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Reviews

A One Health Approach Relative to Trematode-Caused Diseases of People and Animals Associated with Aquaculture

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References

  • Abakari G, Wu X, He X, Fan L, Luo G. 2022. Bacteria in biofloc technology aquaculture systems: role and mediation factors. Rev Aquacult. 14(3):1260–1225. doi:10.1111/raq.12649
  • Adema CM, Hillier LW, Jones CS, Loker ES, Knight M, Minx P, Oliveira G, Raghavan N, Shedlock A, do Amaral LR, et al. 2017. Whole genome analysis of a schistosomiasis-transmitting freshwater snail. Nat Commun. 8:15451. doi:10.1038/ncomms15451
  • Adeyeye SAO, Bolaji OT, Abegunde TA, Adesina TO. 2020. Processing and utilization of snail meat in alleviating protein malnutrition in Africa: a review. Nutr Food Sci. 50(6):1085–1097. doi:10.1108/NFS-08-2019-0261
  • Adzitey F, Adzitey SP. 2011. Duck production: has a potential to reduce poverty among rural households in Asian communities—a review. J World’s Poult Res 1:7–10.
  • Agbolade OM, Olayiwola TO, Onomibre EG, Momodu LA, Adegboyegun-King OO. 2008. Trado-medicinal and nutritional values and biosafety of Lanistes libycus in Ijebu-North, southwest Nigeria. World Appl Sci J 3(6):921–925.
  • Akter R, Yagi N, Sugino H, Thilsted SH, Ghosh S, Gurung S, Heneveld K, Shrestha R, Webb P. 2020. Household engagement in both aquaculture and horticulture is associated with higher diet quality than either alone. Nutrients 12(9):2705. doi:10.3390/nu12092705
  • Andrews P, Thyssen J, Lorke D. 1987. The biology and toxicology of molluscicides, Bayluscide. In: Webbe G, editor. The toxicology of molluscicides. Oxford: Pergamon Press. Vol. 125. p. 61–116.
  • Anh NTL, Madsen H, Dalsgaard A, Phuong NT, Thanh DTH, Murrell KD. 2010. Poultry as reservoir hosts for fishborne zoonotic trematodes in Vietnamese fish farms. Vet Parasitol. 169(3–4):391–394. doi:10.1016/j.vetpar.2010.01.010
  • Appleford P, Lucas JS, Southgate PC. 2012. General principles. In: Lucas JS, Southgate PC, editors. Aquaculture: farming aquatic animals and plants. Chichester: Blackwell Publishing Ltd. p. 18–51.
  • Augusto RD, Duval D, Grunau C. 2019. Effects of the environment on developmental plasticity and infection success of Schistosoma parasites—an epigenetic perspective. Front Microbiol. 10:1475. doi:10.3389/fmicb.2019.01475
  • Avnimelech Y. 2007. Feeding with microbial flocs by tilapia in minimal discharge bio-flocs technology ponds. Aquaculture. 264(1–4):140–147. doi:10.1016/j.aquaculture.2006.11.025
  • Azim ME, Little DC. 2006. Intensifying aquaculture production through new approaches to manipulating natural food. CAB Rev. 1(62):1–23. doi:10.1079/PAVSNNR20061062
  • Baganz GF, Junge R, Portella MC, Goddek S, Keesman KJ, Baganz D, Staaks G, Shaw C, Lohrberg F, Kloas W. 2022. The aquaponic principle—it is all about coupling. Rev Aquacult. 14(1):252–264. doi:10.1111/raq.12596
  • Balirwa JS, Chapman CA, Chapman LJ, Cowx IG, Geheb K, Kaufman L, Lowe-McConnell RH, Seehausen O, Wanink JH, Welcomme RL, et al. 2003. Biodiversity and fishery sustainability in the Lake Victoria basin: an unexpected marriage? BioScience. 53(8):703–715.doi:10.1641/0006-3568(2003)053
  • Bar A. 2020. Bellamya bengalensis: a review on its ecological importance, nutritional values and ethno medicinal importance. Eur J Pharm Med Res. 7(10):315–319.
  • Barwa E. 2009. Increasing household protein consumption through minilivestock production in Nigeria. Inf Manage. 9(2):9–14.
  • Beaver JR, Crisman TL, Brock RJ. 1991. Grazing effects of an exotic bivalve (Corbicula fluminea) on hypereutrophic lake water. Lake Reserv Manage. 7(1):45–51. doi:10.1080/07438149109354253
  • Beets WC. 1997. The need for an increased use of small and mini‐livestock in integrated smallholder farming systems. Ecol Food Nutr. 36(2–4):237–245. doi:10.1080/03670244.1997.9991518
  • Bert TM. 2007. Environmentally responsible aquaculture—a work in progress. In: Bert TM, editor. Ecological and genetic implications of aquaculture activities. Dordrecht: Springer. p. 1–31.
  • Bocanegra FA, Tello S, Kohler C, Kohler S, Camargo W. 2002. Culture of mollusks to improve human protein intake in the Amazon region. Aquanews 17(4):8–11.
  • Bombeo-Tuburan I, Fukumoto S, Rodriguez EM. 1995. Use of the golden apple snail, cassava, and maize as feeds for the tiger shrimp, Penaeus monodon, in ponds. Aquaculture 131(1–2):91–100. doi:10.1016/0044-8486(94)00329-M
  • Bosma RH, Verdegem MC. 2011. Sustainable aquaculture in ponds: principles, practices and limits. Livest Sci. 139(1–2):58–68. doi:10.1016/j.livsci.2011.03.017
  • Bostock J, McAndrew B, Richards R, Jauncey K, Telfer T, Lorenzen K, Little D, Ross L, Handisyde N, Gatward I, et al. 2010. Aquaculture: global status and trends. Philos Trans R Soc Lond B Biol Sci. 365(1554):2897–2912. doi:10.1098/rstb.2010.0170
  • Brant SV, Cohen AN, Cohen AN, James D, Hui L, Hom A, Loker ES. 2010. Cercarial dermatitis transmitted by exotic marine snail. Emerg Infect Dis. 16(9):1357–1365. doi:10.3201/eid1609.091664
  • Brant SV, Loker ES. 2013. Discovery-based studies of schistosome diversity stimulate new hypotheses about parasite biology. Trends Parasitol. 29(9):449–459. doi:10.1016/j.pt.2013.06.004
  • Bridger JM, Brindley PJ, Knight M. 2018. The snail Biomphalaria glabrata as a model to interrogate the molecular basis of complex human diseases. PLoS Negl Trop Dis. 12(8):e0006552. doi:10.1371/journal.pntd.0006552
  • Brown N, Eddy S, Plaud S. 2011. Utilization of waste from a marine recirculating fish culture system as a feed source for the polychaete worm, Nereis virens. Aquaculture 322-323:177–183. doi:10.1016/j.aquaculture.2011.09.017
  • Brummett RE. 1999. Integrated aquaculture in subsaharan Africa. Environ Dev Sustain. 1(3/4):315–321. doi:10.1023/A:1010087108029
  • Brummett RE. 2007. Indigenous species for African aquaculture development. In: Bert TM, editor. Ecological and genetic implications of aquaculture activities. Dordrecht: Springer, p. 229–245.
