| Literature DB >> 27635363 |
Ricardo M Landínez-García1, Edna J Márquez1.
Abstract
The Neotropical freshwater fish Ichthyoelephas longirostris (Characiformes: prochilodontidae) is a short-distance migratory species endemic to Colombia. This study developed for the first time a set of 24 polymorphic microsatellite loci by using next-generation sequencing to explore the population genetics of this commercially exploited species. Nineteen of these loci were used to assess the genetic diversity and structure of 193 I. longirostris in three Colombian rivers of the Magdalena basin. Results showed that a single genetic stock circulates in the Cauca River, whereas other single different genetic stock is present in the rivers Samaná Norte and San Bartolomé-Magdalena. Additionally, I. longirostris was genetically different among and across rivers. This first insight about the population genetic structure of I. longirostris is crucial for monitoring the genetic diversity, the management and conservation of its populations, and complement the genetic studies in Prochilodontidae.Entities:
Keywords: Genetic structure; Molecular marker; Next-generation sequencing; Population genetics
Year: 2016 PMID: 27635363 PMCID: PMC5012415 DOI: 10.7717/peerj.2419
Source DB: PubMed Journal: PeerJ ISSN: 2167-8359 Impact factor: 2.984
Figure 1Sampling sites (stars) of I. longirostris in the Colombian rivers Cauca (A), San Bartolomé and Samaná Norte (B).
Primer sequences and characteristics of 24 polymorphic microsatellite loci identified in Ichthyoelephas longirostris.
| Name | Primer sequence for forward (F) and reverse (R) (5′ − 3′) | Repeat motif | Number of alelles | PIC | |||
|---|---|---|---|---|---|---|---|
| Ilo01 | F: TGCATCTGAGCTGATGGAGG | (AAAAC)n | 8 | 0.857 | 0.828 | 0.789 | 0.326 |
| R: AGTCTCTCTGCAGGTTGGGG | |||||||
| Ilo03 | F: CAGATGCAGCTGAACACGG | (AAAC)n | 5 | 0.571 | 0.509 | 0.411 | 0.968 |
| R: TTGTAAACTGGCAGTGTGTTAAACC | |||||||
| Ilo04 | F: GAAGCTGGCGAATAGAAGGC | (AAAC)n | 7 | 0.526 | 0.605 | 0.555 | 0.125 |
| R: TGACCTACTGTGAAACTGGGG | |||||||
| Ilo05 | F: GAAGGAACTGAGGTGCAGGG | (AAAG)n | 9 | 0.773 | 0.791 | 0.773 | 0.886 |
| R: CACATCTCCCTCTGTATCCCC | |||||||
| Ilo06 | F: TCCGTTGATGTAACAACATTAGCC | (AAAG)n | 10 | 0.741 | 0.848 | 0.832 | 0.420 |
| R: GCTCCCTGTGCTCTTCTGC | |||||||
| Ilo08 | F: GGTTGGGAGTGCCAGATAGG | (AAAG)n | 8 | 0.679 | 0.742 | 0.702 | 0.218 |
| R: AGTGCAGTGCTCAGTCCAGC | |||||||
| Ilo09 | F: ATGTTTGTGGCATCACCAGG | (AAATC)n | 9 | 0.821 | 0.799 | 0.755 | |
| R: CTGGCAGTGCTACCTCAACC | |||||||
| Ilo10 | F: TACGACAGCTGACTGACCCG | (AAC)n | 8 | 0.714 | 0.808 | 0.763 | 0.693 |
| R: CCCCTAAGAGACAACCGACC | |||||||
| Ilo11 | F: TGTCGTGTCATGTTGTGTCG | (AACAT)n | 5 | 0.308 | 0.609 | 0.548 | |
| R: CCCTGTACATGTCCTTCAGAGC | |||||||
| Ilo12 | F: TTGGACCAGATGTGTTTGCC | (AACG)n | 4 | 0.571 | 0.689 | 0.677 | 0.455 |
| R: TCCTCAGGCATCCTACTGCC | |||||||
| Ilo15 | F: CATAGTAGTGTCATACAACACCTGTGC | (AATG)n | 8 | 0.714 | 0.838 | 0.799 | |
| R: TCATTAACCCGTTTGGTGAGG | |||||||
| Ilo16 | F: AGTGTGCGGGGTTAAACTGC | (AATG)n | 8 | 0.630 | 0.661 | 0.602 | 0.861 |
| R: CCTGCGGTAGACTGGTAATCC | |||||||
