Technical articles

Photodynamic Therapy Technology: Mechanisms of Action, Photosensitizer Systems, and Experimental Evaluation

Photodynamic therapy (PDT) is a photochemical treatment technology jointly driven by photosensitizers, light of a specific wavelength, and molecular oxygen. After photosensitizers accumulate in target cells or diseased tissues, they are activated by light irradiation to generate singlet oxygen, free radicals, and other reactive oxygen species, which further induce organelle damage, membrane lipid oxidation, vascular disruption, and local immune responses. Because the irradiation range and photosensitizer distribution are relatively controllable, PDT has important application value in tumors, hyperproliferative skin diseases, HPV-related lesions, vascular diseases, and antimicrobial therapy.

 

Keywords: photodynamic therapy; PDT; photosensitizer; singlet oxygen; reactive oxygen species; irradiation parameters; tumor therapy; combination therapy

 

1 Basic Concepts of Photodynamic Therapy

1.1 Technical Scope of PDT

PDT is a local treatment technology based on photosensitization reactions. Its effect is not determined by the drug alone, but by photosensitizer distribution, irradiation range, light source parameters, and tissue oxygen supply. Without effective light irradiation, photosensitizers usually show relatively low dark toxicity. After exposure to light at a matching wavelength, they can enter an excited state and generate reactive oxygen species, causing oxidative damage to diseased cells, vascular endothelial cells, or microbial structures within the irradiated area.

 

 

1.2 Three-Component Reaction System

(1) Photosensitizer

The photosensitizer absorbs light energy and enters an excited state. Its absorption peak, molar extinction coefficient, reactive oxygen species yield, dark toxicity, hydrophilicity/hydrophobicity, subcellular localization, and tissue clearance rate all affect PDT efficacy. In vitro experiments focus more on cellular uptake, photostability, and subcellular localization. In vivo experiments also need to consider tissue distribution, metabolic clearance, and the duration of photosensitivity.

(2) Excitation light

The excitation light must match the absorption peak of the photosensitizer. Wavelength determines excitation efficiency and tissue penetration depth. Power density and energy density determine energy input per unit time and total light dose. The irradiation mode affects photobleaching, oxygen depletion, and the risk of local thermal effects. When the wavelength does not match, even increasing irradiation time may not produce a stable photodynamic effect.

(3) Oxygen

Oxygen participates in the generation of singlet oxygen and some free radicals and is an important substrate in PDT reactions. Tumor hypoxia, insufficient blood perfusion, or rapid oxygen consumption caused by high-intensity continuous irradiation may reduce ROS generation efficiency. In hypoxia-related models, oxygen supply status should be analyzed together with photosensitizer uptake, light dose, and mode of cell death.

 

1.3 Technical Characteristics

The characteristics of PDT are mainly reflected in local activation, selective oxidative damage, and multi-target effects. Local activation arises from control of the irradiation range, selective damage comes from relative enrichment of photosensitizers in diseased tissues and restriction of the irradiated area, and multi-target effects are manifested as organelle damage, membrane lipid oxidation, vascular occlusion, inflammatory responses, and immune regulation. Compared with thermal ablation, chemotherapy, or radiotherapy, PDT does not primarily rely on thermal injury, systemic drug exposure, or ionizing radiation-induced DNA damage. Instead, it triggers local biological effects through photochemical reactions.

 

2 Photochemical Reaction Basis of PDT

2.1 Photosensitizer Excitation Process

After absorbing photons at a matching wavelength, a photosensitizer transitions from the ground state to an excited singlet state. The excited singlet state can release energy through fluorescence or undergo intersystem crossing to become a longer-lived excited triplet state. The triplet-state photosensitizer is the key intermediate for reactive oxygen species generation and can induce biological damage through type I or type II reactions.

(1) Type I reaction

Type I reactions are mainly based on electron transfer or hydrogen transfer and can generate reactive species such as superoxide anions, hydroxyl radicals, lipid radicals, and peroxides. This reaction pathway has certain advantages in hypoxic environments and is commonly used in hypoxic tumor PDT, novel photosensitizer design, and studies combining PDT with ferroptosis.

(2) Type II reaction

Type II reactions are mainly based on energy transfer. The excited-state photosensitizer transfers energy to triplet oxygen to generate singlet oxygen. Singlet oxygen is highly reactive, short-lived, and has a limited diffusion distance. It usually preferentially damages membrane lipids, proteins, and organelle structures near the photosensitizer and is one of the most important photochemical pathways in classical PDT.

