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Hive products science

The microbiological quality of fresh bee pollen during the harvesting process

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Pages 92-102 | Received 25 Jan 2022, Accepted 19 Apr 2022, Published online: 03 Nov 2022

References

  • Abouda, Z., Zerdani, I., Kalalou, I., Faid, M., & Ahami, M. T. (2011). The antibacterial activity of moroccan bee bread and bee-pollen (fresh and dried) against pathogenic bacteria. Research Journal of Microbiology, 6(4), 376–384.
  • Almeida-Muradian, L. B., Pamplona, L. C., Coimbra, S., & Barth, O. M. (2005). Chemical composition and botanical evaluation of dried bee pollen pellets. Journal of Food Composition and Analysis, 18(1), 105–111. https://doi.org/10.1016/j.jfca.2003.10.008
  • Anjos, O., Paula, V., Delgado, T., & Estevinho, L. M. (2019). Influence of the storage conditions on the quality of bee pollen. Zemdirbyste-Agriculture, 106(1), 87–94. https://doi.org/10.13080/z-a.2019.106.012
  • Arruda, V. A. S., Santos, A. V., Sampaio, D. F., Araújo, E. S., Peixoto, A. L. C., Estevinho, L. M., & Almeida-Muradian, L. B. (2017). Microbiological quality and physicochemical characterization of Brazilian bee pollen. Journal of Apicultural Research, 56(3), 231–238. https://doi.org/10.1080/00218839.2017.1307715
  • Artículo 785 – (Res 1550, 12.12.90). (1990). In: Código Alimentario Argentino : Capítulo X : Alimentos Azucarados. (Argentine food code : Chapter 10 : Sugar foods.). Buenos Aires: Administración Nacional de Medicamentos, Alimentos y Tecnología Médica. In Spanish.
  • Belhadj, H., Bouamra, D., Dahamna, S., Harzallah, D., Ghadbane, M., & Khennouf, S. (2012). Microbiological sanitary aspects of pollen. Advances in Environmental Biology, 6(4), 1415–1420.
  • Belhadj, H., Harzallah, D., Dahamma, S., & Khennouf, S. (2014). Microbiological quality control of marketed pollen. Der Pharmacia Lettre, 6(2), 37–42.
  • Brindza, J., Gróf, J., Bacigálová, K., Ferianc, P., & Tóth, D. (2010). Pollen microbial colonization and food safety. Acta Chimica Slovaca, 3(1), 95–102.
  • Campos, M. G. R., Bogdanov, S., de Almeida-Muradian, L. B., Szczesna, T., Mancebo, Y., Frigerio, C., & Ferreira, F. (2008). Pollen composition and standardization of analytical methods. Journal of Apicultural Research, 47(2), 154–161. https://doi.org/10.1080/00218839.2008.11101443
  • Canale, A., Benelli, G., Castagna, A., Sgherri, C., Poli, P., Serra, A., Mele, M., Ranieri, A., Signorini, F., Bientinesi, M., & Nicolella, C. (2016). Microwave – assisted drying for the conservation of honeybee pollen. Materials, 9(5), 363. https://doi.org/10.3390/ma9050363
  • Chirife, J., Buera, M. P., & Labuza, T. P. (1996). Water activity, water glass dynamics, and the control of microbiological growth in foods. Critical Reviews in Food Science and Nutrition, 36(5), 465–513. https://doi.org/10.1080/10408399609527736
  • Collin, S., Vanhavre, T., Bodart, E., & Bouseta, A. (1995). Heat treatment of pollens: impact on volatile flavor constituents. Journal of Agricultural and Food Chemistry, 43(2), 444–448. https://doi.org/10.1021/jf00050a035
  • De Melo, A. A. M., Estevinho, L. M., & Almeida-Muradian, L. B. (2015). A diagnosis of the microbiological quality of dehydrated bee-pollen produced in Brazil. Letters in Applied Microbiology, 61(5), 477–483. https://doi.org/10.1111/lam.12480
  • Dreller, C., Page, R. E., & Fondrk, M. K. (1999). Regulation of pollen foraging in honeybees colonies, effect of young brood, stored pollen and empty space. Behavioral Ecology and Sociobiology, 45(3–4), 227–233. https://doi.org/10.1007/s002650050557
  • Estevinho, L. M., Rodrigues, S., Pereira, A. P., & Feàs, X. (2011). Portuguese bee pollen: palynological study, nutritional and microbiological evaluation. Food Science and Technology, 47(2), 429–435.
  • Fatrcová-Šramková, K., Nôžková, J., Kačániová, M., Máriássyová, M., Rovná, K., & Stričík, M. (2013). Antioxidant and antimicrobial properties of monofloral bee pollen. Journal of Environmental Science and Health. Part. B, Pesticides, Food Contaminants, and Agricultural Wastes, 48(2), 133–138. https://doi.org/10.1080/03601234.2013.727664
