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Updated: Jan 20, 2026

Two-vessel Occlusion Mouse Model of Cerebral Ischemia-reperfusion
Published on: March 1, 2019
Modulating Expression of Thioredoxin Interacting Protein (TXNIP) Prevents Secondary Damage and Preserves Visual
Maha Coucha1,2,3, Ahmed Y Shanab2, Mohamed Sayed1,2
1Augusta Biomedical Research Corporation, Augusta, GA 30901, USA.
Abstract:
Retinal neurodegeneration, an early characteristic of several blinding diseases, triggers glial activation, resulting in inflammation, secondary damage and visual impairment. Treatments that aim only at neuroprotection have failed clinically. Here, we examine the impact of modulating thioredoxin interacting protein (TXNIP) to the inflammatory secondary damage and visual impairment in a model of ischemia/reperfusion (IR). Wild type (WT) and TXNIP knockout (TKO) mice underwent IR injury by increasing intraocular pressure for 40 min, followed by reperfusion. An additional group of WT mice received intravitreal TXNIP-antisense oligomers (ASO, 100 µg/2 µL) 2 days post IR injury. Activation of Müller glial cells, apoptosis and expression of inflammasome markers and visual function were assessed. IR injury triggered early TXNIP mRNA expression that persisted for 14 days and was localized within activated Müller cells in WT-IR, compared to sham controls. Exposure of Müller cells to hypoxia-reoxygenation injury triggered endoplasmic reticulum (ER) stress markers and inflammasome activation in WT cells, but not from TKO cells. Secondary damage was evident by the significant increase in the number of occluded acellular capillaries and visual impairment in IR-WT mice but not in IR-TKO. Intervention with TXNIP-ASO prevented ischemia-induced glial activation and neuro-vascular degeneration, and improved visual function compared to untreated WT. Targeting TXNIP expression may offer an effective approach in the prevention of secondary damage associated with retinal neurodegenerative diseases.
Insights
Targeting thioredoxin interacting protein (TXNIP) reduces secondary damage and visual impairment in retinal neurodegeneration models. Modulating TXNIP offers a promising therapeutic strategy for blinding diseases.
Area of Science:
- Ophthalmology
- Neuroscience
- Immunology
Background:
- Retinal neurodegeneration causes inflammation and visual impairment.
- Current neuroprotection treatments have limited clinical success.
- Thioredoxin interacting protein (TXNIP) role in retinal inflammation is unclear.
Purpose of the Study:
- To investigate the impact of TXNIP modulation on inflammatory secondary damage and visual function in an ocular ischemia/reperfusion (IR) model.
- To assess the therapeutic potential of targeting TXNIP in retinal neurodegenerative diseases.
Main Methods:
- Utilized wild type (WT) and TXNIP knockout (TKO) mice subjected to IR injury.
- Administered TXNIP-antisense oligomers (ASO) to WT mice post-IR.
- Assessed Müller glial cell activation, apoptosis, inflammasome markers, and visual function.
Main Results:
- IR injury induced TXNIP mRNA expression in activated Müller cells in WT mice.
- WT Müller cells exposed to hypoxia-reoxygenation showed ER stress and inflammasome activation, unlike TKO cells.
- IR-WT mice exhibited increased acellular capillaries and visual impairment, absent in IR-TKO mice.
- TXNIP-ASO treatment mitigated glial activation, neuro-vascular damage, and improved vision in WT mice.
Conclusions:
- TXNIP plays a critical role in mediating secondary damage and visual impairment following retinal IR injury.
- Targeting TXNIP expression presents a viable therapeutic strategy for preventing secondary damage in retinal neurodegenerative diseases.
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