Response of Local Cowpea Varieties Southwest Maluku to Drought Stress on Germination Phase

Ritha Lusian Karuwal, Hermalina Sinay
| Abstract views: 391

Abstract

Drought stress is one of the agricultural problem, especially in dry land. Respone to drought stress of local cowpea varieties Southwest Maluku on germination phase had not been conducted. The aim of this study was to evaluate response of local cowpea varities to drought stress on germination phase. The research was using seven of local varieties (KM1, KM3, KM4, KM6, KM7, KM8, KM9) from Kisar island and three cultivars from ILETRI Malang. Treatment of drought stress were consist of watering period every twice days (P0) and five day (P1) was replicated three times. Sprout number, final germination percent, sprout length, sprout weight, vigor index and prolin content in root were observed. Data were analyzed using ANOVA, followed by DMRT at 5%. The results showed that treatment of every five day inhibit germination at all varieties. KM1, KM4, KM6 varieties has the highest value on all parameter. There are positive correlation which significant between of the observation parameter. Principal component analysis to clustering in two main cluster. Early selection of drought tolerance at germination phase very need to breeding plant in effort of the suistainble development and utilization.

Keywords

cowpea; drought stress; germination

References

Abbasi, M., Pouzesh, H., Enayati, A. and Hedayati, A., 2012. Investigation the effect of hydropriming and osmopriming treatments on seeds germination of tall wheatgrass (Agropyron elongatum) under drought stress. Annals of Biological Research, 3(10), pp. 4874–4879.

Ahmad, M., Shabbir, G., Minhas, M. N. and Shah, M.K.N., 2013. Identification of drought tolerant wheat genotype based on seedling. Trait, J. Agric, 29, pp. 21–27.

Ahmed, H.G.M., Sajjad, M., Li, M., Azmat, M.A., Rizwan, M., Maqsood, R.H. and Khan, S.H., 2019. Selection criteria for drought-tolerant bread wheat genotypes at seedling stage. Sustainability, 11, pp. 2–17.

Almansouri, M., Kinet, J.M. and Lutts, S., 2001. Effect of salt and osmotic stresses on germination in durum wheat (Triticum durum Desf.). Plant and Soil, 231, pp. 243–254.

Araújo ED, De Melo AS, Do Socorro Rocha M, Carneiro RF, De Moura Rocha M. 2018. Germination And Initial Growth Of Cowpea Cultivars Under Osmotic Stress And Salicylic Acid1. Rev. Caatinga, Mossoró. 31(1): 80-89.

Ávila, F.W., Baliza, D.P., Faquin, V., Araújo, J.L. and Ramos, SJ., 2010. Silicon-nitrogen interaction in rice cultivated under nutrient solution. Rev Ciênc Agronômica, 41(2), pp. 184–190.

Bastos, E.A., do Nascimento, S.P., da Silva, E.M., Filho, F.R.F. and Gomide, R.L., 2011. Identification of cowpea genotypes for drought tolerance. Rev Cienc Agron, 42(1), pp. 100–107.

Bateman, A., Lewandrowski, W., Stevens, J. and Muñoz-Rojas, M., 2016. The limitations of seedling growth and drought tolerance to novel soil substrates in arid systems:Implications forrestoration success. Environmental Management, 129, pp. 149–156.

Beshir, H.M., Bueckert, R. and Tar’an B., 2016. Effect of temporary drought at different growth stages on snap bean pod quality and yield. African Crop Science Journal, 24(3), pp. 317–330.

Bo Kim, G. and Nam Young, Woo., 2013. A novel 1-pyroline-5-carboxylate synthetase gene of Medicago truncatula plays a predominant role in stress-induced proline accumulation during symbiotic nitrogen fixation. J Plant Physiol, 170, pp. 291–302.

Boopathi, N.M., Swapnashri, G., Kavitha, P., Sathish, S., Nithya, R., Wickneswari, R. and Kuma, A., 2013. Evaluation and bulked segregant analysis of major yield QTL qtl12.1 introgressed into indigenous elite line for low water availability under water stress. Rice Science, 20(1), pp. 25−30.

Carvalho, M., Matos, M., Castroa, I., Monteirob, E., Rosaa, E., Lino-Netod, T. and Carnidea, V., 2019. Screening of world wide cowpea collection to drought tolerant at a germination stage. Scientia Horticulturae, 247, pp. 107–115.

Cokkizgin, A., 2013. Effects of hydro and osmo-priming on seed vigor of pea (Pisum sativum L). Agriculture, Forestry and Fisheries, 2(6), pp. 225–228.

Costa, R.C.L., Silva, A.K.L., Silveira, J.A.G. and Laughinghouse, H.D.L., 2011. ABA-mediated proline synthesis in cowpea leaves exposed to water deficiency and rehydration. Turk J Agric For, 35, pp. 309–317.

Efendi, R. and Azrai, M., 2010 Tanggap genotipe jagung terhadap cekaman kekeringan: peranan akar. J Penel Pertan Tanaman Pangan, 29(1), pp. 1–10.