  • Brummett RE, Lazard J, Moehl J. 2008. African aquaculture: realizing the potential. Food Policy. 33(5):371–385. doi:10.1016/j.foodpol.2008.01.005
  • Bruton MN. 1990. The conservation of the fishes of Lake Victoria, Africa: an ecological perspective. Environ Biol Fish. 27(3):161–175. doi:10.1007/BF00001670
  • Bueno P. 1998. Assuring the safety of aquaculture food products. Catch Cult 3(4):6–8.
  • Bullard SA, Overstreet RM. 2008. Digeneans as enemies of fishes. In: Eiras J, Segner H, Wahli T, editors. Fish diseases. Boca Raton: Taylor & Francis Group, CRC Press. Vol. 2. p. 817–976.
  • Canellas AL, Costa WF, Freitas-Silva J, Lopes IR, de Oliveira BF, Laport MS. 2022. In sickness and in health: Insights into the application of omics in aquaculture settings under a microbiological perspective. Aquaculture. 554:738132. doi:10.1016/j.aquaculture.2022.738132
  • Castell L. 2012. Gastropod molluscs. In: Lucas JS, Southgate PC, editors. Aquaculture: farming aquatic animals and plants. Chichester: Blackwell Publishing Ltd. p. 567–582.
  • Castillo MG, Humphries JE, Mourão MM, Marquez J, Gonzalez A, Montelongo CE. 2020. Biomphalaria glabrata immunity: post-genome advances. Dev Comp Immunol. 104:103557. doi:10.1016/j.dci.2019.103557
  • Cetron MS, Chitsulo L, Sullivan JJ, Pilcher J, Wilson M, Noh N, Tsang VC, Hightower AW, Addiss DG. 1996. Schistosomiasis in Lake Malawi. Lancet. 348(9037):1274–1278. doi:10.1016/S0140-6736(96)01511-5
  • Chai JY, Jung BK. 2022. General overview of the current status of human foodborne trematodiasis. Parasitology. 20:1–105. doi:10.1017/S0031182022000725
  • Chimbari MJ, Makoni P, Madsen H. 2007. Impact of Sargochromis codringtonii (Teleostei: Cichlidae) on pulmonate snails in irrigation ponds in Zimbabwe. Afr J Aquat Sci. 32(2):197–200. doi:10.2989/AJAS.2007.32.2.12.262
  • Chiotha SS, McKaye KR, Stauffer JR. 1991. Use of indigenous fishes to control schistosome snail vectors in Malawi, Africa. Biol Control. 1(4):316–319. doi:10.1016/1049-9644(91)90084-D
  • Cicogna M. 1992. First international seminar on farming of invertebrates and other minilivestock. Tropicultura. 10(4):155–159.
  • Clausen JH, Madsen H, Van PT, Dalsgaard A, Murrell KD. 2015. Integrated parasite management: Path to sustainable control of fishborne trematodes in aquaculture. Trends Parasitol. 31(1):8–15. doi:10.1016/j.pt.2014.10.005
  • Cleaveland S, Sharp J, Abela-Ridder B, Allan KJ, Buza J, Crump JA, Davis A, Del Rio Vilas VJ, de Glanville WA, Kazwala RR, et al. 2017. One Health contributions towards more effective and equitable approaches to health in low-and middle-income countries. Philos Trans R Soc B. 372(1725):20160168. doi:10.1098/rstb.2016.0168
  • Corachan M, Valls ME, Gascon J, Almeda J, Vilana R. 1994. Hematospermia: a new etiology of clinical interest. Am J Trop Med Hyg. yg 50(5):580–584. doi:10.4269/ajtmh.1994.50.580
  • Crab R, Defoirdt T, Bossier P, Verstraete W. 2012. Biofloc technology in aquaculture: beneficial effects and future challenges. Aquaculture. 356–357:351–356. doi:10.1016/j.aquaculture.2012.04.046
  • Da CT, Lundh T, Lindberg JE. 2012. Evaluation of local feed resources as alternatives to fish meal in terms of growth performance, feed utilisation and biological indices of striped catfish (Pangasianodon hypophthalmus) fingerlings. Aquaculture. 364–365:150–156. doi:10.1016/j.aquaculture.2012.08.010
  • Dang STT, Truong DV, Madsen H, Dalsgaard A. 2011. Survival of faecal indicator bacteria in treated pig manure stored in clay-covered heaps in Vietnam. Vet Microbiol. 152(3–4):374–378. doi:10.1016/j.vetmic.2011.05.004
  • Roos B, Roos N, Ara G, Ahmed T, Mamun A‐A, Sneddon AA, Murray F, Grieve E, Little DC. 2020. Linkages of agroecosystems producing farmed seafood on food security, nutritional status and adolescent health in Bangladesh. Matern Child Nutr. 16(S3):e13017. doi:10.1111/mcn.13017
  • Deng M, Chen J, Gou J, Hou J, Li D, He X. 2018. The effect of different carbon sources on water quality, microbial community and structure of biofloc systems. Aquaculture. 482:103–110. doi:10.1016/j.aquaculture.2017.09.030
  • Dumontet S, Dinel H, Baloda SB. 1999. Pathogen reduction in sewage sludge by composting and other biological treatments: a review. Biol Agric Hortic. 16(4):409–430. doi:10.1080/01448765.1999.9755243
  • Dung BT, Madsen H, The DT. 2010. Distribution of freshwater snails in family-based VAC ponds and associated waterbodies with special reference to intermediate hosts of fish-borne zoonotic trematodes in Nam Dinh Province, Vietnam. Acta Trop. 116(1):15–23. doi:10.1016/j.actatropica.2010.04.016
  • Edwards P. 1998. A systems approach for the promotion of integrated aquaculture. Aquacult Econ Manag. 2(1):1–12. doi:10.1080/13657309809380209
  • Ekasari J, Angela D, Waluyo SH, Bachtiar T, Surawidjaja EH, Bossier P, De Schryver P. 2014. The size of biofloc determines the nutritional composition and the nitrogen recovery by aquaculture animals. Aquaculture. 426–427:105–111. doi:10.1016/j.aquaculture.2014.01.023
  • Elmslie LJ. 2005. Snail collection and small-scale production in Africa and Europe. In: Paoletti MG, editor. Ecological implications of minilivestock. Potential of insects, rodents, frogs and snails. Enfield: Science Publishers, Inc. p. 93–121.
