Chromosomes of Asian Cyprinid Fishes: Genomic Differences in Conserved Karyotypes of ‘Poropuntiinae’ (Teleostei, Cyprinidae)
Abstract
:Simple Summary
Abstract
1. Introduction
Species | 2n | NF | Karyotype | NORs/18S rDNA Pairs | Reference |
---|---|---|---|---|---|
Amblyrhynchichthys truncatus | 50 | 78 | 16m + 12sm + 22a | - | [25] |
Barbonymus altus | 50 | 86 | 12m + 14sm + 10st + 14a | 2 | [26] |
Barbonymus gonionotus | 50 | 66 | 2m + 4sm + 10st + 34a | - | [27] |
Barbonymus gonionotus | 50 | 72 | 2m + 20sm + 4st + 24a | - | [28,29] |
Barbonymus gonionotus | 50 | 74 | 12m + 12sm + 4st + 22a | - | [30] |
Balantiocheilos melanopterus | 50 | 70 | 14m + 6sm + 10st + 20a | - | [31] |
Balantiocheilos melanopterus | 50 | 74 | 6m + 18sm + 16st + 10a | 2 | [32] |
Barbonymus schwanenfeldi | 50 | 76 | 6m + 6sm + 14st + 24a | - | [27] |
Barbonymus schwanenfeldii | 50 | 84 | 6m + 28sm/st + 16a | - | [33] |
Cosmochilus harmandi | 50 | 82 | 22m + 10sm + 10st + 8a | - | [34] |
Cosmochilus harmandi | 50 | 84 | 12m + 16sm + 6st + 16a | 8 | [26] |
Cosmochilus harmandi | 50 | 92 | 20m + 22sm + 4st + 4a | 2, 17 | Present work |
Cyclocheilichthys apogon | 50 | 70 | 12m + 8sm + 6st + 24a | - | [28] |
Cyclocheilichthys apogon | 50 | 76 | 18m + 8sm + 4st + 20a | - | [31] |
Cyclocheilichthys apogon | 50 | 86 | 10m + 16sm + 10st + 14a | 6 | [26] |
Cyclocheilichthys apogon | 50 | 74 | 14m + 30sm + 6a | 11, 14, 20 | Present work |
Cyclocheilichthys armatus | 50 | 94 | 12m + 18sm + 14st + 6a | 3, 7 | [35] |
Cyclocheilichthys repasson | 50 | 78 | 12m + 16sm + 6st + 16a | - | [36] |
Cyclocheilichthys repasson | 50 | 84 | 6m + 6sm + 22st + 16a | - | [27] |
Cyclocheilos enoplos | 50 | 90 | 10m + 30sm + 4st + 6a | two pairs (sm, a) | [37] |
Cyclocheilos enoplos | 50 | 72 | 14m + 8sm + 10st + 18a | - | [38] |
Cyclocheilos enoplos | 50 | 78 | 16m + 12sm + 6st + 16a | - | [31] |
Hypsibarbus lagleri | 50 | 74 | 4m + 20sm + 26a | - | [39] |
Hypsibarbus malcolmi | 50 | 64 | 10m + 4sm + 36a | - | [36] |
Hypsibarbus malcolmi | 50 | 62 | 8m + 4sm + 38a | 1, 5 | Present work |
Hypsibarbus vernayi | 50 | 58 | 6m + 2sm + 4st + 38a | - | [39] |
Hypsibarbus wetmorei | 50 | 70 | 12m + 8sm + 6st + 24a | - | [28] |
Hypsibarbus wetmorei | 50 | 74 | 12m + 12sm + 4st + 22a | 2 | [40] |
Hypsibarbus wetmorei | 50 | 74 | 12m + 12sm + 2st + 24a | - | [39] |
Hypsibarbus wetmorei | 50 | 82 | 10m + 14sm + 8st + 18a | 6 | [26] |
Hypsibarbus wetmorei | 50 | 78 | 14m + 14sm + 22a | 2 | Present work |
Mystacoleucus argenteus | 50 | 76 | 6m + 20sm + 2st + 22a | - | [25] |
Mystacoleucus chilopterus | 50 | 72 | 8m + 14sm + 4st + 24a | 1 | Present work |
Mystacoleucus ectypus | 50 | 72 | 10m + 12sm + 8st + 20a | 7 | Present work |
Mystacoleucus marginatus | 50 | 76 | 16m + 10sm + 24a | - | [41] |
Mystacoleucus marginatus | 50 | 68 | 14m + 4sm + 2st + 30a | - | [31] |
