Background: Photodynamic therapy (PDT) leading to immunogenic cell death (ICD) may serve as a promising basis for the development of antitumor therapeutic strategies. However, the mechanisms of action of photoinduced ICD in primary tumor cultures, including human glioma, remain unexplored. Methods: In the present study, the features of regulated cell death induced by photodynamic therapy using a previously described ICD inducer, porphyrazine III (pz III), were investigated. Cell death was studied in 7 primary cultures of high-grade human gliomas (astrocytomas, oligodendrogliomas, and glioblastomas). Results: Accumulation of porphyrazine III was observed in the endoplasmic reticulum (ER), Golgi apparatus, lysosomes, and mitochondria; however, the distribution of the photosensitizer varied across different cultures. A narrow concentration window of porphyrazine III was established to effectively reach IC85, primarily inducing ferroptosis with contributions from apoptosis and necroptosis accompanied by superoxide anion generation and mitochondrial dysfunction. Conclusions: Given the immunogenic potential of ferroptosis, apoptosis and necroptosis we hypothesize that the induction of PDT using porphyrazine III in glioma will trigger immunogenic cell death.
Photodynamic therapy (PDT) occupies an important place in the arsenal of cancer treatment modalities; however, its efficacy is primarily limited by the local nature of its effects and by tumor cell resistance. The aim of this review is to analyze the fundamental principles and biological consequences of PDT, to summarize current data on the molecular and cellular mechanisms determining its efficacy, and to consider strategies for overcoming its limitations. Particular attention is paid to the mechanisms underlying resistance development and to the role of switching from non-immunogenic to immunogenic cell death in shaping the antitumor response. The potential integration of PDT with dendritic cell vaccination is considered a promising strategy for overcoming these limitations. The potential of vaccine-based approaches to activate specific antitumor immunity in aggressive cancers is highlighted, with emphasis on the advantages of dendritic cell vaccines in addressing the limitations of conventional PDT.
In this report, we developed novel chlorin/arylaminoquinazoline conjugates for targeted photodynamic therapy of cancer. The synthesized photosensitizers consisted of chlorin-e6 metallocomplexes (Zn, In, or Pd) conjugated with arylaminoquinazoline ligands with high affinity for EGFR receptors. Through the incorporation of cationic moieties, we successfully prepared water-soluble conjugated drugs suitable for intravenous administration. Comprehensive SAR studies were conducted to evaluate the influence of structural features on the photodynamic activity of these conjugates. Additionally, the selectivity and antitumor properties of the conjugates were investigated in EGFR-expressing A431 human tumor cell line in vitro. Among the tested molecules, the In-containing conjugate effectively inhibited tumor cell proliferation at nanomolar concentrations, a rare property for conventional photosensitizers. In in vivo experiments, the conjugates rapidly accumulated at the tumor site in nude mice bearing A431 xenograft tumors. Subsequent distribution analysis among different tissues was carried out using fluorescence imaging and elemental analysis. Finally, we demonstrated that the most promising In-containing conjugate was capable of inhibiting xenograft tumor growth in mice through combinational therapy.
