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1.
J Photochem Photobiol B ; 239: 112647, 2023 Feb.
Article in English | MEDLINE | ID: mdl-36634432

ABSTRACT

UV-A radiation affects skin homeostasis by promoting oxidative distress. Endogenous photosensitizers in the dermis and epidermis of human skin absorb UV-A radiation forming excited states (singlet and triplet) and reactive oxygen species (ROS) producing oxidized compounds that trigger biological responses. The activation of NF-kB induces the expression of pro-inflammatory cytokines and can intensify the generation of ROS. However, there is no studies evaluating the cross talks between inflammatory stimulus and UV-A exposure on the levels of redox misbalance and inflammation. In here, we evaluated the effects of UV-A exposure on J774 macrophage cells previously challenged with LPS in terms of oxidative distress, release of pro-inflammatory cytokines, and activation of regulated cell death pathways. Our results showed that LPS potentiates the dose-dependent UV-A-induced oxidative distress and cytokine release, in addition to amplifying the regulated (autophagy and apoptosis) and non-regulated (necrosis) mechanisms of cell death, indicating that a previous inflammatory stimulus potentiates UV-A-induced cell damage. We discuss these results in terms of the current-available skin care strategies.


Subject(s)
Lipopolysaccharides , Oxidative Stress , Humans , Reactive Oxygen Species/metabolism , Lipopolysaccharides/pharmacology , Skin/radiation effects , Cytokines/metabolism
2.
Front Genet ; 13: 857728, 2022.
Article in English | MEDLINE | ID: mdl-35719399

ABSTRACT

Zika virus (ZIKV) is an arbovirus mainly transmitted by mosquitos of the genus Aedes. The first cases of ZIKV infection in South America occurred in Brazil in 2015. The infection in humans causes diverse symptoms from asymptomatic to a syndrome-like dengue infection with fever, arthralgia, and myalgia. Furthermore, ZIKV infection during pregnancy is associated with fetal microcephaly and neurological disorders. The identification of host molecular mechanisms responsible for the modulation of different signaling pathways in response to ZIKV is the first step to finding potential biomarkers and therapeutic targets and understanding disease outcomes. In the last decade, it has been shown that microRNAs (miRNAs) are important post-transcriptional regulators involved in virtually all cellular processes. miRNAs present in body fluids can not only serve as key biomarkers for diagnostics and prognosis of human disorders but also contribute to cellular signaling offering new insights into pathological mechanisms. Here, we describe for the first time ZIKV-induced changes in miRNA plasma levels in patients during the acute and recovery phases of infection. We observed that during ZIKV acute infection, among the dysregulated miRNAs (DMs), the majority is with decreased levels when compared to convalescent and control patients. We used systems biology tools to build and highlight biological interactions between miRNAs and their multiple direct and indirect target molecules. Among the 24 DMs identified in ZIKV + patients, miR-146, miR-125a-5p, miR-30-5p, and miR-142-3p were related to signaling pathways modulated during infection and immune response. The results presented here are an effort to open new vistas for the key roles of miRNAs during ZIKV infection.

3.
Fisioter. Mov. (Online) ; 35(spe): e35617, 2022. tab, graf
Article in English | LILACS-Express | LILACS | ID: biblio-1404817

ABSTRACT

Abstract Introduction: Postpartum hemorrhage is an obstetric emergency with high prevalence and significant morbidity and mortality, especially in areas with reduced access to specialized health services. Objective: To evaluate the effectiveness of intrauterine balloon tamponade in controlling postpartum hemorrhage, with the aim to reduce the need for emergency surgical interventions and decrease maternal mortality. Methods: A systematic review of randomized clinical trials, guided by the Cochrane Handbook for Systematic Reviews of Interventions and reported through the Preferred Reporting Items for Systematic Reviews and Meta-Analyses. Randomized clinical trials that evaluated the use of different types of balloons for intrauterine tamponade as a strategy for reducing or stopping postpartum hemorrhage compared to other interventions (pharmacological or surgical) were considered for inclusion. Results: Four studies evaluated 498 patients. In 80% of the reported cases, hemorrhage cessation was observed within a mean interval of 15 min after device insertion. The device permanence time was 24 h. No serious adverse events were reported. Due to clinical heterogeneity between studies, it was not possible to perform a quantitative synthesis. Conclusion: We did not find enough evidence to support the routine use of uterine tamponade devices as a protocol practice in the control of refractory postpartum hemorrhage. However, the use of these devices seems to be promising in cases where first line interventions fail and may play an important role in decreasing maternal morbidity and mortality and in uterine preservation.