  • Feás, X., Vázquez-Tato, M. P., Estevinho, L., Seijas, J. A., & Iglesias, A. (2012). Organic bee pollen: botanical origin, nutritional value, bioactive compounds, antioxidant activity and microbiological quality. Molecules (Basel, Switzerland), 17(7), 8359–8377. https://doi.org/10.3390/molecules17078359
  • Garcia-Villanova, R. J., Cordón, C., Paramás, A. M. G., Aparicio, P., & Rosales, M. E. G. (2004). Simultaneous immunoaffinity column cleanup and HPLC analysis of aflatoxins and ochratoxin A in Spanish bee pollen. Journal of Agricultural and Food Chemistry, 52(24), 7235–7239. https://doi.org/10.1021/jf048882z
  • Gilliland, S. E. (1990). Health and nutritional benefits from lactic acid bacteria. FEMS Microbiology Reviews, 7(1–2), 175–188. https://doi.org/10.1111/j.1574-6968.1990.tb04887.x
  • González, G., Hinojo, M. J., Mateo, R., Medina, A. M., & Jim’nez, A. M. (2005). Occurrence of mycotoxin producing fungi in bee pollen. International Journal of Food Microbiology, 105, 1–9. https://doi.org/10.1016/j.ijfoodmicro.2005.05.001
  • Gorbach, S. L. (1990). Lactic acid bacteria and human health. Annals of Medicine, 22(1), 37–41. https://doi.org/10.3109/07853899009147239
  • Gould, G. N. (1985). Properties of water in foods. In D. Simatos & J. L. Multon (Eds.), Present state of knowledge of Aw effects on microorganisms (pp. 229–245). NATO Aplied Sciences series.
  • Graikou, K., Kapeta, S., Aligiannis, N., Sotiroudis, G., Chondrogianni, N., Gonos, E., & Chinou, I. (2011). Chemical analysis of Greek pollen - Antioxidant, antimicrobial and proteasome activation properties. Chemistry Central Journal, 5(1), 33. https://doi.org/10.1186/1752-153X-5-33
  • Hoover, S. E., & Ovinge, L. P. (2018). Pollen collection, honey production, and pollination services: Managing honey bees in an agricultural setting. Journal of Economic Entomology, 111(4), 1509–1516. https://doi.org/10.1093/jee/toy125
  • Howell, J., & Champie, C. (1981). Pollen collection, storage and cleaning. American Bee Journal, 121(7), 524–525.
  • Iannuzzi, J. (1993). Pollen: food for honey bee and man? American Bee Journal, 133, 557–563.
  • Kačániová, M., Juráček, M., Chlebo, R., Kňazovická, V., Kadasi-Horáková, M., Kunová, S., Lejková, J., Haščík, P., Mareček, J., & Šimko, M. (2011). Mycobiota and mycotoxins in bee pollen collected from different areas of Slovakia. Journal of Environmental Science and Health, Part B, Pesticides, Food Contaminants, and Agricultural Wastes, 46(7), 623–629. https://doi.org/10.1080/03601234.2011.589322
  • Keskin, M., & Özkök, A. (2020). Effects of drying techniques on chemical composition and volatile constituents of bee pollen. Czech Journal of Food Sciences, 38(4), 203–208. https://doi.org/10.17221/79/2020-CJFS
  • Khalifa, S. A. M., Elashal, M. H., Yosri, N., Du, M., Musharraf, S. G., Nahar, L., Sarker, S. D., Guo, Z., Cao, W., Zou, X., Abd El-Wahed, A. A., Xiao, J., Omar, H. A., Hegazy, M.-E F., & El-Seedi, H. R. (2021). Bee pollen: Current status and therapeutic potential. Nutrients, 13(6), 1876. https://doi.org/10.3390/nu13061876
  • Kieliszek, M., Piwowarek, K., Kot, A. M., Błażejak, S., Chlebowska-Śmigiel, A., & Wolska, I. (2018). Pollen and bee bread as new health-oriented products: A review. Trends in Food Science & Technology, 71, 170–180. https://doi.org/10.1016/j.tifs.2017.10.021
  • Kleinhenz, M., Bujok, B., Fuchs, S., & Tautz, J. (2003). Hot bees in empty broodnest cells: heating from within. The Journal of Experimental Biology, 206(Pt 23), 4217–4231. https://doi.org/10.1242/jeb.00680
  • Kostić, A. Ž., Milinčić, D. D., Petrovic, T. S., Krnjaja, V. S., Stanojević, S. P., Barać, M. B., Tešić, Ž. L., & Pešić, M. B. (2019). Mycotoxins and mycotoxin producing fungi in pollen: review. Toxins (Basel), 11(2), 64. https://doi.org/10.3390/toxins11020064
  • Liolios, V. (2010). Record of pollen flora, protein content and sugar composition in bee – collected pollen Liolios V. 2010 [Master Science Thesis]. Laboratory of Apiculture-Sericulture, Agriculture School, Aristotle University of Thessaloniki, p. 52–57.
  • Liolios, V. (2017). Parameters affecting the chemical composition of bee-collected pollen (Apis mellifera L.). [PhD thesis]. National Documentation Centre. https://www.didaktorika.gr/eadd/handle/10442/42058.
