Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Early Access

Formation of heat tolerance in cotton cultivars through enhancement of antioxidant defence by a natural glycyrrhizin–salicylic acid complex

DOI
https://doi.org/10.14719/pst.10417
Submitted
2 July 2025
Published
11-03-2026

Abstract

Heat stress cause large and recurrent economic losses in cotton production. We hypothesised that a natural glycyrrhizic–salicylic acid complex applied at nanomolar concentration would mitigate heat-induced oxidative damage, activate enzymatic antioxidants and improve biomass recovery across diverse cotton cultivars. Seedlings experienced acute heat stress (45 °C for 6 hr) followed by 24 hr recovery at 30 °C. We quantified growth (root/shoot biomass), hydrogen peroxide and malondialdehyde as damage markers and activities of superoxide dismutase, catalase and peroxidase. Treatment consistently decreased oxidative markers by ~40–60 % and increased antioxidant activities; biomass recovery improved across cultivars. At the field scale, using Uzbekistan-relevant economics, a conservative yield gain of 5–7 centners ha-1 of seed cotton (0.5–0.7 t ha-1) with a 33 % lint turnout converts to 0.165–0.231 t ha-1 additional fibre. Using recent international cotton prices (~0.66 USD lb-1 ≈ 1.46 USD kg-1), this equals 240–337 USD ha-1 extra revenue; after deducting treatment cost (125 mg ha-1 ≈ 24 USD ha-1), the net margin gain is ~215–313 USD ha-1. These findings indicate an environmentally safer and economically promising strategy to stabilise yields during heat extremes.

