Isolation and Characterization of Simple Sequence Repeats (SSR) Markers from the Moss Genus Orthotrichum Using a Small Throughput Pyrosequencing Machine
Abstract
1. Introduction
2. Results and Discussion
3. Experimental Section
3.1. Plant Materials
3.2. DNA Extraction
3.3. DNA Library Preparation and Sequencing
3.4. Genotyping Test
4. Conclusions
Acknowledgements
References
- Kalia, R.K.; Rai, M.K.; Kalia, S.; Singh, R.; Dhawan, A.K. Microsatellite markers: An overview of the recent progress in plants. Euphytica 2011, 177, 309–334. [Google Scholar]
- Karlin, E.F.; Boles, S.; Shaw, A.J. Resolving boundaries between species in Sphagnum section Subsecunda using microsatellite markers. Taxon 2008, 57, 1189–1200. [Google Scholar]
- Pirseyedi, S.M.; Valizadehghan, S.; Mardi, M.; Ghaffari, M.R.; Mahmoodi, P.; Zahravi, M.; Zeinalabedini, M.; Nekoui, S.M.K. Isolation and characterization of novel microsatellite markers in pomegranate (Punica granatum L.). Int. J. Mol. Sci 2010, 11, 2010–2016. [Google Scholar]
- Chen, L.; Xu, H.; Li, H.; Wu, J.; Ding, H.; Liu, Y. Isolation and characterization of sixteen polymorphic microsatellite loci in the golden apple snail Pomacea canaliculata. Int. J. Mol. Sci 2011, 12, 5993–5998. [Google Scholar]
- Li, R.; Yang, J.; Yang, J.; Dao, Z. Isolation and characterization of 21 microsatellite loci in Cardiocrinum giganteum var. yunnanense (Liliaceae), an important economic plant in China. Int. J. Mol. Sci 2012, 13, 1437–1443. [Google Scholar]
- Provan, J.; Wilson, P.J. Development of microsatellites for the peat moss Sphagnum capillifolium using ISSR cloning. Mol. Ecol. Notes 2007, 7, 254–256. [Google Scholar]
- Chiang, T.-Y.; Tzeng, T.-D.; Lin, H.-D.; Cho, C.-J.; Lin, F.-J. Isolation and characterization of polymorphic microsatellite loci from Metapenaeopsis barbata using PCR-based Isolation of Microsatellite Arrays (PIMA). Int. J. Mol. Sci 2012, 13, 2763–2768. [Google Scholar]
- Somme, L.; Raabova, J.; Jacquemart, A.L.; Raspe, O. Development and multiplexing of microsatellite markers using pyrosequencing in the clonal plant Comarum palustre (Rosaceae). Mol. Ecol. Res 2012, 12, 91–97. [Google Scholar]
- Sakaguchi, S.; Uchiyama, K.; Ueno, S.; Ujino-Ihara, T.; Tsumura, Y.; Prior, L.D.; Bowman, D.M.; Crisp, M.D.; Isagi, Y. Isolation and characterization of 52 polymorphic EST-SSR markers for Callitris columellaris (Cupressaceae). Am. J. Bot 2011, 98, e363–e368. [Google Scholar]
- Parchman, T.L.; Geist, K.S.; Grahen, J.A.; Benkman, C.W.; Buerkle, C.A. Transcriptome sequencing in an ecologically important tree species: Assembly, annotation, and marker discovery. BMC Genomics 2010, 11. [Google Scholar] [CrossRef]
- Snall, T.; Fogelqvist, J.; Ribeiro, P.J.J.; Lascoux, M. Spatial genetic structure in two congeneric epiphytes with different dispersal strategies analyzed by three different methods. Mol. Ecol 2004, 13, 2109–2119. [Google Scholar]