| Ilo17 | F: GCAGATGCTTTGGAGTTCCC | (AATG)n | 10 | 0.857 | 0.866 | 0.835 | 0.051 |
| R: TGGCATGATTATCAATGGGC | |||||||
| Ilo18 | F: ATAACTCTGCACTTCGGGGC | (AATG)n | 5 | 0.393 | 0.401 | 0.375 | 0.561 |
| R: ATCTAAACCGCATGTGAGCC | |||||||
| Ilo20 | F: ATTTTCACTCGTCGAAGCCC | (AGGCT)n | 8 | 0.714 | 0.762 | 0.749 | 0.210 |
| R: TGATGTAAACCACAGGCACG | |||||||
| Ilo21 | F: TCCATAACTTGTTTTGCTGCG | (AGT)n | 18 | 0.75 | 0.886 | 0.871 | 0.232 |
| R: AATCTATAGTCTGAGAGCAACGGC | |||||||
| Ilo22 | F: AAAACAATGCGCTGAATGC | (ATAC)n | 4 | 0.536 | 0.647 | 0.636 | 0.227 |
| R: ATGTGTACGTGTATATATGCTGGC | |||||||
| Ilo23 | F: CCAAACTGCTCATTCTGGAGG | (ATAC)n | 10 | 0.857 | 0.881 | 0.865 | 0.680 |
| R: TGGGACGCTTCTTTAGCTCC | |||||||
| Ilo24 | F: ACTGCACACTTGAGATCTGGG | (ATCT)n | 10 | 0.75 | 0.86 | 0.844 | 0.311 |
| R: GGTACGTTAGCCAAACAGACTGG | |||||||
| Ilo26 | F: TTAAGAGCTCAGAGCGTGCG | (ATCT)n | 11 | 0.815 | 0.853 | 0.837 | 0.137 |
| R: TGTTTAGCAACTTATTTATGACCTATGACC | |||||||
| Ilo29 | F: ATCTATCTGACAGACTATCTGTTTATTCC | (ATCT)n | 8 | 0.667 | 0.861 | 0.845 | |
| R: GAAGCACTCAGAGACAGACAGG | |||||||
| Ilo35 | F: GGATACCCTAAATTTCCTTTGGG | (TCCG)n | 11 | 0.250 | 0.935 | 0.871 | |
| R: GCATCACAGCGTCAAGAACC | |||||||
| Ilo37 | F: CACACAAACACTCATCTTAAAAGTCTCC | (TCTG)n | 12 | 0.821 | 0.885 | 0.856 | 0.241 |
| R: GACCTGCGGAAAGAGAATGG | |||||||
| Ilo40 | F: CAGAGTTTTGGCCGTGAGG | (TTC)n | 8 | 0.750 | 0.833 | 0.795 | 0.218 |
| R: CAGGGAGGAGTAGTGTCGGG |
Notes.
observed and expected heterozygosity estimated from 28 individuals, respectively
polymorphic information content
statistical significance for tests of departure of Hardy–Weinberg equilibrium
Genetic diversity per locus and across loci in I. longirostris from the Colombian rivers Cauca, San Bartolomé-Magdalena and Samaná Norte.
| Cauca River-S6 ( | Cauca River-S2/3 ( | Cauca-River-S1 ( | San Bartolomé-Magdalena ( | Samaná Norte River ( | |||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Locus | Ra | Na | Na | Na | Na | Na | |||||||||||||||
| Ilo10 | 186–237 | 12 | 0.880 | 0.869 | 0.346 | 12 | 0.975 | 0.871 | 0.518 | 13 | 0.879 | 0.877 | 0.269 | 12 | 0.826 | 0.850 | 0.529 | 16 | 0.857 | 0.877 | 0.134 |
| Ilo40 | 125–164 | 10 | 0.960 | 0.888 | 0.226 | 13 | 0.929 | 0.870 | 0.148 | 12 | 0.909 | 0.883 | 0.622 | 12 | 0.913 | 0.885 | 0.297 | 12 | 0.886 | 0.859 | 0.184 |
| Ilo09 | 256–316 | 9 | 0.760 | 0.766 | 0.562 | 10 | 0.786 | 0.795 | 0.443 | 8 | 0.788 | 0.775 | 0.759 | 6 | 0.739 | 0.758 | 0.148 | 12 | 0.743 | 0.807 | 0.419 |
| Ilo12 | 161–193 | 6 | 0.720 | 0.752 | 0.136 | 9 | 0.881 | 0.759 | 0.620 | 7 | 0.606 | 0.735 | 0.214 | 5 | 0.545 | 0.710 | 0.084 | 8 | 0.750 | 0.761 | 0.525 |
| Ilo20 | 163–203 | 7 | 0.840 | 0.784 | 0.848 | 8 | 0.786 | 0.818 | 0.301 | 7 | 0.788 | 0.811 | 0.750 | 8 | 0.652 | 0.788 | 0.151 | 8 | 0.843 | 0.786 | 0.547 |
| Ilo17 | 244–308 | 10 | 0.720 | 0.835 | 0.386 | 13 | 0.878 | 0.849 | 0.327 | 9 | 1.000 | 0.838 | 0.069 | 9 | 0.913 | 0.855 | 0.885 | 14 | 0.786 | 0.874 | |
| Ilo37 | 96–148 | 7 | 0.960 | 0.827 | 0.085 | 9 | 0.929 | 0.861 | 9 | 0.818 | 0.846 | 0.872 | 9 | 0.818 | 0.859 | 0.861 | 12 | 0.857 | 0.847 | 0.139 | |
