Search bioRxiv⌕ Search

Biology subjects

Quezada-Gutierrez, C.

Publications and source records attributed to Quezada-Gutierrez, C..

3 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↗

CB2R-induced differentiation epigenetically restrains cancer plasticity enabling adaptive therapy

Cellular plasticity enables cancer cells to escape therapy by adopting stem-like or alternate lineage states. Here, we identify a mechanism by which cannabinoid receptor 2 (CB2R) activation promotes irreversible lineage commitment in breast cancer. Using patient-derived and murine organoids, we show that brief, low-dose exposure to CB2R agonists--either phytogenic or synthetic--induces a basal-to-luminal transition, accompanied by reduced self-renewal, invasiveness, and tumor-initiating potential. These changes are retained under conditions that normally promote dedifferentiation, including fibroblast co-culture, immune pressure, and mechanical shear stress. Mechanistically, CB2R engagement initiates a transient chromatin remodeling program, marked by early expression of pluripotency-associated genes followed by silencing and differentiation commitment. This epigenetically stabilized state renders tumor cells more responsive to tamoxifen and limits the emergence of resistant clones. Our findings uncover a previously unrecognized role for CB2R in modulating cancer cell identity and suggest new opportunities to constrain tumor plasticity by directing differentiation through a drug-responsive pathway.

cancer biology↗

Calcium (Ca2+) fluxes at Mitochondria-ER Contact Sites (MERCS) are a new target of senolysis in Therapy-Induced Senescence (TIS).

O_LIThis study investigates the state of calcium (Ca2+) flux and Mitochondria-ER contact sites (MERCS) on Therapy-Induced Senescence (TIS). C_LIO_LITIS cells-induced by Doxorubicin and Etoposide increase their MERCS contact surface but exhibit a decreased ER-mitochondria Ca2+ flux. C_LIO_LITIS cells show decreased levels of IP3R isoforms and a decreased interaction between type 1 IP3R isoform and VDAC1. C_LIO_LIThe ER-mitochondria Ca2+ flux is essential to maintain the viability of senescence cells. C_LIO_LIInhibition of ER-mitochondria Ca2+ flux rise as a new target of senolysis in vitro and in vivo. C_LI

cell biology↗