  • Liolios, V., Tananaki, C., Dimou, M., Kanelis, D., Goras, G., Karazafiris, E., & Thrasyvoulou, A. (2016). Ranking pollen from bee plants according to their protein contribution to honey bees. Journal of Apicultural Research, 54(5), 1–11.
  • Ma˘rga˘oan, R., Ma˘rghitaş, L. A., Dezmirean, D., Mihai, C. M., & Bobiş, O. (2010). Bee collected pollen – general aspects and chemical composition. Bulletin of University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca. Animal Science and Biotechnologies, 67, 254–259.
  • Mathlouthi, M. (2001). Water content, water activity, water structure and the stability of foodstuffs. Food Control, 12(7), 409–417. https://doi.org/10.1016/S0956-7135(01)00032-9
  • Mauriello, G., De Prisco, A., Di Prisco, G., La Storia, A., & Caprio, E. (2017). Microbial characterization of bee pollen from the Vesuvius area collected by using three different traps. Plos One, 12(9), e0183208–17. https://doi.org/10.1371/journal.pone.0183208
  • Mayda, N., Özkök, A., Ecem Bayram, N., Gerçek, Y. C., & Sorkun, K. (2020). Bee bread and bee pollen of different plant sources: Determination of phenolic content, antioxidant activity, fatty acid and element profiles. Journal of Food Measurement and Characterization, 14(4), 1795–1809. https://doi.org/10.1007/s11694-020-00427-y
  • Morais, M., Moreira, L., Feás, X., & Estevinho, L. M. (2011). Honeybee-collected pollen from five Portuguese Natural Parks: Palynological origin, phenolic content, antioxidant properties and antimicrobial activity. Food and Chemical Toxicology: An International Journal Published for the British Industrial Biological Research Association, 49(5), 1096–1101.10.1016/j.fct.2011.01.020
  • Nogueira, S., Iglesias, A., Feás, X., & Estevinho, L. M. (2012). Commercial bee pollen with different geographical origins: A comprehensive approach. International Journal of Molecular Sciences, 13(9), 11173–11187. https://doi.org/10.3390/ijms130911173
  • Nuvoloni, R., Meucci, V., Turchi, B., Sagona, S., Fratini, F., Felicioli, A., Cerri, D., & Pedonese, F. (2021). Bee-pollen retailed in Tuscany (Italy): Labelling, palynological, microbiological, and mycotoxicological profile. LWT, 140, 110712. https://doi.org/10.1016/j.lwt.2020.110712
  • Pascoal, A., Rodrigues, S., Teixeira, A., Feás, X., & Estevinho, L. M. (2014). Biological activities of commercial bee pollens: antimicrobial, antimutagenic, antioxidant and anti-inflammatory. Food and Chemical Toxicology: An International Journal Published for the British Industrial Biological Research Association, 63, 233–239. https://doi.org/10.1016/j.fct.2013.11.010
  • Prelipcean, A. A. (2011). The dynamics of total polyphenols, flavonoids and antioxidant activity of beepollen collected from Moldavia area. Romania. Cerceta˘ri Agronomice în Moldova, 149(1), 81–92.
  • Raja, S., Waghchoure, E. S., Mahmood, R., Sarwar, G., Iftikhar, F., & Munawar, M. S. (2010). Comparative study on improvement in Pollen Collection Technology. Halteres, 1(2), 1–6.
  • Seeley, T. D. (1985). Honeybee ecology. A study of adaptation in social life. In Seeley (Ed.), Temperature control (p. 107–123). Princeton University Press.
  • Sinkevičienė, J., & Amšiejus, A. (2019). Mycobiota in bee pollen collected by different types of traps. Zemdirbyste-Agriculture, 106(4), 377–382. https://doi.org/10.13080/z-a.2019.106.048
  • Sinkevičienė, J., Burbulis, N., & Baliukonienė, V. (2021). The influence of storage conditions on bee pollen contamination by microscopic fungi and their mycotoxins. Zemdirbyste-Agriculture, 108(2), 159–164. https://doi.org/10.13080/z-a.2021.108.021
  • Stanley, R. G., & Linskens, H. F. (1974). Storage. In R. G. Stanley & H. F. Linskens (Eds), Pollen biology, biochemistry, management (pp. 56–66). Springer – Verlag.
  • Thakur, M., & Nanda, V. (2018a). Assessment of physico-chemical properties, fatty acid, amino acid and mineral profile of bee pollen from India with a multivariate perspective. Journal of Food and Nutrition Research, 57(4), 328–340.
  • Yamaguchi, M., Hamamoto, R., Uchiyama, S., Ishiyama, K., & Hashimoto, K. (2006). Anabolic effects of bee pollen Cistus ladaniferus extract on bone components in the femoral-diaphyseal and -metaphyseal tissues of rats in vitro and in vivo. Journal of Health Science, 52(1), 43–49. https://doi.org/10.1248/jhs.52.43

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