DOI QR코드

DOI QR Code

제비집 시알산 유래 영양전달체(Nutrient Delivery System)의 인지기능 및 운동기능 개선 효과

Improvements in Cognitive and Motor Function by a Nutrient Delivery System Containing Sialic Acid from Edible Bird's Nest

  • 김동명 ((주)케이제이엠바이오 바이오연구소 총괄연구소) ;
  • 정주영 ((주)케이제이엠바이오 바이오연구소) ;
  • 이형곤 ((주)케이제이엠바이오 바이오연구소) ;
  • 권용성 ((주)케이제이엠바이오 바이오연구소) ;
  • 백진홍 ((주)김정문알로에 생명과학연구소) ;
  • 한인석 (유타대학교 화학공학과)
  • 투고 : 2020.09.03
  • 심사 : 2020.11.07
  • 발행 : 2020.12.31

초록

The objective of this study was to produce a nutrient delivery system (NDS) using sialic acid extracted from edible bird's nest (EBN), which improves brain function in patients with Alzheimer's disease and Parkinson's disease, by affinity bead technology (ABT). The inhibitory activity of acetylcholinesterase (AChE) and pyramidal cells in the dentate gyrus of the hippocampus were analyzed to investigate the effect of a sialic acid NDS on Alzheimer's disease. Also, the effect of a sialic acid NDS on Parkinson's disease was evaluated by rota-rod test and pole test in an animal model. Among the groups treated with donepezil, EBN, and sialic acid NDS, the AChE activity was the lowest in the sialic acid NDS-treated group. The results of the hippocampus analysis of the rat model confirmed that the sialic acid NDS inhibited amyloid-beta accumulation depending upon the concentration. Also, the sialic acid NDS group showed more improvement in motor deterioration than the1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP)-induced group in both the rota-rod test and pole test. Therefore, the sialic acid NDS had an effect of protecting not only Alzheimer's disease by inhibiting AChE and amyloid-beta accumulation, but Parkinson's disease by preventing neurotoxicity induced by MPTP.

키워드

과제정보

본 논문의 연구는 2018년도 한국산업기술진흥원의 재원으로 기술개발 지원사업(과제번호: N0001395)과 2020년도 중소벤처기업부의 재원으로 기획 지원사업(과제번호: S2953529)을 받아 수행되었습니다.