The extracellular matrix (ECM) and its primary chemical components, including collagen, play a pivotal role in carcinogenesis and tumor progression. The ECM actively regulates cell proliferation, migration, and, importantly, resistance to various adverse factors. It is widely recognized as a key factor in modifying the resistance of tumor cells to various treatment modalities and cytotoxic compounds. However, the role of the ECM in tumor cell adaptation to nutritional deficiencies and hypoxic conditions remains significantly less studied. Since it is generally accepted that tumor cells resistance increases when cultured in a three-dimensional matrix, we sought to experimentally test the universality of this statement. In this work, we analyzed the responses of tumor cells with varying origins and proliferative activities, including human bladder carcinoma, epidermoid carcinoma, and ovarian carcinoma, to deprivation of serum, glucose and oxygen. We compared cell resistance to suboptimal conditions when cultured in a monolayer on tissue culture (TC)-treated polystyrene, on collagen-coated surfaces, or within a three-dimensional hydrogel composed of collagen type I. All three cell lines were stably transfected with fluorescent protein genes. To register the cell growth dynamics, we used a fluorescence-based technique that allows long-term quantitative observations without disrupting the hydrogel. The analyzed cell lines demonstrated different patterns of relative sensitivity to suboptimal conditions. We revealed that the direction and intensity of the collagen matrix effect depend on the cell type. Slowly proliferating ovarian carcinoma cells showed no noticeable changes in their behavior when cultured in a gel compared to a monolayer. In the case of bladder carcinoma, we registered predominantly resistance-stimulating effect of the collagen matrix, but it was significant only under serum deprivation. The most pronounced effect of collagen was registered for epidermoid carcinoma. Importantly, this effect was ambivalent: gel-embedded cells demonstrated significantly enhanced resistance to serum deprivation, but, at the same time, they were more responsive to glucose starvation and hypoxic conditions. We attribute the registered phenomenon to the individual characteristics of tumor cells with different origins and metabolic activities.
Recent studies of photosensitizers have increasingly focused on improving their aqueous solubility, reducing dark toxicity and enhancing photodynamic activity. In our work, we have synthesized and characterized a series of chlorin e6 derivatives varying in the number of galactose moieties in the molecule and way they are linked to the chlorin macrocycle. We established that the quantity and localization of galactose moieties in the macrocycle affects both dark and photoinduced cytotoxicity. All of the studied derivatives exhibited singlet oxygen quantum yield photogeneration comparable to that of the clinically approved chlorin e6 dimeglumine (Photoditazine®) with marginal exceeding. Although the incorporation of galactose moieties to the periphery of the chlorin macrocycle led to slightly decreased photostability of resulting derivatives, it did not significantly hinder their photodynamic activity. Moreover, cellular uptake of the obtained derivatives was significantly improved compared to that of Photoditazine®. Collectively, favorable spectral, photochemical, photobiological characteristics, along with improved aqueous solubility, suggest that chlorin e6 derivatives with peripheral galactose substituents are promising photosensitizers for clinical applications.
In this report, we developed novel chlorin/arylaminoquinazoline conjugates for targeted photodynamic therapy of cancer. The synthesized photosensitizers consisted of chlorin-e6 metallocomplexes (Zn, In, or Pd) conjugated with arylaminoquinazoline ligands with high affinity for epidermal growth factor receptors (EGFR). Additionally, the selectivity and antitumor properties of the conjugates were investigated in the EGFR-expressing A431 human tumor cell line in vitro. Among the tested molecules, the In-containing conjugate effectively inhibited tumor cell proliferation at nanomolar concentrations, a rare property for conventional photosensitizers. In in vivo experiments, the conjugates rapidly accumulated at the tumor site in nude mice bearing A431 xenograft tumors. Subsequent distribution analysis among different tissues was carried out using fluorescence imaging and elemental analysis. Finally, we demonstrated that the most promising In-containing conjugate was capable of inhibiting xenograft tumor growth in mice through combinational therapy. This therapeutic approach, combined with the conjugate's confirmed safety profile, highlights its potential for effective and safe cancer treatment.
