Factors Explaining the Distribution of Physella acuta (Draparnaud, 1805) in Freshwaters of Morocco
Abstract
:1. Introduction
2. Materials and Methods
2.1. Field Surveys
2.2. Environmental Data
2.3. Statistical Analysis
2.4. Gathering Distribution Data
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Dudgeon, D.; Arthington, A.H.; Gessner, M.O.; Kawabata, Z.-I.; Knowler, D.J.; Lévêque, C.; Naiman, R.J.; Prieur-Richard, A.-H.; Soto, D.; Stiassny, M.L.J.; et al. Freshwater biodiversity: Importance, threats, status and conservation challenges. Biol. Rev. Camb. Philos. Soc. 2006, 81, 163–182. [Google Scholar] [CrossRef]
- Rahel, F.J.; Olden, J.D. Assessing the effects of climate change on aquatic invasive species. Conserv. Biol. 2008, 22, 521–533. [Google Scholar] [CrossRef] [PubMed]
- Lambertini, M.; Leape, J.; Marton-Lefevre, J.; Mittermeier, R.A.; Rose, M.; Robinson, J.G.; Stuart, S.N.; Waldman, B.; Genovesi, P. Invasives: A major conservation threat. Science 2011, 333, 404–405. [Google Scholar] [CrossRef] [PubMed]
- Ricciardi, A.; Cohen, J. The invasiveness of an introduced species does not predict its impact. Biol. Invasions 2007, 9, 309–315. [Google Scholar] [CrossRef]
- Macdonald, J.; Tonkin, Z. A Review of the Impact of Eastern Gambusia on Native Fishes of the Murray-Darling Basin; Authority Publication No. 38/09; Murray-Darling Basin Authority: Canberra, Australia, 2008; p. 52. [Google Scholar]
- Strauss, S.Y.; Lau, J.A.; Carroll, S.P. Evolutionary responses of natives to introduced species: What do introductions tell us about natural communities? Ecol. Lett. 2006, 9, 357–374. [Google Scholar] [CrossRef] [PubMed]
- Cuthbert, R.N.; Darriet, F.; Chabrerie, O.; Lenoir, J.; Courchamp, F.; Claeys, C.; Robert, V.; Jourdain, F.; Ulmer, R.; Diagne, C.; et al. Invasive hematophagous arthropods and associated diseases in a changing world. Parasit. Vectors 2023, 16, 291. [Google Scholar] [CrossRef] [PubMed]
- Diagne, C.; Leroy, B.; Vaissière, A.-C.; Gozlan, R.E.; Roiz, D.; Jarić, I.; Salles, J.-M.; Bradshaw, C.J.A.; Courchamp, F. High and rising economic costs of biological invasions worldwide. Nature 2021, 592, 571–576. [Google Scholar] [CrossRef] [PubMed]
- Ahmed, D.A.; Haubrock, P.J.; Cuthbert, R.N.; Bang, A.; Soto, I.; Balzani, P.; Tarkan, A.S.; Macêdo, R.L.; Carneiro, L.; Bodey, T.W.; et al. Recent advances in availability and synthesis of the economic costs of biological invasions. BioScience 2023, 73, 560–574. [Google Scholar] [CrossRef]
- Pointier, J.P.; David, P.; Jarne, P. Biological invasions: The case of planorbid snails. J. Helminthol. 2005, 79, 249–256. [Google Scholar] [CrossRef]
- Karatayev, A.Y.; Burlakova, L.E.; Karatayev, V.A. Introduction, distribution, spread, and impacts of exotic freshwater gastropods in Texas. Hydrobiologia 2009, 619, 181–194. [Google Scholar] [CrossRef]
- Gittenberger, E. Long-distance dispersal of molluscs: ‘Their distribution at first perplexed me much’. J. Biogeogr. 2011, 39, 10–11. [Google Scholar] [CrossRef]
- Vinarski, M. The history of an invasion: Phases of the explosive spread of the physid snail Physella acuta through Europe, Transcaucasia and Central Asia. Biol. Invasions 2017, 19, 1299–1314. [Google Scholar] [CrossRef]
- Villavicencio, A.; Gorochov, V.; Carvalho, M. Lymnaea truncatula Müller, 1774 (Pulmonata: Lymnaeidae) infected with Fasciola hepatica (Linnaeus, 1758) (Trematoda: Digenea), in Moscow districts, Russian Federation. Rev. Patol. Trop. 2006, 35, 59–64. [Google Scholar] [CrossRef]
- Zumaquero-Ríos, J.L.; Sarracent-Perez, J.; Rojas-Garcia, R.; Rojas-Rivero, L.; Martinez-Tovilla, Y.; Valero, M.A.; Mas-Coma, S. Fascioliasis and intestinal parasitoses affecting schoolchildren in Atlixco, Puebla State, Mexico: Epidemiology and treatment with nitazoxanide. PLoS Negl. Trop. Dis. 2013, 7, e2553. [Google Scholar] [CrossRef]
