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2.
Cell Oncol (Dordr) ; 46(1): 65-77, 2023 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-36319818

RESUMO

PURPOSE: Most monotherapies available against glioblastoma multiforme (GBM) target individual hallmarks of this aggressive brain tumor with minimal success. In this article, we propose a therapeutic strategy using coenzyme Q10 (CoQ10) as a pleiotropic factor that crosses the blood-brain barrier and accumulates in cell membranes acting as an antioxidant, and in mitochondrial membranes as a regulator of cell bioenergetics and gene expression. METHODS: Xenografts of U251 cells in nu/nu mice were used to assay tumor growth, hypoxia, angiogenesis, and inflammation. An orthotopic model was used to explore microglial infiltration, tumor growth, and invasion into the brain parenchyma. Cell proliferation, migration, invasion, proteome remodeling, and secretome were assayed in vitro. Conditioned media were used to assay angiogenesis, monocyte chemoattraction, and differentiation into macrophages in vitro. RESULTS: CoQ10 treatment decreased tumor volume in xenografts and orthotopic models, although its effect on tumor cell proliferation was not direct. Tumors from mice treated with CoQ10 were less hypoxic and vascularized, having less infiltration from inflammatory cells. Treatment-induced downregulation of HIF-1α and NF-kB led to a complete remodeling of the tumor cells proteome and secretome, impacting angiogenesis, monocyte infiltration, and their differentiation into macrophages. Besides, tumor cell migration and invasion were drastically restricted by mechanisms involving modulation of the actin cytoskeleton and downregulation of matrix metalloproteases (MMPs). CONCLUSIONS: CoQ10 has a pleiotropic effect on GBM growth, targeting several hallmarks simultaneously. Thus, its integration into current treatments of this fatal disease should be considered.


Assuntos
Neoplasias Encefálicas , Glioblastoma , Humanos , Camundongos , Animais , Glioblastoma/patologia , Ubiquinona/farmacologia , Ubiquinona/uso terapêutico , Proteoma , Antioxidantes , Neoplasias Encefálicas/patologia , Hipóxia , Inflamação , Linhagem Celular Tumoral
3.
Sci Rep ; 9(1): 13236, 2019 09 13.
Artigo em Inglês | MEDLINE | ID: mdl-31520000

RESUMO

Aerobic organisms evolved conserved mechanisms controlling the generation of reactive oxygen species (ROS) to maintain redox homeostasis signaling and modulate signal transduction, gene expression and cellular functional responses under physiological conditions. The production of ROS by mitochondria is essential in the oxidative stress associated with different pathologies and in response to pathogen infection. Anaplasma phagocytophilum is an intracellular pathogen transmitted by Ixodes scapularis ticks and causing human granulocytic anaplasmosis. Bacteria multiply in vertebrate neutrophils and infect first tick midgut cells and subsequently hemocytes and salivary glands from where transmission occurs. Previous results demonstrated that A. phagocytophilum does not induce the production of ROS as part of its survival strategy in human neutrophils. However, little is known about the role of ROS during pathogen infection in ticks. In this study, the role of tick oxidative stress during A. phagocytophilum infection was characterized through the function of different pathways involved in ROS production. The results showed that tick cells increase mitochondrial ROS production to limit A. phagocytophilum infection, while pathogen inhibits alternative ROS production pathways and apoptosis to preserve cell fitness and facilitate infection. The inhibition of NADPH oxidase-mediated ROS production by pathogen infection appears to occur in both neutrophils and tick cells, thus supporting that A. phagocytophilum uses common mechanisms for infection of ticks and vertebrate hosts. However, differences in ROS response to A. phagocytophilum infection between human and tick cells may reflect host-specific cell tropism that evolved during pathogen life cycle.


