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Published on: March 5, 2018
Caspase inhibition rescues F1Fo ATP synthase dysfunction-mediated dendritic spine elimination
Hao Chen1, Jing Tian1, Lan Guo1,2
1Department of Biological Sciences, The University of Texas at Dallas, 800 west Campbell Rd, Richardson, TX, 75080, USA.
Abstract:
Dendritic spine injury underlies synaptic failure in many neurological disorders. Mounting evidence suggests a mitochondrial pathway of local nonapoptotic caspase signaling in mediating spine pruning. However, it remains unclear whether this caspase signaling plays a key role in spine loss when severe mitochondrial functional defects are present. The answer to this question is critical especially for some pathological states, in which mitochondrial deficits are prominent and difficult to fix. F1Fo ATP synthase is a pivotal mitochondrial enzyme and the dysfunction of this enzyme involves in diseases with spinopathy. Here, we inhibited F1Fo ATP synthase function in primary cultured hippocampal neurons by using non-lethal oligomycin A treatment. Oligomycin A induced mitochondrial defects including collapsed mitochondrial membrane potential, dissipated ATP production, and elevated reactive oxygen species (ROS) production. In addition, dendritic mitochondria underwent increased fragmentation and reduced positioning to dendritic spines along with increased caspase 3 cleavage in dendritic shaft and spines in response to oligomycin A. Concurring with these dendritic mitochondrial changes, oligomycin A-insulted neurons displayed spine loss and altered spine architecture. Such oligomycin A-mediated changes in dendritic spines were substantially prevented by the inhibition of caspase activation by using a pan-caspase inhibitor, quinolyl-valyl-O-methylaspartyl-[-2,6-difluorophenoxy]-methyl ketone (Q-VD-OPh). Of note, the administration of Q-VD-OPh showed no protective effect on oligomycin A-induced mitochondrial dysfunction. Our findings suggest a pivotal role of caspase 3 signaling in mediating spine injury and the modulation of caspase 3 activation may benefit neurons from spine loss in diseases, at least, in those with F1Fo ATP synthase defects.
Insights
Inhibiting F1Fo ATP synthase in neurons caused mitochondrial defects and spine loss. Caspase 3 signaling mediates this spine injury, offering a potential therapeutic target for neurological disorders.
Area of Science:
- Neuroscience
- Cell Biology
- Mitochondrial Biology
Background:
- Dendritic spine injury is implicated in synaptic failure across neurological disorders.
- Mitochondrial dysfunction and caspase signaling are linked to spine pruning, but their interplay in severe defects is unclear.
- F1Fo ATP synthase dysfunction is associated with spinopathies.
Purpose of the Study:
- To investigate the role of caspase signaling in dendritic spine loss during severe mitochondrial dysfunction.
- To determine if inhibiting caspase activation can prevent spine loss caused by F1Fo ATP synthase inhibition.
Main Methods:
- Primary cultured hippocampal neurons were treated with oligomycin A to inhibit F1Fo ATP synthase.
- Mitochondrial function (membrane potential, ATP production, ROS levels) and dendritic morphology were assessed.
- Caspase 3 cleavage and dendritic spine changes were analyzed, with and without the pan-caspase inhibitor Q-VD-OPh.
Main Results:
- Oligomycin A induced mitochondrial dysfunction, including collapsed membrane potential, reduced ATP, and increased ROS.
- Neurons exhibited increased mitochondrial fragmentation, reduced dendritic mitochondrial positioning, and elevated caspase 3 cleavage.
- Spine loss and altered spine architecture were observed, which were significantly prevented by Q-VD-OPh, without affecting mitochondrial dysfunction.
Conclusions:
- Caspase 3 signaling plays a critical role in mediating dendritic spine injury induced by F1Fo ATP synthase defects.
- Inhibiting caspase 3 activation can protect neurons from spine loss associated with mitochondrial dysfunction.
- Targeting caspase 3 activation may offer a therapeutic strategy for spinopathies linked to F1Fo ATP synthase dysfunction.
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