Glioma is the most common primary brain tumor, characterized by a consistently high patient mortality rate and a dismal prognosis affecting both survival and quality of life. Substantial evidence underscores the vital role of the immune system in eradicating tumors effectively and preventing metastasis, underscoring the importance of cancer immunotherapy which could potentially address the challenges in glioma therapy. Although glioma immunotherapies have shown promise in preclinical and early-phase clinical trials, they face specific limitations and challenges that have hindered their success in further phase III trials. Resistance to therapy has been a major challenge across many experimental approaches, and as of now, no immunotherapies have been approved. In addition, there are several other limitations facing glioma immunotherapy in clinical trials, such as high intra- and inter-tumoral heterogeneity, an inherently immunosuppressive microenvironment, the unique tissue-specific interactions between the central nervous system and the peripheral immune system, the existence of the blood-brain barrier, which is a physical barrier to drug delivery, and the immunosuppressive effects of standard therapy. Therefore, in this review, we delve into several challenges that need to be addressed to achieve boosted immunotherapy against gliomas. First, we discuss the hurdles posed by the glioma microenvironment, particularly its primary cellular inhabitants, in particular tumor-associated microglia and macrophages (TAMs), and myeloid cells, which represent a significant barrier to effective immunotherapy. Here we emphasize the impact of inducing immunogenic cell death (ICD) on the migration of Th17 cells into the tumor microenvironment, converting it into an immunologically “hot” environment and enhancing the effectiveness of ongoing immunotherapy. Next, we address the challenge associated with the accurate identification and characterization of the primary immune profiles of gliomas, and their implications for patient prognosis, which can facilitate the selection of personalized treatment regimens and predict the patient’s response to immunotherapy. Finally, we explore a prospective approach to developing highly personalized vaccination strategies against gliomas, based on the search for patient-specific neoantigens. All the pertinent challenges discussed in this review will serve as a compass for future developments in immunotherapeutic strategies against gliomas, paving the way for upcoming preclinical and clinical research endeavors.
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.
The development of cancer immunotherapies provides hope to millions of patients for better clinical outcomes after tumor treatment. Thus, investigating the fundamental mechanisms of antitumor immunity activation is an urgent task. Numerous studies have outlined the effect of immunogenic cell death (ICD) on cancer cells, and this outcome is both sophisticated and simple. Different stimuli can cause ICD; however, photodynamic exposure has been proven to be an effective inducer of programed death on par with radiotherapy. The link between triggering a photodynamic response in cancer cells and triggering ICD has been poorly described in experimental works. The question of which molecular cascades are activated after photodynamic therapy (PDT) irradiation and the way damage-associated molecular patterns (DAMPs) are released is intriguing. Much is known about reactive oxygen species generation and endoplasmic reticulum stress but little about the Golgi apparatus. Photosensitizers of different types can exert different effects, including completely nonimmunogenic ones. This review describes the cascades that link the induction of cell death by photodynamic exposure and the immunogenic pattern of DAMP release. The photosensitizers that have shown potential as ICD inducers and the different pathways of programed death that occur during PDT exposure are also discussed.
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.
Immunogenic cell death (ICD) arouses great interest in targeting glioma, the most common primary brain tumor, to achieve boosted immunotherapy. We discuss the unexpected findings on the induction of Th17 immunity by ICD and propose the best design for dendritic cell (DC)-based vaccines loaded with whole glioma lysates obtained after ICD inducers.
