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Du, J. X.

Publications and source records attributed to Du, J. X..

2 recordsLinked to original sources

A single-cell transcriptomic atlas of developing inhibitory neurons reveals expanding and contracting modes of diversification.

The cerebral cortex relies on vastly different types of inhibitory neurons to compute. How this diversity emerges during development remains an open question. The rarity of individual inhibitory neuron types often leads to their underrepresentation in single-cell RNA sequencing (scRNAseq) datasets, limiting insights into their developmental trajectories. To address this problem, we developed a computational pipeline to enrich and integrate rare cell types across multiple datasets. Applying this approach to somatostatin-expressing (SST+) inhibitory neurons--the most diverse inhibitory cell class in the cortex--we constructed the transcriptomic maps, Dev-SST-v1 and Dev-SST-v2, a comprehensive resource containing mouse scRNAseq data of over 51,000 SST+ neurons. We identify three principal groups--Martinotti cells (MCs), non-Martinotti cells (nMCs), and long-range projecting neurons (LRPs)--each following distinct diversification trajectories. MCs commit early, with distinct embryonic and neonatal clusters that map directly to adult counterparts. In contrast, nMCs diversify gradually, with each developmental cluster giving rise to multiple adult cell types. LRPs follow a unique contracting mode. Initially, two clusters are present until postnatal day 5 (P5), but by P7, one type is eliminated through programmed cell death, leaving a single surviving population. This transient LRP type is also found in the fetal human cortex, revealing an evolutionarily conserved feature of cortical development. Together, these findings highlight three distinct modes of SST+ neuronal diversification--invariant, expanding, and contracting--offering a new framework to understand how the large repertoire of inhibitory neurons emerges during development.

neuroscience↗

MicroRNAs are necessary for the emergence of Purkinje cell identity

Brain computations are dictated by the unique morphology and connectivity of neuronal subtypes, features established by closely timed developmental events. MicroRNAs (miRNAs) are critical for brain development, but current technologies lack the spatiotemporal resolution to determine how miRNAs instruct the steps leading to subtype identity. Here, we developed new tools to tackle this major gap. Fast and reversible miRNA loss-of-function revealed that miRNAs are necessary for cerebellar Purkinje cell (PC) differentiation, which previously appeared miRNA-independent, and resolved distinct miRNA critical windows in PC dendritogenesis and climbing fiber synaptogenesis, key determinants of PC identity. To identify underlying mechanisms, we generated a mouse model, which enables precise mapping of miRNAs and their targets in rare cell types. With PC-specific maps, we found that the PC-enriched miR-206 drives exuberant dendritogenesis and modulates synaptogenesis. Our results showcase vastly improved approaches for dissecting miRNA function and reveal that many critical miRNA mechanisms remain largely unexplored. HighlightsO_LIFast miRNA loss-of-function with T6B impairs postnatal Purkinje cell development C_LIO_LIReversible T6B reveals critical miRNA windows for dendritogenesis and synaptogenesis C_LIO_LIConditional Spy3-Ago2 mouse line enables miRNA-target network mapping in rare cells C_LIO_LIPurkinje cell-enriched miR-206 regulates its unique dendritic and synaptic morphology C_LI

neuroscience↗