Circadian clock–gated cell renewal controls time-dependent changes in taste sensitivity

T Toru Matsu-ura (Department of Pathology, Kansai Medical University) A Atsunori Nasu (Department of Pathology, Kansai Medical University) S Suengwon Lee (Department of Pharmacology, Physiology, and Neurobiology, University of Cincinnati) N Naoko Yoshida (Department of Pathology, Kansai Medical University) K Kaoru Matsuura (Department of Pathology, Kansai Medical University) M Masaharu Yasuda (Department of Physiology, Kansai Medical University) K Kae Nakamura (Department of Physiology, Kansai Medical University) C Christian I. Hong (Department of Pharmacology, Physiology, and Neurobiology, University of Cincinnati) K Koji Tsuta (Department of Pathology, Kansai Medical University)

Abstract

Circadian regulation of the cell cycle progression generates a diurnal supply of newborn cells to replace those lost in organs and tissues. In this study, we analyzed circadian time-dependent changes in cell types within the mouse tongue epithelium. Using single-cell RNA sequencing, we observed circadian time-dependent changes in the populations of stem/progenitor cells and the differentiated cells in mice tongues. Notably, we observed time-dependent changes in the type II taste cell population, which were abolished by ablation of taste bud stem cells, thereby inhibiting cell proliferation within the taste cell population. Through experiments with taste bud organoids (TBOs), we found a 24-h cell cycle period, which was disrupted by the knockdown of the core-clock gene Bmal1 . In TBOs, both cell divisions and apoptotic cells exhibited circadian time-dependent phenotypes. Interestingly, the time-dependent changes in cell death disappeared in the stem cell–ablated TBOs, indicating that the diurnal supply of newly born cells is essential for the rhythmic cell death phenotype. Additionally, taste tests conducted at different times of the day revealed time-dependent sensitivity changes originating from type II taste cells in mice. These findings suggest that the time-dependent changes in taste cell population are driven by circadian clock–regulated cell cycle progression and control time-dependent physiological regulation in the mouse tongue.

Article Details

Volume / Issue Vol. 122, Issue 19
Published May 13, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

T

Toru Matsu-ura

Department of Pathology, Kansai Medical University

A

Atsunori Nasu

Department of Pathology, Kansai Medical University

S

Suengwon Lee

Department of Pharmacology, Physiology, and Neurobiology, University of Cincinnati

N

Naoko Yoshida

Department of Pathology, Kansai Medical University

K

Kaoru Matsuura

Department of Pathology, Kansai Medical University

M

Masaharu Yasuda

Department of Physiology, Kansai Medical University

K

Kae Nakamura

Department of Physiology, Kansai Medical University

C

Christian I. Hong

Department of Pharmacology, Physiology, and Neurobiology, University of Cincinnati

K

Koji Tsuta

Department of Pathology, Kansai Medical University