Claw loss and the prey preferences of an invasive crayfish
Authors/Creators
- 1. University of South Bohemia in České Budějovice, Vodňany, Czech Republic|Université de Rennes, Rennes, France
- 2. University of South Bohemia in České Budějovice, Vodňany, Czech Republic
- 3. Queen's University Belfast, Belfast, United Kingdom
- 4. Gulf University for Science and Technology, Mubarak Al-Abdullah, Kuwait|University of South Bohemia in České Budějovice, Vodňany, Czech Republic
Description
Predator-prey relationships underpin the stability of ecosystems but can be perturbed by numerous factors, such as biological invasions. Crayfish readily colonize new ecosystems and their impacts can modify food webs or ecosystem functioning. However, while crayfish exert high levels of predation pressure handling prey with their claws, claw loss is also common in their populations, which could mediate prey selection pressures. Here, we investigate how the number of claws in the marbled crayfish Procambarus virginalis modulates its preferences for two different available prey: Chironomus plumosus and Gammarus fossarum. We showed that the food preference of P. virginalis was mainly for soft, less mobile prey, such as C. plumosus, with significantly fewer G. fossarum (harder, more mobile prey) being killed. This preference was largely independent of claw presence but depended on the availability of prey, with fewer G. fossarum being targeted as the number of claws decreased. Our results highlight the complexity of predator-prey ecological relationships in invaded freshwater ecosystems and show that some biotic factors, such as the quantity and type of prey available, need to be taken into account in order to better understand their role in ecosystem dynamics.
Files
NB_article_149248.pdf
Files
(1.4 MB)
| Name | Size | Download all |
|---|---|---|
|
md5:539f9e893c6a88b38a1ba9e1e6889d89
|
1.4 MB | Preview Download |
System files
(203.4 kB)
| Name | Size | Download all |
|---|---|---|
|
md5:770e42b00811c2ab2a8498c5e7e7b84f
|
203.4 kB | Download |
Linked records
Additional details
References
- Akmal SG, Yonvitner, Yulianda F, Adrianto L, Patoka J (2023) Potential spread of invasive crayfish used as life bait by Indonesian anglers. Human Dimensions of Wildlife 29(3): 319–331. https://doi.org/10.1080/10871209.2023.2234394
- Alexander ME, Skein L, Robinson TB (2022) Rapid learning in a native predator shifts diet preferences towards invasive prey. Biology Letters 18(3): 20210655. https://doi.org/10.1098/rsbl.2021.0655
- Balzani P, Vizzini S, Santini G, Masoni A, Ciofi C, Ricevuto E, Chelazzi G (2016) Stable isotope analysis of trophic niche in two co-occurring native and invasive terrapins, Emys orbicularis and Trachemys scripta elegans. Biological Invasions 18: 3611–3621. https://doi.org/10.1007/s10530-016-1251-x
- Balzani P, Musil M, Weiperth A, Bláha M, Kubec J, Ruokonen TJ, Ercoli F, Bányai ZM, Buřič M, Veselý L, Kouba A (2024) Seasonal changes in trophic ecology of co-occurring freshwater invasive species at a thermal locality. [In prep] https://doi.org/10.1007/s10750-025-05872-8
- Barki A, Karplus I (1999) Mating behavior and a behavioral assay for female receptivity in the red-claw crayfish Cherax quadricarinatus. Journal of Crustacean Biology 19(3): 493–497. https://doi.org/10.2307/1549258
- Bates D, Mächler M, Bolker B, Walker S (2014) Fitting linear mixed-effects models using lme4. Statistical Software 67(1): 1–48. https://doi.org/10.18637/jss.v067.i01
- Bauer U, Hatt H (1980) Demonstration of three different types of chemosensitive units in the crayfish claw using a computerized evaluation. Neuroscience Letters 17(1–2): 209–214. https://doi.org/10.1016/0304-3940(80)90086-5
- Berber S, Kale S, Acarlı D (2024) Cheliped loss and abnormalities of the narrow-clawed crayfish, Pontastacus leptodactylus (Eschscholtz, 1823) (Crustacea: Decapoda: Astacidae). Nauplius 32: e20240502. https://doi.org/10.1590/2358-2936e20240502
