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1.
Plants (Basel) ; 11(23)2022 Nov 26.
Artículo en Inglés | MEDLINE | ID: mdl-36501285

RESUMEN

The nanoencapsulation of nitric oxide (NO) donors is an attractive technique to protect these molecules from rapid degradation, expanding, and enabling their use in agriculture. Here, we evaluated the effect of the soil application of chitosan nanoparticles containing S-nitroso-MSA (a S-nitrosothiol) on the protection of soybeans (Glycine max cv. BRS 257) against copper (Cu) stress. Soybeans were grown in a greenhouse in soil supplemented with 164 and 244 mg kg-1 Cu and treated with a free or nanoencapsulated NO donor at 1 mM, as well as with nanoparticles without NO. There were also soybean plants treated with distilled water and maintained in soil without Cu addition (control), and with Cu addition (water). The exogenous application of the nanoencapsulated and free S-nitroso-MSA improved the growth and promoted the maintenance of the photosynthetic activity in Cu-stressed plants. However, only the nanoencapsulated S-nitroso-MSA increased the bioavailability of NO in the roots, providing a more significant induction of the antioxidant activity, the attenuation of oxidative damage, and a greater capacity to mitigate the root nutritional imbalance triggered by Cu stress. The results suggest that the nanoencapsulation of the NO donors enables a more efficient delivery of NO for the protection of soybean plants under Cu stress.

2.
Nitric Oxide ; 113-114: 31-38, 2021 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-33940194

RESUMEN

Cutaneous leishmaniasis (CL) is a major public health problem caused by Leishmania parasites that produce destructive and disfiguring skin conditions. There is an urgent need for alternative topical therapies due to the limitations of current systemic treatments. Recently, we have synthesized nitric oxide-releasing chitosan nanoparticles (NONPs) and shown their potential in vitro against Leishmania amazonensis. Herein we evaluated the application of NONPs for the treatment of CL on infected BALB/c mice. Mice were treated with topical administration of increasing concentrations of NONPs and disease progression was investigated regarding parasite load, lesion thickness, and pain score. As a result, we observed a dose-dependent NONPs effect. Parasite burden and lesion thickness were substantially lower on animals receiving NONPs at a 2 mM concentration compared to untreated control. Moreover, the clinical presentation of the lesions did not show any visible signs of ulcer, suggesting clinical healing in these animals. This successful outcome was sustained for at least 21 days after therapy even in one single dose. Thus, we demonstrate that NONPs are suitable for topical administration, and represent an attractive approach to treat CL.


Asunto(s)
Antiprotozoarios/farmacología , Quitosano/farmacología , Leishmania/efectos de los fármacos , Leishmaniasis Cutánea/tratamiento farmacológico , Nanopartículas/química , Óxido Nítrico/farmacología , Administración Tópica , Animales , Antiprotozoarios/administración & dosificación , Quitosano/administración & dosificación , Leishmaniasis Cutánea/parasitología , Leishmaniasis Cutánea/patología , Ratones , Ratones Endogámicos BALB C , Nanopartículas/administración & dosificación , Óxido Nítrico/administración & dosificación , Pruebas de Sensibilidad Parasitaria
3.
Nitric Oxide ; 106: 24-34, 2021 01 01.
Artículo en Inglés | MEDLINE | ID: mdl-33098968