- Rondelaud, D.; Vignoles, P.; Dreyfuss, G.; Pointier, J.P.; Vázquez, A.A. Control of Fasciolosis-Transmitting Lymnaeids in the Field. In The Lymnaeidae; Vinarski, M.V., Vázquez, A.A., Eds.; Zoological, Monographs; Springer: Cham, Switzerland, 2023; Volume 7. [Google Scholar] [CrossRef]
- Vázquez, A.A.; Alba, A.; Alda, P.; Vittecoq, M.; Chapuis, E.; Faugère, D.; Pointier, J.-P. Lymnaeid Snails and the Transmission of Fasciolosis: Understanding the Differential Risks from Local to Global Scale. In The Lymnaeidae; Vinarski, M.V., Vázquez, A.A., Eds.; Zoological, Monographs; Springer: Cham, Switzerland, 2023; Volume 7. [Google Scholar] [CrossRef]
- Glöer, P. The freshwater gastropods of the West-Palaearctis. In Volume I Fresh- and Brackish Waters Except Spring and Subterranean Snails; Identification Key, Anatomy, Ecology, Distribution; Biodiversity Research Lab: Hetlingen, Germany, 2019; 399p. [Google Scholar]
- Paraense, W.L. Sinonímia entre Physa acuta e Physa cubensis: Morfologia e genética. In Tópicos em Malacologia: Ecos do XIX Encontro Brasileiro de Malacologia; Fernandez Santos, M.A.S.B., Pimenta, A., Thiengo, S.C., Eds.; Sociedade Brasileira de Malacologia: Rio de Janeiro, Brazil, 2011; pp. 32–35. [Google Scholar]
- Dillon Junior, R.T.; Wethington, A.R.; Rhett, J.; Smith, T. Populations of the European freshwater pulmonated Physa acuta are not reproductively isolated from American Physa heterostropha or Physa integra. Invertebr. Biol. 2002, 121, 226–234. [Google Scholar] [CrossRef]
- Ebbs, E.T.; Loker, E.S.; Brant, S.V. Phylogeography and genetics of the globally invasive snail Physa acuta Draparnaud 1805, and its potential to serve as an intermediate host to larval digenetic trematodes. BMC Evol. Biol. 2018, 18, 103. [Google Scholar] [CrossRef]
- Butkus, R.; Višinskienė, G.; Arbačiauskas, K. First record of the acute bladder snail Physella acuta (Draparnaud, 1805) in the wild waters of Lithuania. Bioinvasions Rec. 2019, 8, 281–286. [Google Scholar] [CrossRef]
- Cieplok, A.; Spyra, A. The roles of spatial and environmental variables in the appearance of a globally invasive Physa acuta in water bodies created due to human activity. Sci. Total Environ. 2020, 744, 140928. [Google Scholar] [CrossRef] [PubMed]
- Taybi, A.F.; Mabrouki, Y.; Piscart, C. Distribution of Freshwater Alien Animal Species in Morocco: Current Knowledge and Management Issues. Diversity 2023, 15, 169. [Google Scholar] [CrossRef]
- Ramdani, M.; Dakki, M.; Kharboua, M.; El Agbani, M.A.; Metge, G. Les Gastéropodes dulcicoles du Maroc: Inventaire commenté. Bull. Inst. Sci. Rabat. 1987, 11, 135–140. [Google Scholar]
- Ghamizi, M. Les Mollusques des Eaux Continentales du Maroc. Systématique, bio-Ecologie et Malacologie Appliquée. Ph.D. Thesis, University of Cadi Ayyad, Marrakesh, Morocco, 1998; pp. 1–560. [Google Scholar]
- Touabay, M.; Aouad, N.; Mathieu, J. Etude hydrobiologique d’un cours d’eau du Moyen-Atlas: L’oued Tizguit (Maroc). Ann. Limnol. 2002, 38, 65–80. [Google Scholar] [CrossRef]
- Taybi, A.F.; Mabrouki, Y.; Ghamizi, M.; Berrahou, A. The freshwater malacological composition of Moulouya’s watershed and Oriental Morocco. J. Mater. Environ. Sci. 2017, 8, 1401–1416. [Google Scholar]
- Mabrouki, Y.; Taybi, A.F.; El Alami, M.; Berrahou, A. Biotypology of stream macroinvertebrates from North African and semi arid catchment: Oued Za (Morocco). Knowl. Manag. Aquat. Ecosyst. 2019, 420, 17. [Google Scholar] [CrossRef]
- ISO 5667-6; Water Quality Sampling. Part 6: Guidelines for Sampling of Rivers and Streams. ISO (International Organization for Standardization): Geneve, Switzerland, 1990; p. 26.
