Jiajie Yu, Cuifeng Yang, Yan Guo, Ziran Dai, Peng Luo, Yuchen Zhang, Hao Peng, Suyuan Zhang, Congyuan Liu, Lerong Zhao, Hang Fan, Yu Xiong, Qigen Xie, Lei Jia, Xin Yu, Tao Wang, Weiqiang Li, Qiong Ke, Fufu Zheng, Chunhua Deng, Andy Peng Xiang, Hong Chen, Kai Xia
Leydig cells (LCs), which originate from mesenchymal-like progenitors, are the primary testosterone-producing cells in the testis. However, the roles of postnatal LC progenitors in pubertal development, homeostasis, and injury response remain poorly understood. Here, we demonstrate that neonatal testicular Gli1 + cells give rise to nearly all LCs during pubertal development. Conditional deletion of nuclear receptor subfamily 5, group A, member 1 ( Nr5a1 ) in Gli1 + progenitors significantly impairs testicular development by inhibiting pubertal LC formation. Prepubertal exposure to cyclophosphamide disrupts LC formation, further impairing the development of the reproductive system. During adulthood, testicular Gli1 + cells contribute to the slow turnover of LCs, whereas conditional deletion of Nr5a1 has little impact on testicular homeostasis. Following hemicastration, Gli1 + cells rapidly differentiate into LCs in response to unilateral LC depletion, demonstrating that adult Gli1 + cells act as a functional reserve. These findings highlight the critical role of postnatal Gli1 + cells as progenitors of LCs for testicular pubertal development, adult homeostasis, and regeneration.