湘华鲮外周血细胞形态特征及嗜中性粒细胞 吞噬与杀菌能力
作者:
作者单位:

1.湖南省水产科学研究所 长沙 410153;2.湖南省水产原种场 长沙 410153

基金项目:

湖南省科技重点研发计划项目(No. 2016NK2177)


Morphological Characters of Peripheral Blood Cells and Phagocytotic, Bactericidal Function of Neutrophils in Sinilabeo decorus tungting
Author:
Affiliation:

1.① Fisheries Research Institute of Hunan Province,Changsha,Hunan,410153;2.② TheSAquaticSSeedSFarmSofSHunanSProvince,SChangsha,Hunan,410153

  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [1]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    采用血涂片、显微测量、血细胞计数及嗜中性粒细胞吞噬功能和氯化硝基四氮唑蓝还原试验方法,于光学显微镜下观察分析三种水体湘华鲮(Sinilabeo decorus tungting)外周血细胞形态结构、大小、种类及数量。结果表明,湘华鲮外周血细胞中有红细胞、血栓细胞、粒细胞、淋巴细胞和单核细胞,红细胞比例最高,达80%以上,白细胞中血栓细胞最多,占70% ~ 74%。大水面网箱养殖的湘华鲮外周血红细胞数量显著低于水泥池和土池养殖个体(0.01 < P < 0.05),而白细胞的数量、种类及各类白细胞所占比例较为稳定,不随养殖方式的变化而发生显著变化(P > 0.05),但水泥池湘华鲮嗜中性粒细胞的吞噬与杀菌能力较其他两种养殖方式显著下降(0.01 < P < 0.05)。因此,建议湘华鲮宜在水质良好的流水环境中养殖。

    Abstract:

    Sinilabeo decorus tungting, which belongs to Cyprinidae, Barbinae and Sinilabeo, is a large fish and endangered species distributed only in Hunan Province of China. In order to find a suitable culture environment, we studied the characteristics, immunofunctions and impact factors of peripheral hematocytes in S. d. tungting under different cultivation conditions (cage culture, cement-pond culture and soil-pond culture) (Table 1). The peripheral blood cells from 30 individuals were examined, classified, counted and photographed under the light microscope by blood smear, the diameters of various hematocytes and their nuclei in shortest and longest axes were measured using routine methods, and the immunofunctions of neutrophils were detected through phagocytosis test and nitroblue tetrazolium reduction test (NBT). The experimental data were analyzed with SPSS23.0, and the pictures were processed with photoshopCS. The results showed that the peripheral blood cells of S. d. tungting could be divided into five types as erythrocytes, thrombocytes, granulocytes, lymphocytes and monocytes, as shown in Fig. 1. The mean size of mature erythrocytes in length × width was 7.36 ± 0.58 μm × 5.16 ± 0.33 μm, while the largest blood cell in the peripheral blood cells was monocyte with a mean size of 11.93 ± 0.86 μm × 10.16 ± 0.76 μm (Table 2). The red blood cells consist of the largest proportion (over 80%) of peripheral blood cells, whereas the content of thrombocytes in low proportion white blood cells was as high as 70%﹣74% (Table 3). Among the three cultivation methods, the red blood cells number in cage culture was significantly lower than that in cement-pond culture or soil-pond culture (0.01 < P < 0.05); the number, type and ratio of white blood cells were relatively stable and did not change significantly with cultivation methods (P > 0.05, Table 3). In the phagocytosis test and nitroblue tetrazolium reduction test, results showed that the phagocytic percentage and phagocytosis index of neutrophils in cement-pond culture were significantly lower than in cage culture and soil-pond culture (0.01 < P < 0.05), and the positive rate of nitroblue tetrazolium reduction test was the lowest (P > 0.05). Therefore, the phagocytic and bactericidal ability of neutrophils in cement-pond culture was the worst (Table 4). According to the results of our experiment, S. d. tungting is suitable to live in a flowing, good quality water environment.

