Collapse of embryonic identities and emergence of functional diversity during motor neuron maturation

Post-mitotic neurons undergo a protracted maturation period as they extend axons to their targets, form synapses, and refine electrophysiological properties. We use temporal single-nucleus multiome sequencing to map molecular underpinnings of maturation in mouse skeletal motor neurons (SMNs). Our data show that SMNs undergo transcriptional changes as they mature, but more strikingly, we find that diversity within SMNs changes dramatically as they transition from axon targeting to forming functional circuits. Embryonic SMNs comprise dozens of transcriptional subclusters representing known motor columns and pools, which utilize specific transcriptional programs to innervate unique muscle targets. However, this transcriptional diversity is largely lost by early postnatal life, and SMNs re-diversify into adult alpha, gamma, and type3 identities, which innervate different fibers within each muscle to regulate movement. This work shows that transcriptional subtype diversity within a neuron type, and the underlying regulatory programs, can transform completely during maturation to accommodate changing functional needs.

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Publication Details

Journal
Cell Reports
Published
2026-09-30
DOI
https://doi.org/10.1016/j.celrep.2026.118062
Primary Topic
Neurogenetic and Muscular Disorders Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Collapse of embryonic identities and emergence of functional diversity during motor neuron maturation

Tulsi Patel, Courtney M Stains, Hsuan-Ming Chi, Yijia Chen et al.
Cell Reports
Neurogenetic and Muscular Disorders Research
article

Collapse of embryonic identities and emergence of functional diversity during motor neuron maturation

Tulsi Patel, Courtney M Stains, Hsuan-Ming Chi, Yijia Chen, Aileen Tian, Alison Miller
article en

Abstract

Post-mitotic neurons undergo a protracted maturation period as they extend axons to their targets, form synapses, and refine electrophysiological properties. We use temporal single-nucleus multiome sequencing to map molecular underpinnings of maturation in mouse skeletal motor neurons (SMNs). Our data show that SMNs undergo transcriptional changes as they mature, but more strikingly, we find that diversity within SMNs changes dramatically as they transition from axon targeting to forming functional circuits. Embryonic SMNs comprise dozens of transcriptional subclusters representing known motor columns and pools, which utilize specific transcriptional programs to innervate unique muscle targets. However, this transcriptional diversity is largely lost by early postnatal life, and SMNs re-diversify into adult alpha, gamma, and type3 identities, which innervate different fibers within each muscle to regulate movement. This work shows that transcriptional subtype diversity within a neuron type, and the underlying regulatory programs, can transform completely during maturation to accommodate changing functional needs.

Cell ReportsVol. 45(10)
Rutgers, The State University of New Jersey (US)
New Jersey Commission on Spinal Cord Research, National Institute of General Medical Sciences, National Institute of Neurological Disorders and Stroke, National Center for Advancing Translational Sciences
Zero hunger
Openalex Percentile: Top 12%
Neurogenetic and Muscular Disorders Research
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Collapse of embryonic identities and emergence of functional diversity during motor neuron maturation — Tulsi Patel, Courtney M Stains, et al. · Cell Reports (2026) | TGRS Research Map | TGRS