co-aggregates with -synuclein upon Ca2+ excess influx into cytoplasm, eliciting synaptic dysfunction. Forced assembly of RNA G-quadruplexes using an optogenetic approach evokes -synuclein aggregation, neuronal dysfunction and neurodegeneration. Administration of 5-aminolevulinic acid, a prodrug of protoporphyrin IX that prevents phase separation of RNA G-quadruplexes9, attenuating -synuclein aggregation, neurodegeneration, and progressive motor deficits in -synuclein preformed fibrils-injected synucleinopathy mice. Together, assembly of RNA G-quadruplexes due to dysregulation of intracellular Ca2+ homeostasis accelerates -synuclein phase transition and aggregation may contribute to pathogenesis of synucleinopathies.

molecular biology↗