Resumo Introdução: A hemorragia pós-parto trata-se de uma emergência obstétrica com elevada prevalência e morbimortalidade significativa, sobretudo em contextos de baixa acessibilidade a serviços especializados de saúde. Objetivo: Avaliar a efetividade do tamponamento por balão intrauterino no controle da hemorragia pós-parto, redução da necessidade de intervenções cirúrgicas de emergência e redução da mortalidade materna. Métodos: Revisão sistemática de ensaios clínicos randomizados, orientada pelo Cochrane Handbook for Systematic Reviews of Interventions e relatada através do Preferred Reporting Items for Systematic Reviews and Meta-Analyses. Foram considerados como critérios de elegibilidade ensaios clínicos randomizados que avaliaram o uso de diferentes tipos de balão para tamponamento intrauterino enquanto estratégia para a redução ou cessação da hemorragia pós-parto quando comparados a outras intervenções (farmacológicas ou cirúrgicas). Resultados: Quatro estudos avaliaram 498 pacientes para os desfechos preconizados. Em 80% dos casos relatados observou-se a cessação da hemorragia em um intervalo médio de 15 minutos, após a inserção dos dispositivos. O tempo de permanência dos dispositivos foi de 24 horas. Não foram relatados eventos adversos graves. Devido à heterogeneidade clínica entre os estudos, não foi possível realizar síntese quantitativa. Conclusão: Os achados obtidos não fornecem evidências suficientes para sustentar a utilização rotineira dos dispositivos de tamponamento uterino enquanto prática protocolar no controle da hemorragia pós-parto refratária. A utilização destes dispositivos, no entanto, parece ser promissora diante da falha das intervenções de primeira linha, podendo desempenhar um importante papel em termos de redução de morbimortalidade materna e preservação uterina.

4.
Article in English | MEDLINE | ID: mdl-34909664

ABSTRACT

Autophagy is a critical metabolic process that supports homeostasis at a basal level and is dynamically regulated in response to various physiological and pathological processes. Autophagy has some etiologic implications that support certain pathological processes due to alterations in the lysosomal-degradative pathway. Some of the conditions related to autophagy play key roles in highly relevant human diseases, e.g., cardiovascular diseases (15.5%), malignant and other neoplasms (9.4%), and neurodegenerative conditions (3.7%). Despite advances in the discovery of new strategies to treat these age-related diseases, autophagy has emerged as a therapeutic option after preclinical and clinical studies. Here, we discuss the pitfalls and success in regulating autophagy initiation and its lysosome-dependent pathway to restore its homeostatic role and mediate therapeutic effects for cancer, neurodegenerative, and cardiac diseases. The main challenge for the development of autophagy regulators for clinical application is the lack of specificity of the repurposed drugs, due to the low pharmacological uniqueness of their target, including those that target the PI3K/AKT/mTOR and AMPK pathway. Then, future efforts must be conducted to deal with this scenery, including the disclosure of key components in the autophagy machinery that may intervene in its therapeutic regulation. Among all efforts, those focusing on the development of novel allosteric inhibitors against autophagy inducers, as well as those targeting autolysosomal function, and their integration into therapeutic regimens should remain a priority for the field.

6.
ACM arq. catarin. med ; 50(1): 93-112, 13/04/2021.
Article in Portuguese | LILACS-Express | LILACS | ID: biblio-1354475

ABSTRACT

Comunidades complexas de bactérias, fungos e vírus prosperam em nossa pele. A composição dessas comunidades depende das características da pele, como concentração das glândulas sebáceas, teor de umidade e temperatura, bem como da genética do hospedeiro e fatores ambientais exógenos. Estudos metagenômicos recentes descobriram uma diversidade surpreendente dentro desses ecossistemas e promoveram uma nova visão dos organismos comensais durantes as diferentes fases da vida humana. Portanto nesta revisão de literatura buscamos compreender as interações micróbio-hospedeiro e descobrir os fatores que impulsionam a colonização microbiana nos ajudará a entender a patogênese das doenças de pele e a desenvolver novas terapêuticas pro-microbianas e antimicrobianas.