Latest studies highlight boron-dipyrromethene (BODIPY) with a meso-methyl moiety as a promising photoremovable protecting group due to its activation within the phototherapeutic window. While BODIPYs inherently generate ROS and act as photosensitizers, few studies have explored combining their photouncaging capability with photodynamic therapy (PDT). Herein, we developed novel meso-methyl-BODIPY conjugates of the DNA alkylator Boc-seco-CBI and the multikinase inhibitor cabozantinib derivative activated by green or red light. To enhance the photodecaging efficiency of the conjugates, heavy atoms (Br, I) were introduced, and the boron atom was alkylated. The synthesized compounds were characterized for key photophysical and photochemical properties, including quantum yields of singlet oxygen generation, fluorescence, photolysis, and cytostatic release. It was shown that green-light irradiation of halogenated Boc-seco-CBI conjugates enabled rapid cytostatic release (<1 min), though with modest drug yields due to competing photodegradation. However, efficient uncaging of the cytostatic from the BODIPY-cabozantinib conjugate was achieved only after extended photoirradiation (∼80 min) with red light. In vitro evaluation using tumor (MDA-MB-231, A-431) and normal (HEK293) cell lines with various EGFR/c-Met expressions demonstrated that the BODIPY-cabozantinib conjugate exhibited predominant photosensitizing effects, with minimal cytostatic contribution. During this study, we encountered significant synthetic challenges in developing red-light-absorbing conjugates, coupled with their photodegradation under prolonged irradiation. Our observations reveal key considerations for developing conjugates based on meso-methyl-BODIPY that combine PDT with light-controlled drug release toward antitumor therapy.
In this report, we present a novel prodrug strategy that can significantly improve the efficiency and selectivity of combined therapy for bladder cancer. Our approach involved the synthesis of a conjugate based on a chlorin-e6 photosensitizer and a derivative of the tyrosine kinase inhibitor cabozantinib, linked by a β-glucuronidase-responsive linker. Upon activation by β-glucuronidase, which is overproduced in various tumors and localized in lysosomes, this conjugate released both therapeutic modules within targeted cells. This activation was accompanied by the recovery of its fluorescence and the generation of reactive oxygen species. Investigation of photodynamic and dark toxicity in vitro revealed that the novel conjugate had an excellent safety profile and was able to inhibit tumor cells proliferation at submicromolar concentrations. Additionally, combined therapy effects were also observed in 3D models of tumor growth, demonstrating synergistic suppression through the activation of both photodynamic and targeted therapy.
The discovery of the concept of immunogenic cell death (ICD) is a cornerstone in the development of novel anti-cancer immunotherapeutic approaches. Induction of the ICD pathway by specific anti-cancer therapeutic regimens can eliminate cancer cells by directly killing them during therapy and by activation of strong and specific anti-cancer immunity, leading to a long-lasting immunological memory that prevents cancer recurrence. ICD encompasses different forms of regulated cell death and can be triggered by many anti-cancer treatment modalities, including photodynamic therapy (PDT). PDT is a multistep procedure involving the accumulation of a light-sensitive dye known as a photosensitizer (PS) in tumor cells, followed by its activation by irradiation with a light of an appropriate wavelength. In the presence of molecular oxygen, the irradiated PS leads to the generation of cytotoxic reactive oxygen species, which can lead to ICD induction in the cancer cells. Here, we first describe in vitro methods to help optimize the PDT procedure for a specific PS. We also provide a collection of protocols and techniques for assessing ICD in vitro, including analysis of the emission of damage associated molecular patterns (DAMPs), efferocytosis, and the maturation and activation state of antigen presenting cells. Next, we describe in detail protocols for diverse tumor mouse models for assessing and characterizing ICD in vivo, such as murine tumor vaccination models. Finally, as an immunotherapeutic vaccine, we suggest using either PDT-induced dead cancer cells, preferably undergoing ICD, or dendritic cells loaded with lysates of PDT-induced cancer cells in a syngeneic orthotopic glioma model. Overall, this methodological article provides a quantitative, comprehensive set of validated tools that can be successfully used, with some adaptations, to identify, optimize and validate novel PSs in vitro and in vivo for the efficient induction of ICD during photodynamic treatment.
New series of cyanoaryl porphyrazines with 4-(2-propinyloxy)phenyl and 4-benzyleoxyphenyl fragments in a macrocycle framing was reported. All the compounds reported on exhibit a good potential as the effective photosensitizer for photodynamic therapy (PDT). Moreover, they demonstrate unique combination of photodynamic activity and double sensory capacity toward environmental rigidity and polarity that is the promising platform for specifically personalized medicine.