  • El-Sayed AF. 2021. Use of biofloc technology in shrimp aquaculture: a comprehensive review, with emphasis on the last decade. Rev Aquacult. 13(1):676–705. doi:10.1111/raq.12494
  • Eneji CA, Ogogo AU, Emmanuel-Ikpeme CA, Okon OE. 2008. Nutritional assessment of some Nigerian land and water snail species. Ethiop J Environ Stud Manag. 1(2):56–60. doi:10.4314/ejesm.v1i2.41581
  • Etim EE. 2012. Phytoremediation and its mechanisms: a review. Int J Environ Bioenergy. 2(3):120–136.
  • Fanslow DL, Nalepa TF, Lang GA. 1995. Filtration rates of the zebra mussel (Dreissena polymorpha) on natural seston from Saginaw Bay, Lake Huron. J Great Lakes Res. 21(4):489–500. doi:10.1016/S0380-1330(95)71061-9
  • FAO 2010. Smallholder poultry production—livelihoods, food security and sociocultural significance by Kryger KN, Thomsen KA, Whyte MA, Dissing M. Rome: FAO. FAO Smallholder Poultry Production Paper No. 4.
  • FAO. 2016. The state of world fisheries and aquaculture 2016. Contributing to food security and nutrition for all. Rome: FAO.
  • FAO. 2020. The state of World fisheries and aquaculture 2020. Sustainability in action. Rome: FAO.
  • FAO. 2021a. 2021 COFI declaration for sustainable fisheries and aquaculture. Rome: FAO.
  • FAO. 2021b. Tracking progress on food and agriculture-related SDG indicators 2021: A report on the indicators under FAO custodianship. Rome FAO.
  • FAO. 2022. Oreochromis niloticus. Cultured aquatic species information programme. Text by Rakocy JE. Fisheries and Aquaculture Division. https://www.fao.org/fishery/en/culturedspecies/oreochromis_niloticus/en.
  • FAO, ECA, AUC. 2020. Africa regional overview of food security and nutrition 2019. Accra.
  • FAO, IFAD, UNICEF, WFP, WHO 2021. The state of food security and nutrition in the World 2020. Transforming food systems for affordable healthy diets. Rome: FAO.
  • Fiorella KJ, Okronipa H, Baker K, Heilpern S. 2021. Contemporary aquaculture: implications for human nutrition. Curr Opin Biotechnol. 70:83–90. doi:10.1016/j.copbio.2020.11.014
  • Francis-Floyd R, Gildea J, Reed P, Klinger R. 1997. Use of Bayluscide (Bayer 73) for snail control in fish ponds. J Aquat Anim Health. 9(1):41–48. > 2.3.CO;2. doi:10.1577/1548-8667(1997)009 < 0041:UOBBFS
  • Garr AL, Lopez H, Pierce R, Davis M. 2011. The effect of stocking density and diet on the growth and survival of cultured Florida apple snails, Pomacea paludosa. Aquaculture. 311(1–4):139–145. doi:10.1016/j.aquaculture.2010.11.017
  • Gavery MR, Roberts SB. 2017. Epigenetic considerations in aquaculture. PeerJ. 5:e4147. doi:10.7717/peerj.4147
  • Gephart JA, Golden CD, Asche F, Belton B, Brugere C, Froehlich HE, Fry JP, Halpern BS, Hicks CC, Jones RC, et al. 2021. Scenarios for global aquaculture and its role in human nutrition. REV Fish Sci Aquac. 29(1):122–138. doi:10.1080/23308249.2020.1782342
  • Ghosh S, Jung C, Vb M-R. 2016. Snail farming: an Indian perspective of a potential tool for food security. Ann Aquac Res. 3(3):1–6.
  • Ghosh S, Jung C, Meyer-Rochow VB. 2017. Snail as mini-livestock: Nutritional potential of farmed Pomacea canaliculata (Ampullariidae). Agric Nat Resour. 51(6):504–511. doi:10.1016/j.anres.2017.12.007
  • Ghosh S, Meyer-Rochow VB, Jung C. 2021. Farming the edible aquatic snail Pomacea canaliculata as a mini-livestock. Fishes. 7(1):6. doi:10.3390/fishes7010006
  • Giaccone V. 2005. Hygiene and health features of “minilivestock.” In: Paoletti MG, editor. Ecological implications of minilivestock. Potential of insects, rodents, frogs and snails. Enfield: Science Publishers, Inc. p. 579–598.
  • Goddek S, Joyce A, Kotzen B, Burnell GM, editors. 2019. Aquaponics food production systems. Combined aquaculture and hydroponic production technologies for the future. Cham: Springer Open.
  • Gormaz JG, Fry JP, Erazo M, Love DC. 2014. Public health perspectives on aquaculture. Curr Environ Health Rep. 1(3):227–238. doi:10.1007/s40572-014-0018-8
  • Govorushko S. 2019. Global status of insects as food and feed source: a review. Trends Food Sci Technol. 91:436–445. doi:10.1016/j.tifs.2019.07.032
  • Grimes JE, Croll D, Harrison WE, Utzinger J, Freeman MC, Templeton MR. 2015. The roles of water, sanitation and hygiene in reducing schistosomiasis: a review. Parasites Vectors. 8(1):1–16. doi:10.1186/s13071-015-0766-9
  • Handelsman J, Cohen KA. 2021. World without soil: the past, present, and precarious future of the earth beneath our feet. London: Yale University Press.