참고문헌

  1. Canal N, Imbimbo BP, Group ES. 1996. Relationship between pharmacodynamic activity and cognitive effects of eptastigmine in patients with Alzheimer's disease. Clin Pharmacol Ther 60:218-228 https://doi.org/10.1016/S0009-9236(96)90138-1
  2. Careena S, Sani D, Tan S, Lim CW, Hassan S, Norhafizah M, Kirby BP, Ideris A, Stanslas J, Bin Basri H. 2018. Effect of edible bird's nest extract on lipopolysaccharide-induced impairment of learning and memory in wistar rats. Evid Based Complementary Altern Med 2018:9318789 https://doi.org/10.1155/2018/9318789
  3. Chantler P, Driessens G. 2010. Swifts: A Guide to the Swifts and Treeswifts of the World. 2nd ed. pp.150-152. Bloomsbury
  4. Chiavegatto S, Sun J, Nelson RJ, Schnaar RL. 2000. A functional role for complex gangliosides: Motor deficits in GM2/GD2 synthase knockout mice. Exp Neurol 166:227-234 https://doi.org/10.1006/exnr.2000.7504
  5. Colombo JP, Garcia-Rodenas C, Guesry PR, Rey J. 2003. Potential effects of supplementation with amino acids, choline or sialic acid on cognitive development in young infants. Acta Paediatr 92:42-46 https://doi.org/10.1080/08035320310010437
  6. Ferger B, Teismann P, Earl CD, Kuschinsky K, Oertel WH. 2000. The protective effects of PBN against MPTP toxicity are independent of hydroxyl radical trapping. Pharmacol Biochem Behav 65:425-431 https://doi.org/10.1016/S0091-3057(99)00229-4
  7. Gandy S. 2011. Perspective: Prevention is better than cure. Nature 475:S15 https://doi.org/10.1038/475S15a
  8. Goh DLM, Chua KY, Chew FT, Liang RCMY, Seow TK, Ou KL, Yi FC, Lee BW. 2001. Immunochemical characterization of edible bird's nest allergens. J Allergy Clin Immunol 107: 1082-1088 https://doi.org/10.1067/mai.2001.114342
  9. Halliwell B. 2006. Oxidative stress and neurodegeneration: Where are we now? J Neurochem 97:1634-1658 https://doi.org/10.1111/j.1471-4159.2006.03907.x
  10. Hidalgo A, Burgos V, Viola H, Medina J, Argibay P. 2006. Differential expression of glycans in the hippocampus of rats trained on an inhibitory learning paradigm. Neuropathology 26:501-507 https://doi.org/10.1111/j.1440-1789.2006.00718.x
  11. Jeong YS, Hwang BS, Cho SM, Hwang KA, Hwang IG. 2017. Antioxidant and anti-diabetic, anti-Alzheimer activities of stem from Opuntia ficus-indica var. saboten cultivated in Jeju at harvest time. Korean J Food Nutr 30:1332-1340 https://doi.org/10.9799/KSFAN.2017.30.6.1332
  12. Kang BG, Seo YM, Lee JW, Kim NM, Hong SK, Baek SS. 2013. Method for preparing antler extract containing increased sialic acid content. Korea Patent 10-2013-0087670
  13. Kang JS. 2016. Effect of medicinal herb composites on antioxidative and cognition-enhancing activities in rats. Korean J Food Nutr 29:382-391 https://doi.org/10.9799/ksfan.2016.29.3.382
  14. Kasa P, Papp H, Kasa Jr P, Torok I. 2000. Donepezil dosedependently inhibits acetylcholinesterase activity in various areas and in the presynaptic cholinergic and the postsynaptic cholinoceptive enzyme-positive structures in the human and rat brain. Neuroscience 101:89-100 https://doi.org/10.1016/S0306-4522(00)00335-3
  15. Kathan RH, Weeks DI. 1969. Structure studies of collocalia mucoid: I. Carbohydrate and amino acid composition. Arch Biochem Biophys 134:572-576 https://doi.org/10.1016/0003-9861(69)90319-1
  16. Kim DM, Lee HK, Kwon YS. 2020. Purification method of sialic acid in Swallow's nest using ABT. Korea Patent 10-2020-0012156
  17. Kim DM, Cho GS. 2006. Nanofood and its materials as nutrient delivery system (NDS). J Appl Biol Chem 49:39-47
  18. Kim SH, Choi JW. 2013. Antioxidant activity of water extract of Chrysanthemum boreale against MPTP-induced mice models. J Physiol Pathol Korean Med 27:49-56
  19. Kim SH, Han SH. 2012. Prevalence of dementia among the South Korean population. J Korean Diabetes 13:124-128 https://doi.org/10.4093/jkd.2012.13.3.124
  20. Korea National Statistical Office. 2018. Polulation census: 2018. Available from http://kostat.go.kr/ [cited 1 September 2020]
  21. Korea National Statistical Office. 2019a. Population projections for Korea: 2017-2067. Available from http://kostat.go.kr/[cited 1 September 2020]