Tetracyanotetra(aryl)porphyrazines are a unique group of dyes combining properties of molecular rotors and photodynamic agents. The fluorescence lifetime and quantum yield of these compounds are highly dependent on local viscosity, so they can be used as sensors of intracellular viscosity. The rigidochromic behaviours of the compounds provides a tool to quantify cell damage in real time during photodynamic cancer treatment.
Modern radiotherapy utilizes a broad range of sources of ionizing radiation, both low-dose-rate (LDR) and high-dose-rate (HDR). However, the mechanisms underlying specific dose-rate effects remain unclear, especially for corpuscular radiation. To address this issue, we have irradiated human epidermoid carcinoma A431 cells under LDR and HDR regimes. Reducing the dose rate has lower lethality at equal doses with HDR irradiation. The half-lethal dose after HDR irradiation was three times less than after LDR irradiation. The study of mechanisms showed that under HDR irradiation, the radiation-induced halt of mitosis with the accompanying emergence of giant cells was recorded. No such changes were recorded after LDR irradiation. The level of DNA damage is significantly greater after HDR irradiation, which may be the main reason for the different mechanisms of action of HDR and LDR irradiations. Comparing the mechanisms of cell response to LDR and HDR irradiations may shed light on the mechanisms of tumor cell response to ionizing radiation and answer the question of whether different dose rates within the same dose range can cause different clinical effects.
Significant progress in the field of nanobiotechnology has contributed to the improvement of tools and methods for diagnosis and treatment of such socially significant diseases as cancer. The creation of multifunctional complexes is one of the effective tools of modern biomedicine. We created theranostic complexes based on upconversion luminescent nanoparticles and the recombinant targeted toxin DARPin-LoPE. We have demonstrated the high toxicity of the developed complexes against target tumor cells. In addition, we documented the selective accumulation of the resulting theranostic complexes in tumors characterized by overexpression of the HER2 receptor. In general, the complexes have high potential as effective tools for theranostics of oncological diseases.
Since its discovery more than 100 years ago, photodynamic therapy (PDT) has become a potent strategy for the treatment of many types of cancer [...]
Today we see an increasing demand for new fluorescent materials exhibiting various sensory abilities due to their broad applicability ranging from the construction of flexible devices to bioimaging. In this paper, we report on the new fluorescent pigments AntTCNE, PyrTCNE, and PerTCNE which consist of 3–5 fused aromatic rings substituted with tricyanoethylene fragments forming D-π-A diad. Our studies reveal that all three compounds exhibit pronounced rigidochromic properties, i.e., strong sensitivity of their fluorescence to the viscosity of the local environment. We also demonstrate that our new pigments belong to a very rare type of organic fluorophores which do not obey the well-known empirical Kasha’rule stating that photoluminescence transition always occurs from the lowest excited state of an emitting molecule. This rare spectral feature of our pigments is accompanied by an even rarer capability of spectrally and temporally well-resolved anti-Kasha dual emission (DE) from both higher and lowest electronic states in non-polar solvents. We show that among three new pigments, PerTCNE has significant potential as the medium-bandgap non-fullerene electron acceptor. Such materials are now highly demanded for indoor low-power electronics and portable devices for the Internet-of-Things. Additionally, we demonstrate that PyrTCNE has been successfully used as a structural unit in template assembling of the new cyanoarylporphyrazine framework with 4 D-π-A dyads framing this macrocycle (Pyr4CN4Pz). Similarly to its structural unit, Pyr4CN4Pz is also the anti-Kasha fluorophore, exhibiting intensive DE in viscous non-polar medium and polymer films, which strongly depends on the polarity of the local environment. Moreover, our studies showed high photodynamic activity of this new tetrapyrrole macrocycle which is combined with its unique sensory capacities (strong sensitivity of its fluorescent properties to the local environmental stimuli such as viscosity and polarity. Thus, Pyr4CN4Pz can be considered the first unique photosensitizer that potentially enables the real-time combination of photodynamic therapy and double-sensory approaches which is very important for modern biomedicine.
