ArticlePLoS biology2024
Mitochondrial calcium uptake orchestrates vertebrate pigmentation via transcriptional regulation of keratin filaments.
Article in PLoS biology, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Organization of Coloration in Nemerteans: Insights from Light and Electron Microscopy.Biology · 2026Article
- IP3R2-mediated inter-organelle calcium signaling suppresses melanosome degradation.PLoS biology · 2026Article
- The microglia-derived protein Sema4ab attenuates regenerative neurogenesis after spinal cord injury in zebrafish.PLoS biology · 2026Article
- A transcriptome analysis revealing the molecular mechanism of light intensity-driven color variation in the skin of Chinese giant salamander (Andrias davidianus).BMC genomics · 2026Article
- TRPM2 couples cell-autonomous type-I interferon signaling to pigmentation homeostasis.bioRxiv : the preprint server for biology · 2026Article
- Review
- NFATc1 drives Orai3 transcription and proteolysis by harnessing epigenome differences in the MARCH8 promoter.The EMBO journal · 2025Article
- Calcium acts as a critical determinant of mitochondria-nuclear networking driven retrograde signaling.Cell calcium · 2025Review
- ROS and calcium signaling are critical determinant of skin pigmentation.Cell calcium · 2025Review
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Authors and funding
16 authors.
Funding
Abstract
Mitochondria regulate several physiological functions through mitochondrial Ca2+ dynamics. However, role of mitochondrial Ca2+ signaling in melanosome biology remains unknown. Here, we show that pigmentation requires mitochondrial Ca2+ uptake. In vitro gain and loss of function studies demonstrate that mitochondrial Ca2+ uniporter (MCU) is crucial for melanogenesis while MCU rheostat, MCUb negatively control melanogenesis. Zebrafish, MCU+/- and MCUb-/- mice models show that MCU complex drives pigmentation in vivo. Mechanistically, MCU silencing activates transcription factor NFAT2 to induce expression of keratin (5, 7, and 8) filaments. Interestingly, keratin5 in turn augments mitochondrial Ca2+ uptake and potentiates melanogenesis by regulating melanosome biogenesis and maturation. Hence this signaling module acts as a negative feedback loop that fine-tunes both mitochondrial Ca2+ signaling and pigmentation. Notably, mitoxantrone, an FDA approved drug that inhibits MCU, reduces pigmentation thereby highlighting therapeutic potential of targeting mitochondrial Ca2+ uptake for clinical management of pigmentary disorders. Taken together, we reveal an MCU-NFAT2-Keratin5 driven signaling axis that acts as a critical determinant of mitochondrial Ca2+ uptake and pigmentation. Given the vital role of mitochondrial Ca2+ signaling and keratin filaments in cellular physiology, this feedback loop could be operational in a variety of other patho-physiological processes.
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Registered trials
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