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Biology subjects

Santi, C. M.

Publications and source records attributed to Santi, C. M..

2 recordsLinked to original sources

Increased mitochondrial activity upon CatSper channel activation is required for sperm capacitation.

To fertilize an oocyte, sperm must become hyperactive. However, whether they obtain ATP for hyperactivated motility via glycolysis or mitochondrial respiration is unclear. Here, high-resolution respirometry, flow cytometry, and confocal microscopy experiments revealed that mitochondrial respiration and membrane potential increased during mouse sperm capacitation. Treatment with inhibitors of mitochondrial respiration prevented sperm from hyperactivating and fertilizing an oocyte. Mitochondrial respiration was impaired in sperm from mice lacking the calcium channel CatSper. We developed a method to image mitochondrial calcium in sperm and found that CatSper activation led to increased mitochondrial calcium concentration. Finally, treating sperm with an inhibitor of mitochondrial calcium import impaired mitochondrial function and sperm hyperactivation. Together, our results uncover a new role of sperm mitochondria and reveal a new pathway connecting calcium influx through CatSper to mitochondrial activity and the sperm hyperactivation required to fertilize an oocyte. SummaryThe source of ATP for sperm hyperactivation is unclear. Ferreira et al. show that mitochondrial activity increases during, and is required for, hyperactivation and fertilization ability. Increased mitochondrial activity depends on calcium influx through the channel CatSper.

cell biology

SLO2.1 and NALCN form a functional complex to modulate myometrial cell excitability

Depolarization of the myometrial smooth muscle cell (MSMC) resting membrane potential is necessary for the transition of the uterus from a quiescent state to a contractile state. The molecular mechanisms involved in this transition are not completely understood. Here, we report a novel coupled system between the Na+-activated K+ channel (SLO2.1) and the non-selective Na+ leak channel (NALCN) which determines the MSMC membrane potential. We show that SLO2.1 currents are activated by an inward Na+ leak current carried by the NALCN channel leading to MSMC hyperpolarization. These results show an unanticipated role for the Na+ leak currents in activating a negative feedback system countering the excitable effects of Na+ currents. This is a novel role for the NALCN channel in which Na+ acts as an intracellular signaling molecule. In fact, we report here that the net effect of Na+ entry through NALCN channels is a hyperpolarization of the MSMCs plasma membrane because of the activation of SLO2.1 K channel. Importantly, we also report that a decrease in NALCN/SLO2.1 activity triggers both Ca2+ entries through VDCCs, promoting myometrial contraction. Consistently, with a functional coupling, our data show that NALCN and SLO2.1 are in proximity to one another in human MSMCs. We propose that the spatial arrangement of SLO2.1 and NALCN permits these channels to functionally interact in order to regulate human MSMC membrane potential and cell excitability to modulate uterine contractile activity.

cell biology