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Browsing by Author "Marinko, Marija (54794326200)"

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    Involvement of different K+ channel subtypes in hydrogen sulfide-induced vasorelaxation of human internal mammary artery
    (2024)
    Marinko, Marija (54794326200)
    ;
    Stojanovic, Ivan (55014093700)
    ;
    Milojevic, Predrag (6602755452)
    ;
    Nenezic, Dragoslav (9232882900)
    ;
    Kanjuh, Vladimir (57213201627)
    ;
    Yang, Qin (35243991400)
    ;
    He, Guo-Wei (36847723700)
    ;
    Novakovic, Aleksandra (6602915174)
    Background: Changes in K+ channel expression/function are associated with disruption of vascular reactivity in several pathological conditions, including hypertension, diabetes, and atherosclerosis. Gasotransmitters achieve part of their effects in the organism by regulating ion channels, especially K+ channels. Their involvement in hydrogen sulfide (H2S)-mediated vasorelaxation is still unclear, and data about human vessels are limited. Objective: To determine the role of K+ channel subtypes in the vasorelaxant mechanism of H2S donor, sodium-hydrosulfide (NaHS), on isolated human internal mammary artery (HIMA). Results: NaHS (1 × 10−6–3 × 10−3 mol/L) induced a concentration-dependent relaxation of HIMA pre-contracted by phenylephrine and high K+. Among K+ channel blockers, iberiotoxin, glibenclamide, 4-aminopyridine (4-AP), and margatoxin significantly inhibited NaHS-induced relaxation of phenylephrine-contracted HIMA (P < 0.01), whereas in the presence of apamin/1-[(2-chlorophenyl) diphenylmethyl]-1H-pyrazole (TRAM-34) combination, the HIMA relaxation was partially reduced (P < 0.05). The effect of NaHS was antagonized by NO pathway inhibitors, L-NAME and KT5823, and by cyclo-oxygenase inhibitor, indomethacin (P < 0.01). Under conditions of blocked NO/prostacyclin synthesis and release, apamin/TRAM-34 and glibenclamide caused further decrease in NaHS-induced vasorelaxation (P < 0.01), while iberiotoxin, 4-AP, and margatoxin were without additional effect (P > 0.05). In the presence of nifedipine, NaHS induced partial relaxation of HIMA (P < 0.01). Conclusion: Our results demonstrated that H2S donor, NaHS, induced concentration-dependent relaxation of isolated HIMA. Vasorelaxant mechanisms of H2S included direct or indirect opening of different K+ channel subtypes, KATP, BKCa, SKCa/IKCa, and KV (subtype KV1.3), in addition to NO pathway activation and interference with extracellular Ca2+ influx. © 2024 Société Française de Pharmacologie et de Thérapeutique. Published by John Wiley & Sons Ltd.
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    Publication
    Involvement of different K+ channel subtypes in hydrogen sulfide-induced vasorelaxation of human internal mammary artery
    (2024)
    Marinko, Marija (54794326200)
    ;
    Stojanovic, Ivan (55014093700)
    ;
    Milojevic, Predrag (6602755452)
    ;
    Nenezic, Dragoslav (9232882900)
    ;
    Kanjuh, Vladimir (57213201627)
    ;
    Yang, Qin (35243991400)
    ;
    He, Guo-Wei (36847723700)
    ;
    Novakovic, Aleksandra (6602915174)
    Background: Changes in K+ channel expression/function are associated with disruption of vascular reactivity in several pathological conditions, including hypertension, diabetes, and atherosclerosis. Gasotransmitters achieve part of their effects in the organism by regulating ion channels, especially K+ channels. Their involvement in hydrogen sulfide (H2S)-mediated vasorelaxation is still unclear, and data about human vessels are limited. Objective: To determine the role of K+ channel subtypes in the vasorelaxant mechanism of H2S donor, sodium-hydrosulfide (NaHS), on isolated human internal mammary artery (HIMA). Results: NaHS (1 × 10−6–3 × 10−3 mol/L) induced a concentration-dependent relaxation of HIMA pre-contracted by phenylephrine and high K+. Among K+ channel blockers, iberiotoxin, glibenclamide, 4-aminopyridine (4-AP), and margatoxin significantly inhibited NaHS-induced relaxation of phenylephrine-contracted HIMA (P < 0.01), whereas in the presence of apamin/1-[(2-chlorophenyl) diphenylmethyl]-1H-pyrazole (TRAM-34) combination, the HIMA relaxation was partially reduced (P < 0.05). The effect of NaHS was antagonized by NO pathway inhibitors, L-NAME and KT5823, and by cyclo-oxygenase inhibitor, indomethacin (P < 0.01). Under conditions of blocked NO/prostacyclin synthesis and release, apamin/TRAM-34 and glibenclamide caused further decrease in NaHS-induced vasorelaxation (P < 0.01), while iberiotoxin, 4-AP, and margatoxin were without additional effect (P > 0.05). In the presence of nifedipine, NaHS induced partial relaxation of HIMA (P < 0.01). Conclusion: Our results demonstrated that H2S donor, NaHS, induced concentration-dependent relaxation of isolated HIMA. Vasorelaxant mechanisms of H2S included direct or indirect opening of different K+ channel subtypes, KATP, BKCa, SKCa/IKCa, and KV (subtype KV1.3), in addition to NO pathway activation and interference with extracellular Ca2+ influx. © 2024 Société Française de Pharmacologie et de Thérapeutique. Published by John Wiley & Sons Ltd.