Research in the past decade on immunogenic cell death (ICD) has shown that the immunogenicity of dying tumor cells is crucial for effective anticancer therapy. ICD induction leads to the emission of specific damage-associated molecular patterns (DAMPs), which act as danger signals and as adjuvants to activate specific anti-tumor immune responses, leading to the elimination of tumor cells and the formation of long-term immunological memory. ICD can be triggered by many anticancer treatment modalities, including photodynamic therapy (PDT). However, due to the variety of photosensitizers used and the lack of a universally adopted PDT protocol, there is a need to develop novel PDT with a proven ICD capability. In the present study, we characterized the abilities of two photoactive dyes to induce ICD in experimental glioma in vitro and in vivo. One dye was from the tetracyanotetra(aryl)porphyrazine group with 9-phenanthrenyl (pz I), and the other was from the 4-(4-fluorobenzyoxy)phenyl (pz III) group in the aryl frame of the macrocycle. We showed that after the photosensitizers penetrated into murine glioma GL261 cells, they localized predominantly in the Golgi apparatus and partially in the endoplasmic reticulum, providing efficient phototoxic activity against glioma GL261 cells upon light irradiation at a dose of 20 J/cm2 (λex 630 nm; 20 mW/cm2). We demonstrated that pz I-PDT and pz III-PDT can act as efficient ICD inducers when applied to glioma GL261 cells, facilitating the release of two crucial DAMPs (ATP and HMGB1). Moreover, glioma GL261 cells stimulated with pz I-PDT or pz III-PDT provided strong protection against tumor growth in a prophylactic subcutaneous glioma vaccination model. Finally, we showed that dendritic cell (DC) vaccines pulsed with the lysates of glioma GL261 cells pre-treated with pz-I-PDT or pz-III-PDT could act as effective inducers of adaptive anti-tumor immunity in an intracranial orthotopic glioma mouse model.
Today's research on the processes of carcinogenesis and the vital activity of tumor tissues implies more attention be paid to constituents of the tumor microenvironment and their interactions. These interactions between cells in the tumor microenvironment can be mediated via different types of protein junctions. Connexins are one of the major contributors to intercellular communication. They form the gap junctions responsible for the transfer of ions, metabolites, peptides, miRNA, etc., between neighboring tumor cells as well as between tumor and stromal cells. Connexin hemichannels mediate purinergic signaling and bidirectional molecular transport with the extracellular environment. Additionally, connexins have been reported to localize in tumor-derived exosomes and facilitate the release of their cargo. A large body of evidence implies that the role of connexins in cancer is multifaceted. The pro- or anti-tumorigenic properties of connexins are determined by their abundance, localization, and functionality as well as their channel assembly and non-channel functions. In this review, we have summarized the data on the contribution of connexins to the formation of the tumor microenvironment and to cancer initiation and progression.
In vitro cultivation of cells in strictly controlled conditions of a biological incubator is a widely used experimental model in biological studies. The CO2-incubators allow control of temperature, atmospheric composition, and humidity; however, the recent reports point out at possible significant and incontrollable influence of incubators on magnetic background. We demonstrated that two types of CO 2 -incubators sufficiently alter the static magnetic field (SMF) in the inner chamber compared to natural geomagnetic field, and the effect depends on the incubator model. The values of SMF in the center of incubators’ chambers were lower than natural; nevertheless, the strongly expressed spatial inhomogeneity of SMF was registered, with both reduced, up to hypomagnetic, and increased SMF values. One of the incubators in operating mode generated oscillations in magnetic field with period of oscillations about several seconds and peak-to-peak amplitude depending on the measuring point within the chamber volume, up to 115% of the mean value. Since the magnetic background is considered to contribute in multiple biological effects, we emphasize the significant impact of CO 2 -incubators on magnetic background in cell culture experiments and assume that its spatial and temporal inhomogeneity may be a source for variability in cell study results. Highlights CO 2 -incubators sufficiently alter the static magnetic field in the inner chamber compared to natural geomagnetic field Spatial inhomogeneity of the magnetic field depends on CO 2 -incubator type and can reach the gradient value of more than 60 μT. In one type of the incubator, the generated oscillations in magnetic field were registered with a period of several seconds and a peak-to-peak amplitude up to 115% of the mean value.
