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1.
Anticancer Res ; 44(3): 1201-1208, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38423672

ABSTRACT

BACKGROUND/AIM: Enzyme-mediated grafting of poly (gallic acid) (PGAL) and L-arginine and a-L-lysine onto PGAL produces reactive oxygen species (ROS)-suppressor multiradical molecules with low cytotoxicity, high thermostability and water solubility with cancer treatment potential. This study examined the anticancer effects of these molecules in hepatic (HepG2, ATCC HB-8065), breast (MCF7, ATCC HTB-22), and prostate (PC-3, ATCC CRL-1435 and DU 145, ATCC HTB-81) cancer cell lines, as well as in fibroblasts from healthy human skin as control cells. MATERIALS AND METHODS: PGAL was synthesized by the oxidative polymerization of the naturally abundant GA using laccase from Trametes versicolor. Insertions of amino acids L-arginine and α-L-lysine on the PGAL chain were carried out by microwave. The cells of dermal fibroblast (Fb) were obtained from primary skin cultures and isolated from skin biopsies. The cancer cells lines of hepatic (HepG2), breast (MCF7), and prostate (PC-3, DU 145) were obtained from ATCC. The viability of the cancer cells and the primary culture was obtained by the MTT assay. Proliferation was demonstrated by crystal violet assay. Cell migration was determined by Wound healing assay. Finally, cell cycle analysis was carried out with cells. RESULTS: The results show that 200 µg/ml of PGAL cultured in vitro with prostate cancer cells decreased viability, proliferation, and migration, as well as arrested cells in the G1 and S phases of the cell cycle. In contrast, the dermal fibroblasts and the hepatic line remained unaffected. The random grafting of L-Arg and a-L-Lys onto the PGAL chain also decreased the viability of prostate cancer cells. CONCLUSION: PGAL and PGAL-grafted amino acids are potential adjuvants for prostate cancer treatment, with improved physicochemical characteristics compared to GA.


Subject(s)
Gallic Acid , Prostatic Neoplasms , Salicylates , Male , Humans , Gallic Acid/pharmacology , Lysine , Trametes , Prostatic Neoplasms/pathology , MCF-7 Cells , Arginine/pharmacology , Cell Proliferation
2.
Inflammation ; 46(5): 1952-1965, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37470914

ABSTRACT

Polygallic acid (PGAL) has been used in vitro to protect synoviocytes from monosodium urate (MSU) crystals due to its anti-inflammatory properties. However, MSU crystals can also activate other cells of the synovial fluid (SF). We studied the impact of PGAL on the phagocytosis of MSU crystals, inflammation, and oxidative stress using an in vitro model with SF leukocytes and THP-1 monocyte cells. SF leukocytes were stimulated with PGAL and MSU crystals, proinflammatory cytokines and phagocytosis were assessed. In THP-1 cells, the effect of PGAL on the phagocytosis of MSU crystals and the levels of IL-1ß, IL-6, TNF-α, and reactive oxygen species (ROS) was evaluated. PGAL was added to THP-1 cultures 24 h before MSU crystal addition as a pre-treatment, and IL-1ß was measured. One-way ANOVA with Tukey's post hoc test was performed, and a P value < 0.05 was considered statistically significant. PGAL (100 µg/mL) decreased phagocytosis in SF leukocytes by 14% compared to cells exposed to crystals without PGAL. In THP-1 cells, 100 and 200 µg/mL PGAL reduced phagocytosis by 17% and 15%, respectively. In SF cells, there was a tendency to decrease IL-1ß and IL-6. In THP-1 cells, decreases in IL-1ß and TNF-α, as well as a slight decrease in ROS, were identified. PGAL pre-treatment resulted in a reduction of IL-1ß. PGAL inhibits MSU phagocytosis by exerting an anti-inflammatory effect on cells exposed to crystals. The use of PGAL before an acute attack of gout suggests an important protective factor to control the inflammation.


Subject(s)
Gout , Tumor Necrosis Factor-alpha , Humans , Reactive Oxygen Species , Interleukin-6 , Uric Acid/pharmacology , Inflammation , Anti-Inflammatory Agents
3.
Biomater Adv ; 138: 212960, 2022 Jul.
Article in English | MEDLINE | ID: mdl-35913230

ABSTRACT

The α-l-Lysine (LL) grafting onto the enzymatic poly(gallic acid) (PGAL) produces a helicoidal brush-like antimicrobial polymer containing outer positive-charged moieties. Best results are found with ca. 16 mol% α-LL-grafting for the inhibition of gram-positive Staphylococcus aureus and gram-negative Escherichia coli strains. Membrane permeability, confocal and scanning electron microscopy studies suggest a pore-formation and translocation mechanisms by initial electrostatic interaction of positive charged polymer at the negatively charged bacterial membranes. The attained polymer displays high concentration of hemolysis (Hc) in erythrocytes, and no lymphocyte mitochondrial activity. Interestingly, PGAL-LL is not cytotoxic on human dermal fibroblast. The antioxidant activity after the LL hybridization is also demonstrated by DPPH, ORAC, FRAP and hydroxyl radical scavenging, which enhances the preservation of human cells in addition to antimicrobial for this polymer.


