| III.a - Zamestnanie-pracovné zaradenie | III.b - Inštitúcia | III.c - Časové vymedzenie |
|---|---|---|
| vedecký pracovník | Univerzita P.J. Šafárika | 2003-2010 |
| samostatný vedecký pracovník | Univerzita P.J. Šafárika | 2010-súčasnosť |
| V.5.a - Názov predmetu | V.5.b - Študijný program | V.5.c - Stupeň | V.5.d - Študijný odbor |
|---|---|---|---|
| Experimentálne techniky v biológii | Biológia | Bakalársky | Biológia |
Ján Košuth, Martina Farkašovská, Filip Mochnacký, Zuzana Daxnerová, Juraj Ševc: Selection of reliable reference genes for analysis of gene expression in spinal cord during rat postnatal development and after injury. In: Brain Sciences. - ISSN. - vol 10, no. 1 (2020), art.no. 6
Holota, R., Dečmanová, V., Alexovič Matiášová, A., Košuth, J., Slovinská, L., Pačut, L., Tomori, Z., Daxnerová, Z., Ševc, J. Cleaved caspase-3 is present in the majority of glial cells in the intact rat spinal cord during postnatal life. HISTOCHEMISTRY AND CELL BIOLOGY. 2024, 161(3), 269-286
Raimund Nagel, Carolin Bernhol, Eva Vranová, Ján Košuth, Nick Bergau, S. Ludwig, Ludger Wessjohann, Jonathan Gershenzon, Alain Tissier, Axel Schmidt: Arabidopsis thaliana isoprenyl diphosphate synthases produce the C25 intermediate geranylfarnesyl diphosphate. In: Plant Journal. - ISSN 0960-7412. - Vol. 84, no. 5 (2015), s. 847-859.
Ohlasy (43):
[1] Feng et al. (2023). Genome-wide identification of the geranylgeranyl pyrophosphate synthase (GGPS) gene family involved in chlorophyll synthesis in cotton. BMC Genomics 24 (1).
[1] Li and Gustafson (2021). Sesterterpenoids: chemistry, biology, and biosynthesis. Natural Products Reports 38 (7), 1251-1281
[1] Zhou and Pichersky (2020). More is better: the diversity of terpene metabolism in plants. Current Oppinion in Plant Biology 55 , 1-10.
[1] Camagna et al. (2019). Enzyme Fusion Removes Competition for Geranylgeranyl Diphosphate in Carotenogenesis. Plant Physiology 179 (3), 1013-1027.
[1] Huang et al. (2017). Unearthing a sesterterpene biosynthetic repertoire in the Brassicaceae through genome mining reveals convergent evolution. Proceedings of the National Academy of Sciences of the United States of America 114 (29), E6005-E6014.
[1] Manzano et al. (2016). Suppressing farnesyl diphosphate synthase alters chloroplast development and triggers sterol-dependent induction of jasmonate- and Fe-related responses. Plant Physiology 172 (1), 93-117.
...
Ján Košuth, Denisa Hrehorová, Mariusz Jaskolski, Eva Čellárová: Stress-induced expression and structure of the putative gene hyp-1 for hypericin biosynthesis. In: Plant Cell Tissue and Organ Culture. - ISSN 0167-6857. - Vol. 114, no. 2 (2013), s. 207-216.<br>
Ohlasy (17):
[1] Liu et al. (2021). In-vitro anti-fungal assay and association analysis reveal a role for the Pinus monticola PR10 gene (PmPR10-3.1) in quantitative disease resistance to white pine blister rust. Genome 64 (7) , pp.693-704.
[1] Rizzo et al. (2020). The Biochemical and Genetic Basis for the Biosynthesis of Bioactive Compounds in Hypericum perforatum L., One of the Largest Medicinal Crops in Europe. Genes 11 (10).
[1] Mafakheri and Karami (2020). Integrated Metabolomics and Phytochemical Genomics Approaches for Studies on St, John's Wort. Natural Products Journal 10 (3), 188-192.
[1] Hou et al. (2020). Transgenic expression of Hyp-1 gene from Hypericum perforatum L. alters expression of defense-related genes and modulates recalcitrance to Agrobacterium tumefaciens. Planta 251 (1).
[1] Velada et al. (2014). Reference Genes Selection and Normalization of Oxidative Stress Responsive Genes upon Different Temperature Stress Conditions in Hypericum perforatum L. Plos One 9 (12).
...
Ján Košuth, Andrija Smelcerovic, Thomas Borsch, Sebastian Zühlke, Katja Karppinen, Michael Spiteller, Anja Hohtola, Eva Čellárová: The hyp-1 gene is not a limiting factor for hypericin biosynthesis in the genus Hypericum. In: Functional Plant Biology. - ISSN 1445-4408. - Vol. 38, no. 1 (2011), s. 35-43.
