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Biology subjects

Umetsu, D.

Publications and source records attributed to Umetsu, D..

2 recordsLinked to original sources

Nutrient-driven dedifferentiation of enteroendocrine cells promotes adaptive intestinal growth

Post-developmental organ resizing improves organismal fitness under constantly changing nutrient environments. Although stem cell abundance is a fundamental determinant of adaptive resizing, our understanding of its underlying mechanisms remains primarily limited to the regulation of stem cell division. Here we demonstrate that nutrient fluctuation induces dedifferentiation in the Drosophila adult midgut to drive adaptive intestinal growth. From lineage tracing and single-cell RNA-sequencing, we identify a subpopulation of enteroendocrine cells (EEs) that convert into functional intestinal stem cells (ISCs) in response to dietary glucose and amino acids by activating the JAK-STAT pathway. Genetic ablation of EE-derived ISCs severely impairs ISC expansion and midgut growth despite the retention of resident ISCs, and in silico modeling further indicates that EE dedifferentiation enables efficient increase in the midgut cell number while maintaining epithelial cell composition. Our findings uncover a physiologically-induced dedifferentiation that ensures ISC expansion during adaptive organ growth in concert with nutrient conditions.

developmental biology↗

Estimation of crossbridge-state during cardiomyocyte beating using second harmonic generation

Estimation of dynamic change of crossbridge formation in living cardiomyocytes is expected to provide crucial information for elucidating cardiomyopathy mechanisms, efficacy of an intervention, and other parameters. Here, we developed an assay system to dynamically measure second harmonic generation (SHG) polarization in pulsating cardiomyocyte and proved that the SHG anisotropy derived from myosin filaments in disease-model cardiomyocytes depended on their crossbridge status, providing an evaluation method for myosin force generation. Experiments utilizing an inheritable mutation that induces excessive myosin-actin interactions revealed that the correlation between sarcomere length and SHG anisotropy represents crossbridge formation ratio during pulsation. Furthermore, the present method found that ultraviolet irradiation induced an increased population of attached crossbridges that lost force-generating ability upon myocardial differentiation, causing acquired dysfunction. Taking an advantage of infrared two-photon excitation in SHG microscopy, myocardial dysfunction could be intravitally evaluated in a Drosophila disease model. Thus, along with the establishment of the methodology, we successfully demonstrated the applicability and effectiveness of the present method to evaluate the actomyosin activity of a drug or genetic defect on living cardiomyocytes.

biophysics↗