pdf35

Ribogospod. nauka Ukr., 2025; 1(71): 163-188
DOI: https://doi.org/10.61976/fsu2025.01.163
UDC 639.517.053:019.912“1868”

Австралійський червоноклешневий рак (Cherax quadricarinatus Von Martens, 1868). Тематична бібліографія

Н. Є. Гриневич, Ця електронна адреса захищена від спам-ботів. вам потрібно увімкнути JavaScript, щоб побачити її. , ORCID ID 0000-0001-7430-9498, Білоцерківський національний аграрний університет, м. Біла Церква
А. О. Слюсаренко, Ця електронна адреса захищена від спам-ботів. вам потрібно увімкнути JavaScript, щоб побачити її. , ORCID ID 0000-0002-1896-8939, Білоцерківський національний аграрний університет, м. Біла Церква
О. А. Хом’як, Ця електронна адреса захищена від спам-ботів. вам потрібно увімкнути JavaScript, щоб побачити її. , ORCID ID 0000-0003-3010-6757, Білоцерківський національний аграрний університет, м. Біла Церква
В. С. Жарчинська, Ця електронна адреса захищена від спам-ботів. вам потрібно увімкнути JavaScript, щоб побачити її. , ORCID ID 0000-0002-5823-9095, Білоцерківський національний аграрний університет, м. Біла Церква

Мета. Упорядкування наукових джерел щодо біології, екології, особливостей відтворення та вирощування австралійського червоноклешневого рака Cherax quadricarinatus, виявлення основних напрямів наукових досліджень, що стосуються ареалу поширення, живлення та впливу цього виду на екосистему.

Методика. Методика складання тематичної бібліографії базувалася на ретельному пошуку, систематизації та аналізі наукових джерел.

Результати. У результаті проведеної роботи було зібрано, систематизовано та проаналізовано значний масив літературних джерел, що висвітлюють біологічні, екологічні та господарські характеристики австралійського червоноклешневого рака Cherax quadricarinatus. Бібліографія містить 154 публікації, розміщені у алфавітному порядку та описані згідно з вимогами ВАК, відповідно до ДСТУ 8302:2015 «Інформація та документація. Бібліографічне посилання. Загальні положення та правила складання», із урахуванням поправок (код УКНД 01.140.40).

Практична значимість. Перелік може бути корисним для студентів, викладачів і науковців доступом до актуальних публікацій для використання в навчальному процесі та наукових роботах.

Ключові слова: аквакультура, Cherax quadricarinatus, ареал поширення, відтворення, екдизис, морфометричний аналіз.

ЛІТЕРАТУРА

  1. A comparative transcriptomic analysis in late embryogenesis of the red claw crayfish Cherax quadricarinatus / Wang Y. et al. // Molecular genetics and genomics. 2020. Vol. 295(2). P. 299—311. https://doi.org/10.1007/s00438-019-01621-4 
  2. A crustacean annotated transcriptome (CAT) database / Nong W. et al. // BMC Genomics. 2020. Vol. 21(1). P. 32. https://doi.org/10.1186/s12864-019-6433-3 
  3. A giant genome for a giant crayfish (Cherax quadricarinatus) with insights into cox1 pseudogenes in decapod genomes / Tan M. H. et al. // Frontiers in genetics. 2020. Vol. 11. P. 201. https://doi.org/10.3389/fgene.2020.00201
  4. A review of freshwater crayfish introductions in Africa / Madzivanzira T. C. et al. // Reviews in Fisheries Science & Aquaculture. 2020. Vol. 29(2). P. 218—241. https://doi.org/10.1080/23308249.2020.1802405 
  5. A study on the effects of light intensity on juveniles of the red claw crayfish Cherax quadricarinatus / Wen-ping J. et al. // Aquaculture Research. 2022. Vol. 53(18). P. 6454—6462. https://doi.org/10.1111/are.16115 
  6. A transporter that allows phosphate ions to control the polymorph of exoskeletal calcium carbonate biomineralization / Shaked S. A. et al. // Acta Biomaterialia. 2024. Vol. 178. P. 221—232. https://doi.org/10.1016/j.actbio.2024.02.035 
  7. Abizar Purnamasari L., Widyawati Affandi M., Putranto T. W. C. Morphometric characteristics of crayfish Cherax quadricarinatus from atokan river, West Sumatera, Indonesia // Ecology, Environment and Conservation. 2020. Vol. 26(4). P. 1787—1792.