(3) Factors affecting reaction proportions

Type I and type II reactions often coexist in actual PDT systems. Photosensitizer structure, oxygen concentration, substrate environment, irradiation intensity, and microenvironmental redox state all affect the relative proportions of these two reaction types. Hypoxic environments, electron donor-rich environments, or specific photosensitizer structures may increase the proportion of type I reactions. When oxygen supply is sufficient and the triplet-state energy transfer efficiency of the photosensitizer is high, type II reactions are usually more prominent.

 

2.2 Targets of Reactive Oxygen Species Damage

Reactive oxygen species generated by PDT have a short reaction radius and short lifetime, so they usually preferentially attack biomolecules near the photosensitizer. Different subcellular localizations lead to different damage outcomes.

(1) Mitochondrial damage

Mitochondrial localization or damage near mitochondria can lead to decreased membrane potential, reduced ATP, cytochrome c release, and activation of the caspase cascade. Annexin V/PI, JC-1, Caspase-3, and PARP cleavage can be combined to assess the apoptotic process.

(2) Lysosomal damage

Lysosome-localized photosensitizers can cause disruption of acidic compartments, cathepsin release, and changes in autophagic flux. LC3-II, p62, LysoTracker, and lysosomal membrane permeability assays can be used to distinguish protective autophagy from death-related autophagy.

(3) Membrane lipid oxidation

When photosensitizers localize near the plasma membrane or organelle membranes, PDT can induce lipid peroxidation and loss of membrane integrity. C11-BODIPY, MDA, 4-HNE, PI staining, and LDH release can be used to evaluate membrane oxidative damage and necrosis-like cell death.

(4) Vascular and matrix damage

If photosensitizers are mainly distributed in vascular endothelium or extracellular matrix, PDT effects may manifest as increased vascular permeability, thrombosis, decreased perfusion, and local hypoxia changes. In vivo models can be evaluated using CD31, perfusion imaging, and hypoxia probes.

 

3 Photosensitizer Systems

3.1 Key Points in Photosensitizer Selection

The photosensitizer is the core component of a PDT system, and its properties directly affect photoreaction efficiency and biological effects. An ideal photosensitizer should have a defined absorption peak, high reactive oxygen species yield, low dark toxicity, good photostability, and interpretable cellular or tissue distribution characteristics.

(1) Spectral compatibility

The absorption peak of the photosensitizer should match the wavelength of the experimental light source. If the light source wavelength deviates from the absorption peak, photosensitizer excitation efficiency decreases, and experiments may show weak ROS signals, unstable phototoxicity, or a requirement for excessively high light doses.

(2) Dark toxicity and phototoxicity window

Photosensitizers should maintain low toxicity under dark conditions and produce a clear phototoxic response after irradiation. When dark toxicity is too high, cell death is difficult to attribute to a photodynamic reaction. When phototoxicity is insufficient, the causes should be investigated from aspects such as cellular uptake, light dose, ROS generation, and oxygen supply.

(3) Cellular uptake and subcellular localization

Cellular uptake affects the usable concentration of a photosensitizer, while subcellular localization determines the initial damage target. Different localization patterns, such as mitochondria, lysosomes, plasma membrane, endoplasmic reticulum, or extracellular matrix localization, lead to different modes of cell death and molecular indicators after PDT.

(4) In vivo distribution and clearance

In vivo PDT also requires attention to photosensitizer distribution in tumors, skin, liver, spleen, blood vessels, and normal tissues. Slow clearance may increase the risk of prolonged photosensitivity, whereas rapid clearance may shorten the effective treatment window.

 

3.2 Main Types of Photosensitizers

Different photosensitizers should not simply be listed by name. They should be selected based on “spectral matching—tissue/cellular uptake—ROS type—experimental use.”

(1) 5-ALA prodrug system

5-ALA promotes intracellular accumulation of protoporphyrin IX (PpIX) through the heme biosynthesis pathway and is suitable for skin, mucosal, HPV-related lesion, and epithelial proliferation models. The experimental focus of this system is not simply comparing 5-ALA concentrations, but evaluating PpIX fluorescence accumulation, incubation time, cellular metabolic status, and ROS generation capacity after irradiation. For PDT studies related to cervical lesions, skin lesions, or condyloma acuminatum, the 5-ALA system better reflects the relationship between metabolic differences in diseased cells and local phototoxicity.

