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2022, vol. 49, br. 2, str. 195-207
Rasprostranjenost Penicillium metabolita u kukuruzu gajenim u Srbiji
aInstitut za prehrambene tehnologije, Novi Sad, Srbija
bUniversity of Natural Resources and Life Sciences Vienna (BOKU), Department IFA-Tulln, Tulln, Austria
cUniversity of Natural Resources and Life Sciences Vienna (BOKU), Department IFA-Tulln, Tulln, Austria + Queens University Belfast, Institute for Global Food Security, School of Biological Sciences, Belfast, United Kingdom

e-adresajovana.kos@fins.uns.ac.rs
Projekat:
This paper is a result of the research within Projects DS-2016-0059 financed by funds of the Multilateral Scientific and Technological Cooperation Projects in the Danube Region, the European Union's Horizon 2020 research and innovation program under grant agreement no. 692195.
Ministarstvo prosvete, nauke i tehnološkog razvoja Republike Srbije (institucija: Institut za prehrambene tehnologije, Novi Sad) (MPNTR - 451-03-68/2020-14/200222)

Ključne reči: bezbednost; kvalitet; vremenske prilike; Vojvodina; LC-MS/MS; oksalin
Sažetak
Kukuruz može biti kontaminiran sa velikim brojem različitih metabolita plesni čije prisustvo znatno utiče na smanjenje kako zdravstvene ispravnosti tako i kvaliteta kukuruza i proizvoda od kukuruza. Poslednjih godina uočen je znatan uticaj klimatskih promena na sve učestaliju pojavu različitih metabolita plesni u kukuruzu. Usled navedenog, osnovni cilj ove studije bio je da se ispita uticaj vremenskih prilika na prirodnu pojavu metabolita Penicillium vrste u uzorcima kukuruza sakupljenih tokom 2016. i 2017. godine. Istraživanje je sprovedeno na ukupno 458 uzoraka kukuruza sakupljenih na teritoriji Autonomne Pokrajine Vojvodine, u regionima Bačka, Srem i Banat. Uzorci su analizirani primenom tečne hromatografije sa tripl kvadrupol masenim detektorom. Od ukupno 45 ispitanih Penicillium metabolita, u uzorcima iz 2016. godine detektovano je 16, dok je u uzorcima iz 2017 godine detektovano 18 različitih metabolita. Sa učestalosti pojave u više od 90% analiziranih uzoraka, oksalin je bio najčešće detektovan Penicillium metabolit u uzorcima kukuruza iz obe godine. Pored oksalina, detektovana je i česta pojava kvestomicina A, 7-hidroksipestalotina, pestalotina i mikofenolne kiselina. Ovo je jedna od veoma retkih studija, kako u Republici Srbiji, tako i u ovom delu Evrope, koja se bavi istraživanjima pojave Penicillium metabolita u uzorcima kukuruza.
Reference
Abdallah, M.F., Girgin, G., Baydar, T., Krska, R., Sulyok, M. (2017) Occurrence of multiple mycotoxins and other fungal metabolites in animal feed and maize samples from Egypt using LC-MS/MS. Journal of the Science of Food and Agriculture, 97(13): 4419-4428
Barkai-Golan, R. (2008) Penicillium mycotoxins. u: Barkai-Golan R.; Paster N. [ur.] Mycotoxins in fruits and vegetables, Cambridge: Academic Press, 153-183
Cline, J.C., Nelson, J.D., Gerzon, K., Williams, R.H., Delong, D.C. (1969) In vitro antiviral activity of mycophenolic acid and its reversal by guanine-type compounds. Applied Microbiology, 18(1): 14-20
Degani, O., Regev, D., Dor, S. (2021) The microflora of maize grains as a biological barrier against the late wilt causal agent, Magnaporthiopsis maydis. Agronomy, 11(5): 965-965
EFSA Panel in Contaminants in the Food Chain (CONTAM) (2012) Scientific opinion on the risks for public and animal health related to the presence of citrinin in food and feed. EFSA Journal, 10(3): 2605-2605
El, K.A., Atoui, A. (2010) Ochratoxin A: General overview and actual molecular status. Toxins, 2(4): 461-493
European Commission (2006) Commission regulation 2006/401/EC of 23 february 2006 laying down the methods of sampling and analysis for the official control of the levels of mycotoxins in foodstuffs. Official Journal of the European Union, L 70: 12-34