- Bláha M, Weiperth A, Patoka J, Szajbert B, Balogh ER, Staszny Á, Ferincz Á, Lente V, Maciaszek R, Kouba A (2022) The pet trade as a source of non-native decapods: The case of crayfish and shrimps in a thermal waterbody in Hungary. Environmental Monitoring and Assessment 194(11): 795. https://doi.org/10.1007/s10661-022-10361-9
- Bliss DE (1982) Shrimps, lobsters and crabs. Columbia University Press. https://doi.org/10.7312/blis92798
- Chesson J (1983) The estimation and analysis of preference and its relationship to foraging models. Ecology 64: 1297–1304. https://doi.org/10.2307/1937838
- Chucholl C (2013) Invaders for sale: Trade and determinants of introduction of ornamental freshwater crayfish. Biological Invasions 15: 125–141. https://doi.org/10.1007/s10530-012-0273-2
- Chucholl F, Chucholl C (2021) Differences in the functional responses of four invasive and one native crayfish species suggest invader‐specific ecological impacts. Freshwater Biology 66(11): 2051–2063. https://doi.org/10.1111/fwb.13813
- Claussen DL, Gerald GW, Kotcher JE, Miskell CA (2008) Pinching forces in crayfish and fiddler crabs, and comparisons with the closing forces of other animals. Journal of Comparative Physiology. B, Biochemical, Systemic, and Environmental Physiology 178: 333–342. https://doi.org/10.1007/s00360-007-0226-8
- Correia AM, Bandeira N, Anastácio PM (2005) Predator–prey interactions of Procambarus clarkii with aquatic macroinvertebrates in single and multiple prey systems. Acta Oecologica 28(3): 337–343. https://doi.org/10.1016/j.actao.2005.06.002
- Cox JG, Lima SL (2006) Naiveté and an aquatic–terrestrial dichotomy in the effects of introduced predators. Trends in Ecology & Evolution 21(12): 674–680. https://doi.org/10.1016/j.tree.2006.07.011
- Cribari-Neto F, Zeileis A (2010) Beta regression in R. Journal of Statistical Software 34: 1–24. https://doi.org/10.18637/jss.v034.i02
- Cuthbert RN, Dickey JW, McMorrow C, Laverty C, Dick JT (2018) Resistance is futile: Lack of predator switching and a preference for native prey predict the success of an invasive prey species. Royal Society Open Science 5(8): 180339. https://doi.org/10.1098/rsos.180339
- Cuthbert RN, Dickey JW, Coughlan NE, Joyce PW, Dick JT (2019) The Functional Response Ratio (FRR): Advancing comparative metrics for predicting the ecological impacts of invasive alien species. Biological Invasions 21: 2543–2547. https://doi.org/10.1007/s10530-019-02002-z
- Darnell MZ, Rittschof CC, Rittschof J, Beach C, Rittschof D (2018) Autotomy of the major claw stimulates molting and suppresses feeding in fiddler crabs. Journal of Experimental Marine Biology and Ecology 509: 66–70. https://doi.org/10.1016/j.jembe.2018.09.001
- Das K, Roy K, Mráz J, Buřič M, Kouba A (2024) Considerations for fatty acids in standardized reference diet for parthenogenetic marbled crayfish Procambarus virginalis model organism. Scientific Reports 14(1): 15933. https://doi.org/10.1038/s41598-024-66268-7
- Dobler AH, Geist J (2022) Impacts of native and invasive crayfish on three native and one invasive freshwater mussel species. Freshwater Biology 67(2): 389–403. https://doi.org/10.1111/fwb.13849
- Doherty TS, Glen AS, Nimmo DG, Ritchie EG, Dickman CR (2016) Invasive predators and global biodiversity loss. Proceedings of the National Academy of Sciences of the United States of America 113(40): 11261–11265. https://doi.org/10.1073/pnas.1602480113
- Duermit E, Kingsley-Smith PR, Wilber DH (2015) The consequences of claw removal on stone crabs Menippe spp. and the ecological and fishery implications. North American Journal of Fisheries Management 35(5): 895–905. https://doi.org/10.1080/02755947.2015.1064836
