Main Article Content

Abstract

Development of high yielding and superior cultivars requires information on characteristic of germplasm will be used. Ten curly-type hot pepper genotypes was grown in a completely randomized design with three replication in a low altitude land to determine their morphological characters and to evaluate genetic relationship among them based on their morphological similarities. The study was conducted in September 2015 until January 2016 in Medan Baru experimental station of Faculty of Agriculture, 15 m above sea level.  Observation was conducted on both quantitative and qualitative characters.  The results showed that there were not significantly diferent (?=5%) for plant habitus, leaf shape, leaf tip, leaf edge, leaf shape and seed shape.  Whereas for quantitative variables of stem diameter, number of fruits per plants and fruit length were significantly different, while for the other variables were not.  Cluster analysis with phylogenetic trees in 58% similarity coefficient resulted that the genotypes grouped in to six groups.  Group I consisted of genotype LPK and Ferosa, group II Mario, group III was genotype Laris, group IV consisted of genotype Kopay and Romario, group V KH and L Curup, and group VI included genotype Bogota and Sempurna. The Kopay and Romario genotypes have the closest relationship level of 73%, while Local Payakumbuh and Lokal Curup have the farrest relationship with the coefficient of 35%. From the results of the study it can be concluded that Local Payakumbuh and Local genotypes Curup can be used as parents with the highest probability to have high transgresive segregation or highest hybrid vigor.

 

Keywords: morphological characterization, genetic relationship, curly hot pepper

Article Details

How to Cite
Herison, C., Surmaini, E., Rustikawati, R., & Yulian, Y. (2018). Morphological Characterization of 10 Hot Pepper Genotipes in Low Altitude Location. Akta Agrosia, 21(2), 47–54. https://doi.org/10.31186/aa.21.2.47-54

