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Author Spotlight: Establishing a Reliable Distal MCA Occlusion Model in Mice for Stroke Research
Published on: December 15, 2023
Neuroprotective Effects of Selective Inhibition of Histone Deacetylase 3 in Experimental Stroke
Rudy Matheson1, Kohei Chida2, Hui Lu1,3
1Department of Neurology, Beth Israel Deaconess Medical Center, Boston, MA, 02215, USA.
Insights
Selective inhibition of Histone deacetylase 3 (HDAC3) after ischemic stroke in rats improved long-term neurological function and reduced brain damage. This neuroprotection was linked to decreased apoptosis and inflammation, alongside increased Akt pathway signaling.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Histone deacetylase 3 (HDAC3) is implicated in neurotoxicity in neurodegenerative diseases.
- The specific role of HDAC3 in ischemic stroke neuroprotection remains underexplored.
Purpose of the Study:
- To investigate the neuroprotective potential of selective HDAC3 inhibition following ischemic stroke.
- To test the hypothesis that inhibiting HDAC3 post-stroke improves neurological outcomes.
Main Methods:
- Adult male Wistar rats underwent 2-hour middle cerebral artery occlusion (MCAO).
- Animals received intraperitoneal injections of either a vehicle or a selective HDAC3 inhibitor (RGFP966) at 2 and 24 hours post-MCAO.
- Long-term behavioral tests (28 days) and histological analyses (3 days) were conducted.
Main Results:
- Selective HDAC3 inhibition significantly improved long-term functional outcomes and reduced infarct volume.
- HDAC3 inhibition increased acetyl-Histone 3 (AcH3) levels, which correlated with better neurological scores and smaller infarcts.
- Treatment reduced apoptosis (TUNEL+, cleaved caspase-3+, cleaved PARP+) and neuroinflammation (TNF-alpha+, TLR4+) markers.
- RGFP966 treatment upregulated Akt expression in the ipsilateral cortex.
Conclusions:
- Selective HDAC3 inhibition post-stroke confers significant neuroprotection.
- The observed neuroprotective effects are attributed to reduced apoptosis and inflammation, and enhanced Akt pathway activation.
- Targeting HDAC3 represents a promising therapeutic strategy for ischemic stroke treatment.
Abstract:
Histone deacetylase 3 (HDAC3) has been implicated as neurotoxic in several neurodegenerative conditions. However, the role of HDAC3 in ischemic stroke has not been thoroughly explored. We tested the hypothesis that selective inhibition of HDAC3 after stroke affords neuroprotection. Adult male Wistar rats (n = 8/group) were subjected to 2 h of middle cerebral artery occlusion (MCAO), and randomly selected animals were treated intraperitoneally twice with either vehicle (1% Tween 80) or a selective HDAC3 inhibitor (RGFP966, 10 mg/kg) at 2 and 24 h after MCAO. Long-term behavioral tests were performed up to 28 days after MCAO. Another set of rats (n = 7/group) were sacrificed at 3 days for histological analysis. Immunostaining for HDAC3, acetyl-Histone 3 (AcH3), NeuN, TNF-alpha, toll-like receptor 4 (TLR4), cleaved caspase-3, cleaved poly (ADP-ribose) polymerase (PARP), Akt, and TUNEL were performed. Selective HDAC3 inhibition improved long-term functional outcome (p < 0.05) and reduced infarct volume (p < 0.0001). HDAC3 inhibition increased levels of AcH3 in the ischemic brain (p = 0.016). Higher levels of AcH3 were significantly correlated with better neurological scores and smaller infarct volumes (r = 0.74, p = 0.002; r = 0.6, p = 0.02, respectively). The RGFP966 treatment reduced apoptosis-TUNEL+, cleaved caspase-3+, and cleaved PARP+ cells-and neuroinflammation-TNF-alpha+ and TLR4+ cells-in the ischemic border compared to vehicle control (p < 0.05). The RGFP966 treatment also increased Akt expression in the ipsilateral cortex (p < 0.001). Selective HDAC3 inhibition after stroke improves long-term neurological outcome and decreases infarct volume. The neuroprotective effects of HDAC3 inhibition are associated with a reduction in apoptosis and inflammation and upregulation of the Akt pathway.
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