  • Hardouin J, Thys E, Joiris V, Fielding D. 2003. Mini-livestock breeding with indigenous species in the tropics. Livest Res Rural Dev. 15(4):1–6.
  • Hardouin J. 1995. Minilivestock: from gathering to controlled production. Biodivers Conserv. 4(3):220–232. doi:10.1007/BF00055969
  • Hargreaves JA. 2013. Biofloc production systems for aquaculture. Southern Regional Aquaculture Center. Stoneville: SRAC Publication 4503. p. 1–11.
  • Hine M, Adams S, Arthur JR, Bartley D, Bondad-Reantaso MG, Chávez C, Clausen JH, Dalsgaard A, Flegel T, Gudding R, et al. 2012. Improving biosecurity: a necessity for aquaculture sustainability. In: Subasinghe RP, Arthur JR, Bartley DM, De Silva SS, Halwart M, Hishamunda N, Mohan CV, Sorgeloos P., editors. Farming the waters for people and food. Proceedings of the Global Conference on Aquaculture 2010; 2010 Sep 22–25; Phuket, Thailand. Rome/Bangkok: FAO/NACA. p 437–494
  • Hixson SM. 2014. Fish nutrition and current issues in aquaculture: the balance in providing safe and nutritious seafood, in an environmentally sustainable manner. J Aquac Res Dev. 5(3). doi:10.4172/2155-9546.1000234
  • Hossain A, Habibullah-Al-Mamun M, Nagano I, Masunaga S, Kitazawa D, Matsuda H. 2022. Antibiotics, antibiotic-resistant bacteria, and resistance genes in aquaculture: risks, current concern, and future thinking. Environ Sci Pollut Res Int. 29(8):11054–11075. doi:10.1007/s11356-021-17825-4
  • Houston RD, Bean TP, Macqueen DJ, Gundappa MK, Jin YH, Jenkins TL, Selly SLC, Martin SAM, Stevens JR, Santos EM, et al. 2020. Harnessing genomics to fast-track genetic improvement in aquaculture. Nat Rev Genet. 21(7):389–409. doi:10.1038/s41576-020-0227-y
  • Humphries F, Lawson C, Benzie JA, Morrison C. 2022. African aquaculture: genetic resource and traditional knowledge access and benefit sharing measures. Rev Fish Sci Aquac. 10:1–7. doi:10.1080/23308249.2022.2027866
  • Hung NM, Madsen H, Fried B. 2013a. Global status of fish-borne zoonotic trematodiasis in humans (Invited Review). Acta Parasitol. 58(3):231–258. doi:10.2478/s11686-013-0155-5
  • Hung NM, Nguyen VD, Stauffer JR, Jr, Madsen H. 2013b. Use of black carp (Mylopharyngodon piceus) in biological control of intermediate host snails of fish-borne zoonotic trematodes in nursery ponds in Vietnam. Parasites Vectors. 6:142. doi:10.1186/1756-3305-6-142
  • Hung NM, Ryan TM, Stauffer JR, Madsen H. 2015. Does hardness of food affect the development of pharyngeal teeth of the black carp, Mylopharyngodon piceus (Pisces: Cyprinidae)? Biol Control. 80:156–159. doi:10.1016/j.biocontrol.2014.10.001
  • Hung NM, The DT, Stauffer JR, Madsen H. 2014. Feeding behavior of blackcarp Mylopharyngodon piceus (Pisces: Cyprinidae) on fry of other fish species and trematode transmitting snail species. Biol Control. 72:118–124. doi:10.1016/j.biocontrol.2014.03.001
  • Huong LQ, Forslund A, Madsen H, Dalsgaard A. 2014a. Survival of Salmonella spp. and fecal indicator bacteria in Vietnamese biogas digesters receiving pig slurry. Int J Hyg Environ Health. 217(7):785–795. doi:10.1016/j.ijheh.2014.04.004
  • Huong LQ, Madsen H, Anh LX, Ngoc PT, Dalsgaard A. 2014b. Hygienic aspects of livestock manure management and biogas systems operated by small-scale pig farmers in Vietnam. Sci Total Environ. 470–471:53–57. doi:10.1016/j.scitotenv.2013.09.023
  • Joe LK, Schneider C, Sornmani S, Lanza GR, Impand P. 1974a. Biological control by trematode antagonism. I. A successful field trial to control Schistosoma spindale in northeast Thailand. SE Asian J Trop Med. 5(1):46–49.
  • Joe LK, Schneider C, Sornmani S, Lanza GR, Impand P. 1974b. Biological control by trematode antagonism. II. Failure to control Schistosoma spindale in northeast Thailand. SE Asian J Trop Med. 5(1):60–64.
  • Kaminski AM, Little DC, Middleton L, Syapwaya M, Lundeba M, Johnson J, Huchzermeyer C, Thilsted SH. 2022. The role of aquaculture and capture fisheries in meeting food and nutrition security: testing a nutrition-sensitive pond polyculture intervention in rural Zambia. Foods. 11(9):1334. doi:10.3390/foods11091334
  • Kefi AS, Madsen H, Likongwe JS, Jere W, Stauffer JR.Jr. 2012. Prey selection under laboratory conditions by pond-bred Trematocranus placodon (Regan, 1922), a molluscivorous cichlid from Lake Malaŵi. J Freshw Ecol. 27(4):517–526. doi:10.1080/02705060.2012.686439
  • Keiser J, Utzinger J. 2009. Food-borne trematodiases. Clin Microbiol Rev. 22(3):466–483. doi:10.1128/CMR.00012-09
  • Koehn JZ, Allison EH, Villeda K, Chen Z, Nixon M, Crigler E, Zhao L, Chow M, Vaitla B, Thilsted SH, et al. 2022. Fishing for health: do the world’s national policies for fisheries and aquaculture align with those for nutrition? Fish Fish. 23(1):125–142. doi:10.1111/faf.12603
  • Köhler F, Seddon M, Bogan AE, Tu DV, Sri-Aroon P, Allen D. 2012. The status and distribution of freshwater molluscs of the Indo-Burma region. In: Allen DJ, Smith KG, Darwall WRT, editors. The status and distribution of freshwater biodiversity in Indo-Burma. Cambridge: IUCN. p. 66–88. Chapter 4.
