949
Views
0
CrossRef citations to date
0
Altmetric
Research Paper

Foliar application of methyl jasmonate affects impatiens walleriana growth and leaf physiology under drought stress

ORCID Icon, ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon
Article: 2219936 | Received 31 Mar 2023, Accepted 26 May 2023, Published online: 08 Jun 2023

References

  • Antonić D, Milošević S, Cingel A, Lojić M, Trifunović-Momčilov M, Petrić M, Subotić A, Simonović A. Effects of exogenous salicylic acid on Impatiens walleriana L. grown in vitro under polyethylene glycol-imposed drought. S Afr J Bot. 2016;105:226–9. doi:10.1016/j.sajb.2016.04.002.
  • Pires JR, Eleomar de O, Caleja C, Garcia CC, Ferreira IC, Barros L. Current status of genus Impatiens: bioactive compounds and natural pigments with health benefits. Trends Food Sci Technol. 2021a;117:106–124. doi:10.1016/j.tifs.2021.01.074.
  • Haider F, Ullah N. Antioxidant and antimicrobial activity of Impatiens walleriana local to Malaysia. Mor J Chem. 2019;7(3):548–553. doi:10.48317/IMIST.PRSM/morjchem-v7i3.12261.
  • Hanachi P, Salehizadeh S, Ramezani R, Zarringhalami R. Comparison of antioxidant and anti-bacterial activities of Ocimum basilicum and Impatiens walleriana and their anticancer properties on SKOV-3 cancer cell line. Food Sci Technol. 2020;17:95–107.
  • Lai HY, Lam CM, Wang WZ, Ji YJ. Cadmium uptake by cuttings of Impatiens walleriana in response to different cadmium concentrations and growth periods. BECT. 2017;98(3):317–322. doi:10.1007/s00128-016-1874-8.
  • Pires JR, Eleomar de O, Pereira E, Pereira C, Dias MI, Calhelha RC, Ćirić A, Soković M, Hassemer G, Garcia CC, et al. Chemical composition and bioactive characterisation of Impatiens walleriana. Molecul. 2021b;26(5):1347. doi:10.3390/molecules26051347.
  • Wei JL, Lai HY, Chen ZS. Chelator effects on bioconcentration and translocation of cadmium by hyperaccumulators, Tagetes patula and Impatiens walleriana. Ecotoxicol Environ Saf. 2012;84:173–178. doi:10.1016/j.ecoenv.2012.07.004.
  • Salehi-Lisar SY, Bakhshayeshan-Agdam H. Drought stress in plants: causes, consequences, and tolerance. In: Drought stress tolerance in plants, Vol. 1. Cham: Springer International Publishing; 2016. p. 1–16. doi:10.1007/978-3-319-28899-4_1.
  • Chen M. Chlorophyll modifications and their spectral extension in oxygenic photosynthesis. Annu Rev Biochem. 2014;83(1):317–340. doi:10.1146/annurev-biochem-072711-162943.
  • Reginato M, Varela C, Cenzano AM, Luna V. Role of polyphenols as antioxidants in native species from argentina under drought and salinization. In: Reactive oxygen species and oxidative damage in plants under stress. Cham: Springer International Publishing; 2015. p. 247–267. doi:10.1007/978-3-319-20421-5_10.
  • Sarker U, Oba S. Phenolic profiles and antioxidant activities in selected drought-tolerant leafy vegetable amaranth. Sci Rep. 2020;10(1):1–11. doi:10.1038/s41598-020-71727-y.
  • Cerovic ZG, Ghozlen NB, Milhade C, Obert M, Debuisson S, Moigne ML. Nondestructive diagnostic test for nitrogen nutrition of grapevine (vitis vinifera L.) based on dualex leaf-clip measurements in the field. J Agric Food Chem. 2015;63:3669–3680.
  • Li D, Tian M, Cai J, Jiang D, Cao W, Dai T. Effects of low nitrogen supply on relationships between photosynthesis and nitrogen status at different leaf position in wheat seedlings. Plant Growth Regul. 2013;70(3):257–263. doi:10.1007/s10725-013-9797-4.