Complex communities of bacteria, fungi and viruses thrive on our skin. The composition of these communities depends on the characteristics of the skin, such as concentration of sebaceous glands, moisture and temperature content, as well as the host's genetics and exogenous environmental factors. Recent metagenomic studies have discovered a surprising diversity within these ecosystems and have promoted a new view of commensal organisms during the different stages of human life. Thus, this review explores microbe-host interactions and discovering the factors that drive microbial colonization will help us understand the pathogenesis of skin diseases and develop new promicrobial and antimicrobial therapies

7.
Arch Biochem Biophys ; 697: 108665, 2021 01 15.
Article in English | MEDLINE | ID: mdl-33159891

ABSTRACT

The lipid composition impacts directly on the structure and function of the cytoplasmic as well as organelle membranes. Depending on the type of membrane, specific lipids are required to accommodate, intercalate, or pack membrane proteins to the proper functioning of the cells/organelles. Rather than being only a physical barrier that separates the inner from the outer spaces, membranes are responsible for many biochemical events such as cell-to-cell communication, protein-lipid interaction, intracellular signaling, and energy storage. Photochemical reactions occur naturally in many biological membranes and are responsible for diverse processes such as photosynthesis and vision/phototaxis. However, excessive exposure to light in the presence of absorbing molecules produces excited states and other oxidant species that may cause cell aging/death, mutations and innumerable diseases including cancer. At the same time, targeting key compartments of diseased cells with light can be a promising strategy to treat many diseases in a clinical procedure called Photodynamic Therapy. Here we analyze the relationships between membrane alterations induced by photo-oxidation and the biochemical responses in mammalian cells. We specifically address the impact of photosensitization reactions in membranes of different organelles such as mitochondria, lysosome, endoplasmic reticulum, and plasma membrane, and the subsequent responses of eukaryotic cells.


Subject(s)
Cell Membrane/metabolism , Cell Membrane/radiation effects , Light , Animals , Humans , Oxidation-Reduction/radiation effects
8.
ACM arq. catarin. med ; 49(3): 125-143, 06/10/2020.
Article in Portuguese | LILACS-Express | LILACS | ID: biblio-1354323

ABSTRACT

A autofagia é uma via metabólica essencial para a manutenção da homeostase celular, e pode desempenhar diferentes papéis dentro do contexto fisiológico e patológico. Por este motivo tem sido foco de muitos estudos por ser um alvo terapêutico promissor, principalmente contra o câncer, onde atua de maneira ambígua, podendo suprimir ou promover o tumor de acordo com o contexto. Compreender a base molecular desse mecanismo é de interesse emergente para se alcançar terapias eficazes utilizando a modulação da autofagia. Neste trabalho, realizou-se uma revisão da literatura para abordar o papel da autofagia na biologia do câncer e como ela pode ser usada como estratégia terapêutica antitumoral através de sua ativação ou inibição no tratamento de vários tipos e estágios do câncer.


Autophagy is an essential metabolic pathway for the maintenance of cellular homeostasis and may play different roles within the physiological and pathological context. For this reason, it has been the focus of many studies because it is a promising therapeutic target, especially against cancer, in which plays a duo role, and it may suppress or promote the tumor according to the context. Understanding the molecular basis of this mechanism is an emerging interest to provide effective therapies using autophagy modulation. In this paper, we performed a literature review to address the role of autophagy in cancer biology and how it can be used as an antitumoral therapeutic strategy through its activation or inhibition to treat various types and stages of cancer.

9.
Free Radic Biol Med ; 160: 277-292, 2020 11 20.
Article in English | MEDLINE | ID: mdl-32810634

ABSTRACT

A dysfunction in the mitochondrial-lysosomal axis of cellular homeostasis is proposed to cause cells to age quicker and to accumulate lipofuscin. Typical protocols to mediate lipofuscinogenesis are based on the induction of the senescent phenotype either by allowing many consecutive cycles of cell division or by treating cells with physical/chemical agents such as ultraviolet (UV) light or hydrogen peroxide. Due to a direct connection with the physiopathology of age-related macular degeneration, lipofuscin that accumulates in retinal pigment epithelium (RPE) cells have been extensively studied, and the photochemical properties of RPE lipofuscin are considered as standard for this pigment. Yet, many other tissues such as the brain and the skin may prompt lipofuscinogenesis, and the properties of lipofuscin granules accumulated in these tissues are not necessarily the same as those of RPE lipofuscin. Here, we present a light-induced protocol that accelerates cell aging as judged by the maximization of lipofuscinogenesis. Photosensitization of cells previously incubated with nanomolar concentrations of 1,9-dimethyl methylene blue (DMMB), severely and specifically damages mitochondria and lysosomes, leading to a lipofuscin-related senescent phenotype. By applying this protocol in human immortalized non-malignant keratinocytes (HaCaT) cells, we observed a 2.5-fold higher level of lipofuscin accumulation compared to the level of lipofuscin accumulation in cells treated with a typical UV protocol. Lipofuscin accumulated in keratinocytes exhibited the typical red light emission, with excitation maximum in the blue wavelength region (~450 nm). Fluorescence lifetime image microscopy data showed that the keratinocyte lipofuscin has an emission lifetime of ~1.7 ns. Lipofuscin-loaded cells (but not control cells) generated a substantial amount of singlet oxygen (1O2) when irradiated with blue light (420 nm), but there was no 1O2 generation when excitation was performed with a green light (532 nm). These characteristics were compared with those of RPE cells, considering that keratinocyte lipofuscin lacks the bisretinoids derivatives present in RPE lipofuscin. Additionally, we showed that lipofuscin-loaded keratinocytes irradiated with visible light presented critical DNA damages, such as double-strand breaks and Fpg-sensitive sites. We propose that the DMMB protocol is an efficient way to disturb the mitochondrial-lysosomal axis of cellular homeostasis, and consequently, it can be used to accelerate aging and to induce lipofuscinogenesis. We also discuss the consequences of the lipofuscin-induced genotoxicity of visible light in keratinocytes.


