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Organ-on-chip model shows that ATP release through connexin hemichannels drives spontaneous Ca2+ signaling in non-sensory cells of the greater epithelial ridge in the developing cochlea
- Source :
- Lab on a chip (Online) (2020). doi:10.1039/D0LC00427H, info:cnr-pdr/source/autori:Flavia Mazzarda ab, Annunziata D'Elia ab, Roberto Massari a, Adele De Ninno c, Francesca Romana Bertani c, Luca Businaro c, Gaia Ziraldo ad, Veronica Zorzi ad, Chiara Nardin a, Chiara Peres a, Francesco Chiani a, Abraham Tettey-Matey a, Marcello Raspa a, Ferdinando Scavizzi a, Alessandro Soluri a, Anna Maria Salvatore a, Jun Yang ef and Fabio Mammano ag/titolo:Organ-on-chip model shows that ATP release through connexin hemichannels drives spontaneous Ca2+ signaling in non-sensory cells of the greater epithelial ridge in the developing cochlea/doi:10.1039%2FD0LC00427H/rivista:Lab on a chip (Online)/anno:2020/pagina_da:/pagina_a:/intervallo_pagine:/volume
- Publication Year :
- 2020
- Publisher :
- Royal Society of Chemistry, Cambridge [England] , Regno Unito, 2020.
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Abstract
- Prior work supports the hypothesis that ATP release through connexin hemichannels drives spontaneous Ca2+ signaling in non-sensory cells of the greater epithelial ridge (GER) in the developing cochlea; however, direct proof is lacking. To address this issue, we plated cochlear organotypic cultures (COCs) and whole cell-based biosensors with nM ATP sensitivity (ATP-WCBs) at the bottom and top of an ad hoc designed transparent microfluidic chamber, respectively. By performing dual multiphoton Ca2+ imaging, we monitored the propagation of intercellular Ca2+ waves in the GER of COCs and ATP-dependent Ca2+ responses in overlying ATP-WCBs. Ca2+ signals in both COCs and ATP-WCBs were inhibited by supplementing the extracellular medium with ATP diphosphohydrolase (apyrase). Spontaneous Ca2+ signals were strongly depressed in the presence of Gjb6-/- COCs, in which connexin 30 (Cx30) is absent and connexin 26 (Cx26) is strongly downregulated. In contrast, spontaneous Ca2+ signals were not affected by replacement of Panx1-/- with Panx1+/+ COCs in the microfluidic chamber. Similar results were obtained by estimating ATP release from COCs using a classical luciferin-luciferase bioluminescence assay. Therefore, connexin hemichannels and not pannexin 1 channels mediate the release of ATP that is responsible for Ca2+ wave propagation in the developing mouse cochlea. The technological advances presented here have the potential to shed light on a plethora of unrelated open issues that involve paracrine signaling in physiology and pathology and cannot be addressed with standard methods.
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Lab on a chip (Online) (2020). doi:10.1039/D0LC00427H, info:cnr-pdr/source/autori:Flavia Mazzarda ab, Annunziata D'Elia ab, Roberto Massari a, Adele De Ninno c, Francesca Romana Bertani c, Luca Businaro c, Gaia Ziraldo ad, Veronica Zorzi ad, Chiara Nardin a, Chiara Peres a, Francesco Chiani a, Abraham Tettey-Matey a, Marcello Raspa a, Ferdinando Scavizzi a, Alessandro Soluri a, Anna Maria Salvatore a, Jun Yang ef and Fabio Mammano ag/titolo:Organ-on-chip model shows that ATP release through connexin hemichannels drives spontaneous Ca2+ signaling in non-sensory cells of the greater epithelial ridge in the developing cochlea/doi:10.1039%2FD0LC00427H/rivista:Lab on a chip (Online)/anno:2020/pagina_da:/pagina_a:/intervallo_pagine:/volume
- Accession number :
- edsair.dedup.wf.001..dfc969c24e7fe759ec66519b0e840dc9
- Full Text :
- https://doi.org/10.1039/D0LC00427H