Subject(s)
Escherichia coli Infections , Staphylococcal Infections , Anti-Bacterial Agents/pharmacology , Escherichia coli , Gallic Acid , Humans , Lysine , Polymers , Staphylococcus aureus
4.
Mater Sci Eng C Mater Biol Appl ; 121: 111650, 2021 Feb.
Article in English | MEDLINE | ID: mdl-33579431

ABSTRACT

Microwave-mediated grafting of L-Arg onto naturally derived and stable multiradical poly(gallic acid) (PGAL) in aqueous media has been successfully achieved. This polymeric material has no adverse effect in human cells as there is no hemolytic activity upon MTT and Neutral Red assays. The analytical and computational characterization studies carried out in this study describe a helical molecular structure with random incorporation of L-Arginine pendant groups from PGAL's backbone. The antioxidant properties of the precursor polymer are preserved as proved by the elimination of stable DPPH and hydroxyl radical scavenging, as well as the FRAP and ORAC assays. Regarding the latter, the oxygen radical inhibition is enhanced compared to PGAL, which is attributed to the guanidyl moieties. PGAL-g-L-Arg displays antimicrobial activity against Gram (+) Listeria monocytogenes and Staphylococcus aureus strains with a MIC of 0.8 g/L and a bacteriostatic effect against Gram (-) Escherichia coli. Additionally, scanning electron and confocal fluorescence microscopies as well as crystal violet colorimetric assay demonstrate that the mechanism involved in the bacterial inhibition is related to the formation of porous channels on the membrane, which is discussed according to the helical secondary structure of the polymer and the amino acid guanidyl moieties interacting to bacterial membranes.


Subject(s)
Antioxidants , Gallic Acid , Anti-Bacterial Agents/pharmacology , Antioxidants/pharmacology , Arginine , Gallic Acid/pharmacology , Humans , Staphylococcus aureus
5.
Inflammation ; 44(1): 174-185, 2021 Feb.
Article in English | MEDLINE | ID: mdl-32803665

ABSTRACT

Cytokines like IL-6, TNF-α, and IL-1ß are important mediators of inflammation in many inflammatory diseases, as well as in cellular processes like cell proliferation and cell adhesion. Finding new molecules that decrease cell proliferation, adhesion (inflammatory infiltrate), and pro-inflammatory cytokine release could help in the treatment of many inflammatory diseases. The naturally derived poly(gallic acid) (PGAL), produced enzymatically from gallic acid in aqueous medium, is a non-toxic, thermostable multiradical polyanion that is antioxidant and has potential biomedical uses. Experimental evidence has demonstrated that PGAL reduces pro-inflammatory cytokines, which are the target of some inflammatory diseases. PGAL decreased IL-6, TNF-α, and IL-1ß production in human monocytes exposed to PMA without affecting cell viability. Additionally, PGAL reduced cell proliferation by affecting the transition from the S phase to the G2 phase of the cell cycle. Cell adhesion experiments showed that PMA-induced cell adhesion was diminished with the presence of PGAL, particularly at a concentration of 200 µg/mL. These properties of PGAL show a potential use for treating inflammatory diseases, such as psoriasis or arthritis.


Subject(s)
Anti-Inflammatory Agents/therapeutic use , Cytokines/antagonists & inhibitors , Cytokines/metabolism , Inflammation Mediators/antagonists & inhibitors , Inflammation Mediators/metabolism , Polyglutamic Acid/analogs & derivatives , Polylysine/analogs & derivatives , Anti-Inflammatory Agents/pharmacology , Dose-Response Relationship, Drug , HCT116 Cells , HT29 Cells , Humans , Inflammation/drug therapy , Inflammation/metabolism , Polyglutamic Acid/pharmacology , Polyglutamic Acid/therapeutic use , Polylysine/pharmacology , Polylysine/therapeutic use , THP-1 Cells
6.
Molecules ; 24(2)2019 Jan 09.
Article in English | MEDLINE | ID: mdl-30634411

ABSTRACT

The market trend for pitaya is increasing, although the preservation of the quality of this fruit after the harvest is challenging due to microbial decay, dehydration, and oxidation. In this work, the application of antimicrobial chitosan-based coatings achieved successful postharvest preservation of pitaya (Stenocereus pruinosus) during storage at 10 ± 2 °C with a relative humidity of 80 ± 5%. The solution of cross-linked chitosan with hydroxypropylmethylcellulose with entrapped Neem oil (16 g·L-1) displayed the best postharvest fruit characteristics. The reduction of physiological weight loss and fungal contamination, with an increased redness index and release of azadirachtin from the microencapsulated oil, resulted in up to a 15 day shelf life for this fruit. This postharvest procedure has the potential to increase commercial exploitation of fresh pitaya, owing to its good taste and high content of antioxidants.


Subject(s)
Antifungal Agents/pharmacology , Chitosan/pharmacology , Food Storage/methods , Hypromellose Derivatives/chemistry , Antifungal Agents/chemistry , Cactaceae/chemistry , Cactaceae/drug effects , Cactaceae/microbiology , Chitosan/chemistry , Cross-Linking Reagents/chemistry , Food Preservation/methods , Fruit/chemistry , Fruit/drug effects , Fruit/microbiology , Glycerides/chemistry , Limonins/analysis , Terpenes/chemistry
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