- ISO 5667-2; Water Quality Sampling. Part 2: Guidelines for Sampling of Rivers and Streams. ISO (International Organization for Standardization): Geneve, Switzerland, 1991; p. 9.
- ISO 5667-3; Water Quality Sampling. Part 3: Guidance on the Preservation and Handling of Samples. ISO (International Organization for Standardization): Geneve, Switzerland, 1994; p. 31.
- AFNOR (Association française de Normalisation). Qualité de l’eau. Recueil des Normes Françaises Environnement, Tomes 1, 2, 3 and 4; AFNOR Editions: Saint-Denis, France, 1997; p. 2500. [Google Scholar]
- Rodier, J.; Bazin, C.; Broutin, J.P.; Chambon, P.; Champsaur, H.; Rodi, L. L’analyse de L’eau, 8th ed.; Edition Dunod: Paris, France, 1996; p. 1383. [Google Scholar]
- Legendre, P.; Legendre, L. Numerical Ecology, 3rd ed.; Elsevier: Amsterdam, The Netherlands, 2012; p. 1006. [Google Scholar]
- GBIF. Global Biodiversity Information Facility. Physella acuta (Draparnaud, 1805) in GBIF Secretariat (2023). GBIF BackboneTaxonomy. 2023. Available online: https://www.gbif.org (accessed on 10 October 2023).
- Taybi, A.F.; Mabrouki, Y.; Berrahou, A.; Dakki, A.; Millán, A. Longitudinal distribution of macroinvertebrate in a very wet NorthAfrican basin, Oued Melloulou (Morocco). Ann. Limnol. 2020, 56, 17. [Google Scholar] [CrossRef]
- Taybi, A.F.; Mabrouki, Y.; Berrahou, A.; Legssyer, B. Spatio-temporal typology of the physico-chemical parameters of the Moulouya and its main tributaries. Afr. J. Aquat. Sci. 2020, 45, 431–441. [Google Scholar] [CrossRef]
- Ibáñez, M.; Alonso, M.R. Physella (Costatella) acuta (Draparnaud, 1805) in the Canary Islands (Pulmonata Basommatophora: Planorboidea: Physidae). Vieraea 2003, 31, 133–144. [Google Scholar]
- Vázquez-Capote, R.; Diéguez-Fernández, L.; Fimia-Duarte, R.; Iannacone, J. Environmental influence on the abundance of two populations of Physella acuta (Pulmonata: Physidae) from Camagüey (Cuba). Neotrop. Helminthol. 2015, 9, 243–252. [Google Scholar] [CrossRef]
- Protasov, A.A.; Silayeva, A.A.S. Raspredeleniye i Obili’e Molluskov v Vodoemakh, Podvergennykh Vozde’stviyu Podogretykh Vod Elektrostantsciy. Vestn. Zhitomirskogo Pedagog. Univ. 2002, 10, 16–17. [Google Scholar]
- Sharapova, T.A. Osobennosti Raspredeleniya i Ecologii MolluskovVselenscev v VodoemeOkhladitele Tumenskoy TESc v Zapadnoy Sibiri. Vestn. Zool. 2008, 42, 185–187. [Google Scholar]
- Semenchenko, V.; Laenko, T.; Razlutskij, V. A new record of the North American gastropod Physella acuta (Draparnaud, 1805) from the Neman River Basin, Belarus. Aquat. Invasions 2008, 3, 359–360. [Google Scholar] [CrossRef]
- Vasileva, S.Y. Shell size of the freshwater snail Physella acuta (Draparnaud, 1805) collected from water vegetation: A case study from South-East Bulgaria. Ecol. Balk. 2011, 3, 61–64. [Google Scholar]