Subject(s)
Lipofuscin , Macular Degeneration , Humans , Keratinocytes , Lysosomes , Ultraviolet Rays
10.
Mol Pharm ; 17(8): 2911-2924, 2020 08 03.
Article in English | MEDLINE | ID: mdl-32568542

ABSTRACT

In order to understand the intracellular delivery of drugs and to improve the cell killing efficiency of photosensitizers (PSs) used in photodynamic therapy (PDT), we prepared TyroSphere nanoparticles, which are triblock polymer [poly(ethylene glycol)-block-oligo(desaminotyrosyltyrosine octyl ester suberate)-block-poly(ethylene glycol)] aggregates, loaded with amphiphilic porphyrins with either positive (CisDiMPyP) or negative (TPPS2a) charges. Their physicochemical and photochemical properties were investigated, as well as the efficiency and mechanism of PDT death in a cervical cancer cell line (HeLa). The photophysical properties of both PSs were improved when loaded in the nanocarrier, with a decrease in aggregation as well as an increase in the yield of singlet oxygen generation. The physical and chemical stability of TyroSphere nanoparticles allows them to enter cells and to promote the slow intracellular delivery of part of the PSs. Confocal steady-state and lifetime-resolved fluorescence imaging microscopy data showed that the released PSs are free to target their natural intracellular targets, which are mitochondria and lysosomes for CisDiMPyP and TPPS2a, respectively. The photodynamic efficiency of cell killing was increased considerably compared with the free PSs (∼3×), but the mechanism of cell death was the same as that of the free PSs, which are acute necro-apoptosis for CisDiMPyP and autophagy malfunction for TPPS2a, reflecting the specific damage in mitochondria and lysosomes, respectively. We are confident that TyroSpheres provide a novel and efficient platform to administrate PDT photosensitizers, as well as other drugs with intracellular targets.


Subject(s)
Drug Carriers/chemistry , Oxidants/administration & dosage , Oxidants/chemistry , Pharmaceutical Preparations/administration & dosage , Pharmaceutical Preparations/chemistry , Polymers/chemistry , Porphyrins/chemistry , Apoptosis/drug effects , Cell Line, Tumor , Cell Survival/drug effects , HeLa Cells , Humans , Lysosomes/drug effects , Mitochondria/drug effects , Nanoparticles/chemistry , Photochemotherapy/methods , Photosensitizing Agents/chemistry , Polyethylene Glycols/chemistry , Singlet Oxygen/chemistry
11.
Front Oncol ; 10: 610472, 2020.
Article in English | MEDLINE | ID: mdl-33552982

ABSTRACT

Cancer is considered an age-related disease that, over the next 10 years, will become the most prevalent health problem worldwide. Although cancer therapy has remarkably improved in the last few decades, novel treatment concepts are needed to defeat this disease. Photodynamic Therapy (PDT) signalize a pathway to treat and manage several types of cancer. Over the past three decades, new light sources and photosensitizers (PS) have been developed to be applied in PDT. Nevertheless, there is a lack of knowledge to explain the main biochemical routes needed to trigger regulated cell death mechanisms, affecting, considerably, the scope of the PDT. Although autophagy modulation is being raised as an interesting strategy to be used in cancer therapy, the main aspects referring to the autophagy role over cell succumbing PDT-photoinduced damage remain elusive. Several reports emphasize cytoprotective autophagy, as an ultimate attempt of cells to cope with the photo-induced stress and to survive. Moreover, other underlying molecular mechanisms that evoke PDT-resistance of tumor cells were considered. We reviewed the paradigm about the PDT-regulated cell death mechanisms that involve autophagic impairment or boosted activation. To comprise the autophagy-targeted PDT-protocols to treat cancer, it was underlined those that alleviate or intensify PDT-resistance of tumor cells. Thereby, this review provides insights into the mechanisms by which PDT can be used to modulate autophagy and emphasizes how this field represents a promising therapeutic strategy for cancer treatment.