  8. Acute toxicity of cypermethrin on the juvenile of red claw crayfish Cherax quadricarinatus / Yuan J. et al. // Chemosphere. 2019. Vol. 237. 124468. https://doi.org/10.1016/j.chemosphere.2019.124468 
  9. Additional records of wild populations of the Australian crayfish Cherax quadricarinatus in Mexico / Rodríguez-Almaraz G. A. et al. // Revista Mexicana de Biodiversidad. 2018. Vol. 89(4). P. 1322—1327. https://doi.org/10.22201/ib.20078706e.2018.4.2065 
  10. Allergen diversity and abundance in different tissues of the redclaw crayfish (Cherax quadricarinatus) / Jerry E. M. et al. // Foods. 2024. Vol. 13(2). P. 315. https://doi.org/10.3390/foods13020315 
  11. Also in crayfish: how phytase inclusion avoids phytic acid effects on hepatopancreas enzymes of redclaw Cherax quadricarinatus / Casaretto M. E. et al. // Aquaculture Research. 2023. Vol. 10. 4341218. https://doi.org/10.1155/2023/4341218 
  12. An examination of the effectiveness of traps and baits as a possible means of harvesting crayfish, Cherax quadricarinatus in Sanyati Basin, Lake Kariba, Zimbabwe / Mhlanga L. et al. // Water SA. 2020. Vol. 46(4). P. 675—678. https://doi.org/10.17159/wsa/2020.v46.i4.9083 
  13. An update of the known distribution and status of Cherax spp. in Italy (Crustacea, Parastacidae) / Vecchioni L. et al. // BioInvasions Records. 2022. Vol. 11(4). P. 1045—1055. https://doi.org/10.3391/bir.2022.11.4.22 
  14. Analysis of change of nutrients from fertilized eggs to newly hatched shrimp of Cherax quadricarinatus / Sun L. et al. // Journal of Shanghai Ocean University. 2023. Vol. 32(2). P. 348—356. https://doi.org/10.12024/jsou.20220203718 
  15. Analysis of the differences in muscle nutrition among individuals of different sexes in redclaw crayfish, Cherax quadricarinatus / Sun Y. et al. // Metabolites. 2023. Vol. 13(2). P. 190. https://doi.org/10.3390/metabo13020190 
  16. Analysis of transcripts and splice isoforms in red claw crayfish (Cherax quadricarinatus) using single-molecule long-read sequencing / Xu Y. et al. // Aquaculture. 2021. Vol. 541. 736828. https://doi.org/10.1016/j.aquaculture.2021.736828 
  17. Analysis on phenotypic traits and muscle nutritional composition of Cherax quadricarinatus in different specifications / Sun L. H. et al. // Oceanologia et Limnologia Sinica. 2023. Vol. 54(3). P. 885—894. https://doi.org/10.11693/hyhz20220800220 
  18. Antibacterial activity of freshwater lobster (Cherax quadricarinatus) shell chitosan gel preparation against Escherichia coli and Staphylococcus aureus / Rani Z. et al. // Journal of Applied Pharmaceutical Science. 2023. Vol. 13(2). P. 146—153. https://doi.org/10.7324/JAPS.2023.130216 
  19. Arias A., Torralba-Burrial A. First record of the redclaw crayfish Cherax quadricarinatus (von Martens, 1868) on the Iberian Peninsula // Limnetica. 2021. Vol. 40. P. 33—42. https://doi.org/10.23818/limn.40.03 
  20. Asymmetric firing rate from crayfish left and right caudal photoreceptors due to blue and green monochromatic light pulses / Sánchez-Hernández J. C. et al. // Symmetry. 2018. Vol. 10(9). P. 389. https://doi.org/10.3390/sym10090389 
  21. cDNA characterization and expression of selenium-dependent CqGPx3 isoforms in the crayfish Cherax quadricarinatus under high temperature and hypoxia / Hernández-Aguirre L. E. et al. // Genes. 2022. Vol. 13(2). P. 179. https://doi.org/10.3390/genes13020179 
  22. Chivambo S., Mussagy A., Barki A. Assessment of interspecific interactions between the invasive red-claw crayfish (Cherax quadricarinatus) and the Mozambique tilapia (Oreochromis mossambicus) // Brazilian Journal of Biology. 2020. Vol. 80(4). P. 717—726. https://doi.org/10.1590/1519-6984.217868 
  23. Cloning and characterisation of a Δ9 fatty acyl desaturase-like gene from the red claw crayfish (Cherax quadricarinatus) and its expression analysis under cold stress / Wu D. L. et al. // Journal of Thermal Biology. 2021. Vol. 102. 103122. https://doi.org/10.1016/j.jtherbio.2021.103122 
  24. Clove oil as an anaesthetic for Australian redclaw crayfish Cherax quadricarinatus / Ghanawi J. et al. // Aquaculture Research. 2019. Vol. 50(12). P. 3628—3632. https://doi.org/10.1111/are.14319 
  25. Cold stress regulates lipid metabolism via AMPK signalling in Cherax quadricarinatus / Wu D. et al. // Journal of thermal biology. 2020. Vol. 92. 102693. https://doi.org/10.1016/j.jtherbio.2020.102693 
  26. Color quality improvement of Cherax quadricarinatus with dragon fruit peel meal utilization / Rakhmawati R. et al. // Depik. 2023. Vol. 12(3). P. 314—319. https://doi.org/10.13170/depik.12.3.28628 
  27. Comparative study on the nutritional content and physical attributes of giant freshwater prawn (Macrobrachium rosenbergii) and redclaw crayfish (Cherax quadricarinatus) meats: preprint (Version 1) 07 June / Zheng-Bin T. et al. // Research Square. https://doi.org/10.21203/rs.3.rs-1695209/v1 
  28. Comparison of growth performance, carotenoid content, and temperature tolerance of two-colored strains of the red claw crayfish Cherax quadricarinatus / Wei M. et al. // Journal of Shellfish Research. 2021. Vol. 40(2). P. 421—427. https://doi.org/10.2983/035.040.0214 
  29. Comparison of the nutrition and texture of Cherax quadricarinatus muscle in two culture patterns / Cui Y. et al. // Food and Fermentation Industries. 2020. Vol. 46(21). P. 115—120. https://doi.org/10.13995/j.cnki.11-1802/ts.023977 
  30. CPAP3 proteins in the mineralized cuticle of a decapod crustacean / Abehsera S. et al. // Scientific Reports. 2018. Vol. 8(1). 2430. https://doi.org/10.1038/s41598-018-20835-x 
  31. Crandall K. A., Grave S. D. An updated classification of the freshwater crayfishes (Decapoda: Astacidea) of the world, with a complete species list. Journal of Crustacean Biology. 2017. Vol. 37(5). P. 615—653. https://doi.org/10.1093/jcbiol/rux070 
  32. Crayfish hemocyanin on chitin bone substitute scaffolds promotes the proliferation and osteogenic differentiation of human mesenchymal stem cells / Kruppke B. et al. // Journal of Biomedical Materials Research — Part A. 2020. Vol. 108(3). P. 694—708. https://doi.org/10.1002/jbm.a.36849 
  33. CrustyBase: an interactive online database for crustacean transcriptomes / Hyde C. J. et al. // BMC Genomics. 2020. Vol. 21. P. 637. https://doi.org/10.1186/s12864-020-07063-2 
  34. Daubnerová I., Žitňan D. Ecdysis triggering hormone. Handbook of Hormones. 2nd edn. 2021. Vol. 2. P. 829—831. https://doi.org/10.1016/B978-0-12-820649-2.00224-2 
  35. Development of a multiplex PCR assay for parentage assignment of the redclaw crayfish (Cherax quadricarinatus) / Bian Y. et al. // Aquaculture. 2022. Vol. 550. 737813. https://doi.org/10.1016/j.aquaculture.2021.737813 
  36. Development of a primary culture system for haematopoietic tissue cells from Cherax quadricarinatus and an exploration of transfection methods / Xu X. et al. // Developmental and Comparative Immunology. 2018. Vol. 88. P. 45—54. https://doi.org/10.1016/j.dci.2018.07.006 
  37. Development of economic valuation method for the direct impact of alien invasive species based on food competition in aquatic ecosystems / Kodiran T. et al. // Jurnal Pengelolaan Sumberdaya Alam Dan Lingkungan. 2020. Vol. 10(2). P. 198—208. https://doi.org/10.29244/jpsl.10.2.198-208 
  38. Development of species-specific primer sets for Australian redclaw crayfish (Cherax quadricarinatus) detection from water environmental DNA (eDNA) / Nasir S. A. M. et al. // Bioscience Research. 2020. Vol. 17. P. 90—99.