RESUMEN

The aim of the current study is to report a simple and efficient method to chemically modify chitosan in order to form S-nitroso-chitosan for antibacterial applications. Firstly, commercial chitosan (CS) was modified to form thiolated chitosan (TCS) based on an easy and environmental-friendly method. TCS was featured based on physicochemical and morphological techniques. Results have confirmed that thiol groups in TCS formed after CS's primary amino groups were replaced with secondary amino groups. Free thiol groups in TCS were nitrosated to form S-nitrosothiol moieties covalently bond to the polymer backbone (S-nitroso-CS). Kinetic measurements have shown that S-nitroso-CS was capable of generating NO in a sustained manner at levels suitable for biomedical applications. The antibacterial activities of CS, TCS and S-nitroso-CS were evaluated based on the minimum inhibitory concentration (MIC), minimum bactericidal concentration (MBC) and time-kill curves determined for Escherichia coli, Staphylococcus aureus and Streptococcus mutans. MIC/MBC values reached 25/25, 0.7/0.7 and 3.1/3.1 µg mL-1 for CS/TCS and 3.1/3.1, 0.1/0.2, 0.1/0.2 µg mL-1 for S-nitroso-CS, respectively. Decreased MIC and MBC values have indicated that S-nitroso-CS has higher antibacterial activity than CS and TCS. Time-kill curves have shown that the bacterial cell viability decreased 5-fold for E. coli and 2-fold for S. mutans in comparison to their respective controls, after 0.5 h of incubation with S-nitroso-CS. Together, CS backbone chemically modified with S-nitroso moieties have yielded a polymer capable of generating therapeutic NO concentrations with strong antibacterial effect.


Asunto(s)
Antibacterianos/farmacología , Quitosano/farmacología , Donantes de Óxido Nítrico/farmacología , Óxido Nítrico/farmacología , Compuestos Nitrosos/farmacología , Antibacterianos/síntesis química , Supervivencia Celular/efectos de los fármacos , Quitosano/síntesis química , Liberación de Fármacos , Escherichia coli/efectos de los fármacos , Pruebas de Sensibilidad Microbiana , Óxido Nítrico/química , Donantes de Óxido Nítrico/síntesis química , Compuestos Nitrosos/síntesis química , Staphylococcus aureus/efectos de los fármacos , Streptococcus mutans/efectos de los fármacos
4.
Histochem Cell Biol ; 153(6): 431-441, 2020 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-32162135

RESUMEN

Nitric oxide (NO) is related to a wide range of physiological processes such as vasodilation, macrophages cytotoxicity and wound healing. The human skin contains NO precursors (NOx). Those are mainly composed of nitrite (NO2-), nitrate (NO3-), and S-nitrosothiols (RSNOs) which forms a large NO store. These NOx stores in human skin can mobilize NO to blood stream upon ultraviolet (UV) light exposure. The main purpose of this study was to evaluate the most effective UV light wavelength to generate NO and compare it to each NO precursor in aqueous solution. In addition, the UV light might change the RSNO content on human skin. First, we irradiated pure aqueous solutions of NO2- and NO3- and mixtures of NO2- and glutathione and NO3- and S-nitrosoglutathione (GSNO) to identify the NO release profile from those species alone. In sequence, we evaluated the NO generation profile on human skin slices. Human skin was acquired from redundant plastic surgical samples and the NO and RSNO measurements were performed using a selective NO electrochemical sensor. The data showed that UV light could trigger the NO generation in skin with a peak at 280-285 nm (UVB range). We also observed a significant RSNO formation in irradiated human skin, with a peak at 320 nm (UV region) and at 700 nm (visible region). Pre-treatment of the human skin slice using NO2- and thiol (RSHs) scavengers confirmed the important role of these molecules in RSNO formation. These findings have important implications for clinical trials with potential for new therapies.


Asunto(s)
Óxido Nítrico/biosíntesis , S-Nitrosotioles/metabolismo , Piel/metabolismo , Piel/efectos de la radiación , Rayos Ultravioleta , Humanos , Procesos Fotoquímicos
5.
Nitric Oxide ; 94: 108-113, 2020 01 01.
Artículo en Inglés | MEDLINE | ID: mdl-31759127