References

  1. 1. USDA Foreign Agricultural Service (FAS). Uzbekistan: cotton and products update (MY 2024/25). Report No.: UZ2024-0003; 2025. https://www.fas.usda.gov/data/uzbekistan-cotton-and-products-update-8
  2. 2. World Bank. Weaving a new future in Uzbekistan’s cotton sector. 2025. https://www.worldbank.org/en/news/feature/2025/05/27/weaving-a-new-future-in-uzbekistan-s-cotton-sector
  3. 3. Rajendran R, Suganthi T, Kumar R. Silica nanoparticles from coir pith synthesized by acidic sol-gel method improve germination economics. Polym. 2022;14:3716. https://doi.org/10.3390/polym14183716
  4. 4. Minofar B. Understanding the molecular mechanisms of interactions between biochar and denitrifiers in N₂O emissions reduction: Pathway to more economical and sustainable fertilizers. Soil Tillage Res. 2025;248:105994. https://doi.org/10.1016/j.still.2025.105994
  5. 5. Podobnik D, Tkáč M. The analysis of investment into industries based on portfolio managers. Acta Montan Slovaca. 2021;26:121-33. https://doi.org/10.46544/AMS.v26i1.09
  6. 6. Tkáč M, Podobnik D. The dynamic effect of micro-structural shocks on private investment behavior. Acta Montan Slovaca. 2021;26:134-45. https://doi.org/10.46544/AMS.v26i1.10
  7. 7. Akhunov AA, Nurmatova MI, Khashimova NR, Buriev ZT, Abdurakhmanov IY, Kolupaev YE. Responses of antioxidant system of various cotton genotypes to heat stress at the juvenile stage of ontogenesis. Agric For. 2024;70:7-26. https://doi.org/10.17707/AgricultForest.70.1.01
  8. 8. Ashim KD, Protik KG, Nihad SAI, Sultana S, Keya SS, Rahman MA, et al. Salicylic acid priming improves cotton seedling heat tolerance through photosynthetic pigment preservation, enhanced antioxidant activity and osmoprotectant levels. Plants. 2024;13:1639. https://doi.org/10.3390/plants13121639
  9. 9. Giannopolitis CN, Ries SK. Superoxide dismutases: I. Occurrence in higher plants. Plant Physiol. 1977;59:309-14. https://doi.org/10.1104/pp.59.2.309
  10. 10. Polesskaya OG, Kashirina EI, Alekhina ND. Changes in the activity of antioxidant enzymes in wheat leaves and roots as a function of nitrogen source and supply. Russ J Plant Physiol. 2004;51:615-20. https://doi.org/10.1023/B:RUPP.0000040746.66725.77
  11. 11. Christensen JH, Bauw G, Welinder KG, Montagu MV, Boerjan W. Purification and characterization of peroxidases correlated with lignification in poplar xylem. Plant Physiol. 1998;118:125-35. https://doi.org/10.1104/pp.118.1.125
  12. 12. Sinha AK. Colorimetric assay of catalase. Anal Biochem. 1972;4:389-94. https://doi.org/10.1016/0003-2697(72)90132-7
  13. 13. Mahmoud HH. New method for assessment of serum catalase activity. Indian J. Sci. Technol. 2016;9:2-5.
  14. 14. Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. Protein measurement with Folin phenol reagent. J Biol Chem. 1951;193:265-75. https://doi.org/10.1016/S0021-9258(19)52451-6
  15. 15. Kolupaev YE, Yastreb TO, Ryabchun NI, Yemets AI, Dmitriev OP, Blume YB. Cellular mechanisms of the formation of plant adaptive responses to high temperatures. Cytol Genet. 2023;57:55-75.
  16. 16. Gür A, Demirel U, Ozden M, Kahrama A, Çopur O. Diurnal gradual heat stress affects antioxidant enzymes, proline accumulation and some physiological components in cotton (Gossypium hirsutum L.). Afr J Biotechnol. 2010;9:1008-15. https://doi.org/10.5897/AJB09.1590
  17. 17. Sanders J, Laurent U, Huguette S, Félicie LL. Optimized assay for hydrogen peroxide determination in plant tissue using potassium iodide. Am J Anal Chem. 2014;5:730-6.
  18. 18. Singh M, Subahan GM, Sharma S, Singh G, Sharma N, Sharma U, et al. Enhancing horticultural sustainability in the face of climate change: Harnessing biostimulants for environmental stress alleviation in crops. Stresses. 2025;5:23. https://doi.org/10.3390/stresses5010023
  19. 19. Tiwari YK. Proline as a key player in heat stress tolerance: Insights from maize. Discov Agric. 2024;2:121. https://doi.org/10.1007/s44279-024-00084-5
  20. 20. Hashemi H, Abdollahi MB, Omidi M, Ghorbanpour M, Wu D, Brestic M, et al. Impacts of salinity stress on crop plants: Improving salt tolerance—physiological, biochemical and molecular responses. Front. Plant Sci. 2023;14:1191932. https://doi.org/10.3389/fpls.2023.1191932
  21. 21. Sarwar M, Sarfraz S, Hassan A. Exogenously applied growth regulators protect the cotton crop from heat-induced injury by modulating plant defense mechanism. Sci Rep. 2018;8:17086. https://doi.org/10.1038/s41598-018-35420-5
  22. 22. Guo J, Zhao Y, Yang Y, Guan Q. Roles of superoxide dismutase in plant response to drought, salinity and cold stress. Bull Bot Res. 2024;44:481-90. https://doi.org/10.7525/j.issn.1673-5102.2024.04.001
