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Cerda, O.

Publications and source records attributed to Cerda, O..

2 recordsLinked to original sources

Bcl-xL interaction with VDAC1 reduces mitochondrial Ca2+ uptake, allowing the establishment of Therapy-Induced Senescence.

Cellular senescence, a state of irreversible growth arrest, is characterized by various phenotypic changes, including altered mitochondrial function. While the role of mitochondria in senescence is well-established, the mechanisms underlying their involvement remain unclear. Here, we investigate the early stages of therapy-induced senescence (TIS) and identify a novel anti-apoptotic mechanism mediated by Bcl-xL and VDAC1, two key regulators of mitochondrial calcium (Ca{superscript 2}) homeostasis. We find that Bcl-xL expression increases in early TIS cells and localizes to the mitochondria, where it interacts with the voltage-dependent anion channel 1 (VDAC1). This interaction dampens mitochondrial Ca{superscript 2} uptake, thereby preventing Ca{superscript 2} overload and apoptosis. Disrupting this interaction using the BH3 mimetic ABT-263 or Bcl-xL-targeting siRNA increases mitochondrial Ca{superscript 2} uptake, leading to apoptosis and blocking the formation of senescent cells. These findings uncover a previously unrecognized role of the Bcl-xL-VDAC1 axis in regulating mitochondrial Ca{superscript 2} dynamics during the onset of senescence. Our work provides mechanistic insight into how senescent cells evade apoptosis,highlighting potential therapeutic targets for selectively eliminating them in cancer and age-related diseases.

cell biology↗

A KCNC1 Variant Linked to Rett Syndrome Disrupts ER to Golgi Trafficking of Kv3.1 Channel

Intrinsic neuronal excitability, defined by the balance between input and output signals, is crucial to neural function, and its disruption underlies various neurological diseases. Kv3.1 channels, encoded by KCNC1, are essential for high-frequency action potential firing. Variants in these channels are associated with several subtypes of epilepsy. We report a patient with developmental regression and epilepsy, meeting Rett syndrome criteria, who carries a KCNC1 variant encoding the S474C substitution in Kv3.1 (Kv3.1S474C). Electrophysiological and biochemical assays reveal that Kv3.1S474C reduces channel presence in the plasma membrane and is retained in the endoplasmic reticulum (ER). In murine primary cultures expressing Kv3.1S474C, we observed reduced neuronal firing frequency and exclusion of the channel from the axon initial segment (AIS). Consistently, we found a decreased firing frequency using a conductance-based computational neuronal model. In summary, this study identifies a novel link between a KCNC1 variant and Rett syndrome, highlighting the importance of S474 residue in Kv3.1 channel trafficking and function in neurons. SummaryThis study identifies and characterizes a novel KCNC1 variant associated with classical Rett syndrome. This variant disrupts endoplasmic reticulum (ER) to Golgi trafficking of the Kv3.1 channels, highlighting the variants potential role in altered neuronal excitability and neurodevelopmental disorders.

cell biology↗