(2) Porphyrin and chlorin photosensitizers

Porphyrin photosensitizers are suitable for establishing classical PDT mechanism models and can be used to analyze singlet oxygen generation, mitochondrial damage, apoptosis, and vascular effects. Chlorin photosensitizers usually absorb at longer wavelengths and are suitable for tumor model research under red or near-red light excitation. The focus of these photosensitizers should be placed on absorption peak and light source compatibility, cellular uptake efficiency, subcellular localization, and tissue retention time in vivo, rather than evaluating quality only by cell killing rate.

(3) Phthalocyanine and near-infrared-responsive photosensitizers

Phthalocyanine and near-infrared-responsive photosensitizers are suitable for deep tissue, three-dimensional tumor spheroids, organoids, or in vivo solid tumor models. Their research focus lies in long-wavelength excitation, tissue penetration, hypoxia adaptation, and compatibility with nanodelivery systems. If photothermal effects also exist, temperature monitoring and photothermal controls should be included to avoid misinterpreting thermal injury as PDT effects.

(4) Antimicrobial and mechanistic control photosensitizers

Methylene blue, toluidine blue, rose bengal, and similar compounds are commonly used for antimicrobial PDT, biofilm disruption, and in vitro ROS mechanism studies. These systems are more suitable for verifying singlet oxygen, free radical, or membrane damage processes and should not be directly extrapolated to deep-tissue tumor PDT. Experiments should carefully record irradiation wavelength, microbial uptake, biofilm penetration, and dark toxicity background.

 

4 Irradiation Parameters and Oxygen Supply Control

4.1 Light Source Parameters

PDT light source parameters include wavelength, power density, energy density, irradiation time, irradiation distance, spot area, and light source type. Wavelength determines whether the photosensitizer can be effectively excited. Power density determines energy input per unit time. Energy density represents the total light dose. Irradiation time and mode affect the risks of photobleaching, oxygen depletion, and local thermal effects.

 

Table 1 Key points for recording PDT irradiation parameters

 

Parameter

Recording content

Experimental significance

Wavelength

nm value and spectral range

Determines photosensitizer excitation efficiency

Power density

mW/cm²

Affects ROS generation rate and risk of thermal effects

Energy density

J/cm²

Represents total light dose

Irradiation time

Continuous or intermittent irradiation

Affects oxygen depletion and photobleaching

Light source type

Laser, LED, semiconductor light source

Affects monochromaticity, uniformity, and operability

Irradiation distance

Distance from light source to sample

Affects the actual light dose reaching the sample

Spot area

Actual irradiated area

Determines treatment range and dose uniformity

Temperature monitoring

Temperature changes before and after irradiation

Used to exclude interference from photothermal effects

 

4.2 Oxygen Supply Limitation

PDT reactions continuously consume oxygen, and hypoxia is an important factor limiting PDT efficacy. Tumor tissues often have insufficient perfusion and hypoxic regions, and high-intensity continuous irradiation may further accelerate local oxygen depletion, reducing ROS generation.

(1) Optimization of irradiation strategy

Intermittent irradiation or low-power irradiation can slow local oxygen depletion and allow oxygen time to diffuse back into the reaction area. This strategy is suitable for three-dimensional tumor spheroids, organoids, or solid tumor models with obvious oxygen supply limitations.

(2) Optimization of oxygen supply systems

Oxygen-carrying materials, catalytic oxygen-generating systems, and microenvironment-responsive delivery systems can improve local oxygen supply. When evaluating such systems, oxygen level, ROS generation, and mode of cell death should be measured simultaneously, rather than judging oxygen supply effects only by changes in cell viability.

(3) Optimization of photosensitizer pathways

Photosensitizers with type I reaction advantages can maintain a certain ability to generate free radicals under hypoxic conditions. In hypoxic PDT studies, singlet oxygen-dominated effects should be distinguished from free radical-dominated effects and analyzed together with HIF-1α, oxygen probes, and ROS type detection.