Poropuntius chonglingchungi | 50 | 80 | 12m + 18sm + 20a | - | [42] |
Poropuntius deauratus | 50 | 74 | 14m + 10sm + 26a | - | [34] |
Poropuntius laoensis | 50 | 74 | 14m + 10sm + 10st + 16a | - | [43] |
Poropuntius normani | 50 | 72 | 10m + 12sm + 28a | - | [36] |
Poropuntius sinensis | 50 | 82 | 10m + 22sm + 18a | [44] | |
Puntioplties falcifer | 50 | 80 | 14m + 16sm + 2st + 18a | - | [36] |
Puntioplties falcifer | 50 | 92 | 16m + 10sm + 16st + 8a | [27] | |
Puntioplties proctozysron | 50 | 76 | 20m + 6sm + 6st + 18a | - | [38] |
Puntioplties proctozysron | 50 | 76 | 16m + 10sm + 24a | - | [37] |
Puntioplties proctozysron | 50 | 82 | 6m + 14sm + 12st + 18a | 2 | [45] |
Puntioplties proctozysron | 50 | 90 | 18m + 22sm + 6st + 4a | 12 | Present work |
Scaphognathops bandanensis | 50 | 64 | 10m + 6sm + 34a | - | [36] |
Scaphognathops bandanensis | 50 | 66 | 10m + 6sm + 34a | 2 | [16] |
Sikukia gudgeri | 50 | 68 | 10m + 8sm + 4st + 28a | - | [34] |
2. Materials and Methods
2.1. Individuals, Mitotic Chromosome Preparation and Ag-NOR Banding
2.2. Fluorescence In Situ Hybridization (FISH)
2.3. Comparative Genomic Hybridization (CGH)
2.4. Karyotyping and Image Processing
3. Results
3.1. Karyotypes and Ag-NOR Phenotypes
3.2. FISH-Mapping
3.3. CGH-Studies
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Species | Hydrographic Basin | n |
---|---|---|
Cosmochilus harmandi | Chao Phraya (site 1) | 07♀; 06♂ |
Cyclocheilichthys apogon | Mae Klong (site 2) | 08♀; 11♂ |
Hypsibarbus malcolmi | Mekong (site 3) | 09♀; 09♂ |
Hypsibarbus wetmorei | Mekong (site 4) | 07♀; 05♂ |
Mystacoleucus chilopterus | Mae Klong (site 5) | 06♀; 08♂ |
Mystacoleucus ectypus | Mae Klong (site 6) | 06♀; 06♂ |
Puntioplites proctozysron | Mae Klong (site 7) | 07♀; 06♂ |
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Khensuwan, S.; Sassi, F.d.M.C.; Moraes, R.L.R.; Jantarat, S.; Seetapan, K.; Phintong, K.; Thongnetr, W.; Kaewsri, S.; Jumrusthanasan, S.; Supiwong, W.; et al. Chromosomes of Asian Cyprinid Fishes: Genomic Differences in Conserved Karyotypes of ‘Poropuntiinae’ (Teleostei, Cyprinidae). Animals 2023, 13, 1415. https://doi.org/10.3390/ani13081415
Khensuwan S, Sassi FdMC, Moraes RLR, Jantarat S, Seetapan K, Phintong K, Thongnetr W, Kaewsri S, Jumrusthanasan S, Supiwong W, et al. Chromosomes of Asian Cyprinid Fishes: Genomic Differences in Conserved Karyotypes of ‘Poropuntiinae’ (Teleostei, Cyprinidae). Animals. 2023; 13(8):1415. https://doi.org/10.3390/ani13081415
Chicago/Turabian StyleKhensuwan, Sudarat, Francisco de M. C. Sassi, Renata L. R. Moraes, Sitthisak Jantarat, Kriengkrai Seetapan, Krit Phintong, Weera Thongnetr, Sarawut Kaewsri, Sarun Jumrusthanasan, Weerayuth Supiwong, and et al. 2023. "Chromosomes of Asian Cyprinid Fishes: Genomic Differences in Conserved Karyotypes of ‘Poropuntiinae’ (Teleostei, Cyprinidae)" Animals 13, no. 8: 1415. https://doi.org/10.3390/ani13081415