The concept of immunogenic cell death involves the death of tumor cells, leading to the activation of an adaptive immune response in vivo. Such death relies on two significant components: antigenicity and adjuvance of dying cells. The emission of DAMPs achieves adjuvance, which is recognized by antigen-presenting dendritic cell (DC) receptors, resulting in phagocytosis and DC maturation. These cells present antigens of dead cells on their surface to the T-cell population. Antigenicity provides an opportunity to develop adaptive immunity through vaccination with decaying cells targeting a particular tumor pattern (antigen). Currently, photodynamic therapy (PDT) is recognized as an efficient inducer of immunogenic cell death. In this study, we examined the effectiveness of photodynamic therapy (PDT) using tetracyanotetra(aryl)porphyrazine with a 9-phenanthrenyl group on the periphery of the porphyrazine macrocycle (pz I) as a photosensitizer for inducing immunogenic cell death in tumor cells. The study was conducted on two cell lines: mouse fibrosarcoma MCA205 and mouse glioma GL261. For photoinduction, cells were loaded with a photosensitizer for four hours. The medium was then replaced with full medium, and the cells were irradiated with a 20 J/cm light dose using an LED light source with an excitation wavelength of 615–635 nm. In all subsequent experiments, cells incubated for 24 hours after photoinduction were used. A photosensitizer concentration corresponding to 85–90% of dead and dying cells 24 hours after photoinduction was chosen for both cell lines, as it is considered the standard for immunogenic cell death. The study analyzed the levels of ATP and HMGB1 that were released into the extracellular medium to confirm adjuvanticity. After photodynamic exposure, the level of ATP in the supernatant 24 hours later was significantly higher than the baseline values in the control group prior to PDT for both cell lines. Similar findings were observed for HMGB1 release. The study aimed to investigate the potential of PDT-killed cells in inducing a persistent immune response. Dying cells of fibrosarcoma MCA205 or GL261 glioma underwent photoinduction using pz I and were used to immunize C57BL/6J mice once or twice a week. After seven days from the last vaccination, viable tumor cells were subcutaneously injected into the opposite side of the mice for observation. In the MCA205 fibrosarcoma tumor model, 90% of the animals were tumor-free on day 25 of the experiment. In the control group PBS (which comprised mice that received saline solution as immunization), all of the laboratory animals had a tumor by day 12 of observation, and died by day 16. Additionally, on day 16 of the experiment, the volume of tumors in the control group was double the volume of tumors on day 25 of the experiment in the pz I group. When experimenting with immunization using dying GL261 glioma cells, the pz I group showed an absence of tumor focus in 90% of laboratory animals by day 30. Furthermore, the tumor volume in the group that was immunized with PDT-killed cells was 10 times less compared to the tumor volume of the control group PBS. Immunization of the Nude strain of bestimus condyles was conducted to evaluate the contribution of adaptive immunity to the manifestation of the antitumor effects of dying cells induced through photodynamic therapy (PDT). Tumor foci appeared and developed similarly in both the experimental and control groups, indicating no significant impact from immunization. Thus, the study demonstrated the critical importance of the T-cell connection in eliciting an effective anti-tumor response. The evidence indicated that if T-cell populations cannot participate in adaptive immune responses, even when immunity is stimulated, a pathological process can develop. Vaccination using photoinduced MCA205 fibrosarcoma cells in immunodeficient Nude mice verified the noteworthy role of the adaptive immune system in executing the antitumor response.
Glioblastomas are solid tumors in the brain that pose a challenge for traditional treatments like surgery, radiation therapy, and chemotherapy. Complete cures are not guaranteed, and these treatments cause numerous side effects. First-line treatment approval has only been granted to Temozolomide (TMZ), the sole chemotherapy drug available. Using TMZ increases the median overall survival from 15 to 17 months. In general clinical practice, innovative interventions have not demonstrated efficacy due to glioma heterogeneity and their immunosuppressive microenvironment. Immunogenic cell death (ICD) activates an immune response against cancer cells by emitting damage-associated molecular patterns (DAMPs) upon cell death/dying. The DAMPs activate an anti-tumor immune response. Photodynamic therapy (PDT) can induce ICD. Integrating the principles of immunogenic cell death into glioma immunotherapy could elicit a targeted immune response against the diverse tumor. Vaccination with dendritic cells represents a promising approach for immunotherapy. The goals of this research are to evaluate the efficacy of a prophylactic vaccine using immunogenically-photoinduced glioma GL261 cells and a dendritic cell vaccine in an orthotopic in vivo model. The glioma cell line (GL261) is cultured in RPMI medium supplemented with 10% serum, L-glutamine, 1% penicillin, and 1% streptomycin in a CO2 incubator. Photodynamic treatment involves using photosensitizers from the tetra(aryl)tetracyanoporphyrazine group with 9-phenanthrenyl (pz I) or 4-(4-fluorobenzyloxy)phenyl (pz III) as side substituents. The GL261 cell line is incubated in a serum-free solution containing a selected porphyrazine for four hours. Subsequently, the solution is exchanged