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Published on: January 31, 2019
ATP5J regulates microglial activation via mitochondrial dysfunction, exacerbating neuroinflammation in intracerebral
Naixin Ren1, Hutao Zhang1, Tao Li1
1Department of Pathology, First Clinical Hospital, Harbin Medical University, Harbin, China.
Abstract:
Microglial-mediated neuroinflammation is crucial in the pathophysiological mechanisms of secondary brain injury (SBI) following intracerebral hemorrhage (ICH). Mitochondria are central regulators of inflammation, influencing key pathways such as alternative splicing, and play a critical role in cell differentiation and function. Mitochondrial ATP synthase coupling factor 6 (ATP5J) participates in various pathological processes, such as cell proliferation, migration, and inflammation. However, the role of ATP5J in microglial activation and neuroinflammation post-ICH is poorly understood. This study aimed to investigate the effects of ATP5J on microglial activation and subsequent neuroinflammation in ICH and to elucidate the underlying mechanisms. We observed that ATP5J was upregulated in microglia after ICH. AAV9-mediated ATP5J overexpression worsened neurobehavioral deficits, disrupted the blood-brain barrier, and increased brain water content in ICH mice. Conversely, ATP5J knockdown ameliorated these effects. ATP5J overexpression also intensified microglial activation, neuronal apoptosis, and inflammatory responses in surrounding tissues post-ICH. ATP5J impaired microglial dynamics and reduced the proliferation and migration of microglia to injury sites. We used oxyhemoglobin (OxyHb) to stimulate BV2 cells and model ICH in vitro. Further in vitro studies showed that ATP5J overexpression enhanced OxyHb-induced microglial functional transformation. Mechanistically, ATP5J silencing reversed dynamin-related protein 1 (Drp1) and mitochondrial fission 1 protein (Fis1) upregulation in microglia post-OxyHb induction; reduced mitochondrial overdivision, excessive mitochondrial permeability transition pore opening, and reactive oxygen species production; restored normal mitochondrial ridge morphology; and partially restored mitochondrial respiratory electron transport chain activity. ATP5J silencing further alleviated OxyHb-induced mitochondrial dysfunction by regulating mitochondrial metabolism. Our results indicate that ATP5J is a key factor in regulating microglial functional transformation post-ICH by modulating mitochondrial dysfunction and metabolism, thereby positively regulate neuroinflammation. By inhibiting ATP5J, SBI following ICH could be prevented. Therefore, ATP5J could be a candidate for molecular and therapeutic target exploration to alleviate neuroinflammation post-ICH.
Insights
Mitochondrial ATP synthase coupling factor 6 (ATP5J) drives neuroinflammation after brain hemorrhage by impairing microglial function. Inhibiting ATP5J may prevent secondary brain injury and offers a therapeutic target.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Microglial-mediated neuroinflammation is a key factor in secondary brain injury (SBI) following intracerebral hemorrhage (ICH).
- Mitochondria play a critical role in regulating inflammation and cellular functions, with ATP synthase coupling factor 6 (ATP5J) implicated in various pathological processes.
- The specific role of ATP5J in microglial activation and neuroinflammation post-ICH remains largely unknown.
Purpose of the Study:
- To investigate the effects of ATP5J on microglial activation and subsequent neuroinflammation in the context of ICH.
- To elucidate the underlying molecular mechanisms by which ATP5J influences microglial function and neuroinflammation post-ICH.
Main Methods:
- Utilized AAV9-mediated gene manipulation (overexpression and knockdown) of ATP5J in ICH mouse models.
- Employed an in vitro model using BV2 cells stimulated with oxyhemoglobin (OxyHb) to mimic ICH conditions.
- Assessed neurobehavioral deficits, blood-brain barrier integrity, brain water content, microglial activation, neuronal apoptosis, and mitochondrial function (including Drp1, Fis1, ROS, and electron transport chain activity).
Main Results:
- ATP5J was upregulated in microglia post-ICH, and its overexpression exacerbated SBI, neurobehavioral deficits, and blood-brain barrier disruption.
- ATP5J knockdown ameliorated ICH-induced damage, reduced microglial activation, neuronal apoptosis, and inflammatory responses.
- Mechanistically, ATP5J silencing reversed mitochondrial dysfunction, reduced reactive oxygen species production, and restored mitochondrial morphology and electron transport chain activity in microglia.
Conclusions:
- ATP5J is a critical regulator of microglial functional transformation post-ICH, primarily by modulating mitochondrial dysfunction and metabolism.
- Targeting ATP5J can mitigate neuroinflammation and prevent secondary brain injury following intracerebral hemorrhage.
- ATP5J represents a potential molecular and therapeutic target for alleviating neuroinflammation in ICH.
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