12.
Yale J Biol Med ; 92(3): 413-422, 2019 09.
Article in English | MEDLINE | ID: mdl-31543705

ABSTRACT

The search for conditions that maximize the outcome of Photodynamic Therapy (PDT) continues. Recent data indicate that PDT-induced cell death depends more on the specific intracellular location of the photosensitizer (PS) than on any other parameter. Indeed, knowledge of the PS intracellular location allows the establishment of clear relationships between the mechanism of cell death and the PDT efficacy. In order to determine the intracellular localization sites of a given PS, classical co-localization protocols, which are based in the comparison of the emissive profiles of organelle-specific probes to those of the PS, are usually performed. Since PSs are usually not efficient fluorophores, co-localization protocols require relatively high PS concentrations (micromolar range), distorting the whole proposal of the experiment, as high PS concentration means accumulation in many low-affinity sites. To overcome this difficulty, herein we describe a method that identifies PS intracellular localization by recognizing and quantifying the photodamage at intracellular organelles. We propose that irradiation protocols and characterization of major sites of photodamage results from many cycles of photosensitized oxidations, furnishing an integrated picture of the PS location. By comparing the results of protocols based in either method, we showed that the analysis of the damaged organelles can be conducted at optimal conditions (low PS concentrations), providing clear correlations with cell death mechanisms, which is not the case for the results obtained with co-localization protocols. Experiments using PSs that target either mitochondria or lysosomes were described and investigated in detail, showing that evaluating organelle damage is as simple as performing co-localization protocols.


Subject(s)
Organelles/pathology , Photosensitizing Agents/pharmacology , HeLa Cells , Humans , Lysosomes/drug effects , Lysosomes/pathology , Microscopy, Fluorescence , Mitochondria/drug effects , Mitochondria/pathology , Organelles/drug effects , Oxidation-Reduction , Porphyrins/pharmacology , Subcellular Fractions/drug effects , Subcellular Fractions/metabolism
13.
Autophagy ; 15(2): 259-279, 2019 02.
Article in English | MEDLINE | ID: mdl-30176156

ABSTRACT

Cells challenged by photosensitized oxidations face strong redox stresses and rely on autophagy to either survive or die. However, the use of macroautophagy/autophagy to improve the efficiency of photosensitizers, in terms of inducing cell death, remains unexplored. Here, we addressed the concept that a parallel damage in the membranes of mitochondria and lysosomes leads to a scenario of autophagy malfunction that can greatly improve the efficiency of the photosensitizer to cause cell death. Specific damage to these organelles was induced by irradiation of cells pretreated with 2 phenothiazinium salts, methylene blue (MB) and 1,9-dimethyl methylene blue (DMMB). At a low concentration level (10 nM), only DMMB could induce mitochondrial damage, leading to mitophagy activation, which did not progress to completion because of the parallel damage in lysosome, triggering cell death. MB-induced photodamage was perceived almost instantaneously after irradiation, in response to a massive and nonspecific oxidative stress at a higher concentration range (2 µM). We showed that the parallel damage in mitochondria and lysosomes activates and inhibits mitophagy, leading to a late and more efficient cell death, offering significant advantage (2 orders of magnitude) over photosensitizers that cause unspecific oxidative stress. We are confident that this concept can be used to develop better light-activated drugs. Abbreviations: ΔΨm: mitochondrial transmembrane inner potential; AAU: autophagy arbitrary units; ATG5, autophagy related 5; ATG7: autophagy related 7; BAF: bafilomycin A1; BSA: bovine serum albumin; CASP3: caspase 3; CF: carboxyfluorescein; CTSB: cathepsin B; CVS: crystal violet staining; DCF: dichlorofluorescein; DCFH2: 2',7'-dichlorodihydrofluorescein; DMMB: 1,9-dimethyl methylene blue; ER: endoplasmic reticulum; HaCaT: non-malignant immortal keratinocyte cell line from adult human skin; HP: hydrogen peroxide; LC3B-II: microtubule associated protein 1 light chain 3 beta-II; LMP: lysosomal membrane permeabilization; LTG: LysoTracker™ Green DND-26; LTR: LysoTracker™ Red DND-99; 3-MA: 3-methyladenine; MB: methylene blue; mtDNA: mitochondrial DNA; MitoSOX™: red mitochondrial superoxide probe; MTDR: MitoTracker™ Deep Red FM; MTO: MitoTracker™ Orange CMTMRos; MT-ND1: mitochondrially encoded NADH:ubiquinone oxidoreductase core subunit 1; MTT: methylthiazolyldiphenyl-tetrazolium bromide; 1O2: singlet oxygen; OH. hydroxil radical; PRKN/parkin: parkin RBR E3 ubiquitin protein ligase; PBS: phosphate-buffered saline; PI: propidium iodide; PDT: photodynamic therapy; PS: photosensitizer; QPCR: gene-specific quantitative PCR-based; Rh123: rhodamine 123; ROS: reactive oxygen species RTN: rotenone; SQSTM1/p62: sequestosome 1; SUVs: small unilamellar vesicles; TBS: Tris-buffered saline.