- Banha, F.; Marques, M.M.; Anastácio, P.M. Dispersal of two freshwater invasive macroinvertebrates, Procambarus clarkii and Physella acuta, byoff-roadvehicles. Aquat. Conserv. Mar. Freshw. 2014, 24, 582–591. [Google Scholar] [CrossRef]
- Tomkins, A.R.; Scott, R.R. Effects of treated sevage effluent on the macroinvertebrates of a fine sediment substrate stream. Mauri Ora 1986, 13, 1–12. [Google Scholar]
- Strzelec, M. The effect of elevated water temperature on the occurrence of freshwater snails in the Rybnik dam reservoir (upper Silesia, Poland). Folia Malacol. 1999, 7, 93–98. [Google Scholar] [CrossRef]
- Harman, W.N. Snails (Mollusca: Gastropoda). In Pollution Ecology of Freshwater Invertebrates; Hart, C.W., Jr., Fuller, S.L.H., Eds.; Academic Press: New York, NY, USA, 1974; pp. 275–312. [Google Scholar]
- Hänfling, B.; Kollmann, J. An evolutionary perspective of biological invasions. Tree 2002, 17, 545–546. [Google Scholar] [CrossRef]
- Núñez, V. Fecundity and survival advantages of an exotic gastropod compared to a native species. Am. Malacol. Bull. 2011, 29, 95–103. [Google Scholar] [CrossRef]
- Saha, C.; Chakraborty, J.; Pramanik, S.; Parveen, S.; Aditya, G. Observations on the abundance and fecundity of the invasive snail Physa acuta in West Bengal, India: Implications for management. Ecol. Environ. Conserv. 2016, 23, 333–338. [Google Scholar]
- Paul, P.; Aditya, G. Invasion of the freshwater snail Physella acuta (Draparnaud, 1805) in selected ponds of North Dinajpur, India. J. Environ. Biol. 2021, 42, 577–581. [Google Scholar] [CrossRef]
- Hoffman, A.L.; Olden, J.D.; Monroe, J.B.; Poff, L.; Wellnitz, T.; Wiens, J.A. Current velocity and habitat patchiness shape stream herbivore movement. Oikos 2006, 115, 358–368. [Google Scholar] [CrossRef]
- Schössow, M.; Arndt, H.; Becker, G. Response of gastropod grazers to food conditions, current velocity, and substratum roughness. Limnologica 2016, 58, 49–58. [Google Scholar] [CrossRef]
- van Vliet, M.T.H.; Franssen, W.H.P.; Yearsley, J.R.; Ludwig, F.; Haddeland, I.; Lettenmaier, D.P.; Kabat, P. Global river discharge and water temperature under climate change. Glob. Environ. Chang. 2013, 23, 450–464. [Google Scholar] [CrossRef]
- Mokhtari, N.; Mrabet, R.; Lebailly, P.; Bock, L. Spatialisation des bioclimats, de l’aridité et des étages de végétation du Maroc. Rev. Mar. Sci. Agron. Vét. 2014, 2, 50–66. [Google Scholar]
- USAID. Climate Change Risk Profile—Morocco. 2016. Available online: https://www.climatelinks.org/sites/default/files/asset/document/2016_USAID_Climate%20Risk%20Profile%20-%20Morocco.pdf (accessed on 19 November 2023).
- Alaoui, M. Water sector in Morocco: Situation and perspectives. J. Water Resour. Ocean Sci. 2013, 2, 108–114. [Google Scholar]
- Houzir, M.; Mokass, M.; Schalatek, L. Climate Governance and the Role of Climate Finance in Morocco. 2016. Available online: https://us.boell.org/sites/default/files/morocco_study_climate_governance_final_english_nov.2.pdf (accessed on 15 December 2023).