  • Baenas N, García-Viguera C, Moreno DA. Elicitation: a tool for enriching the bioactive composition of foods. Molecul. 2014;19(9):13541–13563. doi:10.3390/molecules190913541.
  • Naik PM, Al-Khayri JM. Impact of abiotic elicitors on in vitro production of plant secondary metabolites: a review. JARB. 2016;1:1–7.
  • Chakraborty N, Acharya K. Ex vivo analyses of formulated bio-elicitors from a phytopathogen in the improvement of innate immunity in host. Arch Phytopathol Pflanzenschutz. 2016;49(17–18):485–505. doi:10.1080/03235408.2016.1242196.
  • Abdelaal KA. Effect of salicylic acid and abscisic acid on morpho-physiological and anatomical characters of faba bean plants (Vicia faba L.) under drought stress. JPP. 2015;6(11):1771–1788. doi:10.21608/jpp.2015.52096.
  • Alavi-Samani SM, Kachouei MA, Pirbalouti AG. Growth, yield, chemical composition, and antioxidant activity of essential oils from two thyme species under foliar application of jasmonic acid and water deficit conditions. Hortic Environ Biotechnol. 2015;56(4):411–420. doi:10.1007/s13580-015-0117-y.
  • Ghassemi-Golezani K, Farhangi-Abriz S. Foliar sprays of salicylic acid and jasmonic acid stimulate H±ATPase activity of tonoplast, nutrient uptake and salt tolerance of soybean. Ecotoxicol Environ Saf. 2018;166:18–25. doi:10.1016/j.ecoenv.2018.09.059.
  • Yang AJ, Anjum SA, Wang L, Song JX, Zong XF, Lv J, Zohaib A, Ali I, Yan R, Zhang Y, et al. Effect of foliar application of brassinolide on photosynthesis and chlorophyll fluorescence traits of leymus chinensis under varying levels of shade. Photosynt. 2018;56(3):873–883. doi:10.1007/s11099-017-0742-z.
  • Abdelgawad ZA, Khalafaallah AA, Abdallah MM. Impact of methyl jasmonate on antioxidant activity and some biochemical aspects of maize plant grown under water stress condition. Agric Sci. 2014;5(12):1077. doi:10.4236/as.2014.512117.
  • Anjum SA, Wang L, Farooq M, Khan I, Xue L. Methyl jasmonate-induced alteration in lipid peroxidation, antioxidative defence system and yield in soybean under drought. J Agron Crop Sci. 2011;197(4):296–301. doi:10.1111/j.1439-037X.2011.00468.x.
  • Anjum SA, Tanveer M, Hussain S, Tung SA, Samad RA, Wang L, Shahzad B, Khan I, Rehman NU, Shah AN. Exogenously applied methyl jasmonate improves the drought tolerance in wheat imposed at early and late developmental stages. Acta Physiol Plant. 2016;38(1):1–11. doi:10.1007/s11738-015-2047-9.
  • Mohamed HI, Latif HH. Improvement of drought tolerance of soybean plants by using methyl jasmonate. Physiol Mol Biol Plants. 2017;23(3):545–556. doi:10.1007/s12298-017-0451-x.
  • Xiong B, Wang Y, Zhang Y, Ma M, Gao Y, Zhou Z, Wang Z. Alleviation of drought stress and the physiological mechanisms in Citrus cultivar (huangguogan) treated with methyl jasmonate. Biosci Biotechnol Biochem. 2020;84(9):1958–1965. doi:10.1080/09168451.2020.1771676.
  • Đurić M, Subotić A, Trifunović-Momčilov M, Milošević S. Improvement of water deficit stress tolerance of impatiens walleriana shoots grown in vitro by methyl jasmonate. PCTOC. 2022:1–15. doi:10.1007/s11240-022-02432-z.
  • Antonić DD, Subotić AR, Dragićević MB, Pantelić D, Milošević SM, Simonović AD, Momčilović I. Effects of exogenous salicylic acid on drought response and characterization of dehydrins in Impatiens walleriana. Plants. 2020;9(11):1589. doi:10.3390/plants9111589.