RESUMEN

Nitric oxide (NO) is a crucial molecule in the human body. The encapsulation of exogenous NO donors into chitosan nanoparticles (CS NPs) has been widely used to overcome NO drawbacks in pharmacological applications, such as, its short half-life. The NO donor, S-nitrosoglutathione (GSNO), was encapsulated into CS NPs (GSNO-CS NPs) and characterized by AFM and DLS measurements. The nanoparticles presented a hydrodynamic size of 123.3 ± 1.5 nm and a polydispersity of 0.25 ± 0.01. The ability of GSNO-CS NPs, combined with UV irradiation, to deliver NO was evaluated using ex vivo human skin. The human skin was pre-treated with GSNO-CS NPs, in the presence and absence of UV irradiation. The results showed that the combined treatment significantly increased the NO and S-nitrosothiol levels in human skin. This effect can emulate the cardiovascular benefits related to NO without negative side effects of skin exposure to UV light.


Asunto(s)
Quitosano/química , Nanopartículas/química , Donantes de Óxido Nítrico/química , Óxido Nítrico/farmacología , S-Nitrosoglutatión/química , Piel/efectos de los fármacos , Humanos , Hidrodinámica , Óxido Nítrico/química , Tamaño de la Partícula , Propiedades de Superficie , Rayos Ultravioleta
6.
Biochem Pharmacol ; 176: 113740, 2020 06.
Artículo en Inglés | MEDLINE | ID: mdl-31786262

RESUMEN

Nitric oxide (NO) is an endogenous free radical that controls important physiological and pathophysiological processes, including a role in cancer biology. NO can have a direct toxic effect on tumors, or it can sensitize cancer cells and contribute to the reversal of multidrug resistance (MDR). As NO is a gas and free radical, NO donors have been investigated for their anticancer effects. In recent years, the combination of NO donors with nanomaterials has been emerging as a promising strategy to promote spatial-temporal NO release/generation directly at the target site of application (tumor tissue). Smart nanocarriers that are able to release NO under controlled stimuli have been extensively developed. Moreover, important publications have demonstrated the promising applications of NO-releasing nanomaterials in combination with traditional chemotherapies in which NO can sensitize cancer cells. In this direction, this review presents and discusses the recent progress in the design of versatile nanocarriers that are able to release/generate therapeutic amounts of NO and which can be combined with conventional anticancer therapies. These nanocarriers have the ability to release NO on-demand by external stimuli such as pH, wave, or light exposure. In addition, the possible mechanisms of NO in sensitizing tumor tissue and the impact and challenges of nanomaterials in cancer treatment are also presented and discussed. The biological and pharmacological aspects of NO donors in cancer are discussed. Finally, challenges and perspectives in the development of versatile nanoplatforms to efficiently deliver NO in clinical cancer treatment are highlighted.


Asunto(s)
Antineoplásicos/farmacología , Protocolos de Quimioterapia Combinada Antineoplásica/uso terapéutico , Resistencia a Antineoplásicos/efectos de los fármacos , Neoplasias/tratamiento farmacológico , Donantes de Óxido Nítrico/farmacología , Óxido Nítrico/metabolismo , Antineoplásicos/administración & dosificación , Apoptosis/efectos de los fármacos , Supervivencia Celular/efectos de los fármacos , Humanos , Nanoestructuras/administración & dosificación , Neoplasias/metabolismo , Donantes de Óxido Nítrico/administración & dosificación
7.
Nitric Oxide ; 93: 25-33, 2019 12 01.
Artículo en Inglés | MEDLINE | ID: mdl-31541732

RESUMEN

Leishmaniasis is a neglected tropical disease that demands for new therapeutic strategies due to adverse side effects and resistance development promoted by current drugs. Nitric oxide (NO)-donors show potential to kill Leishmania spp. but their use is limited because of their instability. In this work, we synthesize, characterize, and encapsulate S-nitroso-mercaptosuccinic acid into chitosan nanoparticles (NONPs) and investigate their activity on promastigotes and intracellular amastigotes of Leishmania (Leishmania) amazonensis. Cytotoxicity on macrophages was also evaluated. We verified that NONPs reduced both forms of the parasite in a single treatment. We also noticed reduction of parasitophorous vacuoles as an evidence of inhibition of parasite growth and resolution of infection. No substantial cytotoxicity was detected on macrophages. NONPs were able to provide a sustained parasite killing for both L. (L.) amazonensis infective stages with no toxicity on macrophages, representing a promising nanoplatform for cutaneous leishmaniasis.