- Kefford, B.J.; Hickey, G.L.; Ben-David, E.; Dunlop, J.E.; Palmer, C.G.; Allan, K.; Choy, S.; Piscart, C. Global Scale Variation in the Salinity Sensitivity of Riverine Macroinvertebrates: Eastern Australia, France, Israel and South Africa. PLoS ONE 2012, 7, e35224. [Google Scholar] [CrossRef] [PubMed]
- Williamson, D.L.; Kiehl, J.T.; Ramanathan, V.; Dickinson, R.E.; Hack, J.J. Description of NCAR Community Climatemodel (CCM1); Report Number: NCAR Technical Note NCAR/TN-285+STR; National Center for Atmospheric Research: Boulder, CO, USA, 1987; 109p. [Google Scholar] [CrossRef]
- Cañedo-Argüelles, M.; Kefford, B.J.; Piscart, C.; Prat, N.; Schäfer, R.; Schulz, C.J. Salinisation of rivers: An urgent ecological issue. Environ. Pollut. 2013, 173, 157–167. [Google Scholar] [CrossRef] [PubMed]
- Cowie, R. Invertebrate invasions on Pacific Islands and the replacement of unique native faunas: A synthesis of the land and freshwater snails. Biol. Invasions 2001, 3, 119–136. [Google Scholar] [CrossRef]
- Strayer, D.L. Alien species in fresh waters: Ecological effects, interactions with other stressors, and prospects for the future. Freshw. Biol. 2010, 55, 152–174. [Google Scholar] [CrossRef]
- Mabrouki, Y.; Taybi, A.F.; Skalli, A.; Sánchez-Vialas, A. Amphibians of the Oriental Region and the Moulouya River Basin of Morocco: Distribution and conservation notes. Basic Appl. Herpetol. 2019, 33, 19–32. [Google Scholar] [CrossRef]
- Mabrouki, Y.; Ben Ahmed, R.; Taybi, A.F.; Rueda, J. Annotated checklist of the leech (Annelida: Hirudinida) species of the Moulouya river basin, Morocco with several new distribution records and an historical overview. Afr. Zool. 2019, 54, 199–214. [Google Scholar] [CrossRef]
- Taybi, A.F.; Mabrouki, Y.; Haaren, T.V. Distribution of the alien Tubificid worm Branchiura sowerbyi (Beddard, 1892) in Morocco. Arx. Misc. Zool. 2023, 21, 253–260. [Google Scholar] [CrossRef]
- Mabrouki, Y.; Taybi, A.F.; Glöer, P. First record of Fountain bladder snail Physa fontinalis (Linnaeus, 1758) in Morocco. Folia Malacol. 2024, 32, 71–75. [Google Scholar] [CrossRef]
Coeff. | Std. Error | Z | p | 95% CI | |
---|---|---|---|---|---|
Conductivity | 0.998 | 0.0007 | −3.51 | 0.0004 | [0.996, 0.999] |
Flow velocity | 0.040 | 0.877 | −3.67 | 0.0002 | [0.005, 0.181] |
Sediment/sand | 0.357 | 0.72 | −1.43 | 0.152 | [0.079, 1.390] |
Sediment/slime | 0.031 | 1.24 | −2.80 | 0.0052 | [0.001, 0.273] |
Conductivity | Predicted | 95% CI | Flow Velocity | Predicted | 95% CI | Sediment | Predicted | 95% CI |
---|---|---|---|---|---|---|---|---|
0 | 0.96 | [0.82, 0.99] | 0 | 0.97 | [0.85, 0.99] | mud | 0.78 | [0.57, 0.91] |
400 | 0.90 | [0.74, 0.97] | 10 | 0.92 | [0.77, 0.98] | sand | 0.64 | [0.41, 0.83] |
900 | 0.74 | [0.58, 0.85] | 20 | 0.83 | [0.67, 0.92] | slime | 0.24 | [0.06, 0.64] |
1300 | 0.53 | [0.37, 0.68] | 30 | 0.67 | [0.51, 0.79] | |||
1700 | 0.31 | [0.15, 0.53] | 40 | 0.45 | [0.30, 0.62] | |||
2100 | 0.15 | [0.04, 0.40] | 50 | 0.25 | [0.11, 0.46] | |||
2500 | 0.06 | [0.01, 0.30] | 60 | 0.12 | [0.03, 0.34] | |||
3400 | 0.01 | [0.00, 0.13] | 70 | 0.05 | [0.01, 0.24] |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Taybi, A.F.; Mabrouki, Y.; Glöer, P.; Piscart, C. Factors Explaining the Distribution of Physella acuta (Draparnaud, 1805) in Freshwaters of Morocco. Water 2024, 16, 803. https://doi.org/10.3390/w16060803
Taybi AF, Mabrouki Y, Glöer P, Piscart C. Factors Explaining the Distribution of Physella acuta (Draparnaud, 1805) in Freshwaters of Morocco. Water. 2024; 16(6):803. https://doi.org/10.3390/w16060803
Chicago/Turabian StyleTaybi, Abdelkhaleq F., Youness Mabrouki, Peter Glöer, and Christophe Piscart. 2024. "Factors Explaining the Distribution of Physella acuta (Draparnaud, 1805) in Freshwaters of Morocco" Water 16, no. 6: 803. https://doi.org/10.3390/w16060803
APA StyleTaybi, A. F., Mabrouki, Y., Glöer, P., & Piscart, C. (2024). Factors Explaining the Distribution of Physella acuta (Draparnaud, 1805) in Freshwaters of Morocco. Water, 16(6), 803. https://doi.org/10.3390/w16060803