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Tatsumi, K.

Publications and source records attributed to Tatsumi, K..

2 recordsLinked to original sources

Selective and controlled myelin formation by individual interfascicular oligodendrocytes in the mouse corpus callosum

Single oligodendrocytes produce myelin sheath around multiple axons in the central nervous system. Interfascicular oligodendrocytes (IOs) in the white matter are aligned in rows and facilitate nerve conduction, but their detailed morphologies remain largely unknown. In the present study, we three-dimensionally reconstructed seven IOs in a row in the murine corpus callosum using serial block face-scanning electron microscopy (SBF-SEM). These morphologically polarized IOs extended a thick process with numerous branches from the cytoplasm-rich part of the cell and formed myelin sheaths preferentially around distant axons. The multiple branched processes of each IO myelinated multiple axons having similar diameters with restricted myelin thicknesses, indicating that individual IOs have their own myelination profiles even on distinct target neurons. Consistent with the finding, the IOs transduced and visualized with the rabies viral vector expressing GFP showed statistically significant variations in the myelination patterns. We further reconstructed the sheath immediately adjacent to those derived from the seven IOs; the thicknesses of both sheaths were significantly correlated despite emanating from different IOs. These results proposed a rule that myelination by individual IOs, regulated by interaction with ensheathed axons, is selective in specific axons and at the same time orchestrated at the whole cell level. Main pointsCallosal oligodendrocytes form myelin sheaths preferentially around distant axons. Each oligodendrocyte myelinate multiple axons having similar diameters with restricted myelin thicknesses. The thicknesses of adjacent myelin sheaths are similar.

neuroscience

Developmental hourglass and heterochronic shifts in fin and limb development

How genetic changes are linked to morphological novelties and developmental constraints remains elusive. Here we investigate genetic apparatuses that distinguish fish fins from tetrapod limbs by analyzing transcriptomes and open chromatin regions (OCRs). Specifically, we compare mouse forelimb buds with pectoral fin buds of a slowly evolving species, the brown-banded bamboo shark (Chiloscyllium punctatum). A transcriptomic comparison with an accurate orthology map reveals both a mass heterochrony and hourglass-shaped conservation of gene expression between fins and limbs. Furthermore, chromatin-accessibility data indicate that conserved regulatory sequences are most active during mid-stage limb development. During this stage, stage-specific and tissue-specific OCRs are also enriched. Together, early and late stages of fin/limb development are more permissive to mutations, which may have contributed to the major morphological changes during the fin-to-limb evolution. We also hypothesize that the middle stages are constrained by regulatory complexity that results from dynamic and tissue-specific transcriptional controls.

evolutionary biology