- Buczkowska, K.; Sawicki, J.; Szczecińska, M.; Klama, H.; Milewicz, M.; Bączkiewicz, A. Genetic variation in the liverwort Bazzania trilobata interferred from ISSR markers. J. Bryol 2010, 32, 265–274. [Google Scholar]
- Sawicki, J.; Szczecińska, M. A comparison of PCR-based markers for molecular identification of Sphagnum species of the section Acutifolia. Acta Soc. Bot. Pol 2011, 80, 185–192. [Google Scholar]
- Stevens, M.I.; Hunger, S.A.; Hills, S.F.K.; Gemmill, C.E.C. Phantom hitch-hikers mislead estimates of genetic variation in Antarctic mosses. Plant Syst. Evol 2007, 263, 191–201. [Google Scholar]
- Hutsemeker, V.; Risterucci, A.M.; Ricca, M.; Boles, S.; Hardy, O.J.; Shaw, A.J.; Vanderpoorten, A. Identification and characterization of nuclear microsatellite loci in the aquatic moss Platyhypnidium. Mol. Ecol. Res 2008, 8, 1130–1132. [Google Scholar]
- Nei, M. Analysis of gene diversity in subdivided populations. Proc. Natl. Acad. Sci. USA 1973, 70, 3321–3323. [Google Scholar]
- Sawicki, J.; Plášek, V.; Szczecińska, M. Molecular evidence do not support the current division of Orthotrichum subgenus Gymnoporus. Plant Syst. Evol 2009, 279, 125–137. [Google Scholar]
- Sawicki, J.; Plášek, V.; Szczecińska, M. Molecular data do not support the current division of Orthotrichum (Bryophyta) species with immersed stomata. J. Syst. Evol 2012, 50, 12–24. [Google Scholar]
- Lewinsky, J. A synopsis of the genus Orthotrichum Hedw. (Musci, Orthotrichaceae). Bryobrothera 1993, 2, 1–59. [Google Scholar]
- Lewinsky-Haapasaari, J.; Hedenäs, L. A cladistic analysis of the moss genus Orthotrichum. Bryologist 1998, 101, 519–555. [Google Scholar]
- Vitt, D.H. The infrageneric evolution, phylogeny, and taxonomy of the genus Orthotrichum (Musci) in North America. Nova Hedwig 1971, 21, 683–711. [Google Scholar]
- Plášek, V.; Sawicki, J. Is the hairy vaginula a diagnostic feature in the taxonomy of the genus Orthotrichum? Acta Soc Bot. Pol 2010, 79, 73–80. [Google Scholar]
- Faircloth, B.C. MSATCOMMANDER: Detection of microsatellite repeat arrays and automated, locus-specific primer design. Mol. Ecol. Res 2008, 8, 92–94. [Google Scholar]
- Hall, T.A. BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symp. Ser 1999, 95–98. [Google Scholar]
- Sawicki, J.; Plášek, V.; Szczecińska, M. Preliminary studies on the phylogeny of the genus Orthotrichum inferred from nuclear ITS sequences. Ann. Bot. Fenn 2009, 46, 507–515. [Google Scholar]
- Sawicki, J.; Plášek, V.; Szczecińska, M. Molecular studies resolved Nyholmiella (Orthotrichaceae) as separated genus. J. Syst. Evol 2010, 48, 183–194. [Google Scholar]
- Wang, X.; Rinehart, T.A.; Wadl, P.A.; Spiers, J.M.; Hadziabdic, D.; Windham, M.T.; Trigiano, R.N. A new electrophoresis technique to separate microsatellite alleles. Afr. J. Biotechnol 2009, 8, 2432–2436. [Google Scholar]
