Citation: | Yang Y P, Cheng X, Hua Z, et al. Parasitic characteristics and genetic structure analysis of Anisakis pegreffii in Coilia nasus [J]. Acta Hydrobiologica Sinica, 2025, 49(9): 092505. DOI: 10.3724/1000-3207.2025.2024.0392 |
In order to obtain the parasitics and population genetic structure of Anisakis pegreffii in Coilia nasus and deeply understand its marine life background, three sampling areas were set up as Chongming, Taizhou, and Anqing sections in the lower reaches of Yangtze River. A total of 15 fish were sampled during the early, middle, and late fishing season of different river sections from April to July in 2021. The A. pegreffii parasitized in C. nasus was identified and its population genetic structure was analyzed using a molecular marker of ITS region. Results showed that totally 354 A. pegreffii were identified from 135 samples, the infection rate of A. pegreffii was 77.78%, with an average infection intensity of (3.37±2.97) individuals per fish and an average infection abundance of (2.62±2.97) individuals per fish. In terms of time characteristics, the highest infection rate (86.67%) occurred during the early fishing season, which was significantly higher than that in the middle (75.56%) and late fishing season (71.11%). And the highest infection intensity [(5.27±3.96) individuals per fish] was observed in late investigation, which was significantly higher than that in the early [(3.07±3.13) individuals per fish] and middle [(3.01±2.21) individuals per fish] investigation (P<0.05). However, there was no significance for the infection abundance among three different periods. In terms of spatial characteristics, both the average of infection intensity and infection abundance of A. pegreffii were the maximum in Anqing segment reached as 4.83 and 4.29 individuals per fish respectively, which showed extremely significant (P<0.01) compared to Taizhou and Chongming segments. Correspondingly, the lowest values were observed in Taizhou segment, with no significant difference compared to Chongming. For genetic structure analysis, totally 369 polymorphic loci were screened, in which 6 single information loci and 363 reduced information loci were found. Furthermore, twenty-three haplotypes were identified and Hap_1 and Hap_2 were the dominant haplotypes. Haplotype diversity index (Hd), nucleotide diversity index (π) and average nucleotide difference number (K) were synchronously analyzed and the value reached as 0.523, 0.23633 and 162.123 respectively. The haplotype phylogenetic tree based on ML and NJ method showed that A. pegreffii in C. nasus originated from two lineages, and genetic differentiation was significant between two lineages (Fst=0.98946, P<0.01) through AMOVA analysis. Finally, Mismatch analysis and neutrality test also indicated the two lineages experienced a significantly population expansion in recent.
[1] |
张其中. 寄生于大鳍鳠的杜父鱼驼形线虫的生态研究 [J]. 西南师范大学学报(自然科学版), 1993, 18(1): 85-89.]
Zhang Q Z. Studies on the ecology of parasitic Camallanus cotti Fujita in the host Mystus macropterus Bleeker [J]. Journal of Southwest China Normal University (Natural Science), 1993, 18(1): 85-89. [
|
[2] |
李文祥, 王桂堂. 寄生虫对宿主种群的调节 [J]. 水生生物学报, 2002, 26(5): 550-554.] doi: 10.3321/j.issn:1000-3207.2002.05.022
Li W X, Wang G T. Regulation of parasites on host population: a brief review [J]. Acta Hydrobiologica Sinica, 2002, 26(5): 550-554. [ doi: 10.3321/j.issn:1000-3207.2002.05.022
|
[3] |
李文祥, 王桂堂. 洄游型、淡水型和陆封型刀鲚的寄生蠕虫群落结构 [J]. 动物学杂志, 2014, 49(2): 233-243.]
Li W X, Wang G T. Helminth communities in Coilia nasus from anadromous, freshwater and landlocked stocks [J]. Chinese Journal of Zoology, 2014, 49(2): 233-243. [
|
[4] |
MacKenzie K. Parasites as indicators of host populations [J]. International Journal for Parasitology, 1987, 17(2): 345-352. doi: 10.1016/0020-7519(87)90109-3
|
[5] |
Williams H H, MacKenzie K, McCarthy A M. Parasites as biological indicators of the population biology, migrations, diet, and phylogenetics of fish [J]. Reviews in Fish Biology and Fisheries, 1992, 2(2): 144-176. doi: 10.1007/BF00042882
|
[6] |
MacKenzie K, Campbell N, Mattiucci S, et al. Parasites as biological tags for stock identification of Atlantic horse mackerel Trachurus trachurus L. [J]. Fisheries Research, 2008, 89(2): 136-145. doi: 10.1016/j.fishres.2007.09.031
|
[7] |
Marques J F, Santos M J, Costa J L, et al. Metazoan parasites as biological indicators of population structure of Halobatrachus didactylus on the Portuguese coast [J]. Journal of Applied Ichthyology, 2005, 21(3): 220-224. doi: 10.1111/j.1439-0426.2005.00655.x
|
[8] |
Bailey R E, Margolis L. Comparison of parasite fauna of juvenile sockeye salmon (Oncorhynchus nerka) from southern British Columbian and Washington State lakes [J]. Canadian Journal of Zoology, 1987, 65(2): 420-431. doi: 10.1139/z87-063
|
[9] |
吴山功. 杜父鱼驼形线虫种群生物学和分子生态学的研究 [D]. 武汉: 中国科学院水生生物研究所, 2007: 10, 45-65.]