References

  1. Abdel-Ghani, A.H., B. Kumar, J. Reyes-Matamoros, P.J. Gonzalez-Portilla, C. Jansen, et al. 2013. Genotypic variation and relationships between seedling and adult plant traits in maize (Zea mays L.) inbred lines grown under contrasting nitrogen levels. Euphytica 189(1): 123–133.
  2. Aflitos, S., E. Schijlen, H. de Jong, D. de Ridder, S. Smith. 2014. Exploring genetic variation in the tomato (Solanum section Lycopersicon) clade by whole-genome sequencing. The Plant Journal 80(1): 136–148.
  3. Do Rêgo, E.R., M.M. Do Rêgo, C.D. Cruz, F.L. Finger, and V.W.D. Casali. 2011. Phenotypic diversity, correlation and importance of variables for fruit quality and yield traits in Brazilian peppers (Capsicum baccatum). Genetic Resources and Crop Evolution 58(6): 909–918.
  4. Furbank, R.T., W.P. Quick, and X.R. Sirault. 2015. Improving photosynthesis and yield potential in cereal crops by targeted genetic manipulation: prospects, progress and challenges. Field Crops Research 182: 19–29.
  5. Gardner, F.P., R.B. Pearce, and R.L. Mitchell. 2017. Physiology of crop plants. Scientific Publishers.
  6. Gepts, P. 2006. Plant genetic resources conservation and utilization. Crop Science 46(5): 2278–2292.
  7. Gomez, K.A., K.A. Gomez, and A.A. Gomez. 1984. Statistical procedures for agricultural research. John Wiley & Sons, London.
  8. Govindaraj, M., M. Vetriventhan, and M. Srinivasan. 2015. Importance of genetic diversity assessment in crop plants and its recent advances: an overview of its analytical perspectives. Genetics Research International 2015: 1–14.
  9. Guil-Guerrero, J.L., C. Martínez-Guirado, M. del Mar Rebolloso-Fuentes, and A. Carrique-Pérez. 2006. Nutrient composition and antioxidant activity of 10 pepper (Capsicum annuum) varieties. Eur Food Res Technol 224(1): 1–9. doi: 10.1007/s00217-006-0281-5.
  10. Hartati, S., and L. Darsana. 2015. Karakterisasi anggrek alam secara morfologi dalam rangka pelestarian plasma nutfah. Jurnal Agronomi Indonesia (Indonesian Journal of Agronomy) 43(2): 133–139.
  11. Herison, C., S.H. Sutjahjo, I. Sulastrini, R. Rustikawati, and S. Marwiyah. 2017. Genetic Diversity Analysis in 27 Tomato Accessions Using Morphological and Molecular Markers. AGRIVITA, Journal of Agricultural Science 40(1): 36–44.
  12. IPGRI. 1995. Descriptors for Capsicum (Capsicum spp.). International Plant Genetic Resources Institute, Rome, Italy; the Asian Vegetable Research and Development Center, Taipei, Taiwan, and the Centro Agronómico Tropical de Investigación y Enseñanza. IPGRI Turrialba, Costa Rica 17.
  13. Jones, H.G. 2013. Plants and Microclimate: a Quantitative Approach to Environmental Plant Physiology. Cambridge university press, London.
  14. Kaharjanti. 2008. Yield Evaluation on 11 Hybrid of Large Fruit Type Chili Pepper of IPB at Boyolali (Evaluasi Daya Hasil 11 Hibrida Cabai Besar IPB di Boyolali). Skripsi. Fakultas Pertanian IPB. Bogor.
  15. Kusandriani, Y. 1996. Chili Pepper Hybrid Development (Pembentukan Hibrida Cabai). Balai Penelitian Tanaman Sayuran., Lembang,Bandung.
  16. Lopes, M.S., I. El-Basyoni, P.S. Baenziger, S. Singh, C. Royo, et al. 2015. Exploiting genetic diversity from landraces in wheat breeding for adaptation to climate change. Journal of experimental botany 66(12): 3477–3486.
  17. Palaniswamy, U. 2005. Handbook of Statistics for Teaching and Research in Plant and Crop Science. CRC Press, London.
  18. Peiffer, J.A., A. Spor, O. Koren, Z. Jin, S.G. Tringe, et al. 2013. Diversity and heritability of the maize rhizosphere microbiome under field conditions. Proceedings of the National Academy of Sciences: 201302837.
  19. Qi, J., X. Liu, D. Shen, H. Miao, B. Xie, et al. 2013. A genomic variation map provides insights into the genetic basis of cucumber domestication and diversity. Nature genetics 45(12): 1510.
  20. Qosim, W.A., M. Rachmadi, J.S. I Hamdan, and I. Nuri. 2014. Phenotypic performance, variability and heritability of 32 high yielding chili pepper genotype (Penampilan fenotipik, variabilitas, dan heritabilitas 32 genotipe cabai merah berdaya hasil tinggi). Jurnal Agronomi Indonesia (Indonesian Journal of Agronomy) 41(2): 140–146.
  21. Rubatzsky, V.E., and M. Yamaguchi. 1999. World Vegetable. Principle, Production and Nutrition. (Sayuran Dunia. Prinsip, Produksi dan Gizi). Jilid 3. Penerbit ITB, Bandung.
  22. Silva, A.R. da, E.R. do Rêgo, A.M. dos S. Pessoa, and M.M. do Rêgo. 2016. Correlation network analysis between phenotypic and genotypic traits of chili pepper. Pesquisa Agropecuária Brasileira 51(4): 372–377.
  23. Simanjuntak, D.J.H. 2013. Characterization of Six Chili Pepper Hybrids of the Univeristy of Bengkulu in Ultisol. (Karakterisasi Enam Hibrida Cabai Perakitan UNIB pada Ultisol). Skripsi. Fakultas Pertanian UNIB. Bengkulu
  24. Singh, D., R.K. Arya, N. Chandra, R. Niwas, and P. Salisbury. 2016. Genetic diversity studies in relation to seed yield and its component traits in Indian mustard (Brassica juncea L. Czern & Coss.). Journal of Oilseed Brassica 1(1): 19–22.
  25. Sofiari, E., and R. Kirana. 2009. Analysis on segregation pattern and distribution of several chili pepper characteristic (Analisis pola segregasi dan distribusi beberapa karakter cabai). J. Hort 19(3): 255–263.
  26. Syukur, M., S. Sriani, and R. Yunianti. 2012. Plant Breeding Technique (Teknik Pemuliaan Tanaman). Penebar Swadaya Grup.
  27. Terzopoulos, P.J., and P.J. Bebeli. 2010. Phenotypic diversity in Greek tomato (Solanum lycopersicum L.) landraces. Scientia Horticulturae 126(2): 138–144.
  28. Thomas, E., E. Tovar, C. Villafañe, J.L. Bocanegra, and R. Moreno. 2017. Distribution, genetic diversity and potential spatiotemporal scale of alien gene flow in crop wild relatives of rice (Oryza spp.) in Colombia. Rice 10(1): 13