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Updated: Apr 21, 2026

Parallel Measurement of Circadian Clock Gene Expression and Hormone Secretion in Human Primary Cell Cultures
Published on: November 11, 2016
Clock Genes Regulate Ca2+ Signaling and Mitochondrial Bioenergetics to Inhibit Sjögren Disease
Viktor R Drel1, Manigandan Venkatesan2, Rahul S Jasrotia3
1Department of Periodontics, University of Texas Health San Antonio.
Objective:
Although Ca2 + signaling and metabolism have been identified as key determinants for the development of Sjögren disease (SjD), the intricate connection between them and salivary gland physiology remains poorly understood.
Methods:
Fluorescence-based Ca2+ imaging, RNA sequencing, and mitochondrial activity were used to investigate the effects of circadian rhythm and salivary gland dysfunction. Critical findings were confirmed by studying mouse models of SjD and human salivary gland samples.
Results:
We identified that Ca2+ entry is essential in modulating Clock genes and circadian rhythm, which also modulate salivary gland secretion and the expression of Stim and Orai genes. Mechanistically, our data show that Bmal2 binding in the promoter region of Stim1 modulates its expression, thereby regulating Ca2+ entry and mitochondrial bioenergetics and providing cyclic rhythm-mediated regulation of cellular physiology. To assess Ca2+-dependent circadian rhythms, we used diet perturbation, in which a Ca2+-deficient diet specifically impacts the Clock gene's rhythm, which was reversed by Ca2+ supplementation. Circadian rhythm-mediated regulation of fluid secretion, as well as STIM1 genes, was also altered in an SjD mouse model. In addition, human patients with SjD also showed dysregulation of CLOCK and STIM1 genes, which could alter salivary physiology, leading to the development of the SjD phenotype.
Conclusion:
Our results provide the first comprehensive evidence of a reciprocal relationship between circadian rhythm, Ca2+ signaling, and metabolism, which is critical for cellular physiology and disease development/progression.
Insights
Calcium (Ca2+) signaling and circadian rhythms are crucial for salivary gland function. Disruptions in this relationship contribute to Sjögren
Area of Science:
- Cellular Physiology
- Molecular Biology
- Immunology
Background:
- Calcium (Ca2+) signaling and metabolism are implicated in Sjögren's disease (SjD) pathogenesis.
- The interplay between Ca2+ signaling, metabolism, and salivary gland function in SjD is not well understood.
Purpose of the Study:
- To investigate the role of circadian rhythms in salivary gland dysfunction.
- To elucidate the connection between Ca2+ signaling, circadian rhythm, and cellular metabolism in SjD.
Main Methods:
- Utilized fluorescence-based Ca2+ imaging, RNA sequencing, and mitochondrial activity assays.
- Employed mouse models of SjD and analyzed human salivary gland samples for validation.
- Investigated the impact of dietary calcium perturbations on circadian gene expression.
Main Results:
- Ca2+ entry is essential for regulating Clock genes and circadian rhythm, influencing salivary gland secretion.
- Bmal2 binding to the Stim1 promoter modulates Ca2+ entry, mitochondrial function, and cellular physiology.
- Calcium deficiency disrupts Clock gene rhythms, while supplementation reverses this effect.
- SjD mouse models and human patients exhibit dysregulated CLOCK and STIM1 genes, impacting salivary function.
Conclusions:
- Established a reciprocal relationship between circadian rhythm, Ca2+ signaling, and metabolism in cellular physiology.
- Demonstrated the critical role of this interplay in the development and progression of Sjögren's disease.
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