- Edmonds NJ, Riley WD, Maxwell DL (2011) Predation by Pacifastacus leniusculus on the intra‐gravel embryos and emerging fry of Salmo salar. Fisheries Management and Ecology 18(6): 521–524. https://doi.org/10.1111/j.1365-2400.2011.00797.x
- Fořt M, Hossain MS, Kouba A, Buřič M, Kozák P (2019) Agonistic interactions and dominance establishment in three crayfish species non-native to Europe. Limnologica 74: 73–79. https://doi.org/10.1016/j.limno.2018.11.003
- Fukuhara H, Sakamoto M (1987) Enhancement of inorganic nitrogen and phosphate release from lake sediment by tubificid worms and chironomid larvae. Oikos 48: 312–320. https://doi.org/10.2307/3565519
- Gaiotto JV, Abrahão CR, Dias RA, Bugoni L (2020) Diet of invasive cats, rats and tegu lizards reveals impact over threatened species in a tropical island. Perspectives in Ecology and Conservation 18(4): 294–303. https://doi.org/10.1016/j.pecon.2020.09.005
- Gallardo B, Clavero M, Sánchez MI, Vilà M (2016) Global ecological impacts of invasive species in aquatic ecosystems. Global Change Biology 22(1): 151–163. https://doi.org/10.1111/gcb.13004
- Gherardi F, Acquistapace P, Barbaresi S (2000) The significance of chelae in the agonistic behaviour of the white‐clawed crayfish, a Ustropotamobius pallipes. Marine and Freshwater Behaviour and Physiology 33(3): 187–200. https://doi.org/10.1080/10236240009387090
- González R, Celada JD, González A, García V, Carral JM, Sáez-Royuela M (2010) Stocking density for the intensive rearing of juvenile crayfish, Pacifastacus leniusculus (Astacidae), using Artemia nauplii to supplement a dry diet from the onset of exogenous feeding. Aquaculture International 18: 371–378. https://doi.org/10.1007/s10499-009-9250-x
- Graham ZA, Angilletta Jr MJ (2020) Claw size predicts dominance within and between invasive species of crayfish. Animal Behaviour 166: 153–161. https://doi.org/10.1016/j.anbehav.2020.06.021
- Graham ZA, Vargas C, Angilletta Jr MJ, Palaoro AV (2021) Regenerated claws of the virile crayfish Faxonius virilis (Hagen, 1870)(Decapoda: Astacidea: Cambaridae) generate weaker pinching forces compared to original claws. Journal of Crustacean Biology 41(3): ruab036. https://doi.org/10.1093/jcbiol/ruab036
- Graham ZA, Oppedisano AN, Stubbs MB, Loughman ZJ (2023) Claw autotomy does not influence digging ability in the Hillbilly Hairy Crayfish, Cambarus polypilosus. Behaviour 160(15): 1393–1408. https://doi.org/10.1163/1568539X-bja10245
- Grimm J, Dick JT, Verreycken H, Jeschke JM, Linzmaier S, Ricciardi A (2020) Context-dependent differences in the functional responses of conspecific native and non-native crayfishes. NeoBiota 54: 71–88. https://doi.org/10.3897/neobiota.54.38668
- Haddaway NR, Wilcox RH, Heptonstall RE, Griffiths HM, Mortimer RJ, Christmas M, Dunn AM (2012) Predatory functional response and prey choice identify predation differences between native/invasive and parasitised/unparasitised crayfish. PLoS ONE 7(2): e32229. https://doi.org/10.1371/journal.pone.0032229
- Hansen K, Mouridsen S, Kristensen E (1997) The impact of Chironomus plumosus larvae on organic matter decay and nutrient (N, P) exchange in a shallow eutrophic lake sediment following a phytoplankton sedimentation. Hydrobiologia 364: 65–74. https://doi.org/10.1023/A:1003155723143
- Haubrock PJ, Inghilesi AF, Mazza G, Bendoni M, Solari L, Tricarico E (2019) Burrowing activity of Procambarus clarkii on levees: Analysing behaviour and burrow structure. Wetlands Ecology and Management 27: 497–511. https://doi.org/10.1007/s11273-019-09674-3
- Haubrock PJ, Oficialdegui FJ, Zeng Y, Patoka J, Yeo DC, Kouba A (2021) The redclaw crayfish: A prominent aquaculture species with invasive potential in tropical and subtropical biodiversity hotspots. Reviews in Aquaculture 13(3): 1488–153. https://doi.org/10.1111/raq.12531
- Hein J, Mahadeva MN (1988) The lowly lakefly. Science Teacher (Normal, Ill. ) 55(5): 48–52.
