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Kouakou, Y. I.

Publications and source records attributed to Kouakou, Y. I..

2 recordsLinked to original sources

MS4A8B regulates Orai1-dependent Ca2+ influx to control motile cilia function in human nasal epithelial cells

Motile cilia demonstrate coordinated beating to propel fluids across epithelial tissues, and changes to their beating frequency are largely regulated by intracellular second messengers including Ca2+. In the airway epithelium, ciliary beating is essential to mucociliary clearance. Mucociliary clearance involves trapping inhaled pathogens and irritants in sticky mucus lining the airways for motile cilia to sweep away contaminated mucus, preventing infection and reducing general airway inflammation. Many chronic respiratory diseases, including chronic rhinosinusitis and asthma, are characterized by an acquired ciliary dysfunction. Despite the importance of Ca2+ signaling in cilia physiology, the identity and molecular mechanisms governing localized ciliary Ca2+ transport remain poorly understood. MS4A8B is an uncharacterized cilia-localized transmembrane protein. Other MS4A homologs have been indirectly linked to Ca2+ signaling via uncharacterized mechanisms. Using primary human nasal epithelial cells differentiated at air-liquid interface, we demonstrated that MS4A8B regulates motile cilia function. MS4A8B knockdown impairs ciliary beating and impacts cilia structure. Live-cell imaging combined with genetic analysis revealed that MS4A8B potentiates Orai1-mediated Ca2+ influx. Co-immunoprecipitation and FRET microscopy in ectopic expression systems demonstrated that MS4A8B interacts with Orai1 channels. Orai1 was further identified to reside in motile cilia of primary human nasal epithelial cells, allowing ciliary beat frequency to be stimulated by Orai1 agonists including arachidonic acid. MS4A8B functional coupling with Orai1 acts as an autonomous cilia signaling network. Targeting this compartmentalized signaling pathway offers a novel therapeutic approach to restore or enhance mucociliary clearance in airway diseases.

physiology↗

Effects of Pseudomonas aeruginosa pyocyanin and 1-hydroxyphenazine on intracellular calcium, mitochondrial function, and viability in human nasal epithelial cells

Pseudomonas aeruginosa is an opportunistic pathogen that produces phenazine metabolites pyocyanin and 1-hydroxyphenazine that have been suggested to have detrimental effects on mitochondrial function and reactive oxygen species (ROS) production. Prior studies have suggested activation of Ca2+ signaling by pyocyanin in an airway cell line, while others have shown apoptotic effects on cancer cells. Ca2+ is tightly linked to both normal mitochondrial function as well as mitochondrial ROS and apoptosis during mitochondrial Ca2+ overload. We found that pyocyanin but not 1-hydroxyphenazine induced both cytosolic and mitochondrial Ca2+ increases in RPMI 2650 and primary human nasal epithelial cells (HNEC). Similar results were seen in HNEC air-liquid interface (ALI) cells, but these cells did not display a cytosolic Ca2+ response after treatment with pyocyanin. In RPMI 2650, activation of PKC, ER Ca2+ release, and PLC inhibition, indicated potential GPCR activation from pyocyanin. Similarly, ROS production increased after treatment with pyocyanin, but not 1-hydroxyphenazine in all 3 cell types, but with stark differences in CF and non-CF ALIs. In HNEC ALI, pyocyanin reduced ciliary beat frequency (CBF) after 4 hours, while 1-hydroxpyhenazine did not. Despite this, both pyocyanin and 1-hydroxyphenazine decreased in cell viability in RPMI 2650 nasal carcinoma cells but not in HNEC at 24 hours. However, in both RPMI 2650 and HNEC, mitochondrial membrane potential acutely decreased after treatment with either pyocyanin or 1-hydroxyphenazine. Finally, 24-hour pyocyanin treatment decreased expression of ER stress genes in some cancer cells, but not in non-cancerous HNEC. Our data suggest that Ca2+ signaling is not required for acute effects of 1-hydroxyphenazine or pyocyanin on mitochondrial function. The greater sensitivity of RPMI 2650 cells to pyocyanin-induced and 1-hydroxyphenzine-induced cytotoxicity compared with primary cells suggests that these compounds might have some applicability in treating nasal squamous carcinomas or other types of head and neck squamous carcinomas. Although the exact mechanisms of pyocyanin induced apoptosis remains uncertain, the downregulation of the ER stress response may play a role.

physiology↗