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Updated: Jun 28, 2025

Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Mitovesicles secreted into the extracellular space of brains with mitochondrial dysfunction impair synaptic
Pasquale D'Acunzo1,2, Elentina K Argyrousi3,4, Jonathan M Ungania1
1Center for Dementia Research, Nathan S. Kline Institute for Psychiatric Research, 10962, Orangeburg, NY, USA.
Background:
Hypometabolism tied to mitochondrial dysfunction occurs in the aging brain and in neurodegenerative disorders, including in Alzheimer's disease, in Down syndrome, and in mouse models of these conditions. We have previously shown that mitovesicles, small extracellular vesicles (EVs) of mitochondrial origin, are altered in content and abundance in multiple brain conditions characterized by mitochondrial dysfunction. However, given their recent discovery, it is yet to be explored what mitovesicles regulate and modify, both under physiological conditions and in the diseased brain. In this study, we investigated the effects of mitovesicles on synaptic function, and the molecular players involved.
Methods:
Hippocampal slices from wild-type mice were perfused with the three known types of EVs, mitovesicles, microvesicles, or exosomes, isolated from the brain of a mouse model of Down syndrome or of a diploid control and long-term potentiation (LTP) recorded. The role of the monoamine oxidases type B (MAO-B) and type A (MAO-A) in mitovesicle-driven LTP impairments was addressed by treatment of mitovesicles with the irreversible MAO inhibitors pargyline and clorgiline prior to perfusion of the hippocampal slices.
Results:
Mitovesicles from the brain of the Down syndrome model reduced LTP within minutes of mitovesicle addition. Mitovesicles isolated from control brains did not trigger electrophysiological effects, nor did other types of brain EVs (microvesicles and exosomes) from any genotype tested. Depleting mitovesicles of their MAO-B, but not MAO-A, activity eliminated their ability to alter LTP.
Conclusions:
Mitovesicle impairment of LTP is a previously undescribed paracrine-like mechanism by which EVs modulate synaptic activity, demonstrating that mitovesicles are active participants in the propagation of cellular and functional homeostatic changes in the context of neurodegenerative disorders.
Insights
Mitovesicles from Down syndrome models impair synaptic plasticity (LTP) by affecting MAO-B activity. This reveals a novel mechanism for how extracellular vesicles impact brain function in neurodegenerative conditions.
Area of Science:
- Neuroscience
- Cell Biology
- Extracellular Vesicles Research
Background:
- Mitochondrial dysfunction and hypometabolism are hallmarks of aging and neurodegenerative diseases like Alzheimer's and Down syndrome.
- Mitovesicles, extracellular vesicles of mitochondrial origin, are implicated in brain conditions with mitochondrial dysfunction.
- The precise role of mitovesicles in regulating synaptic function, particularly in disease states, remains largely unexplored.
Purpose of the Study:
- To investigate the impact of mitovesicles on synaptic function.
- To identify the molecular mechanisms underlying mitovesicle-mediated effects on synaptic plasticity.
- To explore the role of mitovesicles in the context of neurodegenerative disorders.
Main Methods:
- Isolation of three types of extracellular vesicles (mitovesicles, microvesicles, exosomes) from mouse models of Down syndrome and control mice.
- Electrophysiological recordings of long-term potentiation (LTP) in hippocampal slices perfused with isolated EVs.
- Assessment of the role of monoamine oxidases A and B (MAO-A, MAO-B) by treating mitovesicles with specific inhibitors prior to EV perfusion.
Main Results:
- Mitovesicles derived from a Down syndrome mouse model significantly reduced LTP within minutes.
- Mitovesicles from control brains and other EV types (microvesicles, exosomes) did not affect LTP.
- Impairment of LTP by mitovesicles was dependent on MAO-B activity, as depletion of MAO-B, but not MAO-A, abolished the effect.
Conclusions:
- Mitovesicles can impair synaptic plasticity (LTP) through a paracrine-like mechanism.
- This study identifies mitovesicles as active modulators of synaptic activity.
- Mitovesicles contribute to the propagation of cellular and functional changes in neurodegenerative disorders.
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