Heme-binding protein CYB5D1 couples intraflagellar redox to calcium signaling for coordinated flagellar beating
Yiwen Lin1,2, Lijuan Zhao3, Gai Liu1
1Key Laboratory of Algal Biology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan 430072, China.
Abstract:
Coordinated ciliary/flagellar beating requires precise spatiotemporal regulation of molecular motors such as dyneins, yet the molecular mechanisms governing ciliary synchrony remain poorly understood. Here, we demonstrate that a heme-binding axonemal protein CYB5D1 functions as a redox-sensitive switch that controls flagellar beating coordination by regulating Ca2+ dynamics. Both the D58G point mutation, which abolishes heme-binding activity, and the complete loss of CYB5D1 lead to a reduction in the flagellar redox potential. More importantly, the hyperreductive intraflagellar redox shift in the cyb5d1 mutant increases cis-flagellar Ca2+ spike frequency and amplitude, similar to reductive treatment of wild-type flagella, resulting in the loss of flagellar beating coordination. Interestingly, oxidative treatments induced synchronized Ca2+ spikes across both cis- and trans-flagella of cyb5d1 and increased flagellar beating coordination. In addition, loss of CYB5D1 raised the intraflagellar Ca2+ pool. These results indicate that CYB5D1 links redox sensing to Ca2+ signaling in ciliary coordination and reveal how the two flagella of the same cell achieve synchronized beating through redox-gated Ca2+ dynamics. Furthermore, CYB5D1 loss impairs gliding motility by dysregulating Ca2+ spiking specifically in the leading flagellum, extending the redox-Ca2+ regulatory axis to surface-associated flagellar behaviors. Given the evolutionary conservation of both CYB5D1 and the redox-Ca2+ signaling axis, this mechanism likely regulates ciliary function across eukaryotes, with implications for understanding ciliopathies and respiratory diseases.
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