|
|
渔用口服疫苗递送系统的研究进展 |
袁高亮, 朱雷, 孔祥会 |
河南师范大学 水产学院,河南 新乡 453007 |
|
Research Perspectives of Oral Vaccine Delivery System in Fisheries: a Review |
YUAN Gaoliang, ZHU Lei, KONG Xianghui |
College of Fisheries, Henan Normal University, Xinxiang 453007, China |
[1]Limbu S M, Zhou L, Sun S X, et al. Chronic exposure to low environmental concentrations and legal aquaculture doses of antibiotics cause systemic adverse effects in Nile tilapia and provoke differential human health risk[J]. Environment International,2018,115:205-219. [2]Liu X, Steele J C, Meng X Z. Usage,residue, and human health risk of antibiotics in Chinese aquaculture: a review[J]. Environmental Pollution,2017,223:161-169. [3]Lin J H, Yu C C, Yang H L, et al. An oral delivery system for recombinant subunit vaccine to fish[J]. Developments in Biologicals,2005,121:175-180. [4]Mutoloki S, Munang′andu H M, Evensen Ø. Oral vaccination of fish-antigen preparations, uptake, and immune induction[J]. Frontiers in Immunology,2015,6:1-10. [5]Xia Y F, Fan Q Z, Hao D X, et al. Chitosan-based mucosal adjuvants: sunrise on the ocean[J]. Vaccine,2015,33(44):5997-6010. [6]Duff D C B. The oral immunization of trout against Bacterium salmonicida[J]. Journal of Immunology,1942,44(5):87-94. [7]Russell-Jones G J. Oral vaccine delivery[J]. Journal of Controlled Release,2000,65(1/2):49-54. [8]Boudinot P, Blanco M, Kinkelin P D, et al. Combined DNA immunization with the glycoprotein gene of the viral hermorraghic septicemia virus and infectious hematopoietic necrosis virus induces double-specific protective immunity and non-specific response in rainbow trout[J]. Journal of Virology,1998,249(2):297-306. [9]Joosten P H M, Tiemersma E, Threels A, et al. Oral vaccination of fish against Vibrio anguillarum using alginate microparticles[J]. Fish & Shellfish Immunology,1997,7(7):471-485. [10]Companjen A R, Florack D E, Bastiaans J H, et al. Development of a cost-effective oral vaccination method against viral disease in fish [J]. Developmental Biology,2005,121:143-150. [11]Fang Q, Seng E K, Dai W, et al. Construction and co-expression of grass carp reovirus VP6 protein and enhanced green fluorescence protein in the insect cells[J].Virologica Sinica,2007,22(5):397-404. [12]Pattani A, Gupta P N, Curran R M, et al. Vaccine delivery systems: roles, challenges and recent advances[M]∥Giese M. Molecular Vaccines. Cham, Switzer-land:Springer,2014:743-752. [13]Plant K P, Lapatra S E. Advances in fish vaccine delivery[J].Developmental & Comparative Immunology,2011,35(12):1256-1262. [14]孙长娇,王琰,赵翔,等.聚乳酸纳米微球制备工艺研究[J].中国农业科技导报,2018,20(5):148-153. [15]白枫,孙大庆. DNA疫苗递送系统研究进展[J].国际免疫学杂志,2008,31(3):236-239. [16]Greenland J R, Letvin N L. Chemical adjuvants for plasmid DNA vaccines[J]. Vaccine,2007,25(19):3731-3741. [17]Emberegts C W E, Forlenza M. Oral vaccination of fish: lessons from humans and veterinary species[J]. Developmental & Comparative Immunology,2016,64:118-137. [18]Jie J, Debora T, Ngels R, et al. Nanodelivery Systems as new tools for immunostimulant or vaccine administration: targeting the fish immune system[J]. Biology,2015,4(4):664-696. [19]安伟,肖雨,张明辉,等.鱼类新型口服疫苗的研究概况[J].黑龙江畜牧兽医,2015,9:82-84. [20]吴淑勤,陶家发,巩华,等.渔用疫苗发展现状及趋势[J].