Subject(s)
Light , Lysosomes/pathology , Mitochondria/pathology , Autophagy/drug effects , Autophagy/radiation effects , Cell Death/radiation effects , Cell Line , Cell Survival/drug effects , Cell Survival/radiation effects , Humans , Lysosomes/drug effects , Lysosomes/metabolism , Lysosomes/radiation effects , Methylene Blue/analogs & derivatives , Methylene Blue/pharmacology , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondria/radiation effects , Models, Biological
14.
Free Radic Biol Med ; 131: 399-407, 2019 02 01.
Article in English | MEDLINE | ID: mdl-30590132

ABSTRACT

Visible light can induce the generation of singlet oxygen and can cause oxidative stress, especially in melanocytes due to melanin photosensitization. Currently, there is no organic UV-filter that provide visible light protection. Previous studies showed that some antioxidants, such as apigenin (API), chrysin (CRI) and beta-carotene (BTC) besides neutralizing radical chain reactions can also quench singlet oxygen via physical or chemical quenching and exhibit potential for use in photoprotection. Therefore, the aim of this study is to evaluate the efficacy of API, CRI and BTC on the protection against cell death induced by melanin photosensitization and understand the underlying mechanisms that are involved in the protection. Precise protocols of melanogenesis and quantification of singlet oxygen generation were developed. Viability of B16-F10 cells with melanin basal levels and after melanogenesis induction was evaluated after visible light exposure in the presence and absence of API, CRI and BTC. Results showed that API and BTC protected cells from photoinduced cell death API exhibiting superior photoprotective effect. We noticed that the efficiency of cell protection and the rate of singlet oxygen suppression are not well correlated, at least for the studied series of antioxidants, indicating that the anti-radical capacity should be playing a major role in protecting cells against the damage induced by melanin photosensitization. In terms of sun care strategies, both API and BTC offer protection against visible light-induced damages and may be effective topical antioxidants to be added to sunscreens.


Subject(s)
Antioxidants/pharmacology , Apigenin/pharmacology , Flavonoids/pharmacology , Melanins/chemistry , Photosensitizing Agents/chemistry , beta Carotene/pharmacology , Animals , Cell Line, Tumor , Cell Survival/drug effects , Cell Survival/radiation effects , Light , Melanins/antagonists & inhibitors , Melanocytes/cytology , Melanocytes/drug effects , Melanocytes/physiology , Melanocytes/radiation effects , Mice , Photochemical Processes , Photosensitizing Agents/antagonists & inhibitors , Singlet Oxygen/agonists , Singlet Oxygen/chemistry , Singlet Oxygen/metabolism
15.
J Am Chem Soc ; 140(30): 9606-9615, 2018 08 01.
Article in English | MEDLINE | ID: mdl-29989809

ABSTRACT

Although the general mechanisms of lipid oxidation are known, the chemical steps through which photosensitizers and light permeabilize lipid membranes are still poorly understood. Herein we characterized the products of lipid photooxidation and their effects on lipid bilayers, also giving insight into their formation pathways. Our experimental system was designed to allow two phenothiazinium-based photosensitizers (methylene blue, MB, and DO15) to deliver the same amount of singlet oxygen molecules per second to 1-palmitoyl-2-oleoyl- sn-glycero-3-phosphocholine liposome membranes, but with a substantial difference in terms of the extent of direct physical contact with lipid double bonds; that is, DO15 has a 27-times higher colocalization with ω-9 lipid double bonds than MB. Under this condition, DO15 permeabilizes membranes at least 1 order of magnitude more efficiently than MB, a result that was also valid for liposomes made of polyunsaturated lipids. Quantification of reaction products uncovered a mixture of phospholipid hydroperoxides, alcohols, ketones, and aldehydes. Although both photosensitizers allowed the formation of hydroperoxides, the oxidized products that require direct reactions between photosensitizer and lipids were more prevalent in liposomes oxidized by DO15. Membrane permeabilization was always connected with the presence of lipid aldehydes, which cause a substantial decrease in the Gibbs free energy barrier for water permeation. Processes depending on direct contact between photosensitizers and lipids were revealed to be essential for the progress of lipid oxidation and consequently for aldehyde formation, providing a molecular-level explanation of why membrane binding correlates so well with the cell-killing efficiency of photosensitizers.