with complete medium and the cells are activated through photodynamic treatment at a dose of 20 J/cm2. The cells are then further incubated for 24 hours in a CO2 incubator. Immunizing mice includes subcutaneously injecting photoinduced GL261 glioma cell lysates twice with a 7-day interval. One week after the final immunization, viable GL261 glioma cells are injected into the brain using a stereotaxis frame. Measuring the neurological status of the animals occurs for 25 days, and tumor localization and volume are detected on day 23 by MRI. The survival rate of the experimental groups was 100% (pz III) or significantly higher (pz I) than that of the control groups. Additionally, neurological symptoms were either not identified (pz III) or were significantly lower (pz I) compared to the control animal groups experienced. The dendritic cell vaccine was based on photoinduced GL261 glioma cells. The femur and tibia bones of C57BL/6J mice were used and differentiated for 9 days in RPMI medium to isolate bone marrow stem cells. The medium was supplemented with 5% fetal bovine serum, 20 ng/ml GM-CSF, 1% L-glutamine, 1mM sodium pyruvate, 50 µM β-mercaptoethanol, 100 units/ml penicillin, and 100 µg/L streptomycin. The culture medium was renewed on days 3 and 6 to maintain stability. Protein levels are quantified in cell lysates collected. 2 mg of protein is added to a dendritic cell suspension, and after 90 minutes, 0.5 µg/ml lipopolysaccharide is added for 24 hours. Intraperitoneal dendritic cell vaccine immunization on animals is conducted, with injections 7 days apart. One week post-last immunization, viable GL261 cells are intracranially injected via a stereotactic frame. The neurological status of the animals was monitored for 25 days, and an MRI was conducted on day 23 to evaluate the brain tumor. The survival rate of animals in the experimental groups did not significantly differ from those in the control groups. However, the experimental groups exhibited significantly lower neurological symptoms, and the tumor was visualized without any areas of necrosis, with a smaller volume.
Immunotherapy is a proven and effective anti-tumor strategy, which can be used alongside surgery, radiation therapy, and chemotherapy [1]. Immunogenic cell death (ICD) was identified as a critical factor determining the effectiveness of cancer treatment [2]. The concept of ICD combines the capacity to destroy cancer cells effectively, with the activation of a cancer cell-specific immune response, leading to potent and long-lasting anti-cancer immunity. ICD-inducing agents activate a perilous pathway that triggers the release of ICD mediators called damage-associated molecular patterns (DAMPs). DAMPs encompass a group of naturally occurring molecules that gain immunostimulatory qualities upon exposure to the outer cell membrane or when liberated into the extracellular matrix in a specific spatiotemporal fashion. ATP, the nuclear protein HMGB1, calreticulin (CRT), and type I interferons (IFNs) are among the identified factors [8]. The concept of ICD was initially described for cancer cells undergoing apoptosis, but it was expanded to encompass additional forms of cell death, such as necroptosis, pyrroptosis, ferroptosis, nontosis, etc. [11]. Ferroptosis is a regulated iron-dependent type of cell death that is characterized by the buildup of reactive oxygen species in the cell. In this study, the immunogenicity of ferroptotic cancer cells in vitro was assessed and their potential as an alternative approach to cancer immunotherapy was tested. Glioma GL261 and fibrosarcoma MCA205 cells were induced with one of the well-known inducers of ferroptosis, RSL3 (RAS-Selective Lethal 3). After 24 hours of RSL3 stimulation, 80% of GL261 cells and 90% of MCA205 cells showed positivity to Annexin V/Sytox Blue, indicating they were in the late stage of ferroptosis. Similarly, after 3 hours of RSL3 stimulation, 50% of GL261 cells and 45% of MCA205 cells were double positive with Annexin V/Sytox Blue indicating their late-stage ferroptotic state. We evaluated the immunogenic features of early and late ferroptotic cells in vitro, specifically at 3 or 24 hours after RSL3 stimulation. To achieve this, we compared the phenotype of dendritic cells (BMDCs) exposed to late ferroptotic cells with BMDCs exposed to viable cancer cells. Furthermore, immunogenic apoptosis was induced with MTX as a positive control and LPS as a secondary positive control. Late ferroptotic MCA 205 cells surprisingly did not induce phenotypic BMDC maturation, as indicated by the lack of surface activation of costimulatory molecules CD86, CD80, and MHCII. In contrast, a less pronounced phenotypic response compared to MCA205 cells was induced by early ferroptotic glioma GL261 cells. Nonetheless, a decrease in the ability to activate dendritic cells was observed for late ferroptotic glioma cells as well. The study used the standard tumor prophylactic vaccination model on immunocompetent C57BL/6 J mice to assess the adaptive immune system activation by early ferroptotic cancer cells. Mice were immunized with early or late ferroptosis MCA205 cells. As a negative control, we used PBS or cells that underwent spontaneous necrosis. The mice that were immunized were later confronted with viable MCA205 tumor cells. Protection against tumor growth at the site of infection was deemed indicative of successful activation of the adaptive immune system. Remarkably, mice that received immunization with late ferroptotic MCA205 cells, induced with RSL3 for 24 hours, exhibited conspicuous tumor growth at the infection site, signifying that late ferroptotic cells are not immunogenic in vivo, as per our preliminary observations in vitro.
