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February 19, 2026Developmental Dynamics0 citationsOpen Access

Spatiotemporal cellular dynamics of the notochord shape intervertebral disc morphogenesis in the mouse embryo through apoptosis and proliferation

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JWJulie WarinEBEstelle BalissatPCPauline Colombier

Key Points

  • The research aims to uncover how the notochord transforms into the nucleus pulposus during intervertebral disc formation.
  • Performed histological and immunohistochemical analyses
  • Analyzed vacuole formation using Lamp‐1 marker
  • Conducted quantitative analysis of cell proliferation and apoptosis
  • Vacuolation contributed to growth of the nucleus pulposus
  • Notable decrease in cell density observed
  • Proliferation of notochordal cells coupled with specific apoptosis in adjacent sclerotome regions

Abstract

Abstract Background The notochord is a midline structure essential for vertebrate embryogenesis, contributing to the development of the nervous system, digestive tract, and vertebral column. In particular, notochord signaling is indispensable for proper patterning and coordinated development of alternating vertebrae and intervertebral discs (IVDs). Later, notochordal cells (NCs) mature and adopt a characteristic vacuolated morphology before giving rise to the core of the forming IVD, the nucleus pulposus (NP). Postnatally, NCs play a pivotal role in maintaining disc integrity through the secretion of specific factors and extracellular matrix (ECM). Despite its importance in disc formation and homeostasis, the morphogenetic mechanisms underlying the notochord's transformation into the NP are insufficiently characterized. Results We conducted a comprehensive histological and immunohistochemical analysis to investigate the cellular events governing NP formation in the mouse developing spine. Temporal analysis of intracytoplasmic vacuole formation using Lamp‐1 marker revealed that vacuolation contributed to NP growth, while cell density progressively decreased. In addition, quantitative analyses demonstrated a notable proliferative capacity within notochordal cells coupled with region‐specific apoptotic activity in sclerotome, at future disc sites. Conclusions This study highlights the intricate balance of cellular proliferation, programmed cell death, matrix remodeling, and vacuolation dynamics as key determinants in shaping the NP along the rostro‐caudal axis.

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Cite This Study

Warin et al. (2026) studied this question.

synapsesocial.com/papers/6996a898ecb39a600b3ef715https://doi.org/10.1002/dvdy.70119
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