中国渔业质量与标准,2014,4(1):1-13. [21]Ballwsteros N A, Alonso M, Saint-jeanA S R, et al. An oral DNA vaccine against infectious haematopoietic necrosis virus (IHNV) encapsulated in alginate microspheres induces dose-dependent immune responses and significant protection in rainbow trout (Oncorrhynchus mykiss)[J]. Fish & Shellfish Immunology,2015,45(2):877-888. [22]李新华,沈锦玉,尹文林,等.银鲫口服嗜水气单胞菌疫苗的免疫和免疫组化研究[J].水生生物学报,2007,31(1):125-130. [23]Maurice S, Nussinovitch A, Jaffe N, et al. Oral immunization of Carassius auratus with modified recombinant a-layer proteins entrapped in alginate beads[J]. Vaccine,2004,23(4):450-459. [24]Tian J Y, Sun X Q, Chen X G. Formation and oral administration of alginate microspheres loaded with pDNA coding for lymphocystis disease virus (LCDV) to Japanese flounder[J]. Fish & Shellfish Immunology,2008,24(5):592-599. [25]Wang E L, Wang X L, Wang K Y, et al. Preparation, characterization and evaluation of the immune effect of alginate/chitosan composite microspheres encapsulating recombinant protein of Streptococcus iniae designed for fish oral vaccination[J]. Fish & Shellfish Immunology,2018,73:262-271. [26]Halimi M, Alishahi M, Abbaspour M R, et al. Valuable method for production of oral vaccine by using alginate and chitosan against Lactococcus garvieae/Streptococcus iniae in rainbow trout (Oncorhynchus mykiss)[J]. Fish & Shellfish Immunology,2019,90:431-439. [27]Embregts C W E, Rigaudeau D, Tacchi L, et al. Vaccination of carp against SVCV with an oral DNA vaccine or an insect cells-based subunit vaccine[J]. Fish & Shellfish Immunology,2019,85:66-77. [28]高铭蔚,田园园,卢迈新,等.罗非鱼无乳链球菌PLGA微球口服疫苗免疫效果的研究[J].免疫学杂志,2015,31(2):105-110. [29]Kole S, Qadiri S S N, Shin S M, et al. PLGA encapsulated inactivated-viral vaccine: formulation and evaluation of its protective efficacy against viral haemorrhagic septicaemia virus (VHSV) infection in olive flounder (Paralichthys olivaceus) vaccinated by mucosal delivery routes[J]. Vaccine,2019,37(7):973-983. [30]Ma Y P, Liang Z L, Ke H, et al. Protective efficacy of cationic-PLGA microspheres loaded with DNA vaccine encoding the sip gene of Streptococcus agalactiae in tilapia[J]. Fish & Shellfish Immunology,2017,66:345-353. [31]Amin M K, Boateng J S. Comparison and process optimization of PLGA, chitosan and silica nanoparticles for potential oral vaccine delivery [J]. Therapeutic Delivery,2019,10(8):493-514. [32]Cho H S, Seo J Y, Park S I, et al. Oral immunization with recombinant protein antigen expressed in tobacco against fish nervous necrosis virus[J]. Journal of Veterinary Medical Science,2018,80(2):272-279. [33]韩卓然,孙敬锋.水产动物益生菌的筛选及应用[J].水产科学,2016,35(1):93-98. [34]Daniel G S, Guardiola F A, Espinosa C, et al. Recombinant nodavirus vaccine produced in bacteria and administered without purification elicits humoral immunity and protects European sea bass against infection [J]. Fish & Shellfish Immunology,2019,88:458-463. [35]Lu L, Xu H, He Y, et al. Protection of grass carp, Ctenopharyngon idellus (Valenciennes), through oral administration of a subunit vaccine against reovirus[J].Journal of Fish Diseases,2011,34(12):939-942. [36]侯慧丽,王庆丰,罗浑金,等.乳酸菌用作口服疫苗传递载体的研究[J].