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Published on: November 24, 2017
G9a Targeting by miR-122 Ameliorates Ischemic Brain Injury via Enhanced Microglial Autophagy and Suppressed
Yini Wu1, Weifeng Shan1, Haiyan Lan1
1Department of Anesthesiology, The First Affiliated Hospital of Lishui University, Lishui People's Hospital, No. 1188, Liyang Street, Lishui, 323000, Zhejiang, China.
Abstract:
Microglia are crucial in ischemic brain injury (IBI). Modulating microglial autophagy and inhibiting ferroptosis via miR-122 targeting G9a may mitigate disease progression. This study investigated whether miR-122 attenuates IBI progression by targeting G9a to promote microglial autophagy and inhibit ferroptosis. In vivo, a transient middle cerebral artery occlusion (tMCAO) rat model received intracerebroventricular injections of agomiR-122 for miR-122 overexpression or AAV-G9a for G9a overexpression to assess miR-122/G9a roles in autophagy and ferroptosis. In vitro, oxygen-glucose deprivation/reperfusion (OGD/R)-treated BV2 cells were transfected with miR-122 mimic, oe-G9a, and treated with rapamycin (RA) or ferrostatin-1 (Fer-1) to delineate the miR-122/G9a-autophagy-ferroptosis axis. A microglia-hippocampal neuronal cell transwell co-culture system assessed HT22 viability to confirm miR-122-mediated neuroprotection via G9a inhibition. In vivo, miR-122 ameliorated neurological deficits and attenuated brain injury in tMCAO rats by negatively regulating G9a. This was accompanied by enhanced autophagy (e.g., increased LC3-II/I ratio) and suppression of ferroptosis (e.g., upregulation of GPX4) and inflammatory responses. In vitro, agomiR-122 in OGD/R-injured BV2 cells promoted cell viability and autophagy, while inhibiting ferroptosis. These effects were reversed by AAV-G9a but rescued upon treatment with RA or Fer-1. Moreover, in a BV2-HT22 co-culture system, agomiR-122 in microglia conferred neuroprotection, an effect that was abolished by G9a upregulation. MiR-122 ameliorates IBI by targeting G9a to enhance microglial autophagy and suppress ferroptosis, offering mechanistic insights and novel therapeutic targets.
Insights
MicroRNA-122 (miR-122) reduces ischemic brain injury by enhancing microglial autophagy and inhibiting ferroptosis through targeting G9a. This offers a potential therapeutic strategy for brain injury.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Microglia play a critical role in ischemic brain injury (IBI).
- Modulating microglial autophagy and ferroptosis presents a potential therapeutic avenue for IBI.
- MicroRNA-122 (miR-122) has emerged as a potential regulator in neurological disorders.
Purpose of the Study:
- To investigate the role of miR-122 in attenuating ischemic brain injury (IBI).
- To determine if miR-122 targets G9a to promote microglial autophagy and inhibit ferroptosis.
- To elucidate the therapeutic potential of miR-122 in IBI.
Main Methods:
- Established a transient middle cerebral artery occlusion (tMCAO) rat model for in vivo studies.
- Utilized oxygen-glucose deprivation/reperfusion (OGD/R) treated BV2 cells for in vitro experiments.
- Employed miR-122 mimic, oe-G9a, rapamycin (RA), and ferrostatin-1 (Fer-1) to delineate the molecular axis.
- Assessed neuroprotection using a microglia-neuronal cell co-culture system.
Main Results:
- In vivo, miR-122 overexpression ameliorated neurological deficits and brain injury in tMCAO rats by downregulating G9a.
- miR-122 enhanced microglial autophagy (increased LC3-II/I ratio) and suppressed ferroptosis (upregulated GPX4) and inflammation.
- In vitro, miR-122 mimic promoted BV2 cell viability and autophagy while inhibiting ferroptosis; these effects were reversed by G9a overexpression but rescued by RA or Fer-1.
- miR-122 mediated neuroprotection in microglia-neuronal co-cultures, an effect dependent on G9a inhibition.
Conclusions:
- MiR-122 ameliorates ischemic brain injury by targeting G9a.
- This mechanism involves enhancing microglial autophagy and suppressing ferroptosis.
- MiR-122 represents a promising therapeutic target for ischemic brain injury.
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