  23. 23. Li Y, Han X, Ren H, Zhao B, Zhang J, Ren B, et al. Exogenous SA or 6-BA maintains photosynthetic activity in maize leaves under high temperature stress. Crop J. 2023;11:605-17. https://doi.org/10.1016/j.cj.2022.08.006
  24. 24. Wang W, Wang X, Lv Z, Khanzada A, Huang M, Cai J, et al. Effects of cold and salicylic acid priming on free proline and sucrose accumulation in winter wheat under freezing stress. J Plant Growth Regul. 2022;41:2171-84. https://doi.org/10.1007/s00344-021-10412-4
  25. 25. Sharma L, Priya M, Bindumadhava H, Nair RM, Nayyar H. Influence of high temperature stress on growth, phenology and yield performance of mungbean (Vigna radiata (L.) Wilczek) under managed growth conditions. Sci Hortic. 2016;213:379-91. https://doi.org/10.1016/j.scienta.2016.10.033
  26. 26. Kocsy G, Szalai G. The role of salicylic acid in activating plant stress responses: A molecular and physiological overview. Int J Mol Sci. 2024;26:4447. https://doi.org/10.3390/ijms26094447
  27. 27. Fahad S, Hussain S, Saud S, Hassan S, Ihsan Z, Shah AN, et al. Exogenously applied plant growth regulators enhance the morpho-physiological growth and yield of rice under high temperature. Front Plant Sci. 2016;7:1250. https://doi.org/10.3389/fpls.2016.01250
  28. 28. Ahmad P, Sharma S. Physio-biochemical attributes in two cultivars of mulberry (Morus alba L.) under NaHCO₃ stress. Int J Plant Prod. 2010;4:79-86.
  29. 29. Wassie M, Zhang W, Zhang Q, Ji K, Cao L, Chen L. Exogenous salicylic acid ameliorates heat stress-induced damages and improves growth and photosynthetic efficiency in alfalfa (Medicago sativa L.). Ecotoxicol Environ Saf. 2020;191:110206. https://doi.org/10.1016/j.ecoenv.2020.110206
  30. 30. Sabir P, Ashraf M, Akram NA. Accession variation for salt tolerance in proso millet (Panicum miliaceum L.) using leaf proline content and activities of some key antioxidant enzymes. J Agron Crop Sci. 2011;197:340-7. https://doi.org/10.1111/j.1439-037X.2011.00471.x
  31. 31. Ding X, Jiang Y, He L, Zhou Q, Yu J, Hui D, et al. Exogenous glutathione improves high root-zone temperature tolerance by modulating photosynthesis, antioxidant and osmolytes systems in cucumber seedlings. Sci Rep. 2016;6:35424. https://doi.org/10.1038/srep35424
  32. 32. Piramila BHM, Prabha AL, Nandagopalan V, Stanley AL. Effect of heat treatment on germination, seedling growth and some biochemical parameters of dry seeds of black gram. Int J Pharm Phytopharmacol. Res. 2012;1:194-202.
  33. 33. Essemine J, Ammar S, Bouzid S. Impact of heat stress on germination and growth in higher plants: Physiological, biochemical and molecular repercussions and mechanisms of defence. J Biol Sci. 2010;10:565-72. https://doi.org/10.3923/jbs.2010.565.572
  34. 34. El-Sayed MD, Ahmed SE, Elsayed M, Rania SM, Eman S, Mostafa M, et al. Application of biostimulants promotes growth and productivity by fortifying the antioxidant machinery and suppressing oxidative stress in faba bean under various abiotic stresses. Sci Hortic. 2021;288:110340. https://doi.org/10.1016/j.scienta.2021.110340
  35. 35. Dong Z, Huang J, Qi T, Fu Q, Meng A, Fu Y. Effects of plant regulators on the seed germination and antioxidant enzyme activity of cotton under compound salt stress. Plants. 2023;12:4112. https://doi.org/10.3390/plants12244112
  36. 36. Iqbal KM, Fatma M, Per TS, Anjum NA, Khan NA. Salicylic acid-induced abiotic stress tolerance and underlying mechanisms in plants. Front Plant Sci. 2015;6:462. https://doi.org/10.3389/fpls.2015.00462
  37. 37. Iqbal KM, Iqbal N, Masood A, Per TS, Khan NA. Salicylic acid alleviates adverse effects of heat stress on photosynthesis through changes in proline production and ethylene formation. Plant Signal Behav. 2013;8:e26374. https://doi.org/10.4161/psb.26374
  38. 38. Nazim H, Azra Y, Muhammad AA. Exogenously applied growth promoters modulate the antioxidant enzyme system to improve the cotton productivity under water stress conditions. Ital J Agron. 2020;15:165-71. https://doi.org/10.4081/ija.2020.1537
  39. 39. Zhu Y, Zhang J, Li H. Cotton straw biochar and compound Bacillus biofertilizer reduce Cd stress on cotton root growth by regulating root exudates and antioxidant enzyme systems. Front Plant Sci. 2022;13:1051935. https://doi.org/10.3389/fpls.2022.1051935
  40. 40. Strunecký O, Shreedhar S, Kolář L, Maroušková A. Changes in soil water retention following biochar amendment. Energy Sources A Recover. Util Environ Eff. 2021;47:7145-52. https://doi.org/10.1080/15567036.2021.1916652
  41. 41. Josef M, Babak M, Anna M, Otakar S, Beata G. Environmental and economic advantages of production and application of digestate biochar. Environ Technol Innov. 2023;30:103109. https://doi.org/10.1016/j.eti.2023.103109

Downloads

Download data is not yet available.