  22. Korea National Statistical Office. 2019b. Long term care insurance statistics. Available from http://kostat.go.kr/ [cited 1 September 2020]
  23. Lee DS, Kim DS, Kim SH. 2013. Herbal compositions for treating neurological diseases and improving memory impairment. Korea Patent 10-2013-0130069
  24. Lee MR, Sun BS, Gu LJ, Wang CY, Fang ZM, Wang Z, Mo EK, Ly SY, Sung CK. 2009. Effects of the deer antler extract on scopolamine-induced memory impairment and its related enzyme activities. J Korean Soc Food Sci Nutr 38: 409-414 https://doi.org/10.3746/JKFN.2009.38.4.409
  25. Manish G, Vimukta S. 2011. Targeted drug delivery system: A review. Res J Chem Sci 1:135-138
  26. Marni S, Marzura MR, Norzela AM, Khairunnisak M, Bing CH, Eddy AA. 2014. Preliminary study on free sialic acid content of edible bird nest from johor and kelantan. Malays J Vet Res 5:9-14
  27. McClements DJ. 2015. Nanoscale nutrient delivery systems for food applications: Improving bioactive dispersibility, stability, and bioavailability. J Food Sci 80:N1602-N1611 https://doi.org/10.1111/1750-3841.12919
  28. McLaurin J, Franklin T, Fraser PE, Chakrabartty A. 1998. Structural transitions associated with the interaction of Alzheimer β-amyloid peptides with gangliosides. J Biol Chem 273:4506-4515 https://doi.org/10.1074/jbc.273.8.4506
  29. Morgan BL, Winick M. 1980. Effects of administration of N-acetylneuraminic acid (NANA) on brain NANA content and behavior. J Nutr 110:416-424 https://doi.org/10.1093/jn/110.3.416
  30. Park CH, Kim SH, Choi W, Lee YJ, Kim JS, Kang SS, Sun YH. 1996. Novel anticholinesterase and antiamnesic activities of dehydroevodiamine, a constituent of Evodia rutaecarpa. Planta Med 62:405-409 https://doi.org/10.1055/s-2006-957926
  31. Park GH, Kim HG, Ju MS, Kim AJ, Oh MS. 2014. Thuja orientalis leaves extract protects dopaminergic neurons against MPTP-induced neurotoxicity via inhibiting inflammatory action. Korea J Herbol 29:27-33
  32. Patel D, Chaudhary SA, Parmar B, Bhura N. 2012. Transdermal drug delivery system: A review. Pharma Innovation 1:66-75
  33. Rastogi V, Yadav P. 2014. Transdermal drug delivery system: An overview. Asian J Pharm 6:161-170 https://doi.org/10.4103/0973-8398.104828
  34. Saulino M, Schengrund CL. 1994. Differential accumulation of gangliosides by the brains of MPTP-lesioned mice. J Neurosci Res 37:384-391 https://doi.org/10.1002/jnr.490370310
  35. Schauer R, Corfield AP. 1982. Isolation and purification of sialic acids. In Schauer R (Ed.), Sialic Acids. pp.51-57. Springer
  36. Schliebs R, Arendt T. 2011. The cholinergic system in aging and neuronal degeneration. Behav Brain Res 221:555-563 https://doi.org/10.1016/j.bbr.2010.11.058
  37. Selkoe DJ. 2012. Preventing Alzheimer's disease. Science 337: 1488-1492 https://doi.org/10.1126/science.1228541
  38. Stefanovic V, Massarelli R, Mandel P, Rosenberg A. 1975. Effect of cellular desialylation on choline high affinity uptake and ecto-acetylcholinesterase activity of cholinergic neuroblasts. Biochem Pharmacol 24:1923-1928 https://doi.org/10.1016/0006-2952(75)90421-9
  39. Sun L, Xu S, Zhou M, Wang C, Wu Y, Chan P. 2010. Effects of cysteamine on MPTP-induced dopaminergic neurodegeneration in mice. Brain Res 1335:74-82 https://doi.org/10.1016/j.brainres.2010.03.079
  40. Trabace L, Cassano T, Steardo L, Pietra C, Villetti G, Kendrick KM, Cuomo V. 2000. Biochemical and neurobehavioral profile of CHF2819, a novel, orally active acetylcholinesterase inhibitor for Alzheimer's disease. J Pharmacol Exp Ther 294:187-194
  41. Van Cauwenberghe C, Van Broeckhoven C, Sleegers K. 2016. The genetic landscape of Alzheimer disease: Clinical implications and perspectives. Genet Med 18:421-430 https://doi.org/10.1038/gim.2015.117
  42. West BD, Shughrue PJ, Vanko AEH, Ransom RW, Kinney GG. 2006. Amphetamine-induced locomotor activity is reduced in mice following MPTP treatment but not following selegiline/MPTP treatment. Pharmacol Biochem Behav 84:158-161 https://doi.org/10.1016/j.pbb.2006.04.022