  39. Diet composition changes in tigerfish of Lake Kariba following an invasion by redclaw crayfish / Marufu L. et al. // Annales de Limnologie. 2017. Vol. 53. P. 47—56. https://doi.org/10.1051/limn/2016033 
  40. Do opposites attack? Resource interactions between an alien and native crayfish from the lake Eyre basin / King G. et al. // Marine and Freshwater Research. 2022. Vol. 73(7). P. 873—883. https://doi.org/10.1071/MF21302 
  41. Ecdysis triggering hormone modulates molt behaviour in the redclaw crayfish Cherax quadricarinatus, providing a mechanistic evidence for conserved function in molt regulation across Pancrustacea / Minh Nhut T. et al. // General and Comparative Endocrinology. 2020. Vol. 298(1). 113556. https://doi.org/10.1016/j.ygcen.2020.113556 
  42. Effect of cutting organs of lobster shrimp (Cherax quadricarinatus) on moulting percentage and survival / Andriyeni A. et al. // Jurnal Agroqua: Media Informasi Agronomi Dan Budidaya Perairan. 2022. Vol. 20(1). P. 157—164. https://doi.org/10.32663/ja.v20i1.2653 
  43. Effect of feed additives in the diet on the growth and testicular development of male red claw crayfish (Cherax quadricarinatus) using orthogonal experiments / Shehata A. I. et al. // Animal Feed Science and Technology. 2022. Vol. 283. 115180. https://doi.org/10.1016/j.anifeedsci.2021.115180 
  44. Effect of high hydrostatic pressure processing on biochemical characteristics, bacterial counts, and color of the red claw crayfish Cherax quadricarinatus / Lin X. et al. // Journal of Shellfish Research. 2021. Vol. 40. P. 177—184. https://doi.org/10.2983/035.040.0117 
  45. Effect of substrate on growth, survival and moulting in juvenile red claw, Cherax quadricarinatus / Fatihah S. N. et al. // Journal of PeerScientist. 2020. Vol. 3(2). e1000027.
  46. Effects of background color on growth, survival, body color, and inhabiting behavior distribution of Cherax quadricarinatus / Wei M. et al. // Journal of Marine Sciences. 2020. Vol. 44. P. 60—65.
  47. Effects of eggshell and seashell powder as natural dietary calcium supplements on growth, molting frequency, and carapace calcium composition of juvenile red claw crayfish, Cherax quadricarinatus / Shahroom A. et al. // PeerJ. 2023. Vol. 11. e15449. https://doi.org/10.7717/peerj.15449 
  48. Effects of exposure to waterborne polystyrene microspheres on lipid metabolism in the hepatopancreas of juvenile redclaw crayfish, Cherax quadricarinatus / Chen Q. et al. // Aquatic toxicology. 2020. Vol 224. 105497. https://doi.org/10.1016/j.aquatox.2020.105497 
  49. Effects of high hydrostatic pressure and storage temperature on fatty acids and non-volatile taste active compounds in red claw crayfish (Cherax quadricarinatus) / Liu C. et al. // Molecules. 2022. Vol. 27(16). 5098. https://doi.org/10.3390/molecules27165098 
  50. Effects of light color, photoperiod, and growth-related gene interference or overexpression on the survival, growth, or physiological and biochemical indices of red claw crayfish juveniles / Cheng S. et al. // Aquaculture. 2023. Vol. 562. 738740. https://doi.org/10.1016/j.aquaculture.2022.738740 
  51. Effects of nitrite on physiological indices and intestinal flora of parent Cherax quadricarinatus during overwintering / Wei Y. et al. // Journal of Shanghai Ocean University. 2022. Vol. 31(1). P. 278—287. https://doi.org/10.12024/jsou.20201203256 
  52. Energy reserves mobilization: strategies of three decapod species / Sacristán H. J. et al. // PLoS One. 2017. Vol. 12(9). e0184060. https://doi.org/10.1371/journal.pone.0184060 
  53. Establishing a gold standard method for the detection of Cherax reovirus using reverse transcriptase, quantitative, polymerase chain reaction / Jaroenram W. et al. // Journal of virological methods. 2021. Vol. 293. 114169. https://doi.org/10.1016/j.jviromet.2021.114169 
  54. Establishment of a primary culture of haemocytes from the Australian red claw crayfish, Cherax quadricarinatus / Li J. et al. // Crustaceana. 2019. Vol. 92(11–12). P. 1271—1278. https://doi.org/10.1163/15685403-00003937 
  55. Establishment of the exotic invasive redclaw crayfish Cherax quadricarinatus (Von Martens, 1868) in the coastal plain of San Blas, Nayarit, Se Gulf of California, Mexico / Tapia-Varela J. R. et al. // BioInvasions Records. 2020. Vol. 9(2). P. 357—366. https://doi.org/10.3391/bir.2020.9.2.21 
  56. Estimates of heritability and genetic correlation for growth traits at harvest in redclaw crayfish, Cherax quadricarinatus / Dai P. et al. // Aquaculture. 2022. Vol. 561. 738631. https://doi.org/10.1016/j.aquaculture.2022.738631 
  57. Exploration of the functional properties of red cuticle patch of redclaw crayfish (Cherax quadricarinatus) by histological and transcriptomic analysis / Zhou S. et al. // Aquaculture. 2022. Vol. 561(15). 738624. https://doi.org/10.1016/j.aquaculture.2022.738624 
  58. Expression patterns of two carbonic anhydrase genes, Na+/K+-ATPase and V-type H+-ATPase, in the freshwater crayfish, Cherax quadricarinatus, exposed to low pH and high pH / Ali M. Y. et al. // Australian Journal of Zoology. 2017. Vol. 65(1). P. 50—59. https://doi.org/10.1071/ZO16048 
  59. Fahruddin M., Suriyadin A., Murtawan H. Pertumbuhan dan kelangsungan hidup lobster air tawar (Cherax quadricarinatus) dengan pemberian substrat yang berbeda // Jurnal Marikultur. 2022. Vol. 4(1). P. 31—41.
