There was a significant increase in SCC-13 apoptosis following 30 min incubations of 0.5, 1, and 2 mM 5-ALA followed by 1,000 s of blue light. These results are consistent with our previously published research demonstrating that 5-ALA incubations of 30 min followed by blue light activation leads to a dose-dependent increase in the percentage of fibroblast cells undergoing apoptosis12,14.
This experimental approach to studying PDT has advantages and limitations. The described methods conform to clinical practice as a commercially available PS and light source were used. Researchers may customize the methods with different cell types, PSs, light sources, and irradiation parameters.However, there are limitations to this approach as this protocol is designed for adherent cells cultured in a monolayer. In clinical practice, differences in tissue architecture or disease pathology (i.e., hyperkeratosis or fibrosis) may decrease PS absorption or light penetration15. As a result, the treatment doses and experimental findings may not directly correspond to clinical practice. Spheroid tumor models and microfluidic chip have been studied as methods to more closely replicate tumor microenvironments16,17,18. Spheroids have inner and outer cellular niches that may differentially incorporate the photosensitizers and represent heterogeneous tumor architecture. Other researchers have used microfluidic chips to screen treatment conditions and vascular delivery of photosensitizers. However, microfluidic chips may be costly to develop or difficult to implement for researchers unfamiliar with the technique. Furthermore, spheroids and microfluidic chips may not reflect the clinical treatment of skin cancers in which photosensitizers are directly applied to the tumor surface without vascular dissemination. Researchers may need to evaluate the pros and cons of monolayer culture, spheroid tumor models, and microfluidic chips for studying PDT in different disease systems. As there are no immune cells or extracellular matrix, it is not possible to determine how PDT affects complex cell-cell interactions. Researchers may need to confirm in vitro experimental results using animal models and clinical trials. To achieve high inter-test validity, it is important to maintain consistent incubation and light parameters when performing in vitro PDT experiments.
Temperature is known to alter the efficacy of PDT19.One study demonstrated that cell death, 5-ALA uptake, PP-IX formation, and cytokine release may be enhanced by incubating cells with 5-ALA at temperatures up to 44 °C19. Incubation temperatures above 44 °C may lead to thermal induced cell death, and incubation temperatures below 20 °C may not lead to significant 5-ALA uptake and accumulation19. We recommend that researchers perform PS incubations on a temperature-adjustable heating block at a constant temperature to control for potentially confounding thermal effects. Additionally, it is important to incubate the photosensitizer for a sufficient amount of time to allow for the conversion of 5-ALA into PP-IX. In this protocol, SCC-13 cells were incubated with 5-ALA for 30 min, which successfully induced cell apoptosis. We have previously demonstrated that a 10 min incubation of 5-ALA did not significantly increase apoptosis in fibroblast compared to untreated control fibroblasts11,14. PP-IX starts accumulating in mouse skin after 5-ALA is incubating for six minutes at 37 °C. Therefore, after ten minutes of 5-ALA incubation, there may not be sufficient accumulation of PP-IX to induce cell apoptosis20. We recommend a minimum incubation period of 20 to 30 min for 5-ALA based on our previous studies11,14. Researchers may need to optimize incubation period based on the laboratory setting, photosensitizer of interest, cell type, and clinical indication. Antibody titration and optimization experiments may be performed for best results using manufacturers guidelines. Other assays of interest may be performed following blue light photoactivation including dihydroethidium flow cytometric quantification of ROS.14
Variation in the amount of light delivered per unit of surface area (i.e., irradiance) and total irradiation dose (i.e., fluence) during the photoactivation phase may affect ROS formation and cell apoptosis21. The relationship between fluence, irradiance, and time can be described by the following equation:
Fluence (J/cm2) = Irradiance (W/cm2) x time (s)
As fluence is dependent on time, lengthening or shortening the photoactivation phases may change treatment efficacy. The irradiance is proportional to distance squared between the light source and the target tissue. As a result, if the light is too far away, there may not be sufficient light energy delivered to the targeted tissue to excite the PS. Alternatively, the irradiance may be increased by light reflecting off the surrounding surfaces. Therefore, we recommend performing light irradiations with the cell culture plates placed on a black surface to prevent light reflection. Researchers may acquire commercially available or FDA-approved blue light-emitting diodes and fluorescent devices to use in PDT experiments, but these devices may have different power outputs and light field uniformity. A wavelength-specific photometer should be used to measure the irradiance at the cell surface and uniformity of the light field before every experiment for consistent results. A commercially available diffuser may be used to enhance field uniformity, if necessary.
In summary, we have described an in vitro approach to investigating PDT by detailing theory, experimental methods, limitations, potential pitfalls, and recommendations for optimization. PDT is a useful clinical procedure and in vitro research may allow for the development of novel PSs, optimization of protocols, and new indications for PDT.