| Ilo01 | 195–245 | 10 | 0.760 | 0.816 | 0.656 | 9 | 0.905 | 0.868 | 0.435 | 10 | 0.758 | 0.841 | 8 | 0.864 | 0.816 | 0.310 | 10 | 0.897 | 0.800 | 0.737 | |
| Ilo18 | 237–281 | 9 | 0.520 | 0.624 | 0.370 | 10 | 0.667 | 0.648 | 0.136 | 6 | 0.545 | 0.642 | 0.332 | 6 | 0.455 | 0.399 | 1.000 | 9 | 0.522 | 0.646 | |
| Ilo26 | 102–232 | 11 | 0.720 | 0.868 | 0.176 | 14 | 0.829 | 0.916 | 11 | 0.788 | 0.877 | 12 | 0.818 | 0.907 | 0.066 | 16 | 0.806 | 0.902 | 0.224 | ||
| Ilo22 | 214–298 | 13 | 0.737 | 0.925 | 0.073 | 15 | 0.667 | 0.904 | 13 | 0.879 | 0.878 | 0.112 | 11 | 0.913 | 0.887 | 0.404 | 14 | 0.714 | 0.886 | ||
| Ilo15 | 152–200 | 7 | 0.680 | 0.811 | 0.428 | 10 | 0.833 | 0.821 | 0.714 | 8 | 0.758 | 0.819 | 8 | 0.591 | 0.846 | 9 | 0.786 | 0.813 | 0.472 | ||
| Ilo04 | 254–286 | 5 | 0.760 | 0.682 | 0.683 | 6 | 0.825 | 0.677 | 6 | 0.818 | 0.690 | 0.221 | 7 | 0.810 | 0.770 | 0.052 | 8 | 0.681 | 0.730 | ||
| Ilo16 | 169–205 | 3 | 0.522 | 0.634 | 0.350 | 7 | 0.353 | 0.680 | 5 | 0.276 | 0.606 | 6 | 0.647 | 0.742 | 0.583 | 7 | 0.571 | 0.565 | 0.464 | ||
| Ilo06 | 188–268 | 12 | 0.960 | 0.824 | 17 | 0.881 | 0.839 | 10 | 0.788 | 0.779 | 0.105 | 9 | 0.591 | 0.845 | 16 | 0.952 | 0.863 | 0.202 | |||
| Ilo23 | 242–294 | 8 | 0.455 | 0.773 | 8 | 0.692 | 0.717 | 7 | 0.636 | 0.719 | 4 | 0.652 | 0.691 | 0.213 | 12 | 0.702 | 0.809 | ||||
| Ilo21 | 165–276 | 23 | 0.680 | 0.921 | 27 | 0.786 | 0.912 | 15 | 0.576 | 0.821 | 17 | 0.652 | 0.876 | 28 | 0.768 | 0.937 | |||||
| Ilo11 | 234–274 | 7 | 0.360 | 0.784 | 6 | 0.447 | 0.809 | 6 | 0.394 | 0.723 | 4 | 0.318 | 0.706 | 8 | 0.441 | 0.757 | |||||
| Ilo03 | 167–199 | 5 | 0.320 | 0.619 | 7 | 0.524 | 0.737 | 6 | 0.545 | 0.709 | 5 | 0.435 | 0.747 | 8 | 0.545 | 0.717 | |||||
| 9.158 | 0.701 | 0.773 | 11.053 | 0.767 | 0.798 | 8.842 | 0.713 | 0.771 | 8.316 | 0.692 | 0.768 | 11.947 | 0.742 | 0.796 | |||||||
Notes.
allelic size range
average number alleles per locus
observed and expected heterozygosity, respectively
statistical significance for tests of departure of Hardy–Weinberg equilibrium
Figure 2Population structure suggested by STRUCTURE and Discriminant analysis of principal components.
(A, B) Bar plots of population ancestry coefficients as estimated by STRUCTURE. Plots are provided for K = 2 and 4. The q-values were consensus estimates produced by CLUMPP across 20 iterations of STRUCTURE. In (C–E), Discriminant analysis of principal components including the full set of 19 microsatellite loci and three Colombian rivers (C), three sections of Cauca River (D) and the rivers San Bartolomé and Samaná Norte (E). This analysis utilized 38 Principal Component Analysis and the first two linear discriminants.
Pair-wise Jost’s Dest (upper diagonal) and F’st (below diagonal) among samples of I. longirostris from the Colombian rivers Cauca, San Bartolomé and Samaná Norte.
| S1_Cauca | S2/3_Cauca | S6_Cauca | San Bartolomé | Samaná Norte | |
|---|---|---|---|---|---|
| S1_Cauca | |||||
| S2/3_Cauca | 0.001 | ||||
| S6_Cauca | 0.009 | ||||
| San Bartolomé | |||||
| Samaná Norte |
Notes.
Values in bold denote statistical significance.