Currently, the role of the neurotrophic factors BDNF and GDNF in maintaining the brain's resistance to the damaging effects of hypoxia and functional recovery of neural networks after exposure to damaging factors are actively studied. The assessment of the effect of an increase in the level of these neurotrophic factors in brain tissues using genetic engineering methods on the resistance of laboratory animals to hypoxia may pave the way for the future clinical use of neurotrophic factors BDNF and GDNF in the treatment of hypoxic damage. This study aimed to evaluate the antihypoxic and neuroprotective properties of BDNF and GDNF expression level increase using adeno-associated viral vectors in modeling hypoxia in vivo. To achieve overexpression of neurotrophic factors in the central nervous system's cells, viral constructs were injected into the brain ventricles of newborn male C57Bl6 (P0) mice. Acute hypobaric hypoxia was modeled on the 30th day after the injection of viral vectors. Survival, cognitive, and mnestic functions in the late post-hypoxic period were tested. Evaluation of growth and weight characteristics and the neurological status of animals showed that the overexpression of neurotrophic factors does not affect the development of mice. It was found that the use of adeno-associated viral vectors increased the survival rate of male mice under hypoxic conditions. The present study indicates that the neurotrophic factors' overexpression, induced by the specially developed viral constructs carrying the BDNF and GDNF genes, is a prospective neuroprotection method, increasing the survival rate of animals after hypoxic injury.
The current efforts in photodynamic therapy (PDT) of brain cancer are focused on the development of novel photosensitizers with improved photodynamic properties, targeted specific localization, and sensitivity to the irradiation dose, ensuring the effectiveness of PDT with fewer side effects for normal nerve tissue. Here, we characterize the effects of four photosensitizers of the tetracyanotetra(aryl)porphyrazine group (pz I–IV) on the functional activity of neuron-glial networks in primary hippocampal cultures in their application in normal conditions and under PDT. The data revealed that the application of pz I–IV leads to a significant decrease in the main parameters of the functional calcium activity of neuron-glial networks and pronounced changes in the network characteristics. The observed negative effects of pz I–IV were aggravated under PDT. Considering the significant restructuring of the functional architectonics of neuron-glial networks that can lead to severe impairments in synaptic transmission and loss of brain functions, and the feasibility of direct application of PDT based on pz I–IV in the therapy of brain tumors is highly controversial. Nevertheless, the unique properties of pz I–IV retain a great prospect of their use in the therapy of tumors of another origin and cellular metabolism.
The immunogenicity of dying cancer cells determines the efficacy of anti-cancer therapy. Photodynamic therapy (PDT) can induce immunogenic cell death (ICD), which is characterized by the emission of damage-associated molecular patterns (DAMPs) from dying cells. This emission can trigger effective anti-tumor immunity. Only a few photosensitizers are known to induce ICD and, therefore, there is a need for development of new photosensitizers that can induce ICD. The purpose of this work was to analyze whether photosensitizers developed in-house from porphyrazines (pz I and pz III) can induce ICD in vitro and in vivo when used in PDT. We indetified the optimal concentrations of the photosensitizers and found that, at a light dose of 20 J/cm 2 (λ ex 615–635 nm), both pz I and pz III efficiently induced cell death in cancer cells. We demonstrate that pz I localized predominantly in the Golgi apparatus and lysosomes while pz III in the endoplasmic reticulum and lysosomes. The cell death induced by pz I-PDT was inhibited by zVAD-fmk (apoptosis inhibitor) but not by ferrostatin-1 and DFO (ferroptosis inhibitors) or by necrostatin-1 s (necroptosis inhibitor). By contrast, the cell death induced by pz III-PDT was inhibited by z-VAD-fmk and by the necroptosis inhibitor, necrostatin-1 s. Cancer cells induced by pz I-PDT or pz III-PDT released HMGB1 and ATP and were engulfed by bone marrow-derived dendritic cells, which then matured and became activated in vitro. We demonstrate that cancer cells, after induction of cell death by pz I-PDT or pz III-PDT, are protective when used in the mouse model of prophylactic tumor vaccination. By vaccinating immunodeficient mice, we prove the role of the adaptive immune system in protecting against tumours. All together, we have shown that two novel porphyrazines developed in-house are potent ICD inducers that could be effectively applied in PDT of cancer.