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    Mechanisms underlying the vasorelaxant effect of hydrogen sulfide on human saphenous vein
    (2021)
    Marinko, Marija (54794326200)
    ;
    Hou, Hai-Tao (57188862335)
    ;
    Stojanovic, Ivan (55014093700)
    ;
    Milojevic, Predrag (6602755452)
    ;
    Nenezic, Dragoslav (9232882900)
    ;
    Kanjuh, Vladimir (57213201627)
    ;
    Yang, Qin (35243991400)
    ;
    He, Guo-Wei (36847723700)
    ;
    Novakovic, Aleksandra (6602915174)
    Hydrogen sulfide (H2S) represents the third and the youngest member of the gaseous transmitters family. The dominant effect of H2S on isolated vessels is vasodilation. As the mechanism of H2S-induced relaxation in human vessels remains unclear, the present study aimed to investigate the effects of H2S donor, sodium hydrosulfide (NaHS), on isolated human saphenous vein (HSV) and to determine the mechanism of action. Our results showed that NaHS (1 µM–3 mM) induced a concentration-dependent relaxation of endothelium-intact HSV rings pre-contracted by phenylephrine. Pre-treatment with L-NAME, ODQ and KT5823 significantly inhibited NaHS-induced relaxation, while indomethacin induced partial inhibition. Among K+ channel blockers, the combination of apamin and TRAM-34 significantly affected the relaxation produced by NaHS, while iberiotoxin and glibenclamide only reduced maximal relaxation of HSV. NaHS partially relaxed endothelium-intact rings pre-contracted by high K+, as well as phenylephrine-contracted rings in the presence of nifedipine. Additionally, the incubation of HSV rings with NaHS increased NO production. These results demonstrate that NaHS produces the concentration- and endothelium-dependent relaxation of isolated HSV. Vasorelaxation to NaHS probably involves activation of NO/cGMP/PKG pathway and partially prostacyclin. In addition, different K+ channels subtypes, especially SKCa and IKCa, as well as BKCa and KATP channels in high concentrations of NaHS, probably participate in the NaHS-induced vasorelaxation. © 2021 Société Française de Pharmacologie et de Thérapeutique
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    Publication
    Mechanisms underlying the vasorelaxant effect of hydrogen sulfide on human saphenous vein
    (2021)
    Marinko, Marija (54794326200)
    ;
    Hou, Hai-Tao (57188862335)
    ;
    Stojanovic, Ivan (55014093700)
    ;
    Milojevic, Predrag (6602755452)
    ;
    Nenezic, Dragoslav (9232882900)
    ;
    Kanjuh, Vladimir (57213201627)
    ;
    Yang, Qin (35243991400)
    ;
    He, Guo-Wei (36847723700)
    ;
    Novakovic, Aleksandra (6602915174)
    Hydrogen sulfide (H2S) represents the third and the youngest member of the gaseous transmitters family. The dominant effect of H2S on isolated vessels is vasodilation. As the mechanism of H2S-induced relaxation in human vessels remains unclear, the present study aimed to investigate the effects of H2S donor, sodium hydrosulfide (NaHS), on isolated human saphenous vein (HSV) and to determine the mechanism of action. Our results showed that NaHS (1 µM–3 mM) induced a concentration-dependent relaxation of endothelium-intact HSV rings pre-contracted by phenylephrine. Pre-treatment with L-NAME, ODQ and KT5823 significantly inhibited NaHS-induced relaxation, while indomethacin induced partial inhibition. Among K+ channel blockers, the combination of apamin and TRAM-34 significantly affected the relaxation produced by NaHS, while iberiotoxin and glibenclamide only reduced maximal relaxation of HSV. NaHS partially relaxed endothelium-intact rings pre-contracted by high K+, as well as phenylephrine-contracted rings in the presence of nifedipine. Additionally, the incubation of HSV rings with NaHS increased NO production. These results demonstrate that NaHS produces the concentration- and endothelium-dependent relaxation of isolated HSV. Vasorelaxation to NaHS probably involves activation of NO/cGMP/PKG pathway and partially prostacyclin. In addition, different K+ channels subtypes, especially SKCa and IKCa, as well as BKCa and KATP channels in high concentrations of NaHS, probably participate in the NaHS-induced vasorelaxation. © 2021 Société Française de Pharmacologie et de Thérapeutique
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    Publication
    New anticoagulant drugs; [Novi antikoagulantni lekovi]
    (2012)
    Marinko, Marija (54794326200)
    ;
    Novakovic, Aleksandra (6602915174)
    ;
    Divac, Tatjana (55534160800)
    ;
    Milojevic, Predrag (6602755452)
    ;
    Nenezic, Dragoslav (9232882900)
    Anticoagulants are effective agents for the prevention and treatment of thrombosis and thromboembolic complications, which represent a common cause of morbidity and mortality. Despite their clinical efficiency, traditional anticoagulants are all associated with significant drawbacks. As a result, modulation of the coagulation process represents an important target in the development of new oral and parenteral anticoagulants today. The new oral anticoagulants selectively target thrombin (ximelagatran, dabigatran etexilate) or factor Xa (rivaroxaban, apixaban, edoxaban). Unlike the traditional anticoagulants, vitamin K antagonists, these drugs have rapid onset of action and a relatively wide therapeutic range, do not require routine prothrombin time (PT) monitoring and have low potential for food and drug interaction. The new parenteral anticoagulants achieve their effects through indirect (semuloparin, idrabiotaparinux) or direct inhibition of factor Xa (otamixaban), as well as through inhibition of coagulation factor IXa (RB006). The main characteristics of these agents are a rapid onset of action and a predictable anticoagulant effect, whereby the most of them can be rapidly neutralized by an adequate antidote.

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