References
Ageeva-Kieferle A, Georgii E, Winkler B, Ghirardo A, Albert A, Hüther P, Mengel A, Becker C, Schnitzler J-P & Durner J (2021) Nitric oxide coordinates growth, development, and stress response via histone modification and gene expression. Plant Physiology 187:336-360. https://doi.org/310.1093/plphys/kiab1222.
Al-Ashkar N, Bakry B, El-Bassiouny H, Abdallah M & Sadak M (2024) Sodium nitroprusside as a signal molecule for up-regulating membrane characteristics, antioxidant defense system to improve flax productivity under water stress. Oil Crop Science 9: 160-169. https://doi.org/ 110.1016/j.ocsci.2024.1007.1002.
Alhasawi A, Legendre F, Jagadeesan S, Appanna V & Appanna V (2019) Biochemical strategies to counter nitrosative stress: nanofactories for value-added products: Microbial diversity in the genomic era. Elsevier. pp. 153-169. https://doi.org/10.1016/B978-0-12-814849-5.00010-1,
Antoniou C, Filippou P, Mylona P, Fasoula D, Ioannides I, Polidoros A & Fotopoulos V (2013) Developmental stage-and concentration specific sodium nitroprusside application results in nitrate reductase regulation and the modification of nitrate metabolism in leaves of Medicago truncatula plants. Plant Signaling and behavior 8: e25479-25471-e25479-25479. https://doi.org/10.4161/psb.25479.
Arasimowicz M & Floryszak-Wieczorek J (2007) Nitric oxide as a bioactive signalling molecule in plant stress responses. Plant Science 172: 876-887. https://doi.org/10.1016/j.plantsci.2007. 02.005.
Badem A & Söylemez S (2022) Effects of nitric oxide and silicon application on growth and productivity of pepper under salinity stress. Journal of King Saud University-Science 34: 102189. https://doi.org/102110.101016/j.jksus.102022.102189.
Bajguz A (2014) Nitric oxide: role in plants under abiotic stress: Physiological mechanisms and adaptation strategies in plants under changing environment. Springer, pp. 137-159. https://doi.org/10.1007/978-1-4614-8600-8_5.
Bavita A, Shashi B & Navtej S (2012) Nitric oxide alleviates oxidative damage induced by high temperature stress in wheat. Indian Journal of Experimental Biology 50: 372-378.
Bethke PC, Badger MR & Jones RL (2004) Apoplastic synthesis of nitric oxide by plant tissues. The Plant Cell 16: 332-341. https://doi.org/ 10.1105/tpc.017822.
Butler AR & Megson IL (2002) Non heme iron nitrosyls in biology. Chemical Reviews 102: 1155-1166. https://doi.org/ 10.1021/ cr000076d.
Bykova NV & Igamberdiev AU (2025) Redox control of seed germination is mediated by the crosstalk of nitric oxide and reactive oxygen species. Antioxidants & Redox Signaling 42: 442-461. https://doi.org/410.1089/ars.2024.0699 .
Chavoushi M, Najafi F, Salimi A & Angaji S (2019) Improvement in drought stress tolerance of safflower during vegetative growth by exogenous application of salicylic acid and sodium nitroprusside. Industrial Crops and Products 134: 168-176. https://doi.org/110.1016/j. indcrop.2019.1003.1071.
Chavoushi M, Najafi F, Salimi A & Angaji SA (2020) Effect of salicylic acid and sodium nitroprusside on growth parameters, photosynthetic pigments and secondary metabolites of safflower under drought stress. Scientia Horticulturae 259: 108823. https://doi.org/10.1016/ j.scienta.2019.108823.
Cui J, Huang M, Qi J, Yu W & Li C (2025) Nitric oxide in plant cold stress: functions, mechanisms and challenges. Agronomy 15: 1072. https://doi.org/1010.3390/agronomy 15051072.
Culotta E & Koshland Jr DE (1992) NO news is good news. Science 258: 1862-1866. https://doi.org/ 10.1126/science.1361684.
Del Rı́o LA, Corpas FJ & Barroso JB (2004) Nitric oxide and nitric oxide synthase activity in plants. Phytochemistry 65: 783-792. https://doi.org/10.1016/j.phytochem.2004.02.001.
Delledonne M, Zeier J, Marocco A & Lamb C (2001) Signal interactions between nitric oxide and reactive oxygen intermediates in the plant hypersensitive disease resistance response. Proceedings of the National Academy of Sciences 98: 13454-13459. https://doi.org/10.1073/ pnas.231178298.
Dieckmann V, Eicke S, Springfeld K & Imlau M (2012) Transition metal compounds towards holography. Materials 5: 1155-1175. https://doi.org/10.3390/ma5061155.
Domingos P, Prado AM, Wong A, Gehring C & Feijo JA (2015) Nitric oxide: a multitasked signaling gas in plants. Molecular plant 8: 506-520. https://doi.org/10.1016/j.molp.2014.12.010.
Duan X, Su X, You Y, Qu H, Li Y & Jiang Y (2007) Effect of nitric oxide on pericarp browning of harvested longan fruit in relation to phenolic metabolism. Food Chemistry 104: 571-576.
Dutta S, Sengupta P, Das S, Slama P & Roychoudhury S (2022) Reactive nitrogen species and male reproduction: physiological and pathological aspects. International Journal of Molecular Sciences 23: 10574. https://doi.org/10510.13390/ijms231810574.
Erdei L & Kolbert Z (2008) Nitric oxide as a potent signalling molecule in plants. Acta Biologica Szegedienis 52: 1-5.
Gladwin MT, Schechter AN, Kim-Shapiro DB, Patel RP, Hogg N, Shiva S, Cannon RO, Kelm M, Wink DA & Espey MG (2005) The emerging biology of the nitrite anion. Nature chemical biology 1: 308-314. https://doi.org/10.1038/nchembio1105-308.
Grün S, Lindermayr C, Sell S & Durner J (2006) Nitric oxide and gene regulation in plants. Experimental Botany 57: 507-516. https://doi.org/10.1093/jxb/erj053.
Gupta KJ, Kaladhar VC, Fitzpatrick TB, Fernie AR, Møller IM & Loake GJ (2022) Nitric oxide regulation of plant metabolism. Molecular Plant 15: 228-242. https://doi.org/210.1016/ j.molp.2021.1012.1012.
Hancock JT & Veal D (2021) Nitric oxide, other reactive signalling compounds, redox, and reductive stress. Journal of experimental botany