Temporal neuronal differentiation programs safeguard neuronal diversity

D Dan Shen (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) J Jingyi Chu (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) X Xiaolin Zhou (Peking-Tsinghua Center for Life Sciences, Peking University) Z Zejun Lan (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) R Rulan Zhang (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) S Shuyu Wang (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) H Haoxuan Tang (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) Y Yunrui Wang (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) C Chenlei Hu (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University) Z Zhiyuan Li Y Yan Song (State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University)

Abstract

Differentiation programs actively lock neurons into a terminally differentiated state. How differentiation programs operate in distinct neuronal lineages remains obscure. Here, we found that previously well-characterized Drosophila neuronal differentiation factors are specifically expressed in the central brain late-born neurons but not early-born neurons, indicating the existence of a distinct, early differentiation program. We next identified T cell factor (TCF) and Odd-paired (Opa)/Zic as part of the early differentiation program that is specifically expressed in the early-born neurons to prevent neuronal dedifferentiation, partly through restricting Chinmo expression. At the molecular level, TCF promotes neuronal differentiation through a Wnt-independent noncanonical mode, via forming a transcriptional complex with Opa. Together, our study unveils that distinct differentiation programs operate in fly central brain early-born versus late-born neurons. Such customized differentiation mechanism whereby temporal differentiation programs safeguard their corresponding temporal identity specification programs is likely to also operate in mammalian brain development.

Article Details

Volume / Issue Vol. 123, Issue 14
Published April 07, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

D

Dan Shen

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

J

Jingyi Chu

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

X

Xiaolin Zhou

Peking-Tsinghua Center for Life Sciences, Peking University

Z

Zejun Lan

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

R

Rulan Zhang

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

S

Shuyu Wang

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

H

Haoxuan Tang

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

Y

Yunrui Wang

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

C

Chenlei Hu

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University

Z

Zhiyuan Li

Y

Yan Song

State Key Laboratory of Membrane Biology, School of Life Sciences, Peking University