TY - JOUR
T1 - Deep-layer neurons compensate for the loss of layer 4 sensory recipient cells in the developing neocortex
AU - Hou, Pei Shan
AU - Hanashima, Carina
N1 - Publisher Copyright:
© 2025 The Author(s)
PY - 2025/10/14
Y1 - 2025/10/14
N2 - Layer 4 cortical neurons are key sensory recipients of thalamocortical inputs, facilitating higher-order information processing. Layer 4 cell fate is determined by intrinsic transcriptional programs and extrinsic cues, yet the extent to which layer 4 cell identity is fixed remains unclear. Here, we investigate cortical fate plasticity using a tamoxifen-inducible conditional ablation to selectively eliminate layer 4-destined neurons at their earliest postmitotic stage. We found that, despite the depletion of these cells, the overall layer 4 neuron population remains intact, suggesting a compensatory mechanism. Birthdate labeling and molecular analysis revealed that earlier-born deep-layer neurons, rather than later-born upper-layer neurons, adopt a layer 4 identity in response to this loss. This fate shift is associated with altered Foxg1 downregulation and Nr2f1 upregulation, suggesting a molecular switch governing adaptive neurogenesis. Collectively, these findings provide new insights into the temporal and spatial constraints of cortical fate determination and reveal a compensatory mechanism that preserves cortical circuit formation despite early neuronal loss.
AB - Layer 4 cortical neurons are key sensory recipients of thalamocortical inputs, facilitating higher-order information processing. Layer 4 cell fate is determined by intrinsic transcriptional programs and extrinsic cues, yet the extent to which layer 4 cell identity is fixed remains unclear. Here, we investigate cortical fate plasticity using a tamoxifen-inducible conditional ablation to selectively eliminate layer 4-destined neurons at their earliest postmitotic stage. We found that, despite the depletion of these cells, the overall layer 4 neuron population remains intact, suggesting a compensatory mechanism. Birthdate labeling and molecular analysis revealed that earlier-born deep-layer neurons, rather than later-born upper-layer neurons, adopt a layer 4 identity in response to this loss. This fate shift is associated with altered Foxg1 downregulation and Nr2f1 upregulation, suggesting a molecular switch governing adaptive neurogenesis. Collectively, these findings provide new insights into the temporal and spatial constraints of cortical fate determination and reveal a compensatory mechanism that preserves cortical circuit formation despite early neuronal loss.
KW - Corticogenesis
KW - Layer 4 sensory recipient neuron
KW - Neuronal birthdate
UR - https://www.scopus.com/pages/publications/105011713650
U2 - 10.1016/j.neulet.2025.138330
DO - 10.1016/j.neulet.2025.138330
M3 - Article
C2 - 40716697
AN - SCOPUS:105011713650
SN - 0304-3940
VL - 865
JO - Neuroscience Letters
JF - Neuroscience Letters
M1 - 138330
ER -