 

5 Biological Effects of PDT

5.1 Modes of Cell Death

PDT can induce apoptosis, necrosis, autophagy alteration, and mixed forms of cell death. Low to moderate oxidative damage is often associated with decreased mitochondrial membrane potential, caspase activation, and apoptosis. Strong membrane damage or rapid lipid peroxidation can cause necrosis-like cell death. Lysosomal damage may be accompanied by disruption of acidic compartments and altered autophagic flux. PDT evaluation should not rely only on cell viability readouts; membrane integrity, mitochondrial function, apoptotic markers, lipid peroxidation, and cellular morphological changes should also be assessed comprehensively.

 

5.2 Vascular and Immune Effects

The tissue-level effects of PDT do not only arise from direct death of diseased cells, but also include vascular damage and changes in the immune microenvironment. After vascular endothelial injury, increased permeability, thrombosis, decreased perfusion, and secondary hypoxia may occur. Damage-associated molecules released by oxidative injury can promote antigen exposure, inflammatory cytokine release, and immune cell recruitment. In tumor PDT research, CD31, perfusion imaging, hypoxia probes, CRT exposure, HMGB1 release, ATP release, and CD8+ T cell infiltration can be combined to distinguish the contributions of direct phototoxicity, vascular effects, and immune effects to the overall response.

 

6 Disease Models and Application Research

6.1 Tumor PDT Models

Tumor PDT studies can select two-dimensional cells, three-dimensional tumor spheroids, organoids, xenografts, or orthotopic models according to the complexity of the research question.

(1) Two-dimensional cell models

Two-dimensional cell models are suitable for rapid screening of photosensitizer concentration, incubation time, dark toxicity, phototoxicity, and irradiation parameters. This model is easy to operate and has good reproducibility, but it cannot fully reflect limitations in light penetration, oxygen diffusion, and drug distribution in solid tissues.

(2) Three-dimensional tumor spheroids and organoid models

Three-dimensional tumor spheroids can simulate light attenuation, hypoxia gradients, and insufficient drug penetration, making them suitable for evaluating PDT penetration depth and spatial distribution of cell death. Organoid models are closer to tissue heterogeneity and can be used to analyze the sensitivity of different cell populations to photodynamic damage.

(3) Xenograft and orthotopic models

Animal models can be used to evaluate the effects of PDT on tumor vasculature, immune microenvironment, tissue necrosis boundaries, and systemic safety. At this stage, tumor volume change alone should not be the only observation. Photosensitizer tissue distribution, ROS-related damage, vascular markers, immune infiltration, and recurrence should be analyzed comprehensively.

 

6.2 Skin, Mucosal, and HPV-Related Models

Skin and mucosal lesions are superficial, accessible to local administration, and easy to irradiate, making them suitable for ALA-PDT and local PDT studies. HPV-related lesion models can be studied around PpIX accumulation, E6/E7 expression, abnormal p16/Ki-67 co-expression, epithelial cell proliferation, and local inflammatory changes. In PDT studies related to cervical lesions, in addition to abnormal cell clearance, epithelial structure preservation, inflammatory microenvironment regulation, and tissue repair quality should also be considered.

 

6.3 Antimicrobial and Vascular Lesion Models

(1) Antimicrobial PDT models

Antimicrobial PDT mainly focuses on bacterial inactivation, biofilm disruption, and local infection control. Common evaluation indicators include CFU counts, biofilm staining, ROS detection, bacterial membrane integrity, and recurrent growth.

(2) Vascular lesion models

PDT for vascular lesions focuses more on photosensitizer distribution in vascular endothelium, endothelial damage after irradiation, vascular occlusion, and normal tissue protection. Endothelial cell viability, CD31 staining, blood flow perfusion, and tissue structure observation can be used to evaluate vascular-selective damage.

 

7 Combination Therapy and Technical Expansion

7.1 PDT and Immunotherapy

PDT can induce immunogenic cell death and promote antigen exposure and T cell responses. When combined with immune checkpoint inhibitors, tumor vaccines, or immune adjuvants, the analysis should focus on CRT exposure, HMGB1 release, ATP release, dendritic cell maturation, CD8+ T cell infiltration, and PD-L1 expression changes. If responses occur in distant non-irradiated lesions, systemic antitumor immune effects can be further evaluated.

