Research Articles
Vol. 12 No. 4 (2025)
Integrated laboratory and greenhouse assessment of tomato genotypes for drought tolerance in Western Himalayas region
Department of Vegetable Science, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India; Department of agriculture, Maharishi Markandeshwar (deemed to be University), Mullana, Haryana
Department of Vegetable Science, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India
Department of agriculture, Maharishi Markandeshwar (deemed to be University), Mullana, Haryana
School of Agricultural Sciences, Baddi University of Emerging Sciences and Technology, Baddi 173 205, Himachal Pradesh, India
Department of Basic Science, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India
Department of Vegetable Science, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India
Department of Entomology, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India
Department of Vegetable Science, Dr Yashwant Singh Parmar University of Horticulture and Forestry, Nauni Solan 173 230, Himachal Pradesh, India
Krishi Vigyan Kendra, Chaudhary Sarwan Kumar Himachal Pradesh Krishi Vishvavidyalaya Kukumseri, Lahaul and Spit 175 142, Himachal Pradesh, India
Abstract
The present studies were planned to understand the response of a diverse set of ten tomato genotypes to drought during the seedling stage, which is important for stand establishment and crop growth. Under laboratory condition, the genotypes were evaluated under different osmotic concentration of polyethylene glycol (PEG-6000) at 15 % and 20 % and control condition for 14 days. Under greenhouse condition, test genotypes were evaluated under polyhouse condition with different regulated deficit irrigation (RDI), 100 %, 75 % and 50 % stress of evapotranspiration coefficient (Etc). Moisture stress was induced after 15 days of transplanting by estimating Etc value using pan evaporimeter. In first experiment genotypes EC-620434, Best of All, Marglobe and Arka Vikas were found best under drought stress as there was lesser reduction in germination percentage and in growth parameters such as root and shoot length as compared to other genotypes studied whereas Best of All, Marglobe, Arka Vikas and LA-3846 were identified as the most tolerant to moisture stress as there was lesser reduction in leaf area, root biomass, root and shoot length compared to other genotypes under study in second experiment. Therefore, based on the influence of both the experiments it was found that the genotypes Best of ALL, Marglobe and Arka Vikas should be cultivated in areas prone to drought stress for sustainable tomato production in the mid-hill regions in the Western Himalayas.
References
1. Anonymous. National Horticulture Board. Government of India, Ministry of Agriculture and Farmers Welfare, Department of Agriculture, Cooperation and Farmers Welfare; 2022. http://www.nhb.gov.in
2. Prellia A, Solichatun S, Pitoyo A. Induction of drought resistance in bell pepper (Capsicum annuum var. grossum) with osmopriming Polyethylene Glycol (PEG) 4000. Asian Journal of Agriculture. 2023;7:34-46. https://doi.org/10.13057/asianjagric/g070105
3. Dharshini AP, Prasad VB, Vanitha K, Manivannan N. Effect of PEG induced drought stress on seed germination and seedling growth of green gram genotypes. International Journal of Environment and Climate Change. 2021;11:79–90. https://doi.org/10.9734/ijecc/2021/v11i1030495
4. Boyaci S, Kocięcka J, Atilgan A, Liberacki D, Rolbiecki R, Saltuk B, et al. Evaluation of crop water stress index (CWSI) for high tunnel greenhouse tomatoes under different irrigation levels. Atmosphere. 2024;15:205. https://doi.org/10.3390/atmos15020205
5. Doan CD, Tavernier I, Danthine S, Rimaux T, Dewettinck K. Physical compatibility between wax esters and triglycerides in hybrid shortenings and margarines prepared in rice bran oil. Journal of the Science of Food and Agriculture. 2018;98:1042-51. https://doi.org/10.1002/jsfa.8553
6. Poobalan V, Praneetha S, Arumugam T, Jeyakumar P, Kumaravadivel N. Screening of Capsicum annuum and its related species for drought tolerance. Journal of Pharmacognosy & Phytochemistry. 2020;9:2139-46.
