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The effect of bee pollen and its flavonoids on immune-modulating in mice

  • Jia Bak (Department of Pharmaceutical Science and Technology, Kyungsung University) ;
  • Il Kyung Chung (Department of Biotechnology, Daegu Catholic University) ;
  • Yun-Sik Choi (Department of Pharmacology, College of Pharmacy, Kyungsung University)
  • Received : 2023.09.24
  • Accepted : 2023.10.24
  • Published : 2023.10.31

Abstract

Bee pollen is a valuable apitherapeutic product and has been known to have diverse biological activities, including antimicrobial, anti-inflammatory, and even anticancer activity. However, its effect on the immune system is not well studied and is rather controversial. This study intended to elucidate the biological activity of bee pollen on immunity. For this purpose, we used lyophilized bee pollen after wet grinding, which shows increased extraction of bioactive components and enhanced biological activity. First, lyophilized bee pollen after wet grinding significantly increased the proliferation of splenocytes isolated from normal mice. On the other hand, lyophilized bee pollen after wet grinding dose-dependently reversed splenocyte proliferation by concanavalin A or lipopolysaccharide. To clarify the activity of bee pollen on immunity lyophilized bee pollen after wet grinding was administered daily to mice for five weeks and isolated splenocytes. In this study, there was no significant difference in the population of immune cells and the size of spleen between bee pollen- and sterile water-treated groups. However, proliferation of splenocyte isolated from bee pollen-administered animals was boosted by both concanavalin A and lipopolysaccharide. Finally, kaempferol, a well-known flavonoid from bee pollen, dose-dependently increased splenocyte proliferation by both Con A and LPS. On the other hand, naringenin, another flavonoid in the bee pollen, dose-dependently inhibited the proliferation of splenocytes by Con A and LPS. Together, these data indicate that bee pollen may be able to prime the immunity to boost immune reaction after inflammation.

Keywords

Acknowledgement

This work was supported by the Creative Economy Leading Technology Development Program through the Gyeongsangbuk-Do and Gyengbuk Science & Technology Promotion Center of Korea (SF315011A).