Asunto(s)
Quitosano/química , Leishmania/efectos de los fármacos , Nanopartículas/química , Donantes de Óxido Nítrico/farmacología , Compuestos Nitrosos/farmacología , Tiomalatos/farmacología , Animales , Quitosano/toxicidad , Cinética , Macrófagos/efectos de los fármacos , Ratones Endogámicos BALB C , Nanopartículas/toxicidad , Óxido Nítrico/química , Donantes de Óxido Nítrico/química , Donantes de Óxido Nítrico/toxicidad , Compuestos Nitrosos/química , Compuestos Nitrosos/toxicidad , Tiomalatos/química , Tiomalatos/toxicidad , Tripanocidas
8.
Nitric Oxide ; 84: 38-44, 2019 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-30639449

RESUMEN

The entrapment of NO donors in nanomaterials has emerged as a strategy to protect these molecules from rapid degradation, allowing a more controlled release of NO and prolonging its effect. On the other hand, we have found beneficial effects of S-nitrosoglutathione (GSNO) - a NO donor - supplying to sugarcane plants under water deficit. Here, we hypothesized that GSNO encapsulated into nanoparticles would be more effective in attenuating the effects of water deficit on sugarcane plants as compared to the supplying of GSNO in its free form. The synthesis and characterization of chitosan nanoparticles containing GSNO were also reported. Sugarcane plants were grown in nutrient solution, and then subjected to the following treatments: control (well-hydrated); water deficit (WD); WD + GSNO sprayed in its free form (WDG) or encapsulated (WDG-NP). In general, both GSNO forms attenuated the effects of water deficit on sugarcane plants. However, the encapsulation of this donor into chitosan nanoparticles caused higher photosynthetic rates under water deficit, as compared to plants supplied with free GSNO. The root/shoot ratio was also increased when encapsulated GSNO was supplied, indicating that delayed release of NO improves drought tolerance of sugarcane plants. Our results provide experimental evidence that nanotechnology can be used for enhancing NO-induced benefits for plants under stressful conditions, alleviating the negative impact of water deficit on plant metabolism and increasing biomass allocation to root system.


Asunto(s)
Quitosano/química , Nanopartículas/química , Donantes de Óxido Nítrico/farmacología , S-Nitrosoglutatión/farmacología , Saccharum/efectos de los fármacos , Estrés Fisiológico/efectos de los fármacos , Biomasa , Preparaciones de Acción Retardada/química , Sequías , Portadores de Fármacos/química , Donantes de Óxido Nítrico/síntesis química , Fotosíntesis/efectos de los fármacos , Hojas de la Planta/efectos de los fármacos , Raíces de Plantas/efectos de los fármacos , Brotes de la Planta/efectos de los fármacos , S-Nitrosoglutatión/síntesis química
9.
Mol Pharm ; 15(3): 1160-1168, 2018 03 05.
Artículo en Inglés | MEDLINE | ID: mdl-29378125

