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Pernia-Solanilla, C.

Publications and source records attributed to Pernia-Solanilla, C..

2 recordsLinked to original sources

Progenitor Timing Shapes NG2-Glia Fate and Oligodendrocyte Differentiation

The developmental identity and fate of NG2-glia remain debated: are they transient oligodendrocyte precursors or a distinct, self-renewing glial population? Here, we examined how the temporal origin of progenitors influences NG2-glia and oligodendrocyte lineages in the dorsal cortex. Using in utero and postnatal StarTrack electroporation at E12, E14, E16, and P0, we traced their progeny to P30 and P90, performing a clonal analysis in adult mouse brains. Progenitors labeled at E16 generated significantly larger and more widely dispersed NG2-glia clones, whose contribution increased from P30 to P90, suggesting enhanced proliferative capacity. In contrast, P0-derived progenitors showed reduced NG2-glia maintenance and a strong bias toward oligodendrocyte differentiation, forming larger OL clones. Clonal heterogeneity, including mixed NG2-glia/OL clones, was observed across all stages but peaked at E16. These results identify E16 as a critical window for NG2-glia expansion and self-renewal, while P0 marks a transition toward oligodendrocyte lineage restriction, establishing a developmental framework for adult NG2-glia heterogeneity and maybe a regenerative potential. Significance StatementWe show that developmental timing and progenitor identity shape NG2-glia and oligodendrocyte fates in the postnatal cortex. NG2 progenitors at E16 generate expansive, widely dispersed NG2-glia clones, whereas P0 progenitors bias toward oligodendrocyte differentiation, revealing critical temporal windows that establish long-term glial heterogeneity.

neuroscience↗

Progenitor Heterogeneity in the Developing Cortex: Divergent and Complementary Roles of NG2-Progenitors and RGCs

Brain development is a highly coordinated process that arises from a pool of neural progenitor cells (NPCs). Traditionally, research has largely focused on Radial Glial Cells (RGCs), which produce neurons and glia. However, recent findings revealed that the progenitor landscape is more complex and heterogeneous than previously understood. Emerging evidence indicates that NG2 glia, also known as oligodendrocyte precursor cells (OPCs), may contribute to generating other cell types, including neurons and astrocytes. This suggests that NG2 glia, or a specific subset, may act as multipotent NPCs, expanding their role in brain development beyond their known lineage. We explore the cellular, molecular, and functional differences between NG2- and GFAP- expressing progenitors (NG2-NPCs and GFAP-NPCs) across different developmental stages. Using in-utero electroporation and StarTrack technology, we examined whether these progenitors represent distinct populations and analyzed how their differences influence their functional roles based on cell fate decisions. Our findings uncover functional divergence between NG2-NPCs and GFAP-NPCs, particularly regarding their cell fate decisions. While both populations contribute to the formation of neurons and glial cells, the progeny of NG2-NPCs and GFAP-NPCs differ markedly in their contributions to neurogenesis and gliogenesis. Further, we conducted a comprehensive transcriptomic analysis of NG2-NPCs and GFAP-NPCs to elucidate the molecular basis for these functional differences. This study demonstrates distinct gene expression profiles. While NG2-NPCs show enrichment for genes associated with neurogenesis and synaptic transport, GFAP-NPCs displayed upregulation of genes involved in progenitor cell maintenance. This indicates that each progenitor type is governed by distinct molecular programs, shaping their contributions to brain architecture and function. In summary, our findings underscore the divergent roles of NG2-NPCs and GFAP-NPCs in driving cellular diversity and functional maturation in brain development, providing new insights into how these progenitor populations contribute to neural diversity and brain function. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=111 SRC="FIGDIR/small/635022v1_ufig1.gif" ALT="Figure 1"> View larger version (43K): org.highwire.dtl.DTLVardef@26a85corg.highwire.dtl.DTLVardef@1f73c67org.highwire.dtl.DTLVardef@9e9767org.highwire.dtl.DTLVardef@1e62c22_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