Assuntos
Anaplasma phagocytophilum/patogenicidade , Anaplasmose/microbiologia , Vetores de Doenças , Interações Hospedeiro-Patógeno , Ixodes/microbiologia , Redes e Vias Metabólicas , Neutrófilos/microbiologia , Anaplasma phagocytophilum/metabolismo , Anaplasmose/metabolismo , Anaplasmose/transmissão , Animais , Regulação da Expressão Gênica , Células HL-60 , Humanos , Neutrófilos/metabolismo , Oxirredução , Estresse Oxidativo , Coelhos , Ovinos , Transdução de Sinais
4.
Sci Rep ; 8(1): 14224, 2018 09 21.
Artigo em Inglês | MEDLINE | ID: mdl-30242261

RESUMO

The carbohydrate Galα1-3Galß1-(3)4GlcNAc-R (α-Gal) is produced in all mammals except for humans, apes and old world monkeys that lost the ability to synthetize this carbohydrate. Therefore, humans can produce high antibody titers against α-Gal. Anti-α-Gal IgE antibodies have been associated with tick-induced allergy (i.e. α-Gal syndrome) and anti-α-Gal IgG/IgM antibodies may be involved in protection against malaria, leishmaniasis and Chagas disease. The α-Gal on tick salivary proteins plays an important role in the etiology of the α-Gal syndrome. However, whether ticks are able to produce endogenous α-Gal remains currently unknown. In this study, the Ixodes scapularis genome was searched for galactosyltransferases and three genes were identified as potentially involved in the synthesis of α-Gal. Heterologous gene expression in α-Gal-negative cells and gene knockdown in ticks confirmed that these genes were involved in α-Gal synthesis and are essential for tick feeding. Furthermore, these genes were shown to play an important role in tick-pathogen interactions. Results suggested that tick cells increased α-Gal levels in response to Anaplasma phagocytophilum infection to control bacterial infection. These results provided the molecular basis of endogenous α-Gal production in ticks and suggested that tick galactosyltransferases are involved in vector development, tick-pathogen interactions and possibly the etiology of α-Gal syndrome in humans.


Assuntos
Anaplasma phagocytophilum/patogenicidade , Proteínas de Artrópodes/metabolismo , Galactosiltransferases/metabolismo , Ixodes/microbiologia , alfa-Galactosidase/genética , alfa-Galactosidase/metabolismo , Sequência de Aminoácidos , Animais , Linhagem Celular Tumoral , Vetores de Doenças , Ehrlichiose/genética , Ehrlichiose/metabolismo , Genoma/genética , Células HL-60 , Interações Hospedeiro-Patógeno/genética , Humanos
5.
Sci Rep ; 7(1): 5172, 2017 07 12.
Artigo em Inglês | MEDLINE | ID: mdl-28701771

RESUMO

Hormone secretion relies on secretory granules which store hormones in endocrine cells and release them upon cell stimulation. The molecular events leading to hormone sorting and secretory granule formation at the level of the TGN are still elusive. Our proteomic analysis of purified whole secretory granules or secretory granule membranes uncovered their association with the actomyosin components myosin 1b, actin and the actin nucleation complex Arp2/3. We found that myosin 1b controls the formation of secretory granules and the associated regulated secretion in both neuroendocrine cells and chromogranin A-expressing COS7 cells used as a simplified model of induced secretion. We show that F-actin is also involved in secretory granule biogenesis and that myosin 1b cooperates with Arp2/3 to recruit F-actin to the Golgi region where secretory granules bud. These results provide the first evidence that components of the actomyosin complex promote the biogenesis of secretory granules and thereby regulate hormone sorting and secretion.


Assuntos
Actinas/genética , Miosina Tipo I/genética , Vesículas Secretórias/metabolismo , Actinas/metabolismo , Animais , Transporte Biológico , Células COS , Proteínas de Transporte , Chlorocebus aethiops , Complexo de Golgi/metabolismo , Camundongos , Miosina Tipo I/metabolismo , Células Neuroendócrinas/metabolismo , Sistemas Neurossecretores/metabolismo , Células PC12 , Ligação Proteica , Ratos
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