  60. Fasya A. H. Study of patterns in the relationship of ecdysis with the age of freshwater crayfish Cherax quadricarinatus aged 76 days // IOP Conference Series: Earth and Environmental Science. 2019. 236(1). 012012. https://doi.org/10.1088/1755-1315/236/1/012012 
  61. Fauzan Isma M., Syahril M. Effects of difference shelter on survival rate and growth of freshwater lobster (Cherax quadricarinatus) // Jurnal Ilmiah Samudra Akuatika. 2021. Vol. 5(1). P. 1—8. https://doi.org/10.33059/jisa.v5i1.3547 
  62. First record of a new epibionts suctorian ciliate Tokophrya huangmeiensis sp.n. (Ciliophora, Phyllopharyngea)from redclaw crayfish Cherax quadricarinatus von Martens 1868 / Tahir U. B. et al. // Zootaxa. 2017. Vol. 4269(2). P. 287—295. https://doi.org/10.11646/zootaxa.4269.2.7 
  63. First record of the invasive Australian redclaw crayfish Cherax quadricarinatus (Von Martens, 1868) in the Crocodile river, Kruger National Park, South Africa / Petersen R. M. et al. // Koedoe: African Protected Area Conservation and Science. 2017. Vol. 59(159). P. 1—3. https://doi.org/10.4102/koedoe.v59i1.1435 
  64. First wild record of australian redclaw crayfish Cherax quadricarinatus (Von Martens, 1868) in the east coast of peninsular Malaysia / Ismail N. eta al. // BioInvasions Records. 2021. Vol. 10(2). P. 360—368. https://doi.org/10.3391/bir.2021.10.2.14 
  65. First wild record of Australian redclaw crayfish Cherax quadricarinatus (von Martens, 1868) in the East Coast of Peninsular Malaysia / Norshida I. et al. // BioInvasions Records. 2021. Vol. 10(2). P. 360—368. https://doi.org/10.3391/bir.2021.10.2.14 
  66. From sporadic single genes to a broader transcriptomic approach: insights into the formation of the biomineralized exoskeleton in decapod crustaceans / Shaked S. A. et al. // Journal of Structural Biology. 2020. Vol. 212(2). 107612. https://doi.org/10.1016/j.jsb.2020.107612 
  67. Fu R., Li F., Yang F. Separation of hemocytes of Cherax quadricarinatus by percoll discontinuous density gradient centrifugation // Journal of Fisheries of China. 2019. Vol. 43(4). P. 841—851. https://doi.org/10.11964/jfc.20180511286 
  68. Genes encoding putative bicarbonate transporters as a missing molecular link between molt and mineralization in crustaceans / Abehsera S. et al. // Scientific Reports. 2021. Vol. 11(1). 11722. https://doi.org/10.1038/s41598-021-91155-w 
  69. Genetic variability of wild populations of invasive redclaw crayfish (Cherax quadricarinatus) von Martens, 1868 across peninsular Malaysia / Dali M. Z. M. et al. // Malaysian Applied Biology. 2023. Vol. 52(1). P. 35—42. https://doi.org/10.55230/mabjournal.v52i1.2427 
  70. Genomic structure, expression, and functional characterization of the Fem-1 gene family in the redclaw crayfish, Cherax quadricarinatus / Zheng J. et al. // General and comparative endocrinology. 2022. Vol. 316. 113961. https://doi.org/10.1016/j.ygcen.2021.113961 
  71. Get it before it gets to my catch: misdirection traps to mitigate against socioeconomic impacts associated with crayfish invasion / Madzivanzira T. C. et al. // Management of Biological Invasions. 2023. Vol. 14(2). P. 335—346. https://doi.org/10.3391/mbi.2023.14.2.10 
  72. Haemolymphatic parameters in two aquaculture crustacean species Cherax destructor (Clark, 1836) and Cherax quadricarinatus (Von Martens, 1868) / Mauro M. et al. // Animals. 2022. Vol. 12(5). P. 543. https://doi.org/10.3390/ani12050543 
  73. Hepatopancreas transcriptome alterations in red claw crayfish (Cherax quadricarinatus) under microcystin-LR (MC-LR) stress / Lu Y-P. et al. // Aquaculture Reports. 2023. Vol. 29. 101478. https://doi.org/10.1016/j.aqrep.2023.101478 
  74. Identification and expression pattern of the sex determination gene fruitless-like in Cherax quadricarinatus / Lin D. et al. // Comparative Biochemistry and Physiology Part — B: Biochemistry and Molecular Biology. 2022. Vol. 259. 110704. https://doi.org/10.1016/j.cbpb.2021.110704 
  75. Identification and functional analysis of the doublesex gene in the redclaw crayfish, Cherax quadricarinatus / Zheng J. et al. // Gene expression patterns. 2020. Vol. 37. 119129. https://doi.org/10.1016/j.gep.2020.119129 
  76. Identification and profiling of MicroRNAs during embryogenesis in the red claw crayfish Cherax quadricarinatus / Wang Y. et al. // Frontiers in physiology. 2020. Vol. 11. P. 878. https://doi.org/10.3389/fphys.2020.00878 
  77. Identification of sex-specific DNA markers: providing molecular evidence for the ZW sex determination system in the redclaw crayfish (Cherax quadricarinatus) / Jin L. et al. // Aquaculture. 2022. Vol. 546. 737254. https://doi.org/10.1016/j.aquaculture.2021.737254 