  • Kumar M, Cripps S. 2011. Environmental aspects. In: Lucas JS, Southgate PC, editors. Aquaculture. Farming of animals and plants. Chichester: Wiley-Blackwell. p. 84–106.
  • Kumar R, Kushwaha B, Singh M. 2021. Genome sequencing in fishes. In: Pandey PK, Parhi J, editors. Advances in fisheries biotechnology. Singapore: Springer. p. 65–82.
  • Kwasek K, Thorne-Lyman AL, Phillips M. 2020. Can human nutrition be improved through better fish feeding practices? A review paper. Crit Rev Food Sci Nutr. 60(22):3822–3835. doi:10.1080/10408398.2019.1708698
  • Lanza GR, Wilda KM, Bunluesin S, Panich-Pat T. 2017. Green aquaculture: designing and developing aquaculture systems integrated with phytoremediation treatment options. In: Ansari A, Gill S, Gill R, Lanza GR, Newman L., editors. Phytoremediation. Cham: Springer. p 307–323.
  • Lee PG, Rodrick GE, Sodeman WA, Jr, Blake NJ. 1982. The giant Malaysian prawn, Macrobrachium rosenbergii, a potential predator for controlling the spread of schistosome vector snails in fish ponds. Aquaculture. 28(3–4):293–301. doi:10.1016/0044-8486(82)90071-0
  • Lier T, Do DT, Johansen MV, Nguyen TH, Dalsgaard A, Asfeldt AM. 2014. High reinfection rate after preventive chemotherapy for fish borne zoonotic trematodes in Vietnam. PLoS Negl Trop Dis. 8(6):e2958. doi:10.1371/journal.pntd.0002958
  • Limbu SM. 2020. Antibiotics use in African aquaculture: their potential risks on fish and human health. In: Abia ALK, Lanza GR, editors. Current microbiological research in Africa. Cham: Springer. p. 203–221.
  • Lin K, Wu J. 2020. Effect of introducing frogs and fish on soil phosphorus availability dynamics and their relationship with rice yield in paddy fields. Sci Rep. 10(1):1–9. doi:10.1038/s41598-019-56644-z
  • Lin M, Wang A, Ren L, Qiao W, Wandera SM, Dong R. 2022. Challenges of pathogen inactivation in animal manure through anaerobic digestion: a short review. Bioengineered 13(1):1149–1161. doi:10.1080/21655979.2021.2017717
  • Littlewood DTJ, Webster BL. 2016. Origins and evolutionary radiation of Schistosoma. In: Jamieson BGM, editor. Schistosoma: biology, pathology, and control. Boca Raton: Taylor & Francis Group, CRC Press. p. 1–8.
  • Lotfy WM, Brant SV, Ashmawy KI, Devkota R, Mkoji GM, Loker ES. 2010. A molecular approach for identification of paramphistomes from Africa and Asia. Vet Parasitol. 174(3–4):234–240. doi:10.1016/j.vetpar.2010.08.027
  • Lucas JS. 2012. Bivalve molluscs. In: Lucas JS, Southgate PC, editors. Aquaculture: farming aquatic animals and plants. Chichester: Blackwell Publishing Ltd. p. 541–566.
  • Lydeard C, Cummings KS, editors. 2019. Freshwater mollusks of the world. A distribution Atlas. Baltimore: Johns Hopkins University Press.
  • Mackenzie JS, Jeggo M. 2019. The One Health approach—why is it so important? Trop Med Infect Dis. 4(2):88. doi:10.3390/tropicalmed4020088
  • Madsen H, Bloch P, Makaula P, Phiri H, Furu P, Stauffer JR.Jr. 2011. Schistosomiasis in Lake Malaŵi villages. EcoHealth. 8(2):163–176. doi:10.1007/s10393-011-0687-9
  • Madsen H, Coulibaly G, Furu P. 1987. Distribution of freshwater snails in the river Niger basin in Mali with special reference to the intermediate hosts of schistosomes. Hydrobiologia. 146(1):77–88. doi:10.1007/BF00007580
  • Madsen H, Daffalla AA, Karoum KO, Frandsen F. 1988. Distribution of freshwater snails in irrigation schemes in the Sudan. J Appl Ecol. 25(3):853–866. doi:10.2307/2403751
  • Madsen H, Hung NM. 2014. An overview of freshwater snails in Asia with main focus on Vietnam. Acta Trop. 140:105–117. doi:10.1016/j.actatropica.2014.08.005
  • Madsen H, Stauffer JR, Jr. 2011. Density of Trematocranus placodon (Pisces: Cichlidae): a predictor of density of the schistosome intermediate host, Bulinus nyassanus (Gastropoda: Planorbidae), in Lake Malaŵi. EcoHealth. 8(2):177–189. doi:10.1007/s10393-011-0737-3
  • Madsen H, Stauffer JR, Jr. 2022. Zoonotic trematode infections; their biology, intermediate hosts and control. In: Morales-Montor J, Río-Araiza VHD, Bello RH, editors. Parasitic helminths and zoonoses—from basic to applied research. London: IntechOpen.