16.
Sci Rep ; 7(1): 6734, 2017 07 27.
Article in English | MEDLINE | ID: mdl-28751688

ABSTRACT

Mobilization of specific mechanisms of regulated cell death is a promising alternative to treat challenging illness such as neurodegenerative disease and cancer. The use of light to activate these mechanisms may provide a route for target-specific therapies. Two asymmetric porphyrins with opposite charges, the negatively charged TPPS2a and the positively charged CisDiMPyP were compared in terms of their properties in membrane mimics and in cells. CisDiMPyP interacts to a larger extent with model membranes and with cells than TPPS2a, due to a favorable electrostatic interaction. CisDiMPyP is also more effective than TPPS2a in damaging membranes. Surprisingly, TPPS2a is more efficient in causing photoinduced cell death. The lethal concentration on cell viability of 50% (LC50) found for TPPS2a was ~3.5 (raw data) and ~5 (considering photosensitizer incorporation) times smaller than for CisDiMPyP. CisDiMPyP damaged mainly mitochondria and triggered short-term phototoxicity by necro-apoptotic cell death. Photoexcitation of TPPS2a promotes mainly lysosomal damage leading to autophagy-associated cell death. Our data shows that an exact damage in lysosome is more effective to diminish proliferation of HeLa cells than a similar damage in mitochondria. Precisely targeting organelles and specifically triggering regulated cell death mechanisms shall help in the development of new organelle-target therapies.


Subject(s)
Apoptosis/drug effects , Benzenesulfonates/pharmacology , Lysosomes/drug effects , Photosensitizing Agents/pharmacology , Porphyrins/pharmacology , Pyridinium Compounds/pharmacology , Apoptosis/radiation effects , Benzenesulfonates/chemistry , Cell Membrane/drug effects , Cell Membrane/radiation effects , Cell Survival/drug effects , Cell Survival/radiation effects , HeLa Cells , Humans , Kinetics , Light , Lysosomes/metabolism , Lysosomes/radiation effects , Membranes, Artificial , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondria/radiation effects , Photochemotherapy , Photosensitizing Agents/chemistry , Porphyrins/chemistry , Pyridinium Compounds/chemistry , Static Electricity , Structure-Activity Relationship
18.
Biochim Biophys Acta Gen Subj ; 1861(1 Pt A): 3129-3143, 2017 Jan.
Article in English | MEDLINE | ID: mdl-27773704

ABSTRACT

BACKGROUND: Cell senescence is a process of central importance to the understanding of aging as well as to the development of new drugs. It is related with genomic instability, which has been shown to occur in the presence of autophagy deficiency. Yet, the mechanism that triggers genomic instability and senescence from a condition of autophagy deficiency remains unknown. By analyzing the consequences of treating human keratinocytes (HaCaT) with the pentacyclic triterpenoid Betulinic Acid (BA) we were able to propose that cell senescence can develop as a response to parallel damage in the membranes of mitochondria and lysosome. METHODS: We performed biochemical, immunocytochemical and cytometric assays after challenging HaCaT cells with BA. We also evaluated membrane leakage induced by BA in liposomes and giant unilamellar vesicles. RESULTS: By destabilizing lipid bilayers of mitochondria and lysosomes, BA triggers the misbalance in the mitochondrial-lysosomal axis leading to perceived autophagy impairment, lipofuscinogenesis, genomic instability and cell senescence. The progressive accumulation of mitochondria and lipofuscin, which comes from imperfect mitophagy triggered by BA, provides a continuous source of reactive species further damaging lysosomes and leading to cell aging. CONCLUSIONS: This work reveals that the initial trigger of cell senescence can be the physical damage in the membranes of lysosomes and mitochondria. GENERAL SIGNIFICANCE: This concept will help in the search of new drugs that act as senescence-inductors. BA is under evaluation as chemotherapeutic agent against several types of tumors and induction of cell senescence should be considered as one of its main mechanisms of action.