  78. In a pinch: mechanisms behind potential biotic resistance toward two invasive crayfish by native African freshwater crabs / South J. et al. // Frontiers in Ecology and Evolution. 2020. Vol. 8. P. 72. https://doi.org/10.3389/fevo.2020.00072 
  79. Influence of salinity on survival, growth, hemolymph osmolality, gill sodium potassium ATPase activity, and sodium potassium chloride co-transporter expression in the redclaw crayfish Cherax quadricarinatus / Rida R. et al. // Journal of the World Aquaculture Society. 2021. Vol. 52(2). P. 466—474. https://doi.org/10.1111/jwas.12762 
  80. Invasion and distribution of the redclaw crayfish, Cherax quadricarinatus, in Martinique / Baudry T. et al. // Knowledge and Management of Aquatic Ecosystems. 2020. Vol. 421. P. 50. https://doi.org/10.1051/kmae/2020041 
  81. Jutagate T., Kwangkhwang W., Saowakoon S. Growth and competitions of the Australian red-claw crayfish, Cherax quadricarinatus (von Martens, 1868) in Thailand: the experimental approaches // Aquatic Invasions. 2023. Vol. 18(1). P. 103—117. https://doi.org/10.3391/ai.2023.18.1.103301 
  82. Kawai T. Observation on mandible and gill morphology in Pacifastacus leniusculus and Cherax quadricarinatus with a review of the introduction of alien crayfish into Japan // Freshwater Crayfish. 2017. Vol. 23. P. 29—39. https://doi.org/10.5869/fc.2017.v23-1.29 
  83. Kuhu R., Mantiri R. O. S. E., Tombokan J. L. Some biological aspects of freshwater lobsters, Cherax quadricarinatus, in Ralik River of Southeast Minahasa and in Tondano Lake of Minahasa // Jurnal Ilmiah Platax. 2018. Vol. 7(1). P. 34. https://doi.org/10.35800/jip.7.1.2019.21444 
  84. Levy T., Sagi A. The “IAG-Switch” — a key controlling element in Decapod crustacean sex differentiation // Frontiers in Endocrinology. 2020. Vol. 11. P. 651. https://doi.org/10.3389/fendo.2020.00651 
  85. Macias N. A., Torres P. J., Colón-Gaud C. Records of the Australian redclaw crayfish Cherax quadricarinatus (Von Martens, 1868) on the island of Puerto Rico // BioInvasions Records. 2021. Vol. 10(2). P. 348—359. https://doi.org/10.3391/bir.2021.10.2.13 
  86. Madzivanzira T. C., South J., Weyl O. L. F. Invasive crayfish outperform Potamonautid crabs at higher temperatures // Freshwater Biology. 2021. Vol. 66(5). P. 978—991. https://doi.org/10.1111/fwb.13691 
  87. Madzivanzira T. C., Weyl O. L. F., South J. Ecological and potential socioeconomic impacts of two globally-invasive crayfish // NeoBiota. 2022. Vol. 72. P. 25—43. https://doi.org/10.3897/neobiota.72.71868 
  88. Marshall B. E. Crayfish, catfish and snails: the perils of uncontrolled biological control // African Journal of Aquatic Science. 2019. Vol. 44(1). P. 1—5. https://doi.org/10.2989/16085914.2019.1599810 
  89. Mobilization of energetic reserves during starvation in juveniles of different size of the redclaw crayfish Cherax quadricarinatus / Calvo N. S. et al. // Aquaculture Nutrition. 2018. Vol. 24(3). P. 952—960. https://doi.org/10.1111/anu.12631 
  90. Modeling the habitat suitability of two exotic freshwater crayfishes in Mesoamerica and the Caribbean: Cherax quadricarinatus (von Martens, 1868) and Procambarus clarkii Girard, 1852 (Decapoda: Astacidea: Parastacidae, Cambaridae) / Azofeifa-Solano J. C. et al. // Journal of Crustacean Biology. 2023. Vol. 43(4). ruad059. https://doi.org/10.1093/jcbiol/ruad059 
  91. Molecular characterization and expression profiling of three transformer-2 splice isoforms in the redclaw crayfish, Cherax quadricarinatus / Cai L. et al. // Frontiers in Physiology. 2020. Vol. 11(631). 10. https://doi.org/10.3389/fphys.2020.00631 
  92. Molecular characterization of the Ftz-f1 gene in redclaw crayfish Cherax quadricarinatus and its potential role in ovarian development / Chen L. et al. // Aquaculture Research. 2022. Vol. 53(15). P. 5261—5269. https://doi.org/10.1111/are.16010 
  93. Molecular identification and expression profiles of four splice variants of sex-lethal gene in Cherax quadricarinatus / Zheng J. et al. // Comparative Biochemistry and Physiology Part B: Biochemistry and Molecular Biology. 2019. Vol. 234. P. 26—33. https://doi.org/10.1016/j.cbpb.2019.05.002 
  94. Morphological and molecular identification of Diceratocephala boschmai Baer, 1953 and Decadidymus sp. Cannon, 1991 on wild and cultured environment of Cherax quadricarinatus in Malaysia / Hassan M. et al. // BioInvasions Records. 2022. Vol. 11(2). P. 495—509. https://doi.org/10.3391/bir.2022.11.2.22 
  95. Morphology and weight-length relationships for the first six instars of Cherax quadricarinatus (von Martens, 1868) / Rigg D. P. et al. // Freshwater Crayfish. 2021. Vol. 26(1). P. 9—16. https://doi.org/10.5869/fc.2021.v26-1.9 
  96. Morphometric characteristics of alien crayfish Cherax quadricarinatus from Maninjau Lake (West Sumatra, Indonesia) / Purnamasari L. et al. // Polish Journal of Natural Sciences. 2018. Vol. 33(3). P. 369—383.