Despite the significant relevance of photodynamic therapy (PDT) as an efficient strategy for primary and adjuvant anticancer treatment, several challenges compromise its efficiency. In order to develop an “ideal photosensitizer” and the requirements applied to photosensitizers for PDT, there is still a need for new photodynamic agents with improved photophysical and photobiological properties. In this study, we performed a detailed characterization of two tetracyanotetra(aryl)porphyrazine dyes with 4-biphenyl (pz II) and 4-diethylaminophenyl (pz IV) groups in the periphery of the porphyrazine macrocycle. Photophysical properties, namely, fluorescence quantum yield and lifetime of both photosensitizers, demonstrate extremely high dependence on the viscosity of the environment, which enables them to be used as viscosity sensors. PzII and pz IV easily enter cancer cells and efficiently induce cell death under light irradiation. Using fluorescence lifetime imaging microscopy, we demonstrated the possibility of assessing local intracellular viscosity and visualizing viscosity changes driven by PDT treatment with the compounds. Thus, pz II and pz IV combine the features of potent photodynamic agents and viscosity sensors. These data suggest that the unique properties of the compounds provide a tool for PDT dosimetry and tailoring the PDT treatment regimen to the individual characteristics of each patient.
Immunotherapy has become an important part in cancer treatment during the last decade. One of the major factors for induction of immune response during therapy is immunogenic cell death (ICD) (1). The immunogenicity of dying cancer cells is mediated by their adjuvanticity and antigenicity. Damage-associated molecular patterns (DAMPs) are endogenous molecules located inside the cells and in normal conditions contribute to different physiological processes while they are released (or exposed on the outer surface of the plasma membrane) when a cell is damaged or dying. Once released, DAMPs acquire immunostimulatory properties and increase the adjuvanticity of dying cancer cells. Of course, DAMPs are not the only factors released during cell death that are involved in their adjuvanticity. Antigenicity of dying cancer cells is another major determinant of ICD which is required for an efficiently targeted induction of anti-tumor immunity. ICD can be induced by different stimuli and anticancer treatment modalities, including chemotherapy with anthracyclines and oxaliplatin, radiotherapy, UVC irradiation, oncolytic viruses, and photodynamic therapy (PDT) (2). The ICD induced by various stimuli can differ in the DAMPs’ profile and has also been linked to different cell death modalities such as apoptosis, necroptosis and ferroptosis (3). Thus, in this lecture, we first discuss the role of PDT in the induction of ICD (4) and then assess the advantages and disadvantages of PDT in the induction of ICD. Finally, we will discuss a possible synergistic action between PDT and ferroptotic cell death (5), a novel, iron-dependent form of regulated cell death6. PDT can act as a source of reactive oxygen species for the Fenton reaction, which may reinforce ferroptosis induction and increase PDT efficacy in anticancer therapy. References 1) Galluzzi, Vitale, et al. Consensus guidelines for the definition, detection and interpretation of immunogenic cell death. J Immunother Cancer. 2020. 2) Alzeibak, Mishchenko et al. Targeting immunogenic cancer cell death by photodynamic therapy: past, present and future. J Immunother Cancer. 2021. 3) Efimova, Catanzaro et al. Vaccination with early ferroptotic cancer cells induces efficient antitumor immunity. J Immunother Cancer. 2020. 4) Turubanova, Balalaeva et al. Immunogenic cell death induced by a new photodynamic therapy based on photosens and photodithazine. J Immunother Cancer 2019. 5) Mishchenko, Balalaeva et al. Ferroptosis and Photodynamic Therapy Synergism: Enhancing Anticancer Treatment. Trends Cancer. 2021. 6) Friedmann Angeli, Krysko et al. Ferroptosis at the crossroads of cancer-acquired drug resistance and immune evasion. Nat Rev Cancer. 2019.