References

  1. B. Denisow, M. Denisow-Pietrzyk, "Biological and therapeutic properties of bee pollen: a review", Journal of the Science Food and Agriculture, Vol.96, No.13 pp. 4303-4309, (2016).  https://doi.org/10.1002/jsfa.7729
  2. H. Maruyama, T. Sakamoto, Y. Araki, H. Hara, "Anti-inflammatory effect of bee pollen ethanol extract from Cistus sp. of Spanish on carrageenan-induced rat hind paw edema", BMC Complementary and Alternative Medicine, Vol.10, No.30 doi:10.1186/1472-6882-10-30 (2010). 
  3. E. Moita, A. Gil-Izquierdo, C. Sousa, F. Ferreres, L. R. Silva, P. Valentao, R. Dominguez-Perles, N. Baenas, P. B. Andrade, "Integrated analysis of COX-2 and iNOS derived inflammatory mediators in LPS-stimulated RAW macrophages pre-exposed to Echium plantagineum L. bee pollen extract", PLoS One, Vol.8, No.3 e59131, (2013). 
  4. A. Pascoal, S. Rodrigues, A. Teixeira, X. Feas, L. M. Estevinho, "Biological activities of commercial bee pollens: antimicrobial, antimutagenic, antioxidant and antiinflammatory", Food and Chemical Toxicology, Vol.63, pp. 233-239, (2014).  https://doi.org/10.1016/j.fct.2013.11.010
  5. E. Basim, H. Basim, M. Ozcan, "Antibacterial activities of Turkish pollen and propolis extracts against plant bacterial pathogens", Journal of Food Engineering, Vol.77, No.4 pp. 992-996, (2006).  https://doi.org/10.1016/j.jfoodeng.2005.08.027
  6. E. Furusawa, S. C. Chou, A. Hirazumi, A. Melera, "Antitumor potential of pollen extract on lewis lung carcinoma implanted intraperitoneally in syngeneic mice", Phytotherapy Research, Vol.9, No.4 pp. 255-259, (1995).  https://doi.org/10.1002/ptr.2650090405
  7. J. Wang, G. Jin, Y. Zheng, S. Li, H. Wang, "Effect of bee pollen on development of immune organ of animal", Zhongguo Zhong Yao Za Zhi, Vol.30, No.19 pp. 1532-1536, (2005). 
  8. S. Babaei, S. Rahimi, M. A. Karimi Torshizi, G. Tahnasebi, S. N. Khaleghi Miran, "Effects of propolis, royal jelly, honey and bee pollen on growth performance and immune system of Japanese quails", Veterinary Research Forum, Vol.7, No.1 pp. 13-20, (2016). 
  9. F. Qin, H. Sun, "Immunosuppressive activity of Pollen Typhae ethanol extract on the immune responses in mice", Journal of Ethnopharmacology, Vol.102, No.3 pp. 424-429, (2005).  https://doi.org/10.1016/j.jep.2005.06.027
  10. Y. Ishikawa, T. Tokura, N. Nakano, M. Hara, F. Niyonsaba, H. Ushio, Y. Yamamoto, T. Tadokoro, K. Okumura, H. Ogawa, "Inhibitory effect of honeybee-collected pollen on mast cell degranulation in vivo and in vitro", Journal of Medicinal Food, Vol.11, No.1 pp. 14-20, (2008).  https://doi.org/10.1089/jmf.2006.163
  11. Y. Ishikawa, T. Tokura, H. Ushio, F. Niyonsaba, Y. Yamamoto, T. Tadokoro, H. Ogawa, K. Okumura, "Lipid-soluble components of honeybee-collected pollen exert antiallergic effect by inhibiting IgE-mediated mast cell activation in vivo", Phytotheraphy Research, Vol.23, No.11 pp. 1581-1586, (2009).  https://doi.org/10.1002/ptr.2824
  12. Y. Choi, H. Suh, I. K. Chung, "Enhanced extraction of bioactive compounds from bee pollen by wet-grinding technology", Journal of Life Science, Vol.26, No.6 pp. 651-656, (2016). https://doi.org/10.5352/JLS.2016.26.6.651
  13. Bogdanov S. Pollen: production, nutrition and health: A review. pp.1-36, Bee Product Science, (2015). 
  14. T. H. Roulston, J. H. Cane, "Pollen nutritional content and digestibility for animals", Plant Systematics and Evolution, Vol.222, pp. 187-209, (2000).  https://doi.org/10.1007/BF00984102
  15. C. Cho, C. Han, Y. K. Rhee, Y. Lee, K. Shin, H. Hong, "Immunostimulatory effects of polysaccharides isolated from Makgeolli (traditional Korean rice wine)", Molecules, Vol.19, No.4 pp. 5266-5277, (2014).  https://doi.org/10.3390/molecules19045266
  16. I. V. Kravchenco, V. A. Furalev, "Secretion of immunoreactive corticotropin releasing factor and adrenocorticotropic hormone by T- and B-lymphocytes in response to cellular stress factors", Biochemical and Biophysical Research Communications, Vol.204, No.2 pp. 828-834, (1994).  https://doi.org/10.1006/bbrc.1994.2534
  17. H. E. Lee, G. Yang, J. S. Choi, J. Y. Lee, "Suppression of Primary Splenocyte Proliferation by Artemisia capillaris and Its Components", Toxicological Research, Vol.33, No.4 pp. 283-290, (2017).  https://doi.org/10.5487/TR.2017.33.4.283
  18. S. Li, G. Yang, J. Yan, D. Wu, Y. Hou, Q. Diao, Y. Zhou, "Polysaccharide structure and immunological relationships of RG-I pectin from the bee pollen of Nelumbo nucifera", International Journal of Biological Macromolecules, Vol.111, pp. 660-666, (2018).  https://doi.org/10.1016/j.ijbiomac.2018.01.015
  19. C. J. Jack, S. S. Uppala, H. M. Lucas, R. R. Sagili, "Effects of pollen dilution on infection of Nosema ceranae in honey bees", Journal of Insect Physiology, Vol.87, pp. 12-19, (2016).  https://doi.org/10.1016/j.jinsphys.2016.01.004
  20. E. V. Pingitore, E. Bru, M. L. E. Nader-Macias, "Effect of lyophilization and storage temperature on the activity of salivaricin CRL 1328, a potential bioactive ingredient of a urogenital probiotic product", Journal of General and Applied Microbiology, Vol.58, No.2 pp 71-81, (2012). https://doi.org/10.2323/jgam.58.71