  97. Neelima H., Srinivasa R. B., Ramachandra R. P. (2017). Crustacean molting: regulation and effects of environmental toxicants // Journal of Marine Science: Research & Development. 2017. Vol. 7(5). P. 236. http://dx.doi.org/10.4172/2155-9910.1000236 
  98. Neuroanatomy and morphological diversity of brain cells from adult crayfish Cherax quadricarinatus / Duan H. et al. // Journal of Oceanology and Limnology. 2018. Vol. 36(6). P. 2368—2378. https://doi.org/10.1007/s00343-019-7145-x 
  99. New insights into the regulation mechanism of red claw crayfish (Cherax quadricarinatus) hepatopancreas under air exposure using transcriptome analysis / Lu Y. P. et al. // Fish & Shellfish Immunology. 2023. Vol. 132. 108505. https://doi.org/10.1016/j.fsi.2022.108505 
  100. Nguyen C. D. H., Ventura T., Elizur A. Crustacean nuclear localization signals help facilitating the delivery of DNA into Australian red-claw crayfish cells // Aquaculture. 2019. Vol. 499. P. 149—159. https://doi.org/10.1016/j.aquaculture.2018.09.030 
  101. Nur M., Komariyah S., Haser T. F. The influence of various substrates on the survival of freshwater lobster (Cherax quadricarinatus) in the open transport system // Jurnal Ilmiah Samudra Akuatika. 2023. Vol. 7(2). P. 1—8. https://doi.org/10.33059/jisa.v7i2.9022 
  102. Nutritional composition and antioxidant activity of freshwater lobster in Malaysia: a short review / Tengku Zainal Abidin T. Z. H. et al. // Asian Journal of Chemistry. 2023. Vol. 35(2). P. 301—304. https://doi.org/10.14233/ajchem.2023.24050 
  103. Pendekatan truss morphometric dalam menganalisis kekerabatan populasi Cherax quadricarinatus (Von Martens, 1868) di Perairan Jawa Barat / Mashar A. et al. // Jurnal Pengelolaan Perikanan Tropis. 2019. Vol. 3(2). P. 20—27. http://dx.doi.org/10.29244/jppt.v3i2.30432 
  104. Phenotypic sorting of individual male and female intersex Cherax quadricarinatus and analysis of molecular differences in the gonadal transcriptome / Nong, C. et al. // Comparative Biochemistry and Physiology — Part D: Genomics and Proteomics. 2024. Vol. 49. 101194. https://doi.org/10.1016/j.cbd.2024.101194 
  105. Predicting Cherax quadricarinatus habitat distribution patterns through the usage of GIS and eDNA analysis in Terengganu, Malaysia / Dali M. Z. M. et al. // Sains Malaysiana. 2023. Vol. 52(2). P. 343—354. https://doi.org/10.17576/jsm-2023-5202-03 
  106. Predictor complexity and feature selection affect Maxent model transferability: evidence from global freshwater invasive species / Low B. W. et al. // Diversity and Distributions. 2021. Vol. 27(3). P. 497—511. https://doi.org/10.1111/ddi.13211 
  107. Presence of the Australian redclaw crayfish Cherax quadricarinatus (von Martens, 1868) (Parastacidae, Astacoidea) in a freshwater system in the Caribbean drainage of Costa Rica / Azofeifa-Solano J. C. et al. // BioInvasions Records. 2017. Vol. 6(4). P. 351—355. https://doi.org/10.3391/bir.2017.6.4.08 
  108. Prevalence of temnocephalids on cultured and wild Cherax quadricarinatus in Malaysia / Hassan M. et al. // Egyptian Journal of Aquatic Research. 2023. Vol. 49(3). P. 395—400. https://dx.doi.org/10.1016/j.ejar.2022.03.004 
  109. Produksi telur Cherax quadricarinatus (Von Martens, 1868) di danau Lido, Jawa Barat / Iqbal M. A. et al. // Jurnal Pengelolaan Perikanan Tropis. 2019. Vol. 3(2). P.45—52.
  110. Publisher Correction: The chromosome-level genome of Cherax quadricarinatus / Chen H. et al. // Scientific Data. 2023. Vol. 10(1). P. 313. https://doi.org/10.1038/s41597-023-02186-z 
  111. Red claw crayfish Cherax quadricarinatus cultivation influences the dynamics and assembly of benthic bacterial communities in paddy fields / Hou Y. et al. // Environments. 2023. Vol. 10(10). P. 178. https://doi.org/10.3390/environments10100178 
  112. Redclaw crayfish (Cherax quadricarinatus): spatial distribution and dispersal pattern in Java, Indonesia / Akmal S. G. et al. // Knowledge and Management of Aquatic Ecosystems. 2021. Vol. 422. P. 16. https://doi.org/10.1051/kmae/2021015 
  113. Redclaw crayfish, Cherax quadricarinatus (von Martens, 1868), widespread throughout Indonesia / Patoka J. et al. // BioInvasions Records. 2018. Vol. 7(2). P. 185—189. https://doi.org/10.3391/bir.2018.7.2.11 
  114. Reservoirs act as footholds for an invasive freshwater crayfish / Beatty S. J. et al. // Pacific Conservation Biology. 2020. Vol. 26(1). P. 78—83. https://doi.org/10.1071/PC19012 
  115. Reverse transcription polymerase chain reaction (RT-PCR) detection for Australian Cherax reovirus from redclaw crayfish (Cherax quadricarinatus) / Hayakijkosol O. et al. // Aquaculture. 2021. Vol. 530. 735881. https://doi.org/10.1016/j.aquaculture.2020.735881 
  116. Ridwanto Daulay A. S., Gurning K. Isolation and characterization of chitosan from sea and freshwater waste, North Sumatera province, Indonesia // Rasayan Journal of Chemistry. 2022. Vol. 15(2). P. 780—785. https://doi.org/10.31788/RJC.2022.1526721 
  117. Risk assessment of pet-traded decapod crustaceans in Hungary with evidence of Cherax quadricarinatus (von Martens, 1868) in the wild / Weiperth A. et al. // North-Western Journal of Zoology. 2019. Vol. 15(1). P. 42—47.