 

7.2 PDT and Ferroptosis

PDT-induced ROS and lipid peroxidation can intersect with ferroptosis mechanisms. In combination studies, C11-BODIPY lipid ROS, GPX4, SLC7A11, GSH, and iron ion levels should be measured, and ferroptosis inhibitors or lipid peroxidation inhibitors should be used to verify mechanistic involvement. Observing enhanced cell death alone is insufficient to prove ferroptosis participation.

 

7.3 Nanodelivery and Responsive Design

Nanodelivery systems can improve photosensitizer water solubility, circulation stability, tissue enrichment, and cellular uptake. Common carriers include liposomes, polymer nanoparticles, metal-organic frameworks, albumin nanoparticles, and silica nanoparticles. Responsive designs can use pH, enzymes, reducing environments, hypoxia, or light irradiation to trigger release, enabling more effective photosensitizer enrichment in the diseased microenvironment.

(1) Delivery performance evaluation

Nano-PDT systems should be evaluated for particle size, PDI, zeta potential, drug loading, encapsulation efficiency, release profile, and serum stability. If these basic parameters are unstable, efficacy differences in subsequent cell or animal experiments are difficult to interpret.

(2) Cellular and tissue uptake evaluation

Delivery systems should further evaluate cellular uptake efficiency, subcellular localization, tumor tissue enrichment, and normal tissue distribution. Targeted delivery systems should also include blank carrier, non-targeted carrier, and competitive inhibition controls.

(3) Phototoxicity and safety evaluation

Nanocarriers themselves may have cytotoxicity or immunostimulatory effects, so PDT-induced cell death rate should not be the only comparison. Dark toxicity, carrier toxicity after irradiation, blood compatibility, and safety in major organs in vivo should all be included in the evaluation system.

 

8 Experimental Design and Result Evaluation

8.1 Control Setup

PDT experiments should include at least a blank control, light-only control, photosensitizer dark-treatment group, and PDT treatment group. When solvents, nanocarriers, targeting ligands, or combined drugs are used, solvent controls, blank carrier controls, carrier plus irradiation controls, and combination-treatment controls should also be included. Without light-only controls and dark toxicity controls, it is impossible to distinguish photosensitizer toxicity, light-induced damage, and true photodynamic effects.

 

8.2 Result Evaluation

Evaluation of PDT results should cover the photosensitizer, irradiation, ROS, and biological endpoints. At the photosensitizer level, uptake, localization, and dark toxicity should be measured. At the irradiation level, wavelength, power density, energy density, and temperature changes should be recorded. At the ROS level, singlet oxygen, free radicals, and lipid peroxidation should be distinguished. At the biological endpoint level, modes of cell death, organelle damage, vascular effects, immune responses, and tissue repair status should be analyzed together. Early screening focuses on the phototoxicity window, mechanistic studies focus on ROS type and death pathways, and in vivo application studies focus on tissue distribution, efficacy boundaries, and safety.

 

9 Related Reagent and Material Selection

 

Table 2 Photosensitizers and ROS detection reagents for photodynamic therapy research

 

Cat. No.

Product Name

Specification/Purity

Application Module

Application Positioning

A107209

5-Aminolevulinic acid hydrochloride

≥99%

ALA-PDT prodrug system

Induces intracellular PpIX accumulation; used in skin, mucosal, and HPV-related PDT studies

A409271

5-Aminolevulinic acid HCl

10mM in DMSO

ALA-PDT prodrug system

Used for ALA-PDT cell experiments and phototoxicity condition screening

P424713

Protoporphyrin IX

Moligand™,10mM in DMSO

Porphyrin photosensitizer

Used for PpIX-related photosensitization reactions and cellular uptake evaluation

C1496449

Chlorin e6

Moligand™, 10 mM in DMSO

Chlorin photosensitizer

Used in red-light PDT, tumor models, and nanodelivery system research

C302679

CHLORIN E6(CE6)

Moligand™,≥90%

Chlorin photosensitizer

Used for Ce6-PDT cellular phototoxicity and ROS generation studies

M425109

Methylene blue

10mM in DMSO

Phenothiazine photosensitizer

Used for antimicrobial PDT, ROS generation, and photosensitization evaluation

M196499

Methylene blue

0.05%

Phenothiazine photosensitizer

Used for antimicrobial PDT and staining/photosensitization treatment systems

M196500

Methylene blue

0.1%

Phenothiazine photosensitizer

Used for antimicrobial PDT or cellular phototoxicity studies under different concentration conditions

