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Warabi, E.

Publications and source records attributed to Warabi, E..

2 recordsLinked to original sources

Continuous Nuclear Export of p62/SQSTM1 Is Essential for Kidney Homeostasis

The selective autophagy receptor p62/SQSTM1 dynamically shuttles between the nucleus and cytoplasm through distinct nuclear localization and export signals, yet the physiological significance of this trafficking has remained unknown. Here, we generated mice carrying a deletion of the p62 nuclear export signal (dNES) to determine the in vivo role of p62 nuclear export. Homozygous dNES mice developed progressive podocyte injury, glomerulosclerosis, and fatal renal failure by 6-7 weeks of age, whereas heterozygous and dNES/- mice did not develop renal dysfunction. Loss of nuclear export caused constitutive nuclear accumulation of p62, accompanied by the formation of insoluble ubiquitin-positive aggregates and widespread alterations in the renal proteome, including activation of energy metabolism-related pathways and suppression of developmental programs. We previously demonstrated that the lipid peroxidation product 4-hydroxy-2-nonenal (4-HNE) inhibits the nuclear export receptor XPO1, resulting in nuclear retention of p62 in cultured cells. The present findings provide in vivo evidence that continuous nuclear export of p62 is indispensable for maintaining kidney homeostasis and reveal that excessive nuclear accumulation, rather than cytoplasmic depletion, underlies p62-mediated toxicity. Collectively, these findings establish continuous nuclear export of p62 as an essential mechanism for maintaining kidney homeostasis. Significance StatementThe adaptor protein p62/SQSTM1 continuously shuttles between the nucleus and cytoplasm, but the physiological significance of this trafficking has remained unknown. Here, we show that disrupting the nuclear export signal of p62 causes progressive podocyte injury, glomerulosclerosis, and fatal kidney failure through excessive nuclear accumulation and aggregate formation. In contrast, dNES/+ and dNES/- mice remain healthy, demonstrating that excessive nuclear accumulation, rather than cytoplasmic depletion, drives disease. These findings identify continuous nuclear export as a fundamental mechanism that prevents toxic nuclear accumulation of p62 and preserves kidney homeostasis.

cell biology↗

Dual-specificity phosphatases 13 and 27 as key switches in muscle stem cell transition from proliferation to differentiation

Muscle regeneration depends on muscle stem cell (MuSC) activity. Myogenic regulatory factors, including myoblast determination protein 1 (MyoD), regulate the fate transition of MuSCs. However, the direct target of MYOD in the process is not completely clear. Using previously established MyoD knock-in (MyoD-KI) mice, we revealed that MyoD targets dual-specificity phosphatase (Dusp) 13 and Dusp27. In Dusp13:Dusp27 double knock-out (DKO) mice, the ability for muscle regeneration after injury was reduced. Moreover, single-cell RNA sequencing of MyoD-high expressing MuSCs from MyoD-KI mice revealed that Dusp13 and Dusp27 are expressed only in specific populations within MyoD-high MuSCs, which also express Myogenin. Overexpressing Dusp13 in MuSCs causes premature muscle differentiation. Thus, we propose a model where DUSP13 and DUSP27 contribute to the fate transition of MuSCs from proliferation to differentiation during myogenesis. Significance StatementMYOD protein is not expressed in quiescent muscle stem cells but accumulates rapidly following muscle injury, leading to the proliferation of myogenic progenitors for differentiation. However, the direct targets of MYOD, aside from myogenin, which play roles in myogenic differentiation remain incompletely understood. Using previously established MyoD knock-in mice and single-cell RNA sequencing, we discovered that Dusp13 and Dusp27 are potential target genes of MYOD that promote myogenesis during muscle regeneration in adult mice.

cell biology↗