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Updated: May 26, 2026

Assessment of Vascular Regeneration in the CNS Using the Mouse Retina
Published on: June 23, 2014
Neuroprotective response after photodynamic therapy: role of vascular endothelial growth factor
Misa Suzuki1, Yoko Ozawa, Shunsuke Kubota
1Laboratory of Retinal Cell Biology, Keio University School of Medicine, Shinanomachi, Shinjuku-ku, Tokyo, Japan.
Background:
Anti-vascular endothelial growth factor (VEGF) drugs and/or photodynamic therapy (PDT) constitute current treatments targeting pathological vascular tissues in tumors and age-related macular degeneration. Concern that PDT might induce VEGF and exacerbate the disease has led us to current practice of using anti-VEGF drugs with PDT simultaneously. However, the underlying molecular mechanisms of these therapies are not well understood.
Methods:
We assessed VEGF levels after PDT of normal mouse retinal tissue, using a laser duration that did not cause obvious tissue damage. To determine the role of PDT-induced VEGF and its downstream signaling, we intravitreally injected a VEGF inhibitor, VEGFR1 Fc, or a PI3K/Akt inhibitor, LY294002, immediately after PDT. Then, histological and biochemical changes of the retinal tissue were analyzed by immunohistochemistry and immunoblot analyses, respectively.
Results:
At both the mRNA and protein levels, VEGF was upregulated immediately and transiently after PDT. VEGF suppression after PDT resulted in apoptotic destruction of the photoreceptor cell layer in only the irradiated area during PDT. Under these conditions, activation of the anti-apoptotic molecule Akt was suppressed in the irradiated area, and levels of the pro-apoptotic protein BAX were increased. Intravitreal injection of a PI3K/Akt inhibitor immediately after PDT increased BAX levels and photoreceptor cell apoptosis.
Conclusion:
Cytotoxic stress caused by PDT, at levels that do not cause overt tissue damage, induces VEGF and activates Akt to rescue the neural tissue, suppressing BAX. Thus, the immediate and transient induction of VEGF after PDT is neuroprotective.
Insights
Photodynamic therapy (PDT) can induce vascular endothelial growth factor (VEGF) to protect retinal cells. This VEGF activation, along with Akt signaling, prevents photoreceptor cell death after non-damaging PDT.
Area of Science:
- Ophthalmology
- Molecular Biology
- Biomedical Engineering
Background:
- Current treatments for age-related macular degeneration and tumors involve anti-vascular endothelial growth factor (VEGF) drugs and photodynamic therapy (PDT).
- Concerns exist that PDT may increase VEGF, potentially worsening disease, leading to combined anti-VEGF and PDT treatments.
- The molecular mechanisms underlying these therapies remain unclear.
Purpose of the Study:
- To investigate the role of VEGF induction following PDT in normal mouse retinal tissue.
- To determine the downstream signaling pathways activated by PDT-induced VEGF.
- To assess the neuroprotective effects of VEGF and its signaling pathways after PDT.
Main Methods:
- Assessed VEGF levels (mRNA and protein) in mouse retinas after low-level PDT.
- Administered intravitreal injections of a VEGF inhibitor (VEGFR1 Fc) or a PI3K/Akt inhibitor (LY294002) post-PDT.
- Analyzed histological and biochemical changes, including apoptosis markers, using immunohistochemistry and immunoblotting.
Main Results:
- PDT transiently upregulated VEGF at both mRNA and protein levels.
- Suppression of PDT-induced VEGF led to photoreceptor apoptosis specifically in the irradiated area.
- Inhibition of Akt activation increased pro-apoptotic BAX and photoreceptor cell death, while PI3K/Akt inhibition exacerbated apoptosis.
Conclusions:
- Low-level PDT induces VEGF and activates the anti-apoptotic Akt pathway.
- This VEGF-mediated Akt activation is a neuroprotective mechanism that suppresses BAX and prevents photoreceptor cell death.
- The transient induction of VEGF post-PDT serves a crucial role in neural tissue rescue.
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