Frisvad, J.C. (2018) A critical review of producers of small lactone mycotoxins: Patulin, penicillic acid and moniliformin. World Mycotoxin Journal, 11(1): 73-100
Getachew, A., Chala, A., Hofgaard, I.S., Brurberg, M.B., Sulyok, M., Tronsmo, A.M. (2018) Multimycotoxin and fungal analysis of maize grains from south and southwestern Ethiopia. Food Additives & Contaminants: Part B, 11(1): 64-74
Gräbsch, C., Wichmann, G., Loffhagen, N., Herbarth, O., Müller, A. (2006) Cytotoxicity assessment of gliotoxin and penicillic acid in Tetrahymena pyriformis. Environmental Toxicology: An International Journal, 21(2): 111-117
Houbraken, J., de Vries, R.P., Samson, R.A. (2014) Modern taxonomy of biotechnologically important Aspergillus and Penicillium species. Advances in Applied Microbiology, 86: 199-249
International Agency for Research on Cancer (IARC) (1986) Some naturally occurring and synthetic food components, coumarins ultraviolet radiation. u: Monographs of the evaluation of the carcinogenic risk of chemical to human, Lyon, vol. 40: 83-98
International Agency for Research on Cancer (IARC) (2012) Chemical agents and related occupations: A review of human carcinogens. u: IARC monograph on the evaluation of carcinogenic risk to humans, 100F: 1-628
Janić, H.E., Kos, J., Malachová, A., Steiner, D., Stranska, M., Krska, R., Sulyok, M. (2020) Mycotoxins in maize harvested in Serbia in the period 2012-2015: Part 2: Nonregulated mycotoxins and other fungal metabolites. Food Chemistry, 317: 126409-126409
Kifer, D., Sulyok, M., Jakšić, D., Krska, R., Šegvić, K.M. (2021) Fungi and their metabolites in grain from individual households in Croatia. Food Additives & Contaminants: Part B, 14(2): 98-109
Kos, J., Hajnal, E.J., Malachová, A., Steiner, D., Stranska, M., Krska, R., Poschmaier, B., Sulyok, M. (2020) Mycotoxins in maize harvested in Republic of Serbia in the period 2012-2015: Part 1: Regulated mycotoxins and its derivatives. Food Chemistry, 312: 126034-126034
Kos, J., Janić, H.E., Radić, B., Pezo, L., Malachová, A., Krska, R., Sulyok, M. (2021) Two years study of Aspergillus metabolites prevalence in maize from the Republic of Serbia. Journal of Food Processing and Preservation, 46(10): e15897-e15897
Krnjaja, V., Lukić, M., Delić, N., Tomić, Z., Mandić, V., Bijelić, Z., Gogić, M. (2015) Mycobiota and mycotoxins in freshly harvested and stored maize. Biotechnology in Animal Husbandry, 31(2): 291-302
Labuda, R., Bacher, M., Rosenau, T., Gasparotto, E., Gratzl, H., Doppler, M., Sulyok, M., Kubatova, A., Berger, H., Cank, K., Raja, H., Oberlies, N., Schuller, C., Strauss, J. (2021) Polyphasic approach utilized for the identification of two new toxigenic members of Penicillium section exilicaulis, P. krskae and P. silybi spp. Journal of Fungi, 7(7): 557-557
Ljubojević, D., Jakšić, S., Živkov-Balos, M., Mihaljev, Z., Puvača, N., Prica, N., Kapetanov, M. (2014) Presence of aflatoxins, zearalenone, ochratoxin a, and trichothecenes in corn (Zea Mays) in Republic of Serbia. u: Proceedings of the XVI International Symposium 'Feed Technology', Novi Sad, 28-30
Machihara, K., Tanaka, H., Hayashi, Y., Murakami, I., Namba, T. (2017) Questiomycin A stimulates sorafenib-induced cell death via suppression of glucose-regulated protein 78. Biochemical and Biophysical Research Communications, 492(1): 33-40
Maslac, T. (2012) Serbia/grain and feed annual: Annual report on wheat, corn and barley. US Department of Agriculture (USDA) Foreign Agricultural Service, GAIN Report.; Retrieved from https://apps.fas.usda.gov/newgainapi/api/repor t/downloadreportbyfilename?filename=Grain %20and%20Feed%20Annual_Belgrade_Serbi a_3-29-2019.pdf
Maširević, S., Medić-Pap, S., Birvalski, S. (2012) Mycoflora of maize seed. Research Journal of Agricultural Science, 44(2): 58-62
Matić, J., Mandić, A., Mastilović, J., Mišan, A., Beljkaš, B., Milovanović, I. (2008) Contaminations of raw materials and food products with mycotoxins in Serbia. Food and Feed Research, 35(2): 65-70