7. Sagar A, Rauf F, Mia MA, Shabi TH, Rahman T, Hossain AZ. Polyethylene glycol (PEG) induced drought stress on five rice genotypes at early seedling stage. Journal of the Bangladesh Agricultural University. 2020;18:606-14. https://doi.org/10.5455/JBAU.102585
8. Teker Yıldız M, Akı C. Evaluation of physiological and biochemical responses of four tomato (Solanum lycopersicum L.) cultivars at different drought stress levels. Agronomy. 2025;15:653-9. https://doi.org/10.3390/agronomy15030653
9. Allen RG, Pereira LS, Raes D, Smith M. Crop evapotranspiration. FAO Irrigation and Drainage Paper. 1998;56:7-9.
10. Sheoran OP, Tonk DS, Kaushik LS, Hasija RC, Pannu RS. Statistical software package for agriculture research workers. In: Recent Advances in Information Theory, Statistics and Computer Application. Hisar; 1998. p. 139-43.
11. Gangotri S, Peerjade DA, Awati M, Satish D. Evaluation of chilli (Capsicum annuum L.) genotypes for drought tolerance using Polyethylene Glycol (PEG) 6000. Journal of Experimental Agriculture International. 2022;44:47–55. https://doi.org/10.9734/jeai/2022/v44i112052
12. Sathyabharathi B, Nisha C, Jaisneha J, Nivetha V, Aathira B, Ashok S, et al. Screening of genotypes for drought tolerance using PEG 6000 in different landraces of rice (Oryza sativa L.). International Journal of Plant & Soil Science. 2022;34:1424-34. https://doi.org/10.9734/ijpss/2022/v34i2231515
13. Tuulos A, Turakainen M, Kleemola J, Mäkelä P. Yield of spring cereals in mixed stands with under sown winter turnip rape. Field Crops Research. 2015;15:174-8. https://doi.org/10.1016/j.fcr.2015.01.013
14. Khan N, Singh M. Evaluation of drought tolerance in tomato seedlings using PEG-6000 induced water stress. Journal of Plant Physiology. 2015;12:345-50.
15. Kumar PA, Reddy NN, Lakshmi NJ. PEG induced screening for drought tolerance in tomato genotypes. International Journal of Current Microbiology and Applied Sciences. 2023;6:168-81. https://doi.org/10.20546/ijcmas.2017.607.020
16. Faizan M, Rehman A, Ahmad F, Khan M. Phenotypic trait association studies in brinjal upon drought stress. Journal of Horticultural Sciences & Technology. 2021;10:78-84.
17. Öztürk A. Effectiveness of in vitro and in vivo tests for screening of tomato genotypes against drought stress. Turkish Journal of Agriculture - Food Science and Technology. 2019;7:12-18.
18. Esan VI, Ayanbamiji TA, Adeyemo JO, Oluwafemi S. Effect of drought on seed germination and early seedling of tomato genotypes using polyethylene glycol 6000. International Journal of Sciences. 2018;7:36-43. https://doi.org/10.18483/ijSci.1533
19. Manjunatha MV, Rajkumar GR, Hebbara M, Ravishankar G. Effect of drip and surface irrigation on yield and water-production efficiency of brinjal (Solanum melongena) in saline Vertisols. Indian Journal of Agricultural Sciences. 2004.
20. Garcia EM, Martinez JA, Martinez PR. Drought tolerance and shoot growth responses in bell pepper (Capsicum annuum L.). Journal of Vegetable Crop Production. 2017;23:45-58.
21. Snoeck D, Boudichevitch A, Ferg M, Ebert G. Genetic and genomic resources for drought stress tolerance in tomato (Solanum lycopersicum): a review. Journal of the Science of Food and Agriculture. 2018;98:21-31. https://doi.org/10.1002/jsfa.8553
22. Sousaraei N, Mashayekhi K, Mousavizadeh SJ, Akbarpour V, Medina J, Aliniaeifard S. Screening of tomato landraces for drought tolerance based on growth and chlorophyll fluorescence analyses. Horticulture, Environment and Biotechnology. 2021;62:521-35. https://doi.org/10.1007/s13580-020-00328-5
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