  • Safari M, Mousavi-Fard S, Nejad AR, Sorkheh K, Sofo A. Exogenous salicylic acid positively affects morpho-physiological and molecular responses of Impatiens walleriana plants grown under drought stress. Int J Environ Sci Technol. 2021;19(2):1–16. doi:10.1007/s13762-020-03092-2.
  • Đurić M, Subotić A, Prokić L, Trifunović-Momčilov M, Cingel A, Vujičić M, Milošević S. Morpho-physiological and molecular evaluation of drought and recovery in Impatiens walleriana grown ex vitro. Plants. 2020;9(11):1559. doi:10.3390/plants9111559.
  • Đurić MJ, Subotić AR, Prokić L, Trifunović-Momčilov MM, Cingel AD, Dragićević MB, Simonović AD, Milošević SM. Molecular characterization and expression of four aquaporin genes in Impatiens walleriana during drought stress and recovery. Plants. 2021;10(1):154. doi:10.3390/plants10010154.
  • Shipley B, Vu TT. Dry matter content as a measure of dry matter concentration in plants and their parts. New Phytol. 2002;153(2):359–364. doi:10.1046/j.0028-646X.2001.00320.x.
  • Cerovic ZG, Masdoumier G, Ghozlen NB, Latouche G. A new optical leaf‐clip meter for simultaneous non‐destructive assessment of leaf chlorophyll and epidermal flavonoids. Physiol Plant. 2012;146(3):251–260. doi:10.1111/j.1399-3054.2012.01639.x.
  • Altaf R, Hussain K, Maryam U, Nawaz K, Siddiqi EH. Effect of different levels ofdrought on growth, morphology and photosynthetic pigments of lady finger (Abelmoschus esculentus). World J Agric Sci. 2015;11:198–201.
  • Nxele X, Klein A, Ndimba BK. Drought and salinity stress alters ROS accumulation, water retention, and osmolyte content in sorghum plants. S Afr J Bot. 2017;108:261–266. doi:10.1016/j.sajb.2016.11.003.
  • Shi L, Wang Z, Kim WS. Effect of drought stress on shoot growth and physiological response in the cut rose ‘charming black’at different developmental stages. Hortic Environ Biotechnol. 2020;60(1):1–8. doi:10.1007/s13580-018-0098-8.
  • Ahmadi FI, Karimi K, Struik PC. Effect of exogenous application of methyl jasmonate on physiological and biochemical characteristics of brassica napus L. cv. talaye under salinity stress. S Afr J Bot. 2018;115:5–11. doi:10.1016/j.sajb.2017.11.018.
  • Alam M, Nahar K, Hasanuzzaman M, Fujita M. Exogenous jasmonic acid modulates the physiology, antioxidant defense and glyoxalase systems in imparting drought stress tolerance in different brassica species. Plant Biotechnol Rep. 2014;8(3):279–293. doi:10.1007/s11816-014-0321-8.
  • Allagulova C, Avalbaev A, Fedorova K, Shakirova F. Methyl jasmonate alleviates water stress-induced damages by promoting dehydrins accumulation in wheat plants. Plant Physiol Biochem. 2020;155:676–682. doi:10.1016/j.plaphy.2020.07.012.
  • Huang P, de-Bashan L, Crocker T, Kloepper JW, Bashan Y. Evidence that fresh weight measurement is imprecise for reporting the effect of plant growth-promoting (rhizo) bacteria on growth promotion of crop plants. Biol Fertil Soils. 2017;53(2):199–208. doi:10.1007/s00374-016-1160-2.
  • Yulin LI, Johnson DA, Yongzhong SU, Jianyuan CUI, Zhang T. Specific leaf area and leaf dry matter content of plants growing in sand dunes. Bot Bull Acad. 2005;46:127–134.
  • Barickman TC, Adhikari B, Sehgal A, Walne CH, Reddy KR, Gao W. Drought and elevated carbon dioxide impact the morphophysiological profile of basil (ocimum basilicum L.). Crops. 2021;1(3):118–128. doi:10.3390/crops1030012.
