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Tsutsumi, H.

Publications and source records attributed to Tsutsumi, H..

3 recordsLinked to original sources

Cytoplasmic mRNA granules regulate cell fate decisions during PINK1/Parkin mitophagy

Mitophagy is generally considered to promote cell survival by removing damaged mitochondria in response to mitochondrial stress, whereas apoptosis occurs during prolonged stress. However, the mechanisms that determine cell survival and cell death under these stress conditions remain poorly understood. Here, we showed that cytoplasmic mRNA granules, designated as mitophagy-induced mRNA granules (mitoRGs), were formed transiently and played an important role in cell fate decisions during PINK1/Parkin-dependent mitophagy. Although some components, such as G3BP1, were shared with stress granules (SGs), mitoRGs were distinct from SGs because mitoRG assembly required the mitochondrial protein phosphatase PGAM5. In response to mitochondrial stress, PGAM5 was released into the cytosol from mitochondria and incorporated into mitoRGs, but was then released back into the cytosol during mitoRG disassembly following prolonged mitochondrial stress, corresponding with the induction of apoptosis. Impairment of mitoRG assembly through G3BP1 depletion sensitized cells to apoptosis during mitophagy in a PGAM5-dependent manner. These results suggest that mitoRGs regulate cell fate decisions by spatiotemporally controlling PGAM5 and its pro-apoptotic activity during PINK1/Parkin mitophagy.

cell biology↗

Harnessing the Biosynthetic Diversity of Actinomycetes: Discovery of Unique Natural Products through Comparative Genomic and Metabolic Analysis

Actinomycetes, rich in biosynthetic gene clusters (BGCs), are important sources of natural products (NPs). However, the rate of discovering novel NPs from actinomycetes has declined, indicating the need for a new strategy to obtain NPs. Herein, we present a strategy for the efficient discovery of novel NPs. First, we performed a comprehensive analysis of BGCs in actinomycetes, evaluating the average number and types of BGCs per genus to identify prolific NP producers. Our analysis revealed that certain actinomycetes strains, such as those in the family Pseudonocardiaceae, possess a greater number of BGCs than Streptomyces. In addition, these strains tend to possess strain-specific BGCs compared with others. To facilitate the identification of strain-specific compounds, we developed a comparative metabolic analysis method using molecular networking. Applying this method to eight Pseudonocardiaceae strains, we successfully discovered two novel peptides, lentindoles A (1) and B (2), featuring a 6/5/6 and 6/5/5 tricyclic ring system, respectively, along with their possible biosynthetic precursor, lentindole C (3). Our result demonstrates that the effectiveness of our developed strategy, which is expected to accelerate the discovery of novel NPs.

microbiology↗

Single-nucleus transcriptional and chromatin accessibility analyses of maturing mouse Achilles tendon uncover the molecular landscape of tendon stem/progenitor cells

Tendons and ligaments are crucial connective tissues linking bones and muscles, yet achieving full functional recovery after injury remains challenging. We investigated the characteristics of tendon stem/progenitor cells (TSPCs) by focusing on the declining tendon repair capacity with growth. Using single-cell RNA sequencing on Achilles tendon cells from 2-and 6-week-old mice, we identified Cd55 and Cd248 as novel surface antigen markers for TSPCs. Combining single-cell RNA sequencing with single-nucleus RNA and ATAC sequencing analyses revealed that Cd55 and Cd248 positive fractions in tendon tissue represent TSPCs, as confirmed by their expression of established TSPC markers, with this population decreasing at 6 weeks. We also identified candidate upstream transcription factors regulating these fractions. Functional analyses of isolated CD55/CD248 positive cells demonstrated high clonogenic potential and tendon differentiation capacity, forming functional tendon-like tissue in vitro. This study establishes CD55 and CD248 as novel TSPC surface antigens, potentially advancing tendon regenerative medicine and contributing to the development of new treatment strategies for tendon and ligament injuries.

developmental biology↗