- Yeh, F.C.; Boyle, T.J.B. Population genetic analysis of co-dominant and dominant markers and quantitative traits. Belg. J. Bot 1997, 129, 157. [Google Scholar]
- Goudet, J. FSTAT: A computer program to calculate F-statistics. J. Hered 1995, 86, 485–486. [Google Scholar]
| Locus | Motif | Primers | Product Size | Diversity | Cross-Amplification | ||||
|---|---|---|---|---|---|---|---|---|---|
| Number of Alleles | H | Oa | Os | Op | Od | ||||
| os1 | (GTT)4–7 | F-GCAACTTCCTCCAACGACC R CAGATTGCGGCTGACCAAG | 378–387 | 3 | 0.405 | + | - | - | - |
| os2 | (GT)6–12 | F-CAAACACGACCGCTTCTCC R-GAGAGCTATCTCCCTCGAAAG | 405–417 | 6 | 0.540 | - | - | - | - |
| os3 | (AGG)4–8 | F-GTACGTCGTGCCCAAATCG R-CGTCGCATTCCCACAGAAG | 354–366 | 5 | 0.355 | + | + | - | - |
| os4 | (AAT)4–6(AT)7–15 | F-CACTCAAGTGAAGAGTCATGGG R-CGAGCAACGTGGCATGAAC | 329–351 | 9 | 0.380 | - | - | - | - |
| os5 | (AT)5–12 | F-AGGATTGATTGCCTTTGCGG R-GATCATTCGCATCTGGGCG | 229–243 | 5 | 0.290 | - | - | - | - |
| os6 | (AG)6–11 | F-GTTGACGAAGCCCTCTTGG R-CTTTGAGACGTGGTAATCTGAAG | 411–421 | 7 | 0.550 | - | - | - | - |
| os7 | (ATT)4–7…(AAT)5–7 | F-TTCAACCATGTGCTAGTTGTATC R-AGGGTCCAAACTCTAAACTGAC | 414–425 | 5 | 0.285 | - | + | - | - |
| os8 | (CTT)4–8 | F-TTCCCTTCAACCGCCACTC R-CCGAAGGCTGGATAATTGCC | 263–275 | 3 | 0.230 | + | + | + | + |
| os9 | (CGT)4–7 | F-GGCCATTGAAAGCAGGCTC R-CGGCTACGACATCAATGAAAG | 401–410 | 3 | 0.280 | + | + | - | - |
| os10 | (ACC)6–10 | F-CCTCGTAGGGTATCTCCGC R-ATCAAGAGTCGGGACGTGG | 243–255 | 4 | 0.305 | - | - | - | - |
| os11 | (GTT)4–10 | F-GCGTTGTGGAGTAAGGACTG R-CCCATCACCACTATGATGCC | 202–220 | 5 | 0.410 | - | - | - | - |
| os12 | (AAAT)4–6 | F-AATGTTGGAAACCAGCCCG R-TCCGGATTAGAAGATTTACAGTGG | 158–166 | 3 | 0.210 | - | + | - | - |
| os13 | (AG)6–10 | F-AGAATTGCTACTACATGAACGTG R-TTGTGTCCCGTCCCTCAAC | 192–200 | 3 | 0.430 | + | + | + | + |
| os14 | (AAC)6–9 | F-CTCCGAGTCCACTTGGTCG R-GACTGAAGTGCTGGCTTGG | 198–210 | 3 | 0.250 | + | - | - | - |
| os15 | (AAAG)6–8 | F-TGAAGTATCCAGACCAAGAGC R-ACATTCTGCCCTCAATGTCG | 152–160 | 3 | 0.220 | - | - | - | - |
| os16 | (AAG)4–7 | F-AAGAAGGCGTCAGCTTCAC R-TAGCTGCCCGCAACTTC | 248–257 | 3 | 0.290 | + | + | - | - |
| os17 | (GAT)4–7 | F-AGCGAGTTGATGGCGGAG R-TCCTCCAATGCCTTAGTCAAAC | 361–370 | 3 | 0.340 | - | + | - | - |
| os18 | (GTT)4–6 | F-CATGATGCTGCCCTTGTCC R-GTTAGCTGCATGTCACGGC | 307–313 | 3 | 0.510 | + | + | + | - |
| os19 | (CTT)4–6 | F-CCCACGCCACTTAGTCTTG R-GGAGAATGACAACCTCAGCC | 229–235 | 3 | 0.260 | + | + | + | + |
| os20 | (ATTT)6–9 | F-AGTTGTGTCTTCCTTCATCTATACC R-GATGGGCCAAAGTGTCTCG | 169–181 | 3 | 0.220 | - | - | - | - |
| os21 | (CTT)5–9 | F-AGCGAGTGTACATCCGAGC R-GCCTAAGCCCACTTGGAAAC | 193–205 | 4 | 0.290 | + | + | + | - |
| os22 | (GCT)4–7 | F-AAATCTACAACTTCGCACGTC R-TGAGATTCATGAGAGGTGTCCG | 161–170 | 3 | 0.310 | - | - | - | - |