- Holdich DM (2002) Distribution of crayfish in Europe and some adjoining countries. Bulletin Francais de la Peche et de la Pisciculture 367: 611–650. https://doi.org/10.1051/kmae:2002055
- Hossain MS, Patoka J, Kouba A, Buřič M (2018) Clonal crayfish as biological model: A review on marbled crayfish. Biologia 73: 841–855. https://doi.org/10.2478/s11756-018-0098-2
- Hossain MS, Kubec J, Kouba A, Kozák P, Buřič M (2019) Still waters run deep: Marbled crayfish dominates over red swamp crayfish in agonistic interactions. Aquatic Ecology 53: 97–107. https://doi.org/10.1007/s10452-019-09675-7
- Hughes RN, Croy MI (1993) An experimental analysis of frequency-dependent predation (switching) in the 15-spined stickleback, Spinachia spinachia. Journal of Animal Ecology: 341–352. https://doi.org/10.2307/5365
- Jermacz Ł, Andrzejczak J, Arczyńska E, Zielska J, Kobak J (2017) An enemy of your enemy is your friend: Impact of predators on aggregation behavior of gammarids. Ethology 123(9): 627–639. https://doi.org/10.1111/eth.12635
- Jermacz Ł, Kletkiewicz H, Poznańska-Kakareko M, Klimiuk M, Kobak J (2022) Chronic predation risk affects prey escape abilities through behavioral and physiological changes. Behavioral Ecology 33(1): 298–306. https://doi.org/10.1093/beheco/arab142
- Kaur D, Iqbal A, Soto I, Kubec J, Buřič M (2023) Effects of chemical cues and prior experience on predator avoidance in crayfish. Ecology and Evolution 13(8): e10426. https://doi.org/10.1002/ece3.10426
- Keller TA, Hazlett BA (1996) Mechanical use of crayfish chelae. Marine and Freshwater Behaviour and Physiology 28(3): 149–162. https://doi.org/10.1080/10236249609378986
- Kouba A, Buřič M, Policar T, Kozák P (2011) Evaluation of body appendage injuries to juvenile signal crayfish (Pacifastacus leniusculus): Relationships and consequences. Knowledge and Management of Aquatic Ecosystems 401: 04. https://doi.org/10.1051/kmae/2011012
- Kouba A, Tíkal J, Císař P, Veselý L, Fořt M, Příborský JJ, Patoka M, Patoka (2016) The significance of droughts for hyporheic dwellers: Evidence from freshwater crayfish. Scientific Reports 6(1): 26569. https://doi.org/10.1038/srep26569
- Kouba A, Lipták B, Kubec J, Bláha M, Veselý L, Haubrock PJ, Oficialdegui FJ, Niksirat H, Patoka J, Buřič M (2021) Survival, growth, and reproduction: Comparison of marbled crayfish with four prominent crayfish invaders. Biology (Basel) 10(5): 422. https://doi.org/10.3390/biology10050422
- Land M, Layne J (1995) The visual control of behaviour in fiddler crabs: II. Tracking control systems in courtship and defence. Journal of Comparative Physiology 177: 91–103. https://doi.org/10.1007/BF00243401
- Laurent PJ (1985) Une station d»ecrevisses a pieds blancs: Austropotamobius pallipes Lere. (Decapoda: Astacidae) en zone periurbane. Bulletin de la Societe Linneene de Lyon. 54: 77–88. https://doi.org/10.3406/linly.1985.10687
- Lencioni V, Cranston P, Makarchenko EA (2018) Recent advances in the study of Chironomidae: An overview. Journal of Limnology 77(s1): 1–6. https://doi.org/10.4081/jlimnol.2018.1865
- Lenth R (2023) emmeans: Estimated Marginal Means, aka Least-Squares Means. R package version 1.8.4-1. https://CRAN.R-project.org/package=emmeans
- Levine S (1980) Several measures of trophic structure applicable to complex food webs. Journal of Theoretical Biology 83(2): 195–207. https://doi.org/10.1016/0022-5193(80)90288-X