Ferreira, A.C.T., Felito, R.A., Rocha, A.M., Carvalho, M.A.C. and Yamashita, O.M., 2017. Water and salt stresses on germination of cowpea (Vigna unguiculata cv. Brs tumucumaque) seeds. Rev. Caatinga, Mossoró, 30(4), pp. 1009–1016.

Goufo, P., Moutinho-Pereira, J.M., Jorge, T.F., Correia, C.M., Oliveira, M.R., Rosa, E.A.S., António, C. and Trindade, H., 2017. Cowpea (Vigna unguiculata L Walp.) metabolomic: osmoprotection a physiological strategy drought stress resistance and improved yield. Front Plant Sci, 8, pp. 1–22.

Hellal, F.A., El-Shabrawi, H.M., El-Hady, M.A., Khatab, I.A., El-Sayed, S.A.A. and Abdely, C., 2018. Influence of PEG induced drought stress on molecular and biochemical constituent and seedling growth. Journal of Genetic Engineering and Biotechnology, 16, pp. 203–212.

Jain, C. and Saxena, R., 2016. Varietal differences against peg induced drought stress in cowpea. Oct. Jour. Env. Res, 4(1), pp. 058–062.

Karuwal, R.L., Suharsono., Tjahjoleksono, A. and Hanif, N., 2017. Physiological responses of some local cowpea from Southwest Maluku (Indonesia) varieties to drought stress. Biodiversitas, 18(4), pp. 1294–1299.

Karuwal, R.L., Suharsono, Tjahjoleksono, A. and Hanif, N., 2018. Identification of drought-tolerant local cowpea varieties of Southwest Maluku (Indonesia). Makara Journal of Science, 22(4), pp. 179–186.

Khodarahmpour, Z., 2011. Effect of drought stress induced by polyethylene glycol (PEG) on germination indices in corn (Zea mays L.) hybrids. African Journal of Biotechnology, 10(79), pp. 18222–18227.

Moraes, G.A.F., Menezes, N.L. and Pasqualli, L.L., 2005. Bean seed performance under different osmotic potentials. Ciência Rural, 35(4), pp. 776–780.

Murillo-Amador, B., Lo´ pez-Aguilar, R., Kaya, C., Larrinaga-Mayora, J. and Flores-Herna´ ndez, A., 2002. Comparative effects of NaCl and polyethylene glycol on germination, emergence and seedling growth of cowpea. J. Agronomy & Crop Science, 188, pp. 235–247.

Muscolo, A., Sidari, M., Anastasi, U., Santonoceto, C. and Maggio, A., 2014. Effect of PEG-induced drought stress on seed germination of four lentil genotypes. Journal of Plant Interactions, 9(1), pp. 354–363.

Nio, S.A., Cawthray, G.R., Wade, L.J. and Colmer, T.D., 2011. Pattern of solutes accumulated during leaf osmotic adjustment as related to duration of water for wheat at the reproductive stage. Plant Physiol Biochem, 49(10), pp. 1126–1137.

Noorka, I.R., Batool, A., Rauf, S., Silva, J.A.T. and Ashraf, E., 2013. Estimation of heterosis in Wheat (Triticum aesitivum L.) under contrasting water regimes. Int J. Plant Breed, 7(1), pp. 55–60.

Okcu, G., Kaya, MD. and Atak, M., 2004. Effects of salt and drought stresses on germination and seedling growth of pea ( Pisum sativum L.), Turk J Agric For, 29, pp. 237–242.

Sharma, P., Jha, A.B., Dubey, R.S. and Pessarakli, M., 2012. Reactive oxygen species, oxidative damage, and antioxidative defense mechanism in plants under stressful conditions, Journal of Botany, pp. 1–26.

Silva-Junior, E.B., Silva, K., Oliveira, S.S., Oliveira, P.J., Boddey, R.M., Zilli, J.E. and Xavier, E.G., 2014. Cowpea nodulation and production in response to inoculation with different rhizobia densities. Pesq. agropec. Bras Brasília, 49(10), pp. 804–812.

Silva, P. and Matos, M., 2016. Assessment of the impact of aluminum on germination, early growth and free proline content in Lactuca sativa L. Ecotoxicol. Environ. Saf, 131, pp. 151–156.

Subrahmanyam, D., Subash, N., Haris, A. and Sikka, A.K., 2006. Influence of water stress on leaf photosynthetic characteristics in wheat cultivars differing in their susceptibility to drought. SpringerLink, 4, pp. 125.

Trachsel, S., Kaeppler, S.M., Brown, K.M. and Lynch, J.P., 2013. Maize root growth angles become steeper under low N conditions. Field Crops Res, 140, pp. 18–31.

Widoretno, W., 2011. Skrining untuk toleransi terhadap stres kekeringan pada 36 varietas kedelai pada fase perkecambahan. Berk. Penel. Hayati, 16, pp. 133–142.

Yadav, R.S., Sehgal, D. and Vadez, V., 2011. Using genetic mapping and genomics approaches in understanding and improving drought tolerance in pearl millet. Journal of Experimental Botany, 62(2), pp. 397–408.

Zhang, H. and Wang, H., 2012. Evaluation of drought tolerance from a wheat recombination inbred line population at the early seedling growth stage. African Journal of Agricultural Research, 7(46), pp. 6167–6172.


Refbacks

  • There are currently no refbacks.