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Biology subjects

Sadakane, K.

Publications and source records attributed to Sadakane, K..

2 recordsLinked to original sources

Mouse pulmonary pathological characteristics induced by Asian-mineral dust transported with Coniothyrium fuckelii at a high altitude of 2,000 meters

Asian sand dust (ASD) events are known to transport not only mineral particles but also bioaerosols such as fungi across East Asia, posing complex respiratory health risks. Previously, we isolated Coniothyrium fuckelii (Strain Con-15H316)--a dematiaceous phytopathogenic fungus--from the ASD samples collected at an altitude of 2000 m over the Noto Peninsula, Japan. While Con-15H316 elicited potent immunological responses in our earlier cytokine-focused studies, its histopathological impact on mammalian lungs remained uncharacterized. Here, we re-evaluated formalin-fixed murine lung tissues from mice intratracheally administered heat-treated ASD (H-ASD: only mineral particles), Con-15H316, and Con-15H316 in combination with H-ASD. H-ASD alone induced macrophage-dominant alveolar granulomas, and Con-15H316 alone triggered peribronchiolitis with eosinophilic infiltration. Strikingly, co-exposure resulted in a qualitatively distinct and synergistically worsened phenotype, featuring neutrophil-rich suppurative alveolar pneumonia, granulomas, and peribronchiolitis. Bronchoalveolar lavage fluid (BALF) analysis revealed marked co-elevation of lactate dehydrogenase (LDH) and CCL2 (C-C motif chemokine 2, also known as monocyte chemoattractant protein-1, MCP-1), suggesting concurrent tissue injury and monocyte-driven immune activation. To elucidate the cellular origin of the CCL2 protein, we reanalyzed two publicly available single-cell RNA-seq datasets, identifying monocytes and interstitial macrophages as the dominant Ccl2-expressing populations in microbially injured lungs. Although C. fuckelii has been recognized generally as a plant pathogen, this study exhibited the first histological evidence of the potential of this fungus to induce or exacerbate mammalian lung injury, especially in combination with mineral dust. Our findings uncover a novel, non-allergic alveolar injury phenotype associated with microbial-particulate co-exposure, expanding current toxicological paradigms beyond pathologies associated with excessive immune reactions to inhaled particulates and bioaerosols.

pathology↗

Membrane-enhanced repulsive interactions regulate protein diffusion in cell-size space

Intracellular molecular organization is often explained by attractive interactions driving clustering and phase separation. Although consideration of repulsive forces is essential in physics, their roles remain unclear in cellular contexts. Here, we demonstrated the fundamental role of repulsion in regulating protein diffusion within cell-size space. By analyzing negatively charged protein diffusion in bulk solutions and in cell-size spaces with membranes, we revealed that membrane-enhanced repulsion inhibited protein diffusion in cell-size spaces. This was due to the amplified electrostatic interactions among proteins because of the large membrane area-to-volume ratio. Notably, ATP, a cellular central energy source, further inhibited protein diffusion in cell-size spaces, whereas protein wave propagation on the membrane counteracted this inhibition. These findings suggest an active regulatory mechanism restoring molecular mobility by dynamically adjusting membrane-enhanced repulsive forces. Our study challenges the traditional emphasis on attractive interactions, highlighting repulsion as a critical tunable factor governing molecular transport and spatial organization in cells. TeaserProtein diffusion within crowded cell-size spaces is tuned by membrane-enhanced repulsion and its active regulation.

biophysics↗