- Linzmaier SM, Musseau C, Matern S, Jeschke JM (2020) Trophic ecology of invasive marbled and spiny-cheek crayfish populations. Biological Invasions 22(11): 3339–3356. https://doi.org/10.1007/s10530-020-02328-z
- Lipták B, Veselý L, Ercoli F, Bláha M, Buřič M, Ruokonen T, Kouba A (2019) Trophic role of marbled crayfish in a lentic freshwater ecosystem. Aquatic Invasions 14(2): 299–309. https://doi.org/10.3391/ai.2019.14.2.09
- Lodge DM, Deines A, Gherardi F, Yeo DC, Arcella T, Baldridge AK, Barnes MA, Chadderton WL, Feder JL, Gantz CA, Howard GW, Jerde CL, Peters BW, Peters JA, Sargent LW, Turner CR, Wittmann ME, Zeng Y (2012) Global introductions of crayfishes: Evaluating the impact of species invasions on ecosystem services. Annual Review of Ecology, Evolution, and Systematics 43: 449–472. https://doi.org/10.1146/annurev-ecolsys-111511-103919
- Loya-Javellana GN, Fielder DR, Thorne MJ (1993) Food choice by free-living stages of the tropical freshwater crayfish, Cherax quadricarinatus (Parastacidae: Decapoda). Aquaculture (Amsterdam, Netherlands) 118(3–4): 299–308. https://doi.org/10.1016/0044-8486(93)90464-A
- Lunda R, Roy K, Dvorak P, Kouba A, Mraz J (2020) Recycling biofloc waste as novel protein source for crayfish with special reference to crayfish nutritional standards and growth trajectory. Scientific Reports 10(1): 19607. https://doi.org/10.1038/s41598-020-76692-0
- MacArthur RH, Pianka ER (1966) On optimal use of a patchy environment. American Naturalist 100(916): 603–609. https://doi.org/10.1086/282454
- Maciaszek R, Jabłońska A, Prati S, Wróblewski P, Gruszczyńska J, Świderek W (2022) Marbled crayfish Procambarus virginalis invades a nature reserve: How to stop further introductions? The European Zoological Journal 89(1): 888–901. https://doi.org/10.1080/24750263.2022.2095046
- Manly BFJ (1974) A model for certain types of selection experiments. Biometrics 30: 281–294. https://doi.org/10.2307/2529649
- Mariappan P, Balasundaram C, Schmitz B (2000) Decapod crustacean chelipeds: An overview. Journal of Biosciences 25: 301–313. https://doi.org/10.1007/BF02703939
- McNair JN (1979) A generalized model of optimal diets. Theoretical Population Biology 15(2): 159–170. https://doi.org/10.1016/0040-5809(79)90032-7
- McVean A (1975) Autotomy. Comparative Biochemistry and Physiology. Part A, Physiology 51(3): 497–505. https://doi.org/10.1016/0300-9629(75)90332-1
- Momot WT (1995) Redefining the role of crayfish in aquatic ecosystems. Reviews in Fisheries Science 3(1): 33–63. https://doi.org/10.1080/10641269509388566
- Momot WT, Gowing H, Jones PD (1978) The dynamics of crayfish and their role in ecosystems. American Midland Naturalist: 10–35. https://doi.org/10.2307/2424930
- Moore P, Belanger R (2009) The role of the major chelae in the localization and sampling of female odours by male crayfish, Orconectes rusticus (Girard, 1852). Crustaceana 82(6): 653–668. https://doi.org/10.1163/156854009X423210
- Moosmann M, Cuenca‐Cambronero M, De Lisle S, Greenway R, Hudson CM, Lürig MD, Matthews B (2021) On the evolution of trophic position. Ecology Letters 24(12): 2549–2562. https://doi.org/10.1111/ele.13888
- Mormul RP, Vieira DS, Bailly D, Fidanza K, da Silva VFB, da Graça WJ, Pontara V, Bueno ML, Thomaz SM, Mendes RS (2022) Invasive alien species records are exponentially rising across the Earth. Biological Invasions 24(10): 3249–3261. https://doi.org/10.1007/s10530-022-02843-1