| os23 | (AT)7–12 | F-TTCATTGTCCTAAGATTCCC R-GATGCAANTACGTCTTATAATC | 202–212 | 5 | 0.490 | - | - | - | - |
| os24 | (ATT)7–11 | F-GTTGAAATCTACTANAAAAGTT R-GCTCNAAATCNCATCTAANCT | 181–193 | 3 | 0.230 | + | - | - | - |
| os25 | (GTT)4–6 | F-GGAGTCCCTCCAGCAAGTATG R-GCGNCTAGGTCATGTACTNATGG | 326–335 | 3 | 0.260 | - | + | - | - |
| os26 | (GTC)5–8 | F-ACTTGCTGAAGAACGGTCTGC R-GTAACGTCTTGTCACTGAC | 298–307 | 3 | 0.290 | + | + | - | - |
| os27 | (GT)6–11 | F-CCTTCATTCCATTTGCCCNTTG R-GTATGTTGCCTCCTCCAATTCATT | 201–211 | 4 | 0.370 | - | - | - | - |
| os28 | (GA)6–10 | F-TTCTCCATGTTCTCTACTTNGG R-GACGGCCTCTCGGCAAGAGTTTG | 210–218 | 3 | 0.220 | + | + | + | + |
| os29 | (GA)7–10 | F-CATCAATGATGTAGGATNGAAN R-CTCAATATCTGGATTTCTGGGA | 197–203 | 3 | 0.280 | + | + | + | + |
| os30 | (CA)11–16 | F-ACACACNCANACACACACNCNC R-TGGATGCGTGTGGGCACCTGT | 260–270 | 4 | 0.410 | - | - | - | - |
| os31 | (GAT)4–7 | F-CGTTGATTCTATTTGATAGCTAA R-TTGACATGTCTGAGCCCC | 241–250 | 3 | 0.320 | + | + | + | + |
| os32 | (AAAT)4–6 | F-NCCNANCCATGTCAGAAAAAG R-GCCGCATTATGAAGTTGGA | 269–278 | 3 | 0.220 | - | - | - | - |
| os33 | (ATT)4–6 | F-CTACAATAAGAGCTCTTTGAA R-ACANTTTGGATCTCAGCCTG | 202–208 | 3 | 0.260 | - | - | - | - |
| os34 | (GAT)4–6 | F-AGGGCTCTANCTTATAGNTTG R-GAGGTGGACAGTGCAAGTGNAAG | 210–216 | 3 | 0.230 | + | + | - | - |
| os35 | (GGA)4–7 | F-CCCGAGTCCACTTGGNANCC R-GCTAAGCCCAGTTAGAAGCTC | 171–180 | 3 | 0.345 | + | - | - | - |
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Sawicki, J.; Kwaśniewski, M.; Szczecińska, M.; Chwiałkowska, K.; Milewicz, M.; Plášek, V. Isolation and Characterization of Simple Sequence Repeats (SSR) Markers from the Moss Genus Orthotrichum Using a Small Throughput Pyrosequencing Machine. Int. J. Mol. Sci. 2012, 13, 7586-7593. https://doi.org/10.3390/ijms13067586
Sawicki J, Kwaśniewski M, Szczecińska M, Chwiałkowska K, Milewicz M, Plášek V. Isolation and Characterization of Simple Sequence Repeats (SSR) Markers from the Moss Genus Orthotrichum Using a Small Throughput Pyrosequencing Machine. International Journal of Molecular Sciences. 2012; 13(6):7586-7593. https://doi.org/10.3390/ijms13067586
Chicago/Turabian StyleSawicki, Jakub, Mirosław Kwaśniewski, Monika Szczecińska, Karolina Chwiałkowska, Monika Milewicz, and Vítězslav Plášek. 2012. "Isolation and Characterization of Simple Sequence Repeats (SSR) Markers from the Moss Genus Orthotrichum Using a Small Throughput Pyrosequencing Machine" International Journal of Molecular Sciences 13, no. 6: 7586-7593. https://doi.org/10.3390/ijms13067586
APA StyleSawicki, J., Kwaśniewski, M., Szczecińska, M., Chwiałkowska, K., Milewicz, M., & Plášek, V. (2012). Isolation and Characterization of Simple Sequence Repeats (SSR) Markers from the Moss Genus Orthotrichum Using a Small Throughput Pyrosequencing Machine. International Journal of Molecular Sciences, 13(6), 7586-7593. https://doi.org/10.3390/ijms13067586