BackgroundImmunotherapy represents the future of clinical cancer treatment. The type of cancer cell death determines the antitumor immune response and thereby contributes to the efficacy of anticancer therapy and long-term survival of patients. Induction of immunogenic apoptosis or necroptosis in cancer cells does activate antitumor immunity, but resistance to these cell death modalities is common. Therefore, it is of great importance to find other ways to kill tumor cells. Recently, ferroptosis has been identified as a novel, iron-dependent form of regulated cell death but whether ferroptotic cancer cells are immunogenic is unknown.MethodsFerroptotic cell death in murine fibrosarcoma MCA205 or glioma GL261 cells was induced by RAS-selective lethal 3 and ferroptosis was analyzed by flow cytometry, atomic force and confocal microscopy. ATP and high-mobility group box 1 (HMGB1) release were detected by luminescence and ELISA assays, respectively. Immunogenicity in vitro was analyzed by coculturing of ferroptotic cancer cells with bone-marrow derived dendritic cells (BMDCs) and rate of phagocytosis and activation/maturation of BMDCs (CD11c+CD86+, CD11c+CD40+, CD11c+MHCII+, IL-6, RNAseq analysis). The tumor prophylactic vaccination model in immune-competent and immune compromised (Rag-2−/−) mice was used to analyze ferroptosis immunogenicity.ResultsFerroptosis can be induced in cancer cells by inhibition of glutathione peroxidase 4, as evidenced by confocal and atomic force microscopy and inhibitors’ analysis. We demonstrate for the first time that ferroptosis is immunogenic in vitro and in vivo. Early, but not late, ferroptotic cells promote the phenotypic maturation of BMDCs and elicit a vaccination-like effect in immune-competent mice but not in Rag-2−/− mice, suggesting that the mechanism of immunogenicity is very tightly regulated by the adaptive immune system and is time dependent. Also, ATP and HMGB1, the best-characterized damage-associated molecular patterns involved in immunogenic cell death, have proven to be passively released along the timeline of ferroptosis and act as immunogenic signal associated with the immunogenicity of early ferroptotic cancer cells.ConclusionsThese results pave the way for the development of new therapeutic strategies for cancers based on induction of ferroptosis, and thus broadens the current concept of immunogenic cell death and opens the door for the development of new strategies in cancer immunotherapy.
Photodynamic therapy (PDT) is a clinically approved procedure for targeting tumor cells. Though several different photosensitizers have been developed, there is still much demand for novel photosensitizers with improved properties. In this study we aim to characterize the accumulation, localization and dark cytotoxicity of the novel photosensitizers developed in‐house derivatives of porphyrazines ( pz I‐IV) in primary murine neuronal cells, as well as to identify the concentrations at which pz still effectively induces death in glioma cells yet is nontoxic to nontransformed cells. The study shows that incubation of primary neuronal and glioma cells with pz I‐IV leads to their accumulation in both types of cells, but their rates of internalization, subcellular localization and dark toxicity differ significantly. Pz II was the most promising photosensitizer. It efficiently killed glioma cells while remaining nontoxic to primary neuronal cells. This opens up the possibility of evaluating pz II for experimental PDT for glioma.
The aim of the study was to compare the effect of photosensitizers photosens, photodithazine, and hypericin on primary brain cell cultures, and assess their toxic effect on tumor and normal nervous cells in order to choose the optimal photodynamic agent for glioma therapy. Materials and Methods. The cytotoxicity of photosens (NIOPIK, Russia), photodithazine (Veta-grand, Russia) and hypericin (Merck KGaA; Sigma-Aldrich, Germany) was assessed on primary brain cell cultures obtained from C57BL/6 mice (gestation day 18). On day 14 of cultivation, the tested photosensitizers were added to a culture medium at concentrations of 0.1, 1, 10, 50, and 100 mu M. Then the cultures were placed in a CO2-incubator in the dark. The viability of primary neuronal cultures was estimated on days 3 and 7 after photosensitizer application. Using confocal microscopy, we analyzed the rate of entry and subcellular localization of the tested agents in the primary neuronal cells. Statistical analysis was performed in SigmaPlot 11.0 (Systat Software Inc., USA) using ANOVA. Results. We analyzed the absorption and fluorescence spectra of the tested photosensitizers. Photosens and photodithazine showed the presence of absorption maximum in short- and long-wave spectral ranges. Hypericin was characterized by a complex spectrum with many peaks in both blue-violet and orange-red spectral ranges. Cell viability analysis revealed that high concentrations of photosensitizers caused a pronounced toxic effect on nervous cells. The most marked effect was shown for photodithazine. Photosens exhibited the lowest accumulation rate in primary neuronal cells. Photosens and hypericin were found to have a high phototoxic effect on glioma, and demonstrated low dark toxicity for normal brain cells. Conclusion. The photosensitizers hypericin and photosens are the least toxic for nervous tissue, though effectively penetrating in tumor cells. These properties enable to consider them as prospective photodynamic agents for clinic.