Effect of phage therapy on survival, histopathology, and water microbiota of Penaeus vannamei challenged with Vibrio parahaemolyticus causing acute hepatopancreatic necrosis disease (AHPND)

被引:6
|
作者
Gonzalez-Gomez, Jean Pierre [1 ]
Soto-Rodriguez, Sonia A. [2 ]
Gomez-Gil, Bruno [2 ]
Serrano-Hernandez, Juan Manuel [2 ]
Lozano-Olvera, Rodolfo [2 ]
Lopez-Cuevas, Osvaldo [1 ]
Campo, Nohelia Castrodel [1 ]
Chaidez, Cristobal [1 ]
机构
[1] AC CIAD, Ctr Invest Alimentac & Desarrollo, Lab Nacl Invest Inocu Alimentaria LANIIA, Carretera Eldorado Km 5-5, Campo Diez, Culiacan 80110, Sinaloa, Mexico
[2] AC CIAD, Ctr Invest Alimentac & Desarrollo, Unidad Mazatlan Acuicultura & Manejo Ambiental, Mazatlan AP 711, Mexico City, Sinaloa, Mexico
关键词
AHPND; Phage therapy; Metagenomic shotgun; Microbiota; Vibrio parahaemolyticus; SHRIMP LITOPENAEUS-VANNAMEI; CAUSATIVE AGENT; METAGENOMICS; RESISTANCE; ALIGNMENT; PLASMID;
D O I
10.1016/j.aquaculture.2023.739851
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Shrimp farming production is affected severely by the presence of toxigenic strains of Vibrio parahaemolyticus, the leading etiological agent of acute hepatopancreatic necrosis disease that causes as much as 100% mortality. To date, conventional methods have not effectively controlled AHPND, and only a few studies have reported bioassays testing phage therapy against this shrimp disease, none with a metagenomic approach. Here, Penaeus vannamei juveniles infected with AHPND-causing Vibrio parahaemolyticus were treated with phage to assess shrimp survival, tissue damage, as well as water microbiota dynamics. Phage therapy reduced by 4% shrimp mortality compared to the positive control. Histopathological analysis showed a 3 h delay in mortality of shrimp in the acute stage treated with phage therapy concerning the positive control, as well as a shortening of the terminal phase. Further, surviving shrimp in the terminal stage were only found in the positive control treatment. No significant differences were observed in the diversity of water microbiota between these treatments. Interestingly, V. parahaemolyticus caused up to 65% mortality, although its density decreased rapidly, and its relative abundance in the water microbiota ranged from 0.1% to 0.4%, while the marine bacteria that predominated in the microbiota was Donghicola eburneus (25.2%-54.6%). In addition, two copies of the pVA1 plasmid per V. parahaemolyticus genome were detected during the first 12 hpi in the positive control and phage therapy treatments. Phage therapy using a single phage could not effectively control AHPND in this investigation. Therefore, methods combining different approaches to prevent or treat the AHPND, such as a phage cocktail and a toxin binder, should be considered to increase the success rate in mitigating the disease.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] In vitro disinfection efficacy and clinical protective effects of common disinfectants against acute hepatopancreatic necrosis disease (AHPND)-causing Vibrio isolates in Pacific white shrimp Penaeus vannamei
    Zou, Peizhuo
    Yang, Qian
    Wang, Hailiang
    Xie, Guosi
    Cao, Zhi
    Chen, Xing
    Gao, Wen
    Huang, Jie
    JOURNAL OF MICROBIOLOGY, 2020, 58 (08) : 675 - 686
  • [32] Characterization and genome analysis of six novel Vibrio parahaemolyticus phages associated with acute hepatopancreatic necrosis disease (AHPND)
    Karen Orozco-Ochoa, Alma
    Pierre Gonzalez-Gomez, Jean
    Castro-del Campo, Nohelia
    Daniel Lira-Morales, Juan
    Isabel Martinez-Rodriguez, Celida
    Gomez-Gil, Bruno
    Chaidez, Cristobal
    VIRUS RESEARCH, 2023, 323
  • [33] Enterocytozoon hepatopenaei (EHP) is a risk factor for acute hepatopancreatic necrosis disease (AHPND) and septic hepatopancreatic necrosis (SHPN) in the Pacific white shrimp Penaeus vannamei
    Aranguren, Luis Fernando
    Han, Jee Eun
    Tang, Kathy F. J.
    AQUACULTURE, 2017, 471 : 37 - 42
  • [34] Development of monoclonal antibodies specific to ToxA and ToxB of Vibrio parahaemolyticus that cause acute hepatopancreatic necrosis disease (AHPND)
    Wangman, Pradit
    Chaiyisuthangkura, Parin
    Sritunyalucksana, Kallaya
    Taengchaiyaphum, Suparat
    Senapin, Saengchan
    Pengsuk, Chalinan
    Sithigorngul, Paisarn
    Longyant, Siwaporn
    AQUACULTURE, 2017, 474 : 75 - 81
  • [35] Dietary montmorillonite clay improved Penaeus vannamei survival from acute hepatopancreatic necrosis disease and modulated stomach microbiota
    Ng, Wing-Keong
    Mong, Mei-Ling
    Abdul-Hamid, Abdul-Azim
    ANIMAL FEED SCIENCE AND TECHNOLOGY, 2023, 297
  • [36] The Vibrio-predatory filamentous bacteria effectively removed acute hepatopancreatic necrosis disease (AHPND) causative Vibrio parahaemolyticus in vitro
    Yeoh, Hao Ing
    Izzatty, Rosli
    Furusawa, Go
    Amirul, Al-Ashraf Abdullah
    Shu-Chien, Alexander Chong
    Sung, Yeong Yik
    AQUACULTURE REPORTS, 2021, 21
  • [37] Time course of acute hepatopancreatic necrosis disease (AHPND) in the Pacific white shrimp Penaeus vannamei by wet mount analysis
    Lozano-Olvera, Rodolfo
    Abad-Rosales, Selene M.
    Soto-Rodriguez, Sonia A.
    Aguilar-Rendon, Karla G.
    AQUACULTURE INTERNATIONAL, 2024, 32 (03) : 2313 - 2329
  • [38] Polychaeta-mediated synthesis of gold nanoparticles: A potential antibacterial agent against Acute Hepatopancreatic Necrosis Disease (AHPND)-causing bacteria, Vibrio parahaemolyticus
    Abu Hassan, Mohamad Sofi
    Elias, Nurul Ashikin
    Hassan, Marina
    Rahmah, Sharifah
    Ismail, Wan Iryani Wan
    Harun, Noor Aniza
    HELIYON, 2023, 9 (11)
  • [39] qPCR assay for detecting and quantifying a virulence plasmid in acute hepatopancreatic necrosis disease (AHPND) due to pathogenic Vibrio parahaemolyticus
    Han, Jee Eun
    Tang, Kathy F. J.
    Pantoja, Carlos R.
    White, Brenda L.
    Lightner, Donald V.
    AQUACULTURE, 2015, 442 : 12 - 15
  • [40] Comparative genomic analysis unravels the transmission pattern and intra-species divergence of acute hepatopancreatic necrosis disease (AHPND)-causing Vibrio parahaemolyticus strains
    Qian Yang
    Xuan Dong
    Guosi Xie
    Songzhe Fu
    Peizhuo Zou
    Jing Sun
    Yi Wang
    Jie Huang
    Molecular Genetics and Genomics, 2019, 294 : 1007 - 1022