Matumba, L., Sulyok, M., Monjerezi, M., Biswick, T., Krska, R. (2015) Fungal metabolites diversity in maize and associated human dietary exposures relate to micro-climatic patterns in Malawi. World Mycotoxin Journal, 8(3): 269-282
Medić-Pap, S.S., Maširević, S.N., Šofhauzer, I.P. (2011) Mycoflora of commercial maize seed in 2010. Zbornik Matice srpske za prirodne nauke, 120: 129-135
Medina, Á., Rodríguez, A., Magan, N. (2015) Climate change and mycotoxigenic fungi: Impacts on mycotoxin production. Current Opinion in Food Science, 5: 99-104
Pepeljnjak, S., Cvetnić, Z. (1985) The mycotoxicological chain and contamination of food by ochratoxin A in the nephropathic and non-nephropathic areas in Yugoslavia. Mycopathologia, 90(3): 147-153
Perrone, G., Susca, A. (2017) Penicillium species and their associated mycotoxins. Mycotoxigenic Fungi, 1542: 107-119
Pfohl-Leszkowicz, A., Petkova-Bocharova, T., Chernozemsky, I.N., Castegnaro, M. (2002) Balkan endemic nephropathy and associated urinary tract tumours: A review on aetiological causes and the potential role of mycotoxins. Food Additives & Contaminants, 19(3): 282-302
Plestina, R., Ceović, S., Gatenbeck, S., Habazinnovak, V., Hult, K., Hökby, E., Krogh, P., Radić, B. (1990) Human exposure to ochretoxin A in areas of Yugoslavia with endemic nephropathy. Toxicology and Oncology: Official Organ of the International Society for Environmental Toxicology and Cancer, 10(3): 145-148
Radić, B., Kos, J., Janić, H.E., Malachová, A., Krska, R., Sulyok, M. (2021) Fusarium metabolites in maize from regions of northern Serbia in 2016-2017. Food Additives & Contaminants: Part B, 14(4): 295-305
Republic Hydrometeorological Service of Serbia (2016/2017) Agro-meteorological conditions in the 2016/2017 years in the territory of the Republic of Serbia. [accessed 2022 Dec 15]. http://www.hidmet.gov.rs
Schneweis, I., Meyer, K., Hörmansdorfer, S., Bauer, J. (2000) Mycophenolic acid in silage. Applied and Environmental Microbiology, 66(8): 3639-3641
Stiborová, M., Arlt, V.M., Schmeiser, H.H. (2016) Balkan endemic nephropathy: An update on its aetiology. Archives of Toxicology, 90(11): 2595-2615
Sulyok, M., Krska, R., Schuhmacher, R. (2007) A liquid chromatography/tandem mass spectrometric multi-mycotoxin method for the quantification of 87 analytes and its application to semi-quantitative screening of moldy food samples. Analytical and Bioanalytical Chemistry, 389(5): 1505-1523
Sulyok, M., Stadler, D., Steiner, D., Krska, R. (2020) Validation of an LC-MS/MS-based dilute-and-shoot approach for the quantifycation of > 500 mycotoxins and other seconddary metabolites in food crops: Challenges and solutions. Analytical and Bioanalytical Chemistry, 412(11): 2607-2620
Toghueo, R.M.K., Boyom, F.F. (2020) Endophytic Penicillium species and their agricultural, biotechnological, and pharmaceutical applications. Biotech, 10(3): 1-35
Tola, M., Kebede, B. (2016) Occurrence, importance and control of mycotoxins: A review. Cogent Food & Agriculture, 2(1): 1191103-1191103
Udovički, B., Audenaert, K., de Saeger, S., Rajković, A. (2018) Overview on the Mycotoxins Incidence in Serbia in the period 2004-2016. Toxins, 10(7): 279-279
van der Merwe, K.J., Steyn, P.S., Fourie, L., Scott, D.B., Theron, J.J. (1965) Ochratoxin A, a toxic metabolite produced by Aspergillus ochraceus Wilh. Nature, 205(4976): 1112-1113
Wierzbin'ska, A. (2017) Evaluation of bioactive potential of a secondary metabolite produced by Penicillium nordicum. Portugal: Instituto Politécnico de Bragança, Doctoral dissertation
 

O članku

jezik rada: engleski
vrsta rada: izvorni naučni članak
DOI: 10.5937/ffr49-39606
primljen: 29.08.2022.
revidiran: 29.09.2022.
prihvaćen: 20.10.2022.
objavljen onlajn: 15.11.2022.
objavljen u SCIndeksu: 30.12.2022.
metod recenzije: jednostruko anoniman
Creative Commons License 4.0

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