    参考文献
    Anderson E T, Stoskopf M K, Morris J A, et al. 2010. Hematology, plasma biochemistry, and tissue enzyme activities of invasive red lionfish captured off North Carolina, USA. Journal of Aquatic Animal Health, 22(4): 266–273. Dalmo R A, Ingebrigtsen K, Bogwald J. 1997. Non-specific defence mechanisms in fish, with particular reference to the retieuloendothelial system (RES). Journal of Fish Diseases, 20(4): 241–273. Ellis A E. 1977. The leucocytes of fish: a review. Journal of Fish Biology, 11: 453–491. Ellis A E. 1999. Immunity to bacteria in fish. fish &Shellfish Immunology, 9(4): 291–308. Krystan R. 2015. Fish hematology and associated disorders. Clinics in Laboratory Medicine, 35(3): 681–701. Parish N, Wrathmell A, Hart S, et al. 1986. The leucocytes of the elasmobranch Scyliorhinus canicula L.—A morphological study. Journal of Fish Biology, 28(5): 545–561. Passantino L, Altamura M, Cianciotta A, et al. 2003. Fish immunology. i. binding and engulfment of candida albicans by erythrocytes of rainbow trout (Salmo gairdneri Richardson). Immunopharmacology and Immunotoxicology, 24(4): 665–678. Pegg J R, Balfry S K, Gordon L, et al. 1995. Stress immune function and disease resistance in juvenile salmonids. Bulletin of the Aquacult Association of Canada, 95(4): 28–35. Pettersen E F, Bj?rl?w I, Hagland T J, et al. 2005. Effect of seawater temperature on leucocyte populations in Atlantic salmon post-smolts. Veterinary Immunology and Immunopathology, 106(1/2): 65–76. Pinto W, Aragao C, Soares F, et al. 2007. Growth, stress response and free amino acid levels in Senegalese sole (Solea senegalensis Kaup 1858) chronically exposed to exogenous ammonia. Aquaculture Research, 38(11): 1198–1204. Randall D J, Tsui T K N. 2002. Ammonia toxicity in fish. Marine Pollution Bulletin, 45(1): 17–23. Whyte S K, Chappell L H, Secombes C J. 2006. Cytotoxic reactions of rainbow trout, Salmo gairdneri Richardson, macrophages for larvae of the eye fluke Diplosornum spthaceum (Digenea). Journal Fish Biology, 35(3): 333–345. Zhang M, Li M, Wang R, et al. 2018. Effects of acute ammonia toxicity on oxidative stress, immune response and apoptosis of juvenile yellow catfish Pelteobagrus fulvidraco and the mitigation of exogenous taurine. Fish & Shellfish Immunology, 79: 313–320. 卞伟, 李传武, 梁志强, 等. 2011. 湘华鲮的生物学特征及资源动态研究. 水生态学杂志, 32(4): 67–73. 代应贵, 岳晓炯, 尹邦一. 2014. 濒危鱼类稀有白甲鱼外周血细胞特征. 动物学杂志, 49(6): 875–885. 郭慧, 冼健安, 王安利. 2015. 亚硝酸盐对凡纳滨对虾血细胞毒性及p53基因表达的影响. 水生态学杂志, 36(2): 61–67. 黄国强, 李洁, 柳意樊. 2013. 不同溶氧水平对褐牙鲆幼鱼呼吸行为和血液指标的影响. 广西科学, 20(1): 54–58. 蒋国民, 邓时铭, 邹利, 等. 2019. 湘华鲮一种急性细菌性肠炎的病原分离及组织病理研究. 中国预防兽医学报, 41(9): 906–910. 黎庆, 龚诗雁, 黎明. 2015. 慢性氨氮暴露诱发黄颡鱼幼鱼谷氨酰胺积累、氧化损伤及免疫抑制的研究. 水产学报, 39(5): 728–734. 廖光勇, 区又君, 李加儿. 2011. 波纹唇鱼血细胞显微结构和血液生化指标. 海洋科学进展, 29(3): 379–385. 林艳华. 2011. 鱼类血液学指标的影响因素. 安徽农业科学, 39(1): 8657–8659. 刘巧. 2005. 不同倍性鱼类血细胞研究. 长沙: 湖南师范大学硕士学位论文, 11–12. 沈玉清, 高德华, 王淑娟. 1989. 免疫学与免疫检验学. 北京: 中国医药科技出版社, 131–133. 汪蕾, 张秀霞, 郑佩华, 等. 2016. 硫化物胁迫对凡纳滨对虾血细胞抗氧化酶基因表达的影响. 四川动物, 35(6): 884–888. 王亚楠, 许宝红, 葛熹凯, 等. 2008. 湘华鲮血液生理生化性状的初步研究. 内陆水产, (4): 41–43. 颜桂利, 黄键, 江道提, 等. 1996. 四种脊椎动物血细胞亚显微结构的比较观察. 解剖学报, 27(1): 100–103. 杨严鸥, 余文斌, 姚峰, 等. 2006. 5种鲤科鱼类血细胞数量、大小及血清生化成分的比较. 长江大学学报: 自科版, 3(2): 159–164. 甄梦晓, 邢婧, 绳秀珍, 等. 2017. 迟缓爱德华氏菌感染和疫苗免疫后牙鲆的血细胞数量变化. 中国海洋大学学报, 47(3): 34–42. 卓玉琛. 2007. 欧洲鳗鲡败血症病理学和组织化学的研究. 福州: 福建农林大学硕士学位论文, 5–6, 19–20.
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

邓时铭,田兴,曾春芳,刘丽,邹利,李传武,蒋国民.2020.湘华鲮外周血细胞形态特征及嗜中性粒细胞 吞噬与杀菌能力.动物学杂志,55(6):768-775.

复制
文章指标
  • 点击次数:756
  • 下载次数: 1425
  • HTML阅读次数: 0
  • 引用次数: 0
历史
  • 收稿日期:2020-03-30
  • 最后修改日期:2020-10-27
  • 录用日期:2020-10-26
  • 在线发布日期: 2020-12-08