The transcriptomic landscape of spinal V1 interneurons reveals a role for En1 in specific elements of motor output
Trevisan, A. J.; Han, K.; Chapman, P.; Kulkarni, A. S.; Hinton, J. M.; Ramirez, C.; Klein, I.; Gatto, G.; Gabitto, M. I.; Menon, V.; Bikoff, J. B.
Show abstract
Neural circuits in the spinal cord are composed of diverse sets of interneurons that play crucial roles in shaping motor output. Despite progress in revealing the cellular architecture of the spinal cord, the extent of cell type heterogeneity within interneuron populations remains unclear. Here, we present a single-nucleus transcriptomic atlas of spinal V1 interneurons across postnatal development. We find that the core molecular taxonomy distinguishing neonatal V1 interneurons perdures into adulthood, suggesting conservation of function across development. Moreover, we identify a key role for En1, a transcription factor that marks the V1 population, in specifying one unique subset of V1Pou6f2 interneurons. Loss of En1 selectively disrupts the frequency of rhythmic locomotor output but does not disrupt flexion/extension limb movement. Beyond serving as a molecular resource for this neuronal population, our study highlights how deep neuronal profiling provides an entry point for functional studies of specialized cell types in motor output.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Cellular and transcriptional trajectories of neural fate specification in sea anemone uncover two modes of adult neurogenesis 96%
- St18 specifies globus pallidus projection neuron identity in MGE lineage 96%
- Integrating central and peripheral neurons in elongating multi-lineage-organized gastruloids 96%
Similar papers in this journal
- Spinal motor neuron development and metabolism are transcriptionally regulated by Nuclear Factor IA 97%
- Integrated single-cell transcriptomic and epigenetic analyses of cell-state transition and lineage commitment in the embryonic mouse cerebellum 96%
- Cell-extrinsic controls over neocortical neuron fate and diversity 95%
Similar papers in this journal
- Directed differentiation of functional corticospinal-like neurons from endogenous SOX6+/NG2+ cortical progenitors 96%
- Spinal dI2 interneurons regulate the stability of bipedal stepping 96%
- Cellular taxonomy and spatial organization of the ventral posterior hypothalamus reveals neuroanatomical parcellation of the mammillary bodies 95%
"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.