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Photoacoustic visualization of the fluence rate dependence of photodynamic therapy
Rongkang Gao1,2, Hao Xu3,2, Liangjian Liu1,2
1Research Laboratory for Biomedical Optics and Molecular Imaging, CAS Key Laboratory of Health Informatics, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.
Abstract:
This study investigates the fluence rate effect, an essential modulating mechanism of photodynamic therapy (PDT), by using photoacoustic imaging method. To the best of our knowledge, this is the first time that the fluence rate dependence is investigated at a microscopic scale, as opposed to previous studies that are based on tumor growth/necrosis or animal surviving rate. This micro-scale examination enables subtle biological responses, including the vascular damage and the self-healing response, to be studied. Our results reveal the correlations between fluence rate and PDT efficacy/self-healing magnitude, indicating that vascular injuries induced by high fluence rates are more likely to recover and by low fluence rates (≤126 mW/cm2) are more likely to be permanent. There exists a turning point of fluence rate (314 mW/cm2), above which PDT practically produces no permanent therapeutic effect and damaged vessels can fully recover. These findings have practical significance in clinical setting. For cancer-related diseases, the 'effective fluence rate' is useful to provoke permanent destruction of tumor vasculature. Likewise, the 'non effective range' can be applied when PDT is used in applications such as opening the blood brain barrier to avoid permanent brain damage.
Insights
Photodynamic therapy (PDT) fluence rate significantly impacts treatment outcomes. Low fluence rates cause permanent vascular damage, while high rates promote vessel recovery, crucial for clinical applications.
Area of Science:
- Biomedical Engineering
- Photomedicine
- Optical Imaging
Background:
- Photodynamic therapy (PDT) efficacy is modulated by fluence rate.
- Previous studies focused on macroscopic outcomes like tumor growth.
- Microscopic investigation of fluence rate effects is lacking.
Purpose of the Study:
- To investigate the fluence rate effect on PDT at a microscopic scale.
- To analyze vascular damage and self-healing responses.
- To establish correlations between fluence rate and PDT efficacy.
Main Methods:
- Utilized photoacoustic imaging for microscopic examination.
- Studied vascular damage and self-healing responses.
- Correlated fluence rate with PDT efficacy and healing.
Main Results:
- High fluence rates led to recoverable vascular injuries.
- Low fluence rates (≤126 mW/cm²) induced permanent vascular damage.
- A turning point at 314 mW/cm² showed no permanent therapeutic effect.
Conclusions:
- Fluence rate is a critical factor in PDT efficacy and vascular response.
- Low fluence rates are effective for permanent tumor vascular destruction.
- High fluence rates can be used for applications like blood-brain barrier opening to avoid damage.