Tissue engineering has emerged as an indispensable tool for the reconstruction of organ-specific environments. Organ-derived extracellular matrices (ECM) and, especially, decellularized tissues (DCL) are recognised as the most successful biomaterials in regenerative medicine, as DCL preserves the most essential organspecific ECM properties, such as composition alongside with biomechanics characterised by stiffness and porosity. Expansion of the DCL technology to cancer biology research, drug development, and nanomedicine is pending refinement of the existing DCL protocols whose reproducibility remain sub-optimal varying from organ to organ. We introduce a facile decellularization protocol universally applicable to murine organs, including liver, lungs, spleen, kidneys, and ovaries, with demonstrated robustness, reproducibility, high purification from cell debris, and architecture preservation, as confirmed by the histological and SEM analysis. The biomechanical properties of as-produced DCL organs expressed in terms of the local and total stiffness were measured using our facile methodology and found well preserved in comparison with the intact organs. To demonstrate the utility of the developed DCL model to cancer research, we engineered three-dimensional tissue constructs by recellularization representative decellularized organs and collagenous hydrogel with human breast cancer cells of pronounced mesenchymal (MDA-MB-231) or epithelial (SKBR-3) phenotype. The biomechanical properties of the DCL organs were found pivotal to determine the cancer cell fate and progression. Our histological and scanning electroln microscopy (SEM) study revealed: the larger the ECM mean pore size and the smaller the total stiffness (as in lung and ovary), the more proliferative and invasive the mesenchymal cells became. At the same time, the low local stiffness ECMs (ranged 2.8 - 3.6 kPa) did support the epithelial-like SKBR-3 cells viability (as in lung and spleen), while stiff ECMs did not. The total and local stiffness of the collagenous hydrogel was measured too low to sustain the proliferative potential of both cell lines. The observed cell proliferation patterns were easily interpretable in terms of the ECM biomechanical properties, such as binding sites, embedment facilities and migration space. As such, our three-dimensional tissue engineering model is scalable and adaptable for pharmacological testing and cancer biology research of metastatic and primary tumors, including early metastatic colonization in native organ-specific ECM.
Ice-binding proteins are crucial for the adaptation of various organisms to low temperatures. Some of these, called antifreeze proteins, are usually thought to inhibit growth and/or recrystallization of ice crystals. However, prior to these events, ice must somehow appear in the organism, either coming from outside or forming inside it through the nucleation process. Unlike most other works, our paper is focused on ice nucleation and not on the behavior of the already-nucleated ice, its growth, etc. The nucleation kinetics is studied both theoretically and experimentally. In the theoretical section, special attention is paid to surfaces that bind ice stronger than water and thus can be “ice nucleators”, potent or relatively weak; but without them, ice cannot be nucleated in any way in calm water at temperatures above −30 °C. For experimental studies, we used: (i) the ice-binding protein mIBP83, which is a previously constructed mutant of a spruce budworm Choristoneura fumiferana antifreeze protein, and (ii) a hyperactive ice-binding antifreeze protein, RmAFP1, from a longhorn beetle Rhagium mordax. We have shown that RmAFP1 (but not mIBP83) definitely decreased the ice nucleation temperature of water in test tubes (where ice originates at much higher temperatures than in bulk water and thus the process is affected by some ice-nucleating surfaces) and, most importantly, that both of the studied ice-binding proteins significantly decreased the ice nucleation temperature that had been significantly raised in the presence of potent ice nucleators (CuO powder and ice-nucleating bacteria Pseudomonas syringae). Additional experiments on human cells have shown that mIBP83 is concentrated in some cell regions of the cooled cells. Thus, the ice-binding protein interacts not only with ice, but also with other sites that act or potentially may act as ice nucleators. Such ice-preventing interaction may be the crucial biological task of ice-binding proteins.