  • Madsen H, Thien PC, Nga HTN, Clausen JH, Dalsgaard A, Murrell KD. 2015. Two-year intervention trial to control of fish-borne zoonotic trematodes in giant gourami (Osphronemus goramy) and striped catfish (Pangasianodon hypophthalmus) in nursery ponds in the Mekong Delta, Vietnam. Acta Trop. 152:201–207. doi:10.1016/j.actatropica.2015.09.012
  • Makoni P, Chimbari MJ, Madsen H. 2005. Interactions between fish and snails in a Zimbabwe pond, with particular reference to Sargochromis codringtonii (Pisces: Cichlidae). Afr J Aquat Sci. 30(1):45–48. doi:10.2989/16085910509503833
  • Marshall BE. 2019. Crayfish, catfish and snails: the perils of uncontrolled biological control. Afr J Aquat Sci. 44(1):1–5. doi:10.2989/16085914.2019.1599810
  • Martínez‐Córdova LR, Emerenciano M, Miranda‐Baeza A, Martínez‐Porchas M. 2015. Microbial‐based systems for aquaculture of fish and shrimp: an updated review. Rev Aquacult. 7(2):131–148. doi:10.1111/raq.12058
  • McCoy E, Morrison J, Cook V, Johnston J, Eblen D, Guo C. 2011. Foodborne agents associated with the consumption of aquaculture catfish. J Food Prot. 74(3):500–516. doi:10.4315/0362-028X.JFP-10-341
  • McCrary JK, Madsen H, González I, Luna I, López LJ. 2008. Comparison of gastropod mollusc (Apogastropoda: Hydrobiidae) habitats in two crater lakes in Nicaragua. Int J Trop Biol. 56:113–120.
  • McCullough FS. 1992. The role of mollusciciding in schistosomiasis control. Geneva: World Health Organization. WHO/SCHISTO/92.107.
  • Mejía-Ramírez MÁ, Rocha VV, Pérez-Rostro CI. 2020. Economic feasibility analysis of small-scale aquaculture of the endemic snail Pomacea patula catemacensis (Baker 1922) from southeast Mexico. Aquat Liv Resour. 33:2. doi:10.1051/alr/2020001
  • Meyo ESM, Nkemasong ZA, Shu G, Ngono JPN, Ngosong C. 2021. Snail farming as an alternative profitable livestock system for sustainable development. In: Filho WL, Pretorius R, de Sousa LO, editors. Sustainable development in Africa. Fostering sustainability in one of the world’s most promising continents. Cham: Springer. p. 477–490.
  • Minchin D. 2007. Aquaculture and transport in a changing environment: overlap and links in the spread of alien biota. Mar Pollut Bull. 55(7–9):302–313. doi:10.1016/j.marpolbul.2006.11.017
  • Mitta G, Gourbal B, Grunau C, Knight M, Bridger JM, Théron A. 2017. The compatibility between Biomphalaria glabrata snails and Schistosoma mansoni: an increasingly complex puzzle. Adv Parasitol. 97:111–145. doi:10.1016/bs.apar.2016.08.006
  • Mogeni P, Vandormael A, Cuadros D, Appleton C, Tanser F. 2020. Impact of community piped water coverage on re-infection with urogenital schistosomiasis in rural South Africa. Elife. 9:e54012. doi:10.7554/eLife.54012
  • Mohanty BP, Mohanty S, Mitra T, Mahanty A, Ganguly S, Singh S. 2019. Omics technology in fisheries and aquaculture. Adv Fish Res. 7:1–30.
  • Naidoo D, Archer CE, Septien S, Appleton CC, Buckley CA. 2020. Inactivation of Ascaris for thermal treatment and drying applications in faecal sludge. J Water Sanit Hyg Dev. 10(2):209–218. doi:10.2166/washdev.2020.119
  • Ngodhe SO, Kerich E, Kipkorir K. 2021. Effects of parasitism on the production and productivity of caged Oreochromis niloticus in Winam Gulf of L. Victoria. Afr J Enviro Nat Sci Res.4(4):99–108. doi:10.52589/AJENSR-MWGUYD8Q
  • Nhan DK, Phong LT, Verdegem MJ, Duong LT, Bosma RH, Little DC. 2007. Integrated freshwater aquaculture, crop and livestock production in the Mekong delta, Vietnam: determinants and the role of the pond. Agric Syst. 94(2):445–458. doi:10.1016/j.agsy.2006.11.017
  • Nhan DK, Verdegem MCJ, Binh NT, Duong LT, Milstein A, Verreth JAV. 2008a. Economic and nutrient discharge tradeoffs of excreta-fed aquaculture in the Mekong Delta, Vietnam. Agric Ecosyst Environ. 124(3–4):259–269. doi:10.1016/j.agee.2007.10.005
  • Nhan DK, Verdegem MCJ, Milstein A, Verreth JAV. 2008b. Water and nutrient budgets of ponds in integrated agriculture-aquaculture systems in the Mekong Delta, Vietnam. Aquac Res. 39(11):1216–1228. doi:10.1111/j.1365-2109.2008.01986.x
  • Nisar U, Peng D, Mu Y, Sun Y. 2021. A solution for sustainable utilization of aquaculture waste: a comprehensive review of biofloc technology and aquamimicry. Front Nutr. 8:791738. doi:10.3389/fnut791738.
  • Noga EJ. 2010. Chapter 11. Problems 58 through 76. In: Fish disease. Diagnosis and treatment. Ames, IA: Wiley-Blackwell. p. 215–268.
  • Ocran JN. 2020. Feed resources and policy options on feed for aquaculture production in Africa: a review. Int J Fish Aquat Sci. 8(6):19–23.
  • Ogbeide O. 1974. Nutritional hazards of food taboos and preferences in Mid-West Nigeria. Am J Clin Nutr. 27(2):213–216. doi:10.1093/ajcn/27.2.213
  • Ogutu-Ohwayo R. 1990. The decline of the native fishes of Lakes Victoria and Kyoga (East Africa) and the impact of introduced species, especially the Nile perch, Lates niloticus, and the Nile tilapia, Oreochromis niloticus. Environ Biol Fish. 27(2):81–96. doi:10.1007/BF00001938
  • Ozretich RW, Wood CL, Allan F, Koumi AR, Norman R, Brierley AS, De Leo GA, Little DC. 2022. The potential for aquaculture to reduce poverty and control schistosomiasis in Côte d’Ivoire (Ivory Coast) during an era of climate change: a systematic review. Rev Fish Sci Aquac. 1–31. doi:10.1080/23308249.2022.2039096
  • Pandey PK, Parhi J, editors. 2021. Advances in fisheries biotechnology. Springer.
  • Paoletti MG, Dreon AL. 2005. Minilivestock, environment, sustainability, and local knowledge disappearance. In: Paoletti MG, editor. Ecological implications of minilivestock: potential of insects, rodents, frogs and snails. Enfield: Science Publishers. p. 1–18.
