Neurogenin-2 Reprograms Human Microglial Lineage Cells into Neurons In Vitro and in Chimeric Brains
Jin, M.; Ma, Z.; Dang, R.; Zhang, H.; Xue, H.; Finkbeiner, S.; Liu, Y.; Jiang, P.
Show abstract
Progressive neuronal loss is a hallmark of many neurological disorders, yet the adult human brain has a limited capacity for endogenous neuronal replacement. Direct neuronal reprogramming represents an alternative strategy for generating new neurons. Microglia, the brains resident immune cells, are uniquely positioned as candidate cellular substrates due to their abundance, self-renewal capacity, high motility, and rapid recruitment to sites of injury. Here, using live-cell imaging and electrophysiological recordings, we show that human pluripotent stem cell (hPSC)-derived primitive macrophage progenitors (PMPs) and their microglial derivatives exhibit neuronal reprogramming competence. Inducible expression of NEUROG2 in hPSC-derived PMPs drives acquisition of neuronal morphology, sequential expression of early and mature neuronal markers, organization of synaptic proteins, and functional excitability characterized by action potential firing. Single-nucleus RNA sequencing reveals a continuous, directionally ordered reprogramming trajectory marked by suppression of myeloid transcriptional programs, progression through intermediate remodeling states, and progressive activation of neuronal gene regulatory networks, consistent with a regulated lineage conversion rather than partial identity switching. Using a xenotransplantation-based human microglia chimeric brain model, we further demonstrate that inducible NEUROG2 expression reprograms donor-derived human microglia toward a neuronal identity in vivo. Together, these findings establish human microglial lineage cells as a previously unexplored substrate for neuronal reprogramming, providing a conceptual framework for microglia-based strategies aimed at neuronal replacement and neural repair.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Iterative transcription factor screening enables rapid generation of microglia-like cells from human iPSC 97%
- Pluripotency-Independent Induction of Human Trophoblast Stem Cells from Fibroblasts 96%
- ZMYND11 Functions in Bimodal Regulation of Latent Genes and Brain-like Splicing to Safeguard Corticogenesis 96%
Similar papers in this journal
Similar papers in this journal
- Defining the cellular origin of seminoma by transcriptional and epigenetic mapping to the normal human germline 95%
- Variation of human neural stem cells generating organizer states in vitro before committing to cortical excitatory or inhibitory neuronal fates 95%
- TASOR expression in naive embryonic stem cells safeguards their developmental potential 95%
Similar papers in this journal
- Directed Differentiation of Human Pluripotent Stem Cells into Radial Glia and Astrocytes Bypasses Neurogenesis 97%
- High resolution multi-scale profiling of embryonic germ cell-like cells derivation reveals pluripotent state transitions in humans 96%
- Gene Regulatory Network Reconfiguration in Direct Lineage Reprogramming 95%
Similar papers in this journal
- Chromatin and gene-regulatory dynamics of the developing human cerebral cortex at single-cell resolution 94%
- Resolving the three-dimensional interactome of Human Accelerated Regions during human and chimpanzee neurodevelopment 94%
- Type I interferon responsive microglia shape cortical development and behavior 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.