RESUMEN

Melanoma is a malignant proliferative disease originated from melanocyte transformations, which are characterized by a high metastatic rate and mortality. Advances in Nanotechnology have provided useful new approaches and tools for antitumor chemotherapy. The aim of this study was to investigate the molecular mechanisms underlying chitosan nanoparticles containing S-nitrosomercaptosuccinic acid ( S-nitroso-MSA-CS) induced cytotoxicity in melanoma cells. S-Nitroso-MSA-CS induced concentration-dependent cell death against B16-F10 tumor cells, whereas non-nitroso nanoparticles (CS or MSA-CS) did not induce significant cytotoxicity. Additionally, melanoma cells were more sensitive to cell death than normal melanocytes. S-Nitroso-MSA-CS-induced cytotoxicity exhibited features of caspase-dependent apoptosis, and it was associated with oxidative stress, characterized by increased mitochondrial superoxide production and oxidation of protein thiol groups. In addition, tyrosine nitration and cysteine S-nitrosylation of amino acid residues in cellular proteins were observed. The potential use of these nanoparticles in antitumor chemotherapy of melanoma is discussed.


Asunto(s)
Apoptosis/efectos de los fármacos , Portadores de Fármacos/química , Melanoma/tratamiento farmacológico , S-Nitrosotioles/farmacología , Neoplasias Cutáneas/tratamiento farmacológico , Animales , Línea Celular Tumoral , Quitosano/química , Ensayos de Selección de Medicamentos Antitumorales , Melanocitos , Ratones , Mitocondrias/efectos de los fármacos , Mitocondrias/metabolismo , Nanopartículas/química , Estrés Oxidativo/efectos de los fármacos , S-Nitrosotioles/uso terapéutico , Superóxidos/metabolismo
10.
Polymers (Basel) ; 10(4)2018 Apr 18.
Artículo en Inglés | MEDLINE | ID: mdl-30966487

RESUMEN

Nitric oxide (NO) is involved in physiological processes, including vasodilatation, wound healing and antibacterial activities. As NO is a free radical, designing drugs to generate therapeutic amounts of NO in controlled spatial and time manners is still a challenge. In this study, the NO donor S-nitrosoglutathione (GSNO) was incorporated into the thermoresponsive Pluronic F-127 (PL)-chitosan (CS) hydrogel, with an easy and economically feasible methodology. CS is a polysaccharide with known antimicrobial properties. Scanning electron microscopy, rheology and differential scanning calorimetry techniques were used for hydrogel characterization. The results demonstrated that the hydrogel has a smooth surface, thermoresponsive behavior and good mechanical stability. The kinetics of NO release and GSNO diffusion from GSNO-containing PL/CS hydrogel demonstrated a sustained NO/GSNO release, in concentrations suitable for biomedical applications. The GSNO-PL/CS hydrogel demonstrated a concentration-dependent toxicity to Vero cells, and antimicrobial activity to Pseudomonas aeruginosa (minimum inhibitory concentration and minimum bactericidal concentration values of 0.5 µg·mL-1 of hydrogel, which corresponds to 1 mmol·L-1 of GSNO). Interestingly, the concentration range in which the NO-releasing hydrogel demonstrated an antibacterial effect was not found to be toxic to the Vero mammalian cell. Thus, the GSNO-PL/CS hydrogel is a suitable biomaterial for topical NO delivery applications.

11.
Nitric Oxide ; 61: 10-19, 2016 12 30.
Artículo en Inglés | MEDLINE | ID: mdl-27693703

RESUMEN

Nitric oxide (NO) is a signaling molecule involved in plant response to various abiotic stresses. However, the application of NO donors in agriculture is hampered by the instability of these compounds. Despite the successful uses of NO-releasing nanoparticles for biomedical purposes and the variety of nanomaterials developed as carrier systems of agrochemicals, the potential applications of nanocarriers for NO delivery in plants have not yet been tested. Herein, we report the synthesis and characterization of chitosan nanoparticles (CS NPs) containing the NO donor S-nitroso-mercaptosuccinic acid (S-nitroso-MSA). The efficiency of these NO-releasing NPs in mitigating the deleterious effects of salinity on maize plants was compared to that of the non-encapsulated NO donor. The NPs were synthesized through ionotropic gelation process, and mercaptosuccinic acid (MSA), the NO donor precursor, was encapsulated into CS NPs (91.07% encapsulation efficiency). Free thiol groups of MSA-CS NPs were nitrosated, leading to S-nitroso-MSA-CS NPs (NO-releasing NPs). The incorporation of S-nitroso-MSA into CS NPs allowed a sustained NO release. Treatments of salt-stressed maize plants with S-nitroso-MSA-CS NPs resulted in a higher leaf S-nitrosothiols content compared to that of free S-nitroso-MSA. Moreover, S-nitroso-MSA-CS NPs were more efficient than was the free NO donor in the amelioration of the deleterious effects of salinity in photosystem II activity, chlorophyll content and growth of maize plants because the protective action of the nanoencapsulated S-nitroso-MSA was achieved at lower dosages. Overall, these results demonstrate the positive impact of S-nitroso-MSA nanoencapsulation in increasing NO bioactivity in maize plants under salt stress.