Subject(s)
Cell Membrane/pathology , Cellular Senescence/drug effects , Triterpenes/pharmacology , Autophagy/drug effects , Cell Line , Cell Membrane/drug effects , Cell Membrane Permeability/drug effects , Cell Survival/drug effects , Genomic Instability/drug effects , Humans , Keratinocytes/drug effects , Keratinocytes/pathology , Lipofuscin/metabolism , Liposomes/metabolism , Mitochondria/drug effects , Mitochondria/metabolism , Models, Biological , Pentacyclic Triterpenes , Vacuoles/drug effects , Vacuoles/metabolism , Betulinic Acid
19.
An Acad Bras Cienc ; 88(3): 1439-50, 2016 Sep.
Article in English | MEDLINE | ID: mdl-27508995

ABSTRACT

The Portulaca oleracea L. (Portulacaceae) is a cosmopolitan species with a wide range of biological activities, including antioxidant and neuroprotective actions. We investigated the effects of P. oleracea extracts in a 6-hydroxydopamine rat model of Parkinson's disease, a debilitating disorder without effective treatments. Chemical profiles of aqueous and ethanolic extracts of whole plant were analyzed by thin layer chromatography and the antioxidant activity was assessed by 2,2-diphenyl-1-picrilhidrazila method. Male Wistar rats received intrastriatal 6-hydroxydopamine and were treated with vehicle or extracts (oral, 200 and 400 mg/kg) daily for two weeks. The behavioral open field test was conducted at days 1 and 15. Immunohistochemical analysis was performed 4 weeks after surgery to quantify tyrosine-hydroxylase cell counts in the substantia nigra pars compacta. Extracts presented antioxidant activity in concentrations above 300 µg/kg. The chromatographic analysis revealed the presence of Levodopa, alkaloids, flavonoids, saponins, tannins, terpenoids and polysaccharides. Both extracts improved motor recovery 15 days after lesion and protected from tyrosine-hydroxylase cell loss after 4 weeks, but these effects were more evident for the aqueous extract. Because the dopamine precursor is present, in addition to antioxidant compounds and neuroprotective effects, P. oleracea can be considered as potential strategy for treating Parkinson's disease.


Subject(s)
Dopaminergic Neurons/drug effects , Neuroprotective Agents/pharmacology , Oxidopamine/toxicity , Portulaca/chemistry , Sympatholytics/toxicity , Animals , Dopaminergic Neurons/enzymology , Male , Oxidopamine/antagonists & inhibitors , Parkinson Disease/drug therapy , Pars Compacta/cytology , Pars Compacta/enzymology , Rats , Rats, Wistar , Sympatholytics/antagonists & inhibitors , Tyrosine 3-Monooxygenase/analysis
20.
Photochem Photobiol Sci ; 15(3): 334-50, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26815913

ABSTRACT

The premature aging (photoaging) of skin characterized by wrinkles, a leathery texture and mottled pigmentation is a well-documented consequence of exposure to sunlight. UVA is an important risk factor for human cancer also associated with induction of inflammation, immunosuppression, photoaging and melanogenesis. Although herbal compounds are commonly used as photoprotectants against the harmful effects of UVA, the mechanisms involved in the photodamage are not precisely known. In this study, we investigated the effects of Aloe Vera (Aloe barbadensis mil) on the protection against UVA-modulated cell killing of HaCaT keratinocytes. Aloe Vera exhibited the remarkable ability of reducing both in vitro and in vivo photodamage, even though it does not have anti-radical properties. Interestingly, the protection conferred by Aloe Vera was associated with the maintenance of membrane integrity in both mimetic membranes and intracellular organelles. The increased lysosomal stability led to a decrease in lipofuscinogenesis and cell death. This study explains why Aloe Vera extracts offer protection against photodamage at a cellular level in both the UV and visible spectra, leading to its beneficial use as a supplement in protective dermatological formulations.


Subject(s)
Aloe/chemistry , Intracellular Membranes , Lysosomes , Plant Extracts/pharmacology , Skin Aging , Ultraviolet Rays/adverse effects , Cell Survival/drug effects , Cell Survival/radiation effects , Cells, Cultured , Humans , Intracellular Membranes/drug effects , Intracellular Membranes/radiation effects , Keratinocytes/drug effects , Keratinocytes/radiation effects , Lysosomes/drug effects , Lysosomes/radiation effects , Plant Extracts/chemistry , Skin Aging/drug effects , Skin Aging/radiation effects
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