M134389

Methylene blue

≥70%

Phenothiazine photosensitizer

Used for basic photosensitization reactions and antimicrobial PDT experiments

M196501

Methylene blue

1%

Phenothiazine photosensitizer

Used for higher-concentration staining or local treatment systems

R104993

Rose bengal

≥95%

Singlet oxygen photosensitizer

Used for singlet oxygen generation, antimicrobial PDT, and photochemical mechanism controls

R104991

Rose bengal

Biological Stain

Singlet oxygen photosensitizer

Used for biological staining, photosensitization reactions, and antimicrobial PDT research

R104992

Rose bengal

≥90%

Singlet oxygen photosensitizer

Used for photosensitization reactions, ROS generation, and mechanism controls

I423619

Indocyanine Green

Moligand™, 10mM in DMSO

Near-infrared responsive photosensitizer/imaging material

Used for near-infrared PDT, image guidance, and distinguishing photothermal effects

I107931

Indocyanine Green (ICG)

Moligand™, ≥75%

Near-infrared responsive photosensitizer/imaging material

Used for ICG-related phototherapy, delivery, and in vivo imaging research

D423861

2',7'-Dichlorodihydrofluorescein diacetate

10mM in DMSO

Total ROS detection

Used to detect intracellular total ROS changes after PDT

H131224

2',7'-Dichlorodihydrofluorescein diacetate(DCFH-DA)

≥97%

Total ROS detection

Used for evaluating intracellular ROS generation and analyzing phototoxicity mechanisms

D122454

1,3-Diphenylisobenzofuran

≥97%

Singlet oxygen detection

Used for singlet oxygen generation and photochemical reaction validation in solution systems

S750650

Singlet Oxygen Sensor Green Reagent

 

Singlet oxygen detection

Used to evaluate singlet oxygen generation in type II PDT reactions

R353922

ROS fluorescent probe DHE

 

ROS detection

Used to detect superoxide anion-related ROS changes

 

Table 3 Lipid oxidation and organelle fluorescent probes for photodynamic therapy research

 

Cat. No.

Product Name

Specification/Purity

Application Module

Application Positioning

T1453647

1,3,5,7-Tetramethyl-2,6-diiodo-C3-SE-BODIPYs

 

BODIPY photosensitizer

Research on iodinated BODIPY photosensitizer systems

D1454930

2,6-Diiodo-BODIPY 493/503

 

BODIPY photosensitizer

Research on iodinated BODIPY photoreactions

B1452007

BODIPY 650/665 NHS ester

 

Long-wavelength fluorescent labeling

Labeling of photosensitizer carriers, proteins, or nanodelivery systems

B1454852

BODIPY 665/676

≥99%

Long-wavelength responsive fluorescence system

Long-wavelength excitation imaging or delivery tracking

B647088

BODIPY 581/591 C11

≥99%

Lipid peroxidation detection

Detection of PDT-induced lipid ROS

B1455290

BODIPY-581/591 NHS ester

≥98%

Lipid oxidation/fluorescent labeling

Derivatized labeling related to lipid peroxidation

B1455506

BODIPY 500/510 C1, C12

≥99%

Membrane lipid and fatty acid probe

Observation of lipid uptake and membrane lipid environment

B744202

BODIPY 500/510 C1, C12 (Fatty Acid Green Fluorescence Probe)

 

Membrane lipid and fatty acid probe

Fatty acid uptake and membrane lipid analysis

B1499713

BODIPY 505/515

Moligand™, 10 mM in DMSO

Basic BODIPY fluorescent probe

Cellular uptake, carrier tracking, and fluorescent labeling

B1454961

BODIPY 540 (purity 99%)

≥99%

BODIPY fluorescent probe

Cellular imaging and photosensitizer system labeling

B1455679

BODIPY 558/568 C12

≥98%

Lipid/membrane-related probe

Observation of membrane lipid environment and lipid distribution

B1450314

BODIPY 564/570

 

BODIPY fluorescent probe

Cellular imaging and delivery tracking

B646797

BODIPY 576/589

≥96%

BODIPY fluorescent probe

Fluorescent labeling and cellular imaging

B654746

BODIPY 576/589

10 mM in DMSO

BODIPY fluorescent probe

Fluorescent labeling and cellular imaging

J755442

JC-1

A cationic, fluorescent, carbocyanine dye that can be used as a ratiometric indicator of mitochondrial potential δΨm in cells, tissues, and isolated mitochondria.