  118. Sakuna K., Elliman J., Owens L. Comparison of molecular detection PCR methods for Chequa iflavirus in freshwater crayfish, Cherax quadricarinatus // Journal of virological methods. 2018. Vol. 251. P. 139—144. https://doi.org/10.1016/j.jviromet.2017.10.013 
  119. Sanjar A., Davis D. R., Kline R. J. Evidence of an established population of Cherax quadricarinatus (von Martens, 1868) in south Texas, USA // BioInvasions Records. 2023. Vol. 12(1). P. 284—291. https://doi.org/10.3391/bir.2023.12.1.24 
  120. Shelters presence effect on development of early juvenile Cherax quadricarinatus (Decapoda; Parastacidae)/ Hernández-Rubio M. C. et al. // Hidrobiologica. 2021. Vol. 30(3). P. 69—75. https://doi.org/10.24275/uam/izt/dcbs/hidro/2021v31n1/Hernandez 
  121. Sidharta V., Pinandoyo P., Nugroho R. A. Performa kematangan gonad, fekunditas, dan derajat penetasan melalui strategi pemberian pakan alami yang berbeda pada calon induk lobster air tawar (Cherax quadricarinatus) // Jurnal Sains Akuakultur Tropis. 2018. Vol. 2(2). P. 64—74. https://doi.org/10.14710/sat.v2i2.3150 
  122. Smith G., Glendinning S., Ventura T. Transcriptomic changes following induced de-masculinisation of Australian red claw crayfish Cherax quadricarinatus // International Journal of Molecular Sciences. 2023. Vol. 24(4). P. 3292. https://doi.org/10.3390/ijms24043292 
  123. Socioeconomic impacts of Australian redclaw crayfish Cherax quadricarinatus in Lake Kariba / Chakandinakira A. T. et al. // Biological Invasions. 2023. Vol. 25(9). P. 2801—2812. https://doi.org/10.1007/s10530-023-03074-8 
  124. Standardisation of alien invasive Australian redclaw crayfish Cherax quadricarinatus sampling gear in Africa / Madzivanzira T. C. et al. // Water SA. 2021. Vol. 47(3). P. 380—384. https://doi.org/10.17159/wsa/2021.v47.i3.11866 
  125. Study of the embryonic period of female crayfish egg development in different species / Slusar M. et al. // Scientific Horizons. 2023. Vol. 26(12). P. 22—31. https://doi.org/10.48077/scihor12.2023.22 
  126. Study on interaction of autophagosome and microtubule during autophagy process in Cherax quadricarinatus / Meng F. et al. // Journal of Fisheries of China. 2019. Vol. 43(12). P. 2494—2500. https://doi.org/10.11964/jfc.20180811406 
  127. Susanto G. N., Supono Ikrom F. D. Sex reversal of juvenile freshwater crayfish (Cherax quadricarinatus) influenced by steroid extract of sea cucumber and 17α-methyltestosterone hormone at different temperatures // In AIP Conference Proceedings. 2018. 2002(1). https://doi.org/10.1063/1.5050123 
  128. Syaharuddin S. Pengaruh penambahan kalsium karbonat (CaCO3) terhadap kelangsungan hidup benih lobster air tawar (Cherax quadricarinatus) // Agrokompleks. 2021. Vol. 21(2). P. 48—52. https://doi.org/10.51978/japp.v21i2.369 
  129. Tampubolon I., Maitindom F. A. Length weight relationship of fresh water lobster (Cherax quadricarinatus) in Lake Paniai, Paniai district // Jurnal Cakrawala Ilmiah. 2023. Vol. 2(8). P. 3251—3260. https://doi.org/10.53625/jcijurnalcakrawalailmiah.v2i8.5518 
  130. Taryono Mashar A., Aryasa S. Management policy of invasive species red claw crayfish (Cherax quadricarinatus) at Lido Lake, Bogor Regency // In IOP Conference Series: Earth and Environmental Science. 2021. Vol. 744. 012090. https://doi.org/10.1088/1755-1315/744/1/012090 
  131. Tee Z-B., Ibrahim S., Teoh C-Y. Comparative study on the nutritional content and physical attributes of giant freshwater prawn (Macrobrachium rosenbergii) and redclaw crayfish (Cherax quadricarinatus) meats : preprint (Version 1) available at Research Square. 2022. 07 June. https://doi.org/10.21203/rs.3.rs-1695209/v1 
  132. The chromosome-level genome of Cherax quadricarinatus / Chen H. et al. // Scientific data. 2023. Vol. 10(1). P. 215. https://doi.org/10.1038/s41597-023-02124-z 
  133. The combined effect of vitamin E, arachidonic acid, Haemtococcus pluvialis, nucleotides and yeast extract on growth and ovarian development of crayfish (Cherax quadricarinatus) by the orthogonal array design / Shehata A. I. et al. // Aquaculture Nutrition. 2020. Vol. 26(6). P. 2007—2022. https://doi.org/10.1111/anu.13142 
  134. The diet of an invasive crayfish, Cherax quadricarinatus (Von Martens, 1868), in Lake Kariba, inferred using stomach content and stable isotope analyses / Marufu, L. T. et al. // BioInvasions Records. 2018. Vol. 7(2). P. 121—132. https://doi.org/10.3391/bir.2018.7.2.03 
  135. The effect of the lectin from Cherax quadricarinatus on its granular hemocytes / Sánchez-Salgado J. L. et al. // Fish & Shellfish Immunology. 2018. Vol. 77. P. 131—138. https://doi.org/10.1016/j.fsi.2018.03.050 