  • Borawska-Jarmułowicz B, Mastalerczuk G, Dąbrowski P, Kalaji HM, Wytrążek K. Special issue in honour of Prof. Reto J. Strasser - improving tolerance in seedlings of some polish varieties of dactylis glomerata to water deficit by application of simulated drought during seed germination. Photosynthetica. 2020;58(2):540–548. doi:10.32615/ps.2020.007.
  • Bürling K, Cerovic ZG, Cornic G, Ducruet JM, Noga G, Hunsche M. Fluorescence-based sensing of drought-induced stress in the vegetative phase of four contrasting wheat genotypes. EEB. 2013;89:51–59. doi:10.1016/j.envexpbot.2013.01.003.
  • Kalaji HM, Račková L, Paganová V, Swoczyna T, Rusinowski S, Sitko K. Can chlorophyll-a fluorescence parameters be used as bio-indicators to distinguish between drought and salinity stress in tilia cordata mill? EEB. 2018;152:149–157. doi:10.1016/j.envexpbot.2017.11.001.
  • Bota J, Tomás M, Flexas J, Medrano H, Escalona JM. Differences among grapevine cultivars in their stomatal behavior and water use efficiency under progressive water stress. Agric Water Manage. 2016;164:91–99. doi:10.1016/j.agwat.2015.07.016.
  • Pang J, Turner NC, Khan T, Du YL, Xiong JL, Colmer TD, Devilla R, Stefanova K, Siddique KH. Response of chickpea (Cicer arietinum L.) to terminal drought: leaf stomatal conductance, pod abscisic acid concentration, and seed set. J Exp Bot. 2016;68(8):1973–1985. doi:10.1093/jxb/erw153.
  • Wang X, Du T, Huang J, Peng S, Xiong D. Leaf hydraulic vulnerability triggers the decline in stomatal and mesophyll conductance during drought in rice. J Exp Bot. 2018;69(16):4033–4045. doi:10.1093/jxb/ery188.
  • Ma C, Wang ZQ, Zhang LT, Sun MM, Lin TB. Photosynthetic responses of wheat (Triticum aestivum L.) to combined effects of drought and exogenous methyl jasmonate. Photosynt. 2014;52(3):377–385. doi:10.1007/s11099-014-0041-x.
  • Pazirandeh MS, Hasanloo T, Shahbazi M, Niknam V, Moradi-Payam A. Effect of methyl jasmonate in alleviating adversities of water stress in barley genotypes. Int J Farm Allied Sci. 2015;4:111–118.
  • Wu H, Wu X, Li Z, Duan L, Zhang M. Physiological evaluation of drought stress tolerance and recovery in cauliflower (Brassica oleracea L.) seedlings treated with methyl jasmonate and coronatine. J Plant Growth Regul. 2012;31(1):113–123. doi:10.1007/s00344-011-9224-x.
  • da Silva EC, Nogueira RJMC, da Silva MA, de Albuquerque MB. Drought stress and plant nutrition. Plant Stress. 2011;5:32–41.
  • Schimel J, Balser TC, Wallenstein M. Microbial stress‐response physiology and its implications for ecosystem function. Ecology. 2007;88(6):1386–1394. doi:10.1890/06-0219.
  • Xiang SR, Doyle A, Holden PA, Schimel JP, Wang T, Lv X, Wang X, Wang J. Drying and rewetting effects on C and N mineralization and microbial activity in surface and subsurface California grassland soils. Soil Biol Biochem. 2008;40(9):2281–2289. doi:10.1016/j.soilbio.2008.05.004.
  • Fugate KK, Lafta AM, Eide JD, Li G, Lulai EC, Olson LL, Finger FL, Deckard EL, Khan MFR. Methyl jasmonate alleviates drought stress in young sugar beet (beta vulgaris L.) plants. J Agron Crop Sci. 2018;204(6):566–576. doi:10.1111/jac.12286.
  • Sadeghipour O. Drought tolerance of cowpea enhanced by exogenous application of methyl jasmonate. Int J Mod Agric. 2018;7:51–57.