  • Parlapani FF, Neofitou C, Boziaris IS. 2014. Microbiological quality of raw and processed wild and cultured edible snails. J Sci Food Agric. 94(4):768–772. doi:10.1002/jsfa.6438
  • Pelic M, Novakov N, Djordjevic V, Pelic DL. 2021. Health status and microbial quality of common carp reared in a pond fed with treated wastewater from a slaughterhouse. IOP Conf Ser: Earth Environ Sci. 854(1):012070. doi:10.1088/1755-1315/854/1/012070
  • Pham NTT, Pulkownik A, Buckney RT. 2007. Assessment of heavy metals in sediments and aquatic organisms in West Lake (Ho Tay), Hanoi, Vietnam. Lakes & Reserv. 12(4):285–294. doi:10.1111/j.1440-1770.2007.00343.x
  • Phan VT, Ersbøll AK, Nguyen KV, Madsen H, Dalsgaard A. 2010. Farm-level risk factors for fish-borne zoonotic trematode infection in integrated small-scale fish farms in northern Vietnam. PLoS Negl Trop Dis. 4(7):e742. doi:10.1371/journal.pntd.0000742
  • Phu TM, Phuong NT, Dung TT, Hai DM, Son VN, Rico A, Clausen JH, Madsen H, Murray F, Dalsgaard A. 2016. An evaluation of fish health-management practices and occupational health hazards associated with Pangasius catfish (Pangasianodon hypophthalmus) aquaculture in the Mekong Delta, Vietnam. Aquac Res. 47(9):2778–2794. doi:10.1111/are.12728
  • Pinho SM, David LH, Garcia F, Keesman KJ, Portella MC, Goddek S. 2021. South American fish species suitable for aquaponics: a review. Aquac Int. 29(4):1427–1449. doi:10.1007/s10499-021-00674-w
  • Pissia MΑ, Matsakidou A, Kiosseoglou V. 2021. Raw materials from snails for food preparation. Future Foods. 3:100034. doi:10.1016/j.fufo.2021.100034
  • Prata JC, Ribeiro AI, Rocha-Santos T. 2022. An introduction to the concept of One Health. In: Prata JC, Ribeiro AI, Rocha-Santos T, editors. One Health. Integrated approach to 21st century challenges to health. London: Academic Press. p. 1–31.
  • Raheem D, Carrascosa C, Oluwole OB, Nieuwland M, Saraiva A, Millán R, Raposo A. 2019. Traditional consumption of and rearing edible insects in Africa, Asia and Europe. Crit Rev Food Sci Nutr. 59(14):2169–2188. doi:10.1080/10408398.2018.1440191
  • Rise ML, Martyniuk CJ, Chen M. 2019. Comparative physiology and aquaculture: toward omics-enabled improvement of aquatic animal health and sustainable production. Comp Biochem Physiol Part D Genomics Proteomics. 31:100603. doi:10.1016/j.cbd.2019.100603
  • Roy S, Kumar V, Behera BK, Das BK. 2021. Epigenetics: perspectives and potential in aquaculture. In: Pandey PK, Parhi J, editors. Advances in fisheries biotechnology. Singapore: Springer. p. 31–150.
  • Santos L, Ramos F. 2018. Antimicrobial resistance in aquaculture: current knowledge and alternatives to tackle the problem. Int J Antimicrob Agents. 52(2):135–143. doi:10.1016/j.ijantimicag.2018.03.010
  • Sapkota S, Laudari S, Sapkota SD. 2020. Meeting the nutritional needs for the children: the role of fish products from the emerging aquaculture of Nepal. Int J Soc Sci Mgt. 7(4):198–201. doi:10.3126/ijssm.v7i4.32469
  • Schmautz Z, Loeu F, Liebisch F, Graber A, Mathis A, Griessler Bulc T, Junge R. 2016. Tomato productivity and quality in aquaponics: comparison of three hydroponic methods. Water 8(11):533. doi:10.3390/w8110533
  • Schwartz E, Rozenman J, Perelman M. 2000. Pulmonary manifestations of early schistosome infection among nonimmune travelers. Am J Med. 109(9):718–722. doi:10.1016/S0002-9343(00)00619-7
  • Shah BR, Mraz J. 2020. Advances in nanotechnology for sustainable aquaculture and fisheries. Rev Aquac. 12(2):925–942. doi:10.1111/raq.12356
  • Slootweg R. 1995. Snail control by fish: an explanation for its failure. Naga. 18:16–19.
  • Slootweg R, Malek EA, McCullough FS. 1994. The biological control of snail intermediate hosts of schistosomiasis by fish. Rev Fish Biol Fish. 4(1):67–90. doi:10.1007/BF00043261
  • Slootweg R, Vroeg P, Wiersma S. 1993. The effects of molluscivorous fish, water quality and pond management on the development of schistosomiasis vector snails in aquaculture ponds in North Cameroon. Aquac Res. 24(1):123–128. doi:10.1111/j.1365-2109.1993.tb00835.x
  • Smith JL, Boyer GL, Zimba PV. 2008. A review of cyanobacterial odorous and bioactive metabolites: impacts and management alternatives in aquaculture. Aquaculture. 280(1–4):5–20. doi:10.1016/j.aquaculture.2008.05.007
  • Sogbesan AO, Ugwumba AAA. 2008. Nutritional values of some non-conventional animal protein feedstuffs used as fishmeal supplement in aquaculture practices in Nigeria. Turk J Fish Aquat Sci. 8(1):159–164.