生物技术通报,2007(3):72-74. [37]Wyszyńska A, Kobierecka P, Bardowski J, et al. Lactic acid bacteria—20 years exploring their potential as live vectors for mucosal vaccination[J]. Applied Microbiology and Biotechnology,2015,99(7):2967-2977. [38]Olivia C G, Joaquin S F, Elena G F. Lactic acid bacteria: reviewing the potential of a promising delivery live vector for biomedical purposes[J]. Microbial Cell Factories,2015,14(1):137. [39]Cui L C, Guan X T, Liu Z M, et al. Recombinant Lactobacillus expressing G protein of Spring viremia of carp virus (SVCV) combined with ORF81 protein of koi herpesvirus (KHV):a promising way to induce protective immunity against SVCV and KHV infection in cyprinid fish via oral vaccination[J].Vaccine,2015,33(27):3092-3099. [40]Zhang D X, Kang Y H, Chen L, et al. Oral immunization with recombinant, Lactobacillus casei, expressing OmpAI confers protection against, Aeromonas veronii, challenge in common carp, Cyprinus carpio[J]. Fish & Shellfish Immunology,2018,72:552-563. [41]Zhang L, Li Z X, Li Y, et al. OmpW expressed by recombinant Lactobacillus casei elicits protective immunity against Aeromonas veronii in common carp[J]. Microbial Pathogenesis,2019,133:1-8. [42]Zhao L N, Tang X Q, Sheng X Z, et al. Surface display of hirame novirhabdovirus (HIRRV) G protein in Lactococcus lactis and its immune protection in flounder (Paralichthys olivaceus) [J]. Microbial Cell Factories,2019,18(142):345-353. [43]Jiang H, Bian Q, Zeng W, et al. Oral delivery of Bacillus subtilis spores expressing grass carp reovirus VP4 protein produces protection against grass carp reovirus infection[J]. Fish & Shellfish Immunology,2019,84:768-780. [44]Yao Y Y, Chen D D, Cui Z W, et al. Oral vaccination of tilapia against Streptococcus agalactiae using Bacillus subtilis spores expressing Sip[J]. Fish & Shellfish Immunology,2019,86:999-1008. [45]Lee J Y, Kang S K, Li H S, et al. Production of recombinant human growth hormone conjugated with a transcytotic peptide in Pichia pastorisfor effective oral protein delivery[J].Molecular Biotechnology,2015,57(5):430-438. [46]Shibasaki S, Aoki W, Nomura T, et al. An oral vaccine against candidiasis generated by a yeast molecular display system[J]. Pathogens and Disease,2013,69(3):262-268. [47]Zhang C D, Wang Y, Ma S Z, et al. Human enterovirus 71 protein displayed on the surface of Saccharomyces cerevisiae as an oral vaccine[J].Viral Immunology,2016,29(5):288-295. [48]Sun H, Wang L J, Wang T T, et al. Display of Eimeria tenella EtMic2 protein on the surface of Saccharomyces cerevisiae as a potential oral vaccine against chicken coccidiosis[J]. Vaccine,2014,32(16):1869-1876. [49]Zhao J Z, Xu L M, Liu M, et al. Preliminary study of an oral vaccine against infectious hematopoietic necrosis virus using improved yeast surface display technology[J]. Molecular Immunology,2017,85:196-204. [50]Yan N N, Xu K, Li X Y, et al. Recombinant Saccharomyces cerevisiae serves as novel carrier for oral DNA vaccines in Carassius auratus[J]. Fish & Shellfish Immunology,2015,47(2):758-765. [51]Han B Q, Xu K, Liu Z T, et al. Oral yeast-based DNA vaccine confers effective protection from Aeromonas hydrophila infection on Carassius auratus[J]. Fish & Shellfish Immunology,2019,84:948-954. [52]Cho S Y, Kim H J, Lan N T, et al. Oral vaccination through voluntary consumption of the convict grouper, Epinephelus septemfasciatus, with yeast producing the capsid protein of red-spotted grouper nervous necrosis virus[J].Veterinary Microbiology,2017,204:159-164. [53]Embregts C W E, Felipe R L, Pall A C, et al. Pichia pastoris, yeast as a vehicle for oral vaccination of larval and adult teleosts[J]. Fish & Shellfish Immunology,2019,85:52-60. [54]Li K, Yuan R, Zhang M T, et al. Recombinant baculovirus BacCarassius-D4ORFs