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Gingras, M. J. P.

Publications and source records attributed to Gingras, M. J. P..

2 recordsLinked to original sources

Giant and Opposite Lithium Isotope Effects on Rat Hippocampus Synaptic Activity Revealed by Multi-Electrode Array Electrophysiology

INTRODUCTORY SUMMARYLithium (Li) has been a frontline medication for the treatment of bipolar disorder for decades, but its mechanism of action remains poorly understood1,2. While clinically prescribed Li salts consist of a mixture of two stable isotopes, 6Li and 7Li, the neurobiological effects of each isotope are only beginning to receive attention. Recent theoretical proposals have suggested that the Li isotopes may exert unique effects in the brain, stemming from quantum phenomena linked to their distinct nuclear spin properties3-5. However, aside from earlier observations of isotope-dependent variations in animal behavior6,7, direct experimental evidence is lacking. We used multi-electrode array electrophysiology to probe field excitatory post-synaptic potentials (fEPSPs) in rat brain slices and demonstrated that 6Li and 7Li have large and opposite effects on synaptic transmission and lead to smaller, but still distinct, differences in synaptic plasticity, particularly, paired-pulse facilitation and the early stages of long-term potentiation. Our results provide direct experimental evidence that Li isotopes exert remarkably different neurological effects, while avoiding many of the interpretive challenges associated with behavioural studies. These findings lay the groundwork for future investigations of quantum phenomena in neuronal activity and promote the idea that Li isotopes are pharmacologically distinct agents.

neuroscience↗

Effects of Natural Lithium and Lithium Isotopes on Voltage Gated Sodium Channel Activity in SH-SY5Y and IPSC Derived Cortical Neurons

Although lithium (Li) is a widely used treatment for bipolar disorder, its exact mechanisms of action remain elusive. Research has shown that the two stable Li isotopes, which differ in their mass and nuclear spin, can induce distinct effects in both in vivo and in vitro studies. Since sodium (Na+) channels are the primary pathway for Li+ entry into cells, we examined how Li+ affects the current of Na+ channels using whole-cell patch-clamp techniques on SH-SY5Y neuroblastoma cells and human iPSC-derived cortical neurons. Our findings indicate that mammalian Na+ channels in both neuronal models studied here display no selectivity between Na+ and Li+, unlike previously reported bacterial Na+ channels. We observed differences between the two neuronal models in three measured parameters (Vhalf, Gmax,z). We saw no statistically significant differences between any ions in SHSY-5Y cells, but small differences in the half-maximum activation potential (Vhalf) between Na+ and 6Li+ and between 7Li+ and 6Li+ were found in iPSC-derived cortical neurons. Although Na+ channels are widely expressed and important in neuronal function, the very small differences observed in this work suggest that Li+ regulation through Na+ channels is likely not the primary mechanism underlying Li+ isotope differentiation.

neuroscience↗