mTOR inhibition as a novel gene therapeutic strategy for diabetic retinopathy
Steven Hyun Seung Lee1, Joo Yong Lee2,3, Jun-Sub Choi1
1CdmoGen Co., Ltd., Cheongju, Korea.
Abstract:
In addition to laser photocoagulation, therapeutic interventions for diabetic retinopathy (DR) have heretofore consisted of anti-VEGF drugs, which, besides drawbacks inherent to the treatments themselves, are limited in scope and may not fully address the condition's complex pathophysiology. This is because DR is a multifactorial condition, meaning a gene therapy focused on a target with broader effects, such as the mechanistic target of rapamycin (mTOR), may prove to be the solution in overcoming these concerns. Having previously demonstrated the potential of a mTOR-inhibiting shRNA packaged in a recombinant adeno-associated virus to address a variety of angiogenic retinal diseases, here we explore the effects of rAAV2-shmTOR-SD in a streptozotocin-induced diabetic mouse model. Delivered via intravitreal injection, the therapeutic efficacy of the virus vector upon early DR processes was examined. rAAV2-shmTOR-SD effectively transduced mouse retinas and therein downregulated mTOR expression, which was elevated in sham-treated and control shRNA-injected (rAAV2-shCon-SD) control groups. mTOR inhibition additionally led to marked reductions in pericyte loss, acellular capillary formation, vascular permeability, and retinal cell layer thinning, processes that contribute to DR progression. Immunohistochemistry showed that rAAV2-shmTOR-SD decreased ganglion cell loss and pathogenic Müller cell activation and proliferation, while also having anti-apoptotic activity, with these effects suggesting the therapeutic virus vector may be neuroprotective. Taken together, these results build upon our previous work to demonstrate the broad ability of rAAV2-shmTOR-SD to address aspects of DR pathophysiology further evidencing its potential as a human gene therapeutic strategy for DR.
Insights
Gene therapy using rAAV2-shmTOR-SD shows promise for diabetic retinopathy (DR). This treatment effectively targets the mechanistic target of rapamycin (mTOR) pathway, reducing key DR pathologies in a mouse model.
Area of Science:
- Ophthalmology
- Gene Therapy
- Diabetic Retinopathy Research
Background:
- Current diabetic retinopathy (DR) treatments like laser photocoagulation and anti-VEGF drugs have limitations.
- Diabetic retinopathy is a complex, multifactorial condition requiring broader therapeutic strategies.
- The mechanistic target of rapamycin (mTOR) pathway is implicated in DR pathophysiology.
Purpose of the Study:
- To investigate the therapeutic potential of rAAV2-shmTOR-SD gene therapy in a mouse model of diabetic retinopathy.
- To evaluate the efficacy of inhibiting the mTOR pathway in early stages of DR.
- To assess the impact of mTOR inhibition on key pathological features of DR.
Main Methods:
- Utilized a streptozotocin-induced diabetic mouse model.
- Administered rAAV2-shmTOR-SD via intravitreal injection.
- Examined retinal transduction, mTOR expression, and various DR-related pathological markers including pericyte loss, vascular permeability, and cell layer thinning.
Main Results:
- rAAV2-shmTOR-SD successfully transduced mouse retinas and downregulated elevated mTOR expression.
- Inhibition of mTOR led to significant reductions in pericyte loss, acellular capillaries, vascular leakage, and retinal thinning.
- Immunohistochemistry revealed decreased ganglion cell loss, suppressed Müller cell activation, and demonstrated anti-apoptotic effects.
Conclusions:
- rAAV2-shmTOR-SD effectively targets multiple aspects of diabetic retinopathy pathophysiology in vivo.
- The gene therapy exhibits neuroprotective properties, reducing cell loss and inflammation.
- These findings support the potential of rAAV2-shmTOR-SD as a novel gene therapeutic strategy for diabetic retinopathy.
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