  136. The first identification of a C-type lectin gene (CqCTL) in Cherax quadricarinatus: sequence features and expression profiles / Wang Y. et al. // Invertebrate Survival Journal. 2020. Vol. 17(1). P. 108—116. https://doi.org/10.25431/1824-307X/isj.v0i0.108-116 
  137. The first occurrence of the Australian redclaw crayfish Cherax quadricarinatus (von Martens, 1868) in the contiguous United States / Morningstar C. R. et al. // BioInvasions Records. 2020. Vol. 9(1). P. 120—126. https://doi.org/10.3391/bir.2020.9.1.16 
  138. The introduction, spread and ecology of redclaw crayfish Cherax quadricarinatus in the Zambezi catchment / Douthwaite R. J. et al. // African Journal of Aquatic Science. 2018. Vol. 43. P. 353—366. https://doi.org/10.2989/16085914.2018.1517080 
  139. The invasive crayfish Cherax quadricarinatus facing chlordecone in Martinique: bioaccumulation and depuration study / Baudry T. et al. // Chemosphere. 2022. Vol. 286. 131926. https://doi.org/10.1016/j.chemosphere.2021.131926 
  140. The survival rate and growth of juvenile crayfish (Cherax quadricarinatus) with different types of shelter / Mamuaya J. et al. // Jurnal Ilmiah Platax. 2019. Vol. 7(2). P. 427—431. http://dx.doi.org/10.35800/jip.7.2.2019.24510 
  141. The use of nutmeg oil (Myristica fragrans) Houttuyn 1774 as anesthetic component in different concentrations for the young freshwater lobster (Cherax quadricarinatus) Von Martens1868 / Mamuko N. et al. // E-Journal Budidaya Perairan. 2021. Vol. 10(1). P. 73—80. https://doi.org/10.35800/bdp.10.1.2022.35535 
  142. Tierney L. J., Wild C. H., Furse J. M. Total incombustible (mineral) content of Cherax quadricarinatus differs between feral populations in Central-Eastern Australia // PeerJ. 2019. Vol. 17. http://dx.doi.org/10.7717/peerj.6351 
  143. Tiftazani M. H., Suparmi Sumarto. Storage time of freshwater lobster (Cherax quadricarinatus) with green betel leaf anesthesia (Piper betle L.) // Terubuk. 2022. Vol. 50(3). P. 1619—1623.
  144. Todd S.-R. L., Hyslop E. J. Morphometrics, diet, reproductive biology, and ecological interactions of the introduced redclaw crayfish, Cherax quadricarinatus (Decapoda: Parastacidae), in Jamaica, West Indies // Caribbean Journal of Science. 2023. Vol. 53(2). P. 397—410. https://doi.org/10.18475/cjos.v53i2.a21 
  145. Transcriptomic analysis of crustacean molting gland (Y-organ) regulation via the mTOR signaling pathway / Shyamal S. et al. // Scientific Reports. 2018. Vol. 8. 7307. https://doi.org/10.1038/s41598-018-25368-x 
  146. Two homogametic genotypes — one crayfish: on the consequences of intersexuality / Levy T. et al. // iScience. 2020. Vol. 23. 101652. https://doi.org/10.1016/j.isci.2020.101652 
  147. Veenstra J. A. Gonadulins, the fourth type of insulin-related peptides in decapods // General and Comparative Endocrinology. 2020. Vol. 296. 113528. https://doi.org/10.1016/j.ygcen.2020.113528 
  148. Why suggesting australian redclaw crayfish Cherax quadricarinatus as biological control agents for snails is a bad idea / Weyl O. L. F. et al. // African Journal of Aquatic Science. 2017. Vol. 42(4). P. 325—327. https://doi.org/10.2989/16085914.2017.1414685 
  149. Yau S. M., Lau A. First record of the australian redclaw crayfish Cherax quadricarinatus (Von Martens, 1868) in Hong Kong, China // BioInvasions Records. 2021. Vol. 10(2). P. 369—377. https://doi.org/10.3391/bir.2021.10.2.15 
  150. Yuan J., Zheng Y., Gu Z. Effects of cypermethrin on the hepatic transcriptome and proteome of the red claw crayfish Cherax quadricarinatus // Chemosphere. 2021. Vol. 263. 128060. https://doi.org/10.1016/j.chemosphere.2020.128060 
  151. Zhu K., Yang F., Li F. Molecular markers for hemocyte subpopulations in crayfish Cherax quadricarinatus // Developmental and comparative immunology. 2022. Vol. 132. 104407. https://doi.org/10.1016/j.dci.2022.104407 
  152. Зв’язок хімічних та фізичних показників води з морфологічними ознаками раків різних видів / Федорович Є. І. та ін. // Вісник Сумського національного аграрного університету. 2022. № 4(47). С. 165—170. https://doi.org/10.32845/bsnau.lvst.2021.4.28 
  153. Особливості зовнішньої будови Cherax quadricarinatus (Von Martens, 1868) / Гриневич Н. Є. та ін. // Problems of science and practice, tasks and ways to solve them : XX International scientific and practical conference, Warsaw, Poland, May 24-27 2022 : proceed. Warsaw, 2022. P. 44—46.
  154. Особливості процесу линьки раків різних видів / Федорович Є. І. та ін. // Таврійський науковий вісник. 2022. Вип. 126. С. 230—237. https://doi.org/10.32851/2226-0099.2022.126.32