Wu S G. Population biology and molecular ecology of the nematode Camallanus cotti [D]. Wuhan: Institute of Hydrobiology, Chinese Academy of Sciences, 2007: 10, 45-65. [
|
[10] |
Bouree P, Paugam A, Petithory J C. Anisakidosis: Report of 25 cases and review of the literature [J]. Comparative Immunology, Microbiology and Infectious Diseases, 1995, 18(2): 75-84. doi: 10.1016/0147-9571(95)98848-C
|
[11] |
Mccoy K D, Boulinier T, Tirard C, et al. Host specificity of a generalist parasite: genetic evidence of sympatric host races in the seabird tick Ixodes uriae [J]. Journal of Evolutionary Biology, 2001, 14(3): 395-405. doi: 10.1046/j.1420-9101.2001.00290.x
|
[12] |
Blouin M S, Dame J B, Tarrant C A, et al. Unusual population genetics of a parasitic nematode: mtDNA variation within and among populations [J]. International Journal of Organic Evolution, 1992, 46(2): 470-476. doi: 10.2307/2409865
|
[13] |
Blouin M S, Liu J, Berry R E. Life cycle variation and the genetic structure of nematode populations [J]. Heredity, 1999, 83(3): 253-259. doi: 10.1038/sj.hdy.6885420
|
[14] |
刘凯. 基于多组学技术研究长江刀鲚感染线虫后的免疫适应机制 [D]. 芜湖: 安徽师范大学, 2019.]
Liu K. Research on immune adaptive response of Coilia nasus infected with nematode in the Yangtze River based on multi-omics techniques [D]. Wuhu: Anhui Normal University, 2019. [
|
[15] |
Bush A O, Lafferty K D, Lotz J M, et al. Parasitology meets ecology on its own terms: Margolis et al. Revisited [J]. The Journal of Parasitology, 1997, 83(4): 575-583. doi: 10.2307/3284227
|
[16] |
吴金英, 吕军仪, 曾华, 等. 鲻鱼(Mugil cephalus)寄生蠕虫群落生态研究 [J]. 生态学报, 2001, 21(6): 1003-1008.] doi: 10.3321/j.issn:1000-0933.2001.06.025
Wu J Y, Lü J Y, Zeng H, et al. Studies on community ecology of helminthes parasitic in Mugil cephalus in Guangdong province, China [J]. Acta Ecologica Sinica, 2001, 21(6): 1003-1008. [ doi: 10.3321/j.issn:1000-0933.2001.06.025
|
[17] |
李孟孟, 姜涛, 陈婷婷, 等. 长江安庆江段刀鲚耳石微化学及洄游生态学意义 [J]. 生态学报, 2017, 37(8): 2788-2795.]
Li M M, Jiang T, Chen T T, et al. Otolith microchemistry of the estuarine tapertail anchovy Coilia nasus from the Anqing section of the Yangtze River and its significance for migration ecology [J]. Acta Ecologica Sinica, 2017, 37(8): 2788-2795. [
|
[18] |
程鑫, 杨彦平, 应聪萍, 等. 禁捕初期长江刀鲚异尖科线虫寄生现状调查 [J]. 海洋湖沼通报, 2023, 45(2): 142-149.]
Cheng X, Yang Y P, Ying C P, et al. Investigation on Anisakidae nematode parasitic status of Ciolianasus at the early stages of banning fishing in Yangtze River [J]. Transactions of Oceanology and Limnology, 2023, 45(2): 142-149. [
|
[19] |
马凤娇, 杨彦平, 方弟安, 等. 长江禁捕后长江口刀鲚资源特征 [J]. 水生生物学报, 2022, 46(10): 1580-1590.]
Ma F J, Yang Y P, Fang D A, et al. Characteristics of Coilia nasus resources after fishingban in the Yangtze River [J]. Acta Hydrobiologica Sinica, 2022, 46(10): 1580-1590. [
|
[20] |
闫华超, 高岚, 付崇罗, 等. 鱼类遗传多样性研究的分子学方法及应用进展 [J]. 水产科学, 2004, 23(12): 44-48.] doi: 10.3969/j.issn.1003-1111.2004.12.015
Yan H C, Gao L, Fu C L, et al. Molecular methods and advances on genetic diversity evaluation in Fish [J]. Fisheries Science, 2004, 23(12): 44-48. [ doi: 10.3969/j.issn.1003-1111.2004.12.015
|
[21] |
Grant W, Bowen B W. Shallow population histories in deep evolutionary lineages of marine fishes: Insights from sardines and anchovies and lessons for conservation [J]. Journal of Heredity, 1998, 89(5): 415-426. doi: 10.1093/jhered/89.5.415
|
[22] |
肖武汉, 张亚平. 鱼类线粒体DNA的遗传与进化 [J]. 水生生物学报, 2000, 24(4): 384-391.] doi: 10.3321/j.issn:1000-3207.2000.04.014
Xiao W H, Zhang Y P. Genetics and evolution of mitochondrial DNA in fish [J]. Acta Hydrobiologica Sinica, 2000, 24(4): 384-391. [ doi: 10.3321/j.issn:1000-3207.2000.04.014
|
[23] |
Wright S. Evolution in mendelian populations [J]. Genetics, 1931, 16(2): 97-159. doi: 10.1093/genetics/16.2.97
|
[24] |
陈亚宁, 李卫红, 陈亚鹏, 等. 新疆塔里木河下游断流河道输水与生态恢复 [J]. 生态学报, 2007, 27(2): 538-545.] doi: 10.3321/j.issn:1000-0933.2007.02.015
Chen Y N, Li W H, Chen Y P, et al. Water conveyance in dried-up riverway and ecological restoration in the lower reaches of Tarim River, China [J]. Acta Ecologica Sinica, 2007, 27(2): 538-545. [ doi: 10.3321/j.issn:1000-0933.2007.02.015
|
[25] |
Mondal D, Dutta S, Mallik A, et al. Mitochondrial DNA diversity: Insight into population diversity, structure and demographic history of Penaeus monodon along the entire coastal region of India [J]. Aquaculture Research, 2020, 51(11): 4649-4680. doi: 10.1111/are.14812
|