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Bcl-xL-mediated antioxidant function abrogates the disruption of mitochondrial dynamics induced by LRRK2 inhibition
Sara Saez-Atienzar1, Luis Bonet-Ponce2, Carmen da Casa3
1Grupo de Neurofarmacología, Dpto. Ciencias Médicas, Facultad de Medicina de Albacete, Universidad de Castilla-La Mancha, IDINE, Albacete, Spain; Facultad de Medicina y Odontología, Universidad Católica de Valencia ¨San Vicente Mártir, Valencia, Spain; Unidad de Neuropsicofarmacología Traslacional, Complejo Hospitalario Universitario de Albacete, Albacete, Spain.
Abstract:
We have used the human neuroblastoma cell line SH-SY5Y overexpressing Bcl-xL (SH-SY5Y/Bcl-xL) to clarify the effects of this mitochondrial protein on the control of mitochondrial dynamics and the autophagic processes which occur after the inhibition of leucine-rich repeat kinase 2 (LRRK2) with GSK2578215A. In wild type (SH-SY5Y/Neo) cells, GSK2578215A (1nM) caused a disruption of mitochondrial morphology and an imbalance in intracellular reactive oxygen species (ROS) as indicated by an increase in dichlorofluorescein fluorescence and 4-hydroxynonenal. However, SH-SY5Y/Bcl-xL cells under GSK2578215A treatment, unlike the wild type, preserved a high mitochondrial membrane potential and did not exhibit apoptotical chromatins. In contrast to wild type cells, in SH-SY5Y/Bcl-xL cells, GSK2578215A did not induce mitochondrial translocation of neither dynamin related protein-1 nor the proapoptotic protein, Bax. In SH-SY5Y/Neo, but not SH-SY5Y/Bcl-xL cells, mitochondrial fragmentation elicited by GSK2578215A precedes an autophagic response. Furthermore, the overexpression of Bcl-xL protein restores the autophagic flux pathway disrupted by this inhibitor. SH-SY5Y/Neo, but not SH-SY5Y/Bcl-xL cells, responded to LRRK2 inhibition by an increase in the levels of acetylated tubulin, indicating that this was abrogated by Bcl-xL overexpression. This hyperacetylation of tubulin took place earlier than any of the above-mentioned events suggesting that it is involved in the autophagic flux interruption. Pre-treatment with tempol prevented the GSK2578215A-induced mitochondrial fragmentation, autophagy and the rise in acetylated tubulin in SH-SY5Y/Neo cells. Thus, these data support the notion that ROS act as a second messenger connexion between LRRK2 inhibition and these deleterious responses, which are markedly alleviated by the Bcl-xL-mediated ROS generation blockade.
Insights
Bcl-xL overexpression protects against LRRK2 inhibition-induced mitochondrial dysfunction and autophagy disruption by blocking reactive oxygen species (ROS) generation. This highlights Bcl-xL
Area of Science:
- Cell Biology
- Neuroscience
- Mitochondrial Biology
Background:
- Leucine-rich repeat kinase 2 (LRRK2) plays a role in mitochondrial dynamics and autophagy.
- Inhibition of LRRK2 can lead to mitochondrial dysfunction and autophagic imbalance.
- Bcl-xL is a mitochondrial protein involved in apoptosis regulation.
Purpose of the Study:
- To investigate the role of Bcl-xL in modulating mitochondrial dynamics and autophagy following LRRK2 inhibition.
- To elucidate the mechanism by which Bcl-xL affects cellular responses to LRRK2 inhibition.
Main Methods:
- Utilized human neuroblastoma SH-SY5Y cell lines, both wild-type (SH-SY5Y/Neo) and overexpressing Bcl-xL (SH-SY5Y/Bcl-xL).
- Treated cells with LRRK2 inhibitor GSK2578215A and assessed mitochondrial morphology, membrane potential, ROS levels, and apoptosis markers.
- Analyzed mitochondrial translocation of dynamin-related protein-1 (DRP1) and Bax, autophagic flux, and acetylated tubulin levels.
Main Results:
- LRRK2 inhibition in SH-SY5Y/Neo cells caused mitochondrial fragmentation, increased ROS, and triggered autophagy.
- SH-SY5Y/Bcl-xL cells maintained mitochondrial integrity, preserved membrane potential, and resisted apoptosis upon LRRK2 inhibition.
- Bcl-xL overexpression prevented DRP1/Bax translocation, restored autophagic flux, and abrogated the rise in acetylated tubulin, suggesting ROS mediation.
Conclusions:
- Bcl-xL overexpression confers significant protection against LRRK2 inhibition-induced cellular damage.
- The protective effect of Bcl-xL is mediated by the blockade of reactive oxygen species (ROS) generation.
- ROS act as a crucial second messenger linking LRRK2 inhibition to mitochondrial dysfunction and autophagic disruption, a pathway modulated by Bcl-xL.
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