Mitochondrial function detection

Evaluation of mitochondrial membrane potential changes

J335286

JC-1 iodide

≥95%

Mitochondrial function detection

Evaluation of mitochondrial membrane potential changes

J125134

JC-1

≥95%

Mitochondrial function detection

Evaluation of mitochondrial membrane potential changes

J141206

JC-10

≥95%

Mitochondrial function detection

Evaluation of mitochondrial membrane potential changes

M748085

Mito-Tracker Far-Red

BioReagent, ≥95%

Mitochondrial localization observation

Analysis of photosensitizer subcellular localization and mitochondrial status

M748086

Mito-Tracker Deep Red FM

 

Mitochondrial localization observation

Mitochondrial labeling and localization analysis

L1455325

LysoTracker Blue DND-22

 

Lysosome observation

Lysosomal localization and changes in acidic compartments

L647096

LysoTracker Red

≥97%

Lysosome observation

Lysosomal integrity and changes in acidic compartments

L1455226

LysoTracker Yellow HCK 123

≥98%

Lysosome observation

Lysosomal localization and damage analysis

L747763

Lyso-Tracker Red

 

Lysosome observation

Lysosomal structure and acidic compartment observation

F598336

Fluolysotm red (lysosomal red fluorescent probe)

 

Lysosome observation

Lysosomal localization and damage evaluation

F598335

Fluolysotm deep red (lysosomal dark red fluorescent probe)

 

Lysosome observation

Lysosomal localization and multichannel imaging

E745769

ER-Tracker Green

 

Endoplasmic reticulum observation

ER localization and stress-related observation

E1192810

ER-Tracker Red

 

Endoplasmic reticulum observation

ER localization and stress-related observation

E745770

ER-Tracker Red

 

Endoplasmic reticulum observation

ER localization and stress-related observation

 

10 Frequently Asked Questions

10.1 Why must dark toxicity controls be included in PDT experiments?

Photosensitizers themselves may affect cell viability, mitochondrial function, or membrane structure. Dark toxicity controls help determine whether cell damage comes from the photosensitizer itself rather than from the photodynamic reaction after light activation.

 

10.2 Can the light source wavelength be replaced arbitrarily?

No. The light source wavelength must match the absorption peak of the photosensitizer. A wavelength deviating from the absorption peak reduces excitation efficiency, and increasing the light dose may still fail to produce the same PDT effect.

 

10.3 Can a single ROS probe prove the PDT mechanism?

No. Different ROS probes vary in sensitivity to oxidative species, irradiation conditions, and photosensitizer interference. Mechanistic studies should combine ROS probes, scavengers, lipid peroxidation indicators, and cell death pathway analysis.

 

10.4 Why may in vitro PDT results not translate directly to in vivo conditions?

In vivo systems have limitations in light penetration, oxygen diffusion, vascular perfusion differences, uneven drug distribution, and effects of the immune microenvironment. Two-dimensional cell experiments are suitable for parameter screening, but they cannot replace validation in three-dimensional models and animal models.

 

10.5 What indicators should be measured in studies combining PDT with ferroptosis?

Lipid ROS, GPX4, SLC7A11, GSH, and iron ion levels should be measured, and ferroptosis inhibitors or lipid peroxidation inhibitors should be used for validation. Observing enhanced cell death alone is insufficient to prove ferroptosis involvement.

 

The technical value of photodynamic therapy comes from the coordinated control of photosensitizer, irradiation, and oxygen supply. By rationally selecting photosensitizer systems, standardizing irradiation parameters, distinguishing ROS types, and establishing multilevel evaluation indicators, PDT-induced local damage mechanisms and differences in therapeutic response can be interpreted more accurately.

 

For more related articles, please see below:

[1] Oxidative Stress and Experimental Interpretation Framework for ROS, JC-1, MPTP, and Calcium Indicators in Mitochondrial Function Assessment

Categories: Technical articles

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Cite this article

Aladdin Scientific. "Photodynamic Therapy Technology: Mechanisms of Action, Photosensitizer Systems, and Experimental Evaluation" Aladdin Knowledge Base, updated Jul 27, 2026. https://www.aladdinsci.com/us_en/faqs/photodynamic-therapy-technology-en.html
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