- Mpanza NP, Cuthbert RN, Pegg J, Wasserman RJ (2024) Assessing biological invasion predatory impacts through interaction strengths and morphological trophic profiling. Biological Invasions 26: 4165–4177. https://doi.org/10.1007/s10530-024-03435-x
- Murdoch WW (1969) Switching in general predators: Experiments on predator specificity and stability of prey populations. Ecological Monographs 39(4): 335–354. https://doi.org/10.2307/1942352
- Nyström PER, Brönmark C, Graneli W (1996) Patterns in benthic food webs: A role for omnivorous crayfish? Freshwater Biology 36(3): 631–646. https://doi.org/10.1046/j.1365-2427.1996.d01-528.x
- Paterson RA, Dick JT, Pritchard DW, Ennis M, Hatcher MJ, Dunn AM (2015) Predicting invasive species impacts: A community module functional response approach reveals context dependencies. Journal of Animal Ecology 84(2): 453–463. https://doi.org/10.1111/1365-2656.12292
- Patoka J, Buřič M, Kolář V, Bláha M, Petrtýl M, Franta P, Tropek R, Kalous L, Petrusek A, Kouba A (2016) Predictions of marbled crayfish establishment in conurbations fulfilled: Evidences from the Czech Republic. Biologia 71(12): 1380–1385. https://doi.org/10.1515/biolog-2016-0164
- Pinder LCV (1986) Biology of freshwater Chironomidae. Annual Review of Entomology 31(1): 1–23. https://doi.org/10.1146/annurev.en.31.010186.000245
- R Core Team (2022) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org/
- Roje S, Richter L, Worischka S, Let M, Veselý L, Buřič M (2021) Round goby versus marbled crayfish: Alien invasive predators and competitors. Knowledge and Management of Aquatic Ecosystems 422: 18. https://doi.org/10.1051/kmae/2021019
- Sánchez O, Oficialdegui FJ, Torralba‐Burrial A, Arbesú R, Valle‐Artaza JM, Fernández‐González Á, Ardura A, Arias A (2024) Procambarus virginalis Lyko, 2017: A new threat to Iberian inland waters. Ecology and Evolution 14(5): e11362. https://doi.org/10.1002/ece3.11362
- Sanders H, Mills DN (2022) Predation preference of signal crayfish (Pacifastacus leniusculus) on native and invasive bivalve species. River Research and Applications 38(8): 1469–1480. https://doi.org/10.1002/rra.4023
- Savolainen R, Ruohonen K, Tulonen J (2003) Effects of bottom substrate and presence of shelter in experimental tanks on growth and survival of signal crayfish, Pacifastacus leniusculus (Dana) juveniles. Aquaculture Research 34(4): 289–297. https://doi.org/10.1046/j.1365-2109.2003.00817.x
- Schoener TW, Spiller DA, Losos JB (2001) Predators increase the risk of catastrophic extinction of prey populations. Nature 412(6843): 183–186. https://doi.org/10.1038/35084071
- Seebens H, Blackburn TM, Dyer EE, Genovesi P, Hulme PE, Jeschke JM, Pagad S, Pyšek P, Winter M, Arianoutsou M, Bacher S, Blasius B, Brundu G, Capinha C, Celesti-Grapow L, Dawson W, Dullinger S, Fuentes N, Jäger H, Kartesz J, Kenis M, Kreft H, Kühn I, Lenzner B, Liebhold A, Mosena A, Moser D, Nishino M, Pearman D, Pergl J, Rabitsch W, Rojas-Sandoval J, Roques A, Rorke S, Rossinelli S, H E. Roy, Scalera R, Schindler S, Štajerová K, Tokarska-Guzik B, van Kleunen M, Walker K, Weigelt P, Yamanaka T, Essl F (2017) No saturation in the accumulation of alien species worldwide. Nature Communications 8(1): 14435. https://doi.org/10.1038/ncomms14435
- Sih A, Bolnick DI, Luttbeg B, Orrock JL, Peacor SD, Pintor LM, Preisser E, Rehage JS, Vonesh JR (2010) Predator–prey naïveté, antipredator behavior, and the ecology of predator invasions. Oikos 119(4): 610–621. https://doi.org/10.1111/j.1600-0706.2009.18039.x