  • Sohn WM. 2009. Fish-borne zoonotic trematode metacercariae in the Republic of Korea. Korean J Parasitol. 47(Suppl):S103–S113. doi:10.3347/kjp.2009.47.S.S103
  • Sokolow SH, Huttinger E, Jouanard N, Hsieh MH, Lafferty KD, Kuris AM, Riveau G, Senghor S, Thiam C, N’Diaye A, et al. 2015. Reduced transmission of human schistosomiasis after restoration of a native river prawn that preys on the snail intermediate host. Proc Natl Acad Sci USA. 112(31):9650–9655. doi:10.1073/pnas.1502651112/-/DCSupplemental
  • Sokolow SH, Lafferty KD, Kuris AM. 2014. Regulation of laboratory populations of snails (Biomphalaria and Bulinus spp.) by river prawns, Macrobrachium spp. (Decapoda, Palaemonidae): implications for control of schistosomiasis. Acta Trop. 132:64–74. doi:10.1016/j.actatropica.2013.12.013
  • Stauffer J, Madsen H. 2018. A One Health approach to reducing schistosomiasis transmission in Lake Malawi. Prev Med Commun Health. 1(3):1–4. doi:10.15761/PMCH.1000115
  • Stauffer JR, Jr, Arnegard ME, Cetron M, Sullivan JJ, Chitsulo LA, Turner GF, Chiotha S, McKaye KR. 1997. Controlling vectors and hosts of parasitic diseases using fishes. A case history of schistosomiasis in Lake Malaŵi. BioScience. 47(1):41–49. doi:10.2307/1313005
  • Stauffer JR, Chirwa ER, Jere W, Konings AF, Tweddle D, Weyl O. 2022. Nile Tilapia, Oreochromis niloticus (Teleostei: Cichlidae): a threat to native fishes of Lake Malawi? Biol Invasions. 24(6):1585–1513. doi:10.1007/s10530-022-02756-z
  • Stauffer JR, Madsen H. 2012. Schistosomiasis in Lake Malawi and the potential use of indigenous fish for biological control. In: Rokni MB, editor. Schistosomiasis. London: IntechOpen.
  • Stentiford GD, Bateman IJ, Hinchliffe SJ, Bass D, Hartnell R, Santos EM, Devlin MJ, Feist SW, Taylor NGH, Verner-Jeffreys DW, et al. 2020. Sustainable aquaculture through the One Health lens. Nat Food. 1(8):468–474. doi:10.1038/s43016-020-0127-5
  • Ström G, Albihn A, Jinnerot T, Boqvist S, Andersson-Djurfeldt A, Sokerya S, Osbjer K, San S, Davun H, Magnusson U. 2018. Manure management and public health: sanitary and socio-economic aspects among urban livestock-keepers in Cambodia. Sci Total Environ. 621:193–200. doi:10.1016/j.scitotenv.2017.11.254
  • Tacon AGJ. 2020. Trends in global aquaculture and aquafeed production: 2000–2017. Rev Fish Sci Aquac. 28(1):43–56. doi:10.1080/23308249.2019.1649634
  • Tai C, Tai JJL. 2001. Future prospects of duck production in Asia. J Poult Sci. 38(1):99–112. doi:10.2141/jpsa.38.99
  • Tai MV, Thuyet BD, Nam TH, Binh ND, Chuong NQ. 2004. Aquaculture practices in NamDinh province. Report from Fibozopa Project. Research Institute of Aquaculture No. 1, TuSon Bach Ninh.
  • Tao Y, Yuan Z, Xiaona H, Wei M. 2012. Distribution and bioaccumulation of heavy metals in aquatic organisms of different trophic levels and potential health risk assessment from Taihu lake, China. Ecotoxicol Environ Saf. 81:55–64. doi:10.1016/j.ecoenv.2012.04.014
  • Terhune JS, Wise DJ, Avery JL, Khoo LH, Goodwin AE. 2003. Infestations of the trematode Bolbophorus sp. in channel catfish. Southern Regional Aquaculture Center Publication No. 1801, Stoneville, USA.
  • Thompson B, Amoroso L. 2011. Combating micronutrient deficiencies: food-based approaches. CAB International and Food and Agriculture Organization of the United Nations (FAO), Rome, Italy.
  • Tram NT, Phuc PD, Phi NH, Trang LT, Nga TT, Ha HTT, Cam PD, Canh TQ, Karanis P. 2022. Cryptosporidium and Giardia in biogas wastewater: management of manure livestock and hygiene aspects using influent, effluent, sewage canal samples, vegetable, and soil samples. Pathogens. 11(2):174. doi:10.3390/pathogens11020174
  • Tripathy PS, Khatei A, Parhi J. 2021. Omics in aquaculture. In: Pandey PK, Parhi J, editors. Advances in fisheries biotechnology. Singapore: Springer. p. 81–94.
  • United Nations 2015. Transforming our world: the 2030 Agenda for Sustainable Development. A/RES/70/1. https://www.un.org/ga/search/view_doc.asp?symbol=A/RES/70/1&Lang=E.
  • Urdes L, Alcivar-Warren A. 2021. A comparative study on metals and parasites in shellfish of freshwater and marine ecosystems. J Shellfish Res. 40(3):565–588. doi:10.2983/035.040.0313
  • Wang YC, Liew TZ, Namsanor J, Sithithaworn P. 2020. Assessing the role of Filopaludina martensi martensi as a biocontrol agent of Bithynia siamensis goniomphalos, the first intermediate host of Opisthorchis viverrini. Parasitol Res. 119(10):3415–3431. doi:10.1007/s00436-020-06837-7
  • Wani RA, Ganai BA, Shah MA, Uqab B. 2017. Heavy metal uptake potential of aquatic plants through phytoremediation technique—a review. J Bioremediat Biodegrad. 8(4). doi:10.4172/2155-6199.1000404
  • Wurts WA, Masser MP. 2004. Liming ponds for aquaculture. Southern Regional Aquaculture Center, Stoneville, USA.
  • Zeldovich L. 2021. The other dark matter: the science and business of turning waste into wealth and health. Chicago: University of Chicago Press.
  • Zhang Q, Achal V, Xu Y, Xiang WN. 2014. Aquaculture wastewater quality improvement by water spinach (Ipomoea aquatica Forsskal) floating bed and ecological benefit assessment in ecological agriculture district. Aquac Eng. 60:48–55. doi:10.1016/j.aquaeng.2014.04.002
  • Zeng S, Wei D, Hou D, Wang H, Liu J, Weng S, He J, Huang Z. 2021. Sediment microbiota in polyculture of shrimp and fish pattern is distinctive from those in monoculture intensive shrimp or fish ponds. Sci Total Environ. 787:147594. doi:10.1016/j.scitotenv.2021.147594
  • Zheng X, Tang J, Zhang C, Qin J, Wang Y. 2017. Bacterial composition, abundance and diversity in fish polyculture and mussel-fish integrated cultured ponds in China. Aquac Res. 48(7):3950–3961. doi:10.1111/are.13221

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