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Komatsu-Hirota, S.

Publications and source records attributed to Komatsu-Hirota, S..

4 recordsLinked to original sources

KEAP1 retention in phase-separated p62 bodies drives liver damage in autophagy-deficient conditions

Phase-separated p62 bodies activate NRF2, a key transcription factor for antioxidant response, by sequestering KEAP1, which targets NRF2 for degradation. Although p62 bodies containing KEAP1 are degraded by autophagy, they accumulate in various liver disorders. Their precise disease role remains unclear. We show that excessive KEAP1 retention in p62 bodies and NRF2 activation are major causes of liver damage when autophagy is impaired. In mice with weakened or blocked p62-KEAP1 interactions, KEAP1 retention and NRF2 activation under autophagy-deficient conditions were suppressed. Transcriptome and proteome analyses revealed that NRF2 targets upregulated by autophagy suppression normalized in p62 mutants unable to bind KEAP1. Autophagy deficiency caused organelle accumulation, especially of the ER, regardless of p62 mutation. Liver damage and hepatomegaly from autophagy suppression markedly improved in p62 mutants, particularly those with blocked KEAP1 binding. These findings highlight excessive KEAP1 retention in p62 bodies and defective organelle turnover as key drivers of liver pathology, underscoring the significance of phase separation in vivo.

cell biology↗

Loss of SPNS1, a lysosomal transporter, in the nervous system causes dysmyelination and white matter dysplasia

Protein spinster homolog 1 (SPNS1) is a lysosomal transporter of lysophospholipids and sphingosine, which has recently been identified to be mutated in patients with neurodegeneration. However, its physiological role, especially in the nervous system, remains largely unknown. In this study, we generated, for the first time, nervous system-specific Spns1 knockout mice, Spns1flox/flox;nestin-Cre, and found that the mutant mice develop neurological symptoms, such as epilepsy, and growth retardation, and die by 5 weeks of age. The mutant mice exhibited dysmyelination and oligodendrocyte shedding, while maintaining the neurons. Mutant mouse brains showed accumulation of lysophospholipids, predominantly in regions, such as the olfactory bulb and hippocampus. Furthermore, whereas sphingosine accumulated in the mutant mouse brain, the levels of ceramide and sphingoglycolipids, which are the main myelin components, were decreased. Our findings imply that abnormal sphingosine metabolism causes dysmyelination and white matter dysplasia in brain-specific Spns1-knockout mice, and indicate a possible role of SPNS1 mutation in the pathogenesis of congenital cerebral white matter dysplasia in humans.

cell biology↗

Mechanistic insights into the UFM1 E3 ligase complex in ufmylation and ribosome-associated protein quality control

Ubiquitin-fold modifier 1 (UFM1) is a ubiquitin-like protein covalently conjugated with intracellular proteins through ufmylation, similar to ubiquitylation. Ufmylation is involved in processes such as endoplasmic reticulum (ER)-associated protein degradation, ribosome-associated protein quality control (RQC) at the ER (ER-RQC), and ER-phagy. However, it remains unclear how ufmylation regulates such distinct ER-related functions. Herein, we provide insights into the mechanism of the UFM1 E3 complex in not only ufmylation but also ER-RQC. The E3 complex consisting of UFL1 and UFBP1 interacted with UFC1, UFM1 E2, and subsequently CDK5RAP3, the last of which is an adaptor for ufmylating ribosomal subunit RPL26. When CDK5RAP3 was absent from the E3 complex, UFBP1 ufmylation occurred, a process thought to drive ER-phagy. Further, upon treatment with anisomycin, an inducer of disome formation, the UFM1 E3 complex associated with ufmylated RPL26 on the 60S ribosomal subunit through the UFM1-interacting region of UFBP1. Loss of E3 components or disruption of the interaction between UFBP1 and ufmylated RPL26 attenuated ER-RQC. These results clarify the molecular mechanism of the UFM1 system and provide new insights into the role of ufmylation.

biochemistry↗

Phosphorylation of phase-separated p62 bodies by ULK1 activates a redox-independent stress response

NRF2 is a transcription factor responsible for antioxidant stress responses that is usually regulated in a redox-dependent manner. p62 bodies formed by liquid-liquid phase separation contain Ser349-phosphorylated p62, which participates in the redox-independent activation of NRF2. However, the regulatory mechanism and physiological significance of phosphorylation remain unclear. Herein, we identify ULK1 as a kinase responsible for phosphorylation of p62. ULK1 co-localizes with p62 bodies, and directly interacts with p62. This phosphorylation allows KEAP1 to be retained within p62 bodies, activating NRF2. p62S351E/+ mice are phosphomimetic knock-in mice in which Ser351 corresponding to human Ser349 is replaced by Glu. These mice, but not phosphodefective p62S351A/S351A mice, exhibit NRF2 hyperactivation and growth retardation, the latter caused by malnutrition and dehydration due to obstruction of the esophagus and forestomach secondary to hyperkeratosis. p62S351E/+ mice are a phenocopy of systemic Keap1-knockout mice. Our results expand our understanding of the physiological importance of the redox-independent NRF2 activation pathway and provide new insight into the role of phase separation in this process.

cell biology↗