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Isogai, E.

Publications and source records attributed to Isogai, E..

3 recordsLinked to original sources

Progressive Lineage Restriction of Bergmann Glia-like Progenitors during Postnatal Cerebellar Development

Bergmann glia-like progenitors (BGLPs) are transient astroglial progenitors in the postnatal cerebellum, but how their lineage potential changes during development remains incompletely understood. Our previous electroporation-based study suggested that P0 BGLPs possess broader lineage potential than P6 BGLPs. Here, we performed recombination-based lineage tracing by cerebellar surface application of tamoxifen to Ai9/+; GlastCreERT2/+ mice and temporally analyzed the progeny of BGLPs labeled at P0, P3, P6, and P8. We found that BGLPs undergo progressive lineage restriction during postnatal development. P0 BGLPs gave rise to Bergmann glial cells (BGs), inner granule cell layer astrocytes (IGL astrocytes), white matter astrocytes (WM astrocytes), and molecular layer inhibitory neurons (ML-INs), confirming our previous electroporation-based findings. In contrast, P3 BGLPs generated BGs, IGL astrocytes, and WM astrocytes, whereas P6 BGLPs generated BGs and IGL astrocytes, and P8 BGLPs generated predominantly BGs. Thus, BGLP lineage output was progressively restricted from four progeny categories at P0 to a predominantly BG-restricted output by P8, suggesting that BGLPs dynamically adjust their cellular output during postnatal cerebellar maturation. Additional temporal analyses suggested that ML-INs are unlikely to be generated directly from P0 BGLPs, but may arise indirectly through astrocyte-like progenitors (AsLPs) and inhibitory neuron progenitors (INPs). These findings identify postnatal BGLPs as a useful in vivo model for studying progressive lineage restriction and stage-specific cellular supply during cerebellar development.

developmental biology↗

MEIS1 is Required for Establishing Bergmann Glia-Specific Properties in the Developing Cerebellum

Compared to normal multipolar astrocytes, Bergmann glial cells (BGs), specifically differentiated astrocytes in the cerebellum, possess unique unipolar morphology and additional cellular functions. However, the molecular mechanisms that confer BG-specific properties onto normal multipolar astrocytes remain unknown. Here, we show that the transcription factor, MEIS1, is involved in BGs acquiring their unique characteristics. Targeted disruption of Meis1 in the whole cerebellum or astroglial lineage cells resulted in a marked reduction of BGs accompanied by an increase in multipolar astrocytes in mice. Postnatal deletion of Meis1 in Bergmann glia-like progenitors (BGLPs), which produce both BGs and multipolar astrocytes, suppressed their differentiation into BGs while promoting into multipolar astrocytes. Single-cell RNA sequencing, immunohistochemistry, and ChIP-Atlas analyses indicated that MEIS1 directly upregulates expression of BG-specific genes, including Vimentin and Zeb2, which are known to contribute to the correct localization and the unipolar process formation of BGs. These findings suggest that MEIS1 promotes the endowment of BG-specific properties to astrocytes by controlling the expression of BG-specific genes, thereby ensuring proper differentiation of BGLPs into BGs.

developmental biology↗

Lineage Analysis and Molecular Characterization of Bergmann Glia-like Progenitors in the Postnatal Mouse Cerebellum using in vivo Electroporation and Spatial Transcriptomics

In the mammalian cerebellum, three types of astroglial cells--Bergmann glial cells (BGs), inner granule cell layer (IGL) astrocytes, and white matter (WM) astrocytes--arise in postnatal timing from two types of progenitors: Bergmann glia-like progenitors (BGLPs) and astrocyte-like progenitors (AsLPs). In contrast to AsLPs, which are commonly observed in other brain regions, BGLPs have not been well studied. Here we investigate their dynamic changes in number, their differentiation abilities and their gene expression profiles during cerebellar development. BGLPs and AsLPs decrease in number as development progresses from P0, and are almost absent by P10. We developed an electroporation-based method to investigate the progeny cells of BGLPs. We found that BGLPs at P6 differentiate into BGs and IGL astrocytes, but not into WM astrocytes, which is consistent with a previous report. However, BGLPs at P0 were observed to differentiate into not only BGs and IGL astrocytes, but also WM astrocytes, indicating that P0 BGLPs possess wider pluripotency than P6 BGLPs. By conducting spatial transcriptomic analysis of the cerebellum at P0 and P6 with over 5,000 probes (Xenium, 5k), we successfully obtained clusters corresponding to BGLPs at P0 and P6, respectively. Further informatics analyses suggested that P0 BGLPs exhibit more stem cell-like features, while P6 BGLPs show a shift toward BG-like characteristics. This study, which includes transcriptome big data, will contribute to understanding the differentiation of BGs and astrocytes, as well as other types of cells, during postnatal cerebellar development.

developmental biology↗