has potential as a live vector vaccine against CyHV-2[J]. Fish & Shellfish Immunology,2019,92:101-110. [55]Unger T, Peleg Y. Recombinant protein expression in the baculovirus-infected insect cell system[J]. Methods in Molecular Biology,2012,800:187-199. [56]Lin S Y, Chung Y C, Hu Y C. Update on baculovirus as an expression and/or delivery vehicle for vaccine antigens[J]. Expert Review of Vaccines,2014,13(12):1501-1521. [57]Xue R Y, Liu L, Cao G L, et al. Oral vaccination of BacFish-vp6 against grass carp reovirus evoking antibody response in grass carp[J]. Fish & Shellfish Immunology,2013,34(1):348-355. [58]Tacket C O. Plant-derived vaccines against diarrheal diseases[J].Vaccine,2005,23(15):1866-1869. [59]Carter J, Langridge W. Plant-based vaccines for protection against infectious and autoimmune diseases[J]. Critical Reviews in Plant Sciences,2002,21(2):93-109. [60]李林,习佳飞,周晓红,等.转基因植物口服疫苗的免疫机制研究进展[J].国际免疫学杂志,2004, 27(6):354-357. [61]Aleksey F, Irina T, Tatiana M, et al. High-yield expression of M2e peptide of avian influenza virus H5N1 in transgenic duckweed plants[J]. Molecular Biotechnology,2015,57(7):653-661. [62]Aleksey F, Irina T, Tatiana M, et al. Expression and Immunogenicity of M2e peptide of avian influenza virus H5N1 fused to ricin toxin B chain produced in duckweed plants[J]. Frontiers in Chemistry,2018,6(22):1-11. [63]Seong C H, Young S J, Ik P S, et al. Oral immunization with recombinant protein antigen expressed in tobacco, against fish nervous necrosis virus[J]. Journal of Veterinary Medical Science,2018,80(2):272-279. [64]Shin Y J, Kwon T H, Seo J Y, et al. Oral immunization of fish against iridovirus infection using recombinant antigen produced from rice callus[J]. Vaccine,2013,31(45):5210-5215. [65]Zhang Q S, Xu B L, Pan J J, et al. Expression and active testing of VP7 from GCRV (Grass carp reovirus) fused with cholera toxin B subunit in rice calli[J]. Protein Expression and Purification,2019,158:1-8. |
[1] |
陈星合, 贾心悦, 温志新, 李亚洁, 王冬, 都兴范. 柞蚕免疫蛹粉对中间球海胆生长和免疫的影响[J]. 水产科学, 2025, 44(2): 313-319. |
[2] |
靳纪明, 路晶晶, 李小勇, 刘文珍, 王玉柱, 刘文舒, 方刘, 郭小泽. 鱼类对高温胁迫响应及机制研究进展[J]. 水产科学, 2025, 44(1): 151-161. |
[3] |
张倩茹, 郑关超, 杨越聪, 赵辉辉, 谭志军, 吴海燕. 免疫增强剂对紫贻贝的毒素蓄积、抗氧化和免疫影响[J]. 水产科学, 2024, 43(6): 925-933. |
[4] |
陈军平, 武慧慧, 沈方方, 张佳鑫, 于若梦, 付永杰, 赵道全, 谢国强, 何一晴, 李秀杰. 急性温度胁迫对乌苏里拟鲿稚鱼抗氧化和非特异免疫功能的影响[J]. 水产科学, 2024, 43(4): 580-589. |
[5] |
徐超楠, 孙雨雨, 王佳, 郭宝琴, 魏畅, 李强. 鲤疱疹病毒Ⅱ型ORF72单克隆抗体的制备及应用[J]. 水产科学, 2024, 43(4): 598-605. |
[6] |
李梦娇, 王倩, 张婷, 任金亮, 王志远, 赵蔚蓝, 王恒杰, 王灿莉, 袁向阳. 氨氮胁迫对团头鲂生长、抗氧化和免疫的影响[J]. 水产科学, 2024, 43(4): 640-647. |
[7] |
吴乐, 李嘉尧, 周文宗, 成永旭. 氨氮短期胁迫与恢复对克氏原螯虾的影响[J]. 水产科学, 2024, 43(3): 390-399. |
[8] |
张浩然, 温彬, 潘韵超, 杨博添, 高建忠, 陈再忠. 卡拉胶对七彩神仙鱼生长、酶活性和肠道微生物组成的影响[J]. 水产科学, 2024, 43(3): 400-409. |
[9] |
孟泳岐, 鲁耀鹏, 郑佩华, 张秀霞, 李军涛, 张泽龙, 顾志峰, 冼健安. 环境因子和污染物对凡纳滨对虾毒性效应的研究进展[J]. 水产科学, 2024, 43(3): 483-490. |
[10] |
魏成业, 杨红玲, 夏孟婷, 聂庆杰, 翟少伟, 孙云章. 3株肠道原籍菌在美洲鳗鲡养殖中的应用研究[J]. 水产科学, 2024, 43(2): 189-198. |
[11] |
施郁松, 赵金良. 温度对鳜体表黏液细胞及黏液免疫因子的影响[J]. 水产科学, 2024, 43(1): 32-40. |
[12] |
田海军, 任胜杰, 杨治国, 顾夕章. 复方中草药制剂对克氏原螯虾抗白斑综合征感染研究[J]. 水产科学, 2024, 43(1): 129-135. |
[13] |
董炜峰, 杨毕铖, 李光毅, 戴红, 刘志勇, 蒋灏. 不同质量浓度HgCl2对凡纳滨对虾的急性毒性评估[J]. 水产科学, 2024, 43(1): 97-103. |
[14] |
张紫瑞, 朱鑫海, 张晓君, 高晓建, 孙永军, 魏万胜, 姜群. 非O1霍乱弧菌感染罗氏沼虾肝胰腺转录组分析[J]. 水产科学, 2023, 42(6): 977-986. |
[15] |
马淑慧, 田斌, 孙永欣, 李学军, 米锐, 温志新, 孟楠, 李亚洁, 李树英, 都兴范. 柞蚕免疫蛹粉、柞蚕抗菌肽对扇贝生长、免疫力的影响[J]. 水产科学, 2023, 42(5): 878-883. |
|
|
|
|