Alessandra Preziuso, Artyom Y. Baev, Fozila R. Rustamova, Sharadha Dayalan Naidu, Lauren Millichap, Plamena R. Angelova, Vincenzo Lariccia, Albena T. Dinkova-Kostova, Andrey Y. Abramov
Nrf2 is a transcription factor which regulates ∼1% of the mammalian genome and is responsible for orchestrating the cellular defense against oxidative, inflammatory and metabolic stress. Calcium (Ca 2+ ) is a ubiquitous intracellular messenger which controls most cellular processes, from fertilization to cell death. Nrf2 and Ca 2+ are involved in a large number of similar physiological processes, but it is not clear if they can regulate each other. Here, using primary co-cultures of neurons and astrocytes we asked if Nrf2 activation or deficiency alters physiological Ca 2+ signaling and mitochondrial Ca 2+ handling in brain cells. We found that activation of Nrf2 leads to an increase in the amplitude of Ca 2+ peak and a faster Ca 2+ efflux in response to glutamate and ATP in neurons and astrocytes. Interestingly, Nrf2-deficient neurons and astrocytes also had higher Ca 2+ peaks in response to glutamate and ATP, but the recovery in neurons was significantly delayed. Genetic (Keap1-knockdown) or pharmacological (ovameloxolone, RTA-408) activation of Nrf2 increases mitochondrial Ca 2+ uptake and mitochondrial Ca 2+ capacity, and this correlates with increased activity of the Na + /Ca 2+ /Li + exchanger (NCLX) and inhibition of the mitochondrial permeability transition pore (mPTP). Conversely, mitochondria in neurons and astrocytes from Nrf2-knockout mice had a lower Ca 2+ uptake, lower mitochondrial Ca 2+ capacity and lower mitochondrial Ca 2+ efflux, making these cell vulnerable to Ca 2+ -induced cell death. Thus, Nrf2 modulates cytosolic calcium signaling and activates the mitochondrial NCLX, increasing the mitochondrial Ca 2+ capacity, which adds another critical aspect to the multifaceted nature of Nrf2-mediated cytoprotection.