Ohlasy (31):
[1] Mafakheri and Karami (2020). Integrated Metabolomics and Phytochemical Genomics Approaches for Studies on St, John's Wort. Natural Products Journal 10 (3), 188-192.
[1] Hou et al. (2020). Transgenic expression of Hyp-1 gene from Hypericum perforatum L. alters expression of defense-related genes and modulates recalcitrance to Agrobacterium tumefaciens. Planta 251 (1).
[1] FERNANDES et al. (2013). Structural and functional aspects of PR-10 proteins. FEBS Journal 280 (5), 1169-1199.
...
Souvik Kusari, Sebastian Zühlke, Ján Košuth, Eva Čellárová, Michael Spiteller: Light-independent metabolomics of endophytic Thielavia subthermophila provides insight into microbial hypericin biosynthesis. In: Journal of Natural Products. - ISSN 0163-3864. - vol. 72, no. 10 (2009), s. 1825-1835.
Ohlasy (93):
[1] Aly, Bebbab and Proksch (2013). Fungal endophytes - Secret producers of bioactive plant metabolites. Pharmazie 68 (7), 499-505.
[1] Hammerschmidt et al (2012). New styrylpyrones from the fungal endophyte Penicillium glabrum isolated from Punica granatum. Phytochemistry Letters 5 (3), 600-603.
[1] Karioty and Bilia (2010). Hypericins as potential leads for new therapeutics. International Journal of Molecular Sciences 11 (2), 562-594.
[1] KHARWAR R.N. et al. Anticancer compounds derived from fungal ... In Natural Product Reports, 2011, vol. 28, no. 7, s. 1208-1228.
...
Ján Košuth, Zuzana Katkovčinová, Petra Olexová, Eva Čellárová: Expression of the hyp-1 gene in early stages of development of Hypericum perforatum L.. In: Plant Cell Reports. - ISSN 0721-7714. - Vol. 26, no. 2 (2007), s. 211-217.
Ohlasy (33):
[1] Hou et al. (2020). Transgenic expression of Hyp-1 gene from Hypericum perforatum L. alters expression of defense-related genes and modulates recalcitrance to Agrobacterium tumefaciens. Planta 251 (1).
[1] Fernandes et al. (2013). Structural and functional aspects of PR-10 proteins. FEBS Journal 280 (5), 1169-1199.
[1] Karppinen et al. (2010). Optimization of protein extraction from hypericum perforatum tissues and immunoblotting detection of hyp-1 at different stages of leaf development. Molecular Biotechnology 46 (3), 219-226.
[1] Karppinen et al. (2008). Octaketide-producing type III polyketide synthase from Hypericum perforatum is expressed in dark glands accumulating hypericins. FEBS JOurnal 275 (17), 4329-4342.
[1] Michalska et al. (2010). Crystal structure of Hyp-1, a St. John's wort protein implicated in biosynthesis of hypericin. Journal of Structural Biology 169 (2), 161-171.
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VEGA 1/0926/17 (vedúci projektu), Úloha izoenzýmov geranylgeranyl difosfát syntázy (GGPPS) v metabolickej dráhe izoprenoidov.
APVV-23-0274 Glymfatický systém a jeho využitie vo farmakoterapii ochorení CNS,
APVV-15-0239. Analýza potenciálu a úlohy výstelky centrálneho kanála pri regenerácii miechy.
APVV-19-0279. Regulácia postnatálnej neurogenézy v čuchovom systéme potkana prostredníctvom neurotransmiterov za fyziologických a patologických podmienok.
VEGA 1/0760/20. Detekcia apoptotických procesov v bunkách nervového systému pomocou imunofluorescenčných metód aplikovaných v in vitro a in vivo modeloch.
| VIII.a - Názov inštitúcie | VIII.b - Sídlo inštitúcie | VIII.c - Obdobie trvania pôsobenia/pobytu (uviesť dátum odkedy dokedy trval pobyt) | VIII.d - Mobilitná schéma, pracovný kontrakt, iné (popísať) |
|---|---|---|---|
| Univerzita Oulu | Department of Botany, University of Oulu, Finland | 03/2002-05/2002 | Erasmus |
| Švajčiarsky technologický inštitút (ETHZ) | Group of Plant Biotechnology, ETH Zuerich, Switzerland | 02/2013-01/2014 | SCIEX |
Školiteľ doktorandského štúdia v štúdijnom programe Molekulárna cytológia a genetika (Prírodovedecká fakulta UPJŠ v Košiciach).