Asunto(s)
Quitosano/química , Nanopartículas/química , Óxido Nítrico/química , Tolerancia a la Sal/efectos de los fármacos , Cloruro de Sodio/efectos adversos , Zea mays/efectos de los fármacos , Biotecnología , Nanotecnología , Óxido Nítrico/farmacocinética , Óxido Nítrico/farmacología , Tiomalatos/química
12.
Planta ; 244(1): 181-90, 2016 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-27002974

RESUMEN

MAIN CONCLUSION: Nitric oxide (NO)-mediated redox signaling plays a role in alleviating the negative impact of water stress in sugarcane plants by improving root growth and photosynthesis. Drought is an environmental limitation affecting sugarcane growth and yield. The redox-active molecule nitric oxide (NO) is known to modulate plant responses to stressful conditions. NO may react with glutathione (GSH) to form S-nitrosoglutathione (GSNO), which is considered the main reservoir of NO in cells. Here, we investigate the role of NO in alleviating the effects of water deficit on growth and photosynthesis of sugarcane plants. Well-hydrated plants were compared to plants under drought and sprayed with mock (water) or GSNO at concentrations ranging from 10 to 1000 µM. Leaf GSNO sprayed plants showed significant improvement of relative water content and leaf and root dry matter under drought compared to mock-sprayed plants. Additionally, plants sprayed with GSNO (≥ 100 µM) showed higher leaf gas exchange and photochemical activity as compared to mock-sprayed plants under water deficit and after rehydration. Surprisingly, a raise in the total S-nitrosothiols content was observed in leaves sprayed with GSH or GSNO, suggesting a long-term role of NO-mediated responses to water deficit. Experiments with leaf discs fumigated with NO gas also suggested a role of NO in drought tolerance of sugarcane plants. Overall, our data indicate that the NO-mediated redox signaling plays a role in alleviating the negative effects of water stress in sugarcane plants by protecting the photosynthetic apparatus and improving shoot and root growth.


Asunto(s)
Sequías , Óxido Nítrico/farmacología , Fotosíntesis/efectos de los fármacos , Saccharum/efectos de los fármacos , Análisis de Varianza , Dióxido de Carbono/metabolismo , Deshidratación , Óxido Nítrico/metabolismo , Donantes de Óxido Nítrico/metabolismo , Donantes de Óxido Nítrico/farmacología , Oxidación-Reducción/efectos de los fármacos , Hojas de la Planta/efectos de los fármacos , Hojas de la Planta/crecimiento & desarrollo , Hojas de la Planta/metabolismo , Raíces de Plantas/efectos de los fármacos , Raíces de Plantas/crecimiento & desarrollo , Raíces de Plantas/metabolismo , Brotes de la Planta/efectos de los fármacos , Brotes de la Planta/crecimiento & desarrollo , Brotes de la Planta/metabolismo , S-Nitrosoglutatión/metabolismo , S-Nitrosoglutatión/farmacología , Saccharum/crecimiento & desarrollo , Saccharum/metabolismo , Agua/metabolismo , Agua/farmacología
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