- Smithson M, Verkuilen J (2006) A better lemon squeezer? Maximum-likelihood regression with beta-distributed dependent variables. Psychological Methods 11(1): 54. https://doi.org/10.1037/1082-989X.11.1.54
- Soto I, Le Hen G, Buřič M, Cuthbert RN, Haubrock PJ, Sentis A et al. (2023a) Sustained ecological impacts of invasive crayfish following claw injury. Inland Waters 13(4): 534–544. https://doi.org/10.1080/20442041.2024.2321088
- Soto I, Ahmed DA, Beidas A, Oficialdegui FJ, Tricarico E, Angeler DG, Amatulli G, Briski E, Datry T, Dohet A, Domisch S, England J, Feio MJ, Forcellini M, Johnson RK, Jones JI, Larrañaga A, L'Hoste L, Murphy JF, Schäfer RB, Shen LQ, Kouba A, Haubrock PJ (2023b) Long-term trends in crayfish invasions across European rivers. The Science of the Total Environment 867: 161537. https://doi.org/10.1016/j.scitotenv.2023.161537
- South J, McCard M, Khosa D, Mofu L, Madzivanzira TC, Dick JT, Weyl OL (2019) The effect of prey identity and substrate type on the functional response of a globally invasive crayfish. NeoBiota 52: 9–24. https://doi.org/10.3897/neobiota.52.39245
- Souty-Grosset C, Anastacio PM, Aquiloni L, Banha F, Choquer J, Chucholl C, Tricarico E (2016) The red swamp crayfish Procambarus clarkii in Europe: Impacts on aquatic ecosystems and human well-being. Limnologica 58: 78–93. https://doi.org/10.1016/j.limno.2016.03.003
- Spilmont N, Seuront L (2023) Aliens eating aliens: An introduced amphipod as a potential prey of an invasive rocky shore crab in laboratory experiments. Aquatic Invasions 18(2): 163–177. https://doi.org/10.3391/ai.2023.18.2.106252
- Theurich N, Briski E, Cuthbert RN (2024) Predatory preferences of a non-indigenous crab do not depend on prey invasion status. Biological Invasions 26: 1295–1302. https://doi.org/10.1007/s10530-024-03258-w
- Toutain M, Soto I, Oficialdegui FJ, Balzani P, Cuthbert RN, Haubrock PJ, Kouba A (2024) Ecological importance of crayfish claws in consumption of mobile benthic prey. Aquatic Sciences 86(4): 1–10. https://doi.org/10.1007/s00027-024-01107-5
- Veselý L, Boukal DS, Buřič M, Kuklina I, Fořt M, Yazicioglu B, Prchal M, Kozák P, Kouba A, Sentis A (2019) Temperature and prey density jointly influence trophic and non‐trophic interactions in multiple predator communities. Freshwater Biology 64(11): 1984–1993. https://doi.org/10.1111/fwb.13387
- Veselý L, Ercoli F, Ruokonen TJ, Bláha M, Kubec J, Buřič M, Hämäläinen H, Kouba A (2020) The crayfish distribution, feeding plasticity, seasonal isotopic variation and trophic role across ontogeny and habitat in a canyon-shaped reservoir. Aquatic Ecology 54(4): 1169–1183. https://doi.org/10.1007/s10452-020-09801-w
- Veselý L, Ruokonen TJ, Weiperth A, Kubec J, Szajbert B, Guo W, Ercoli F, Bláha M, Buřič M, Hämäläinen H, Kouba A (2021) Trophic niches of three sympatric invasive crayfish of EU concern. Hydrobiologia 848: 727–737. https://doi.org/10.1007/s10750-020-04479-5
- Vodovsky N, Patoka J, Kouba A (2017) Ecosystem of Caspian Sea threatened by pet-traded non-indigenous crayfish. Biological Invasions 19: 2207–2217. https://doi.org/10.1007/s10530-017-1433-1
- Xu L, Tian J, Wen H, Wu F, Zhang W, Gao W, Chen X (2021) Dietary calcium requirement of red swamp crayfish (Procambarus clarkia). Aquaculture Nutrition 27(1): 153–162. https://doi.org/10.1111/anu.13173
- Zeileis A, Hothorn T (2002) Diagnostic Checking in Regression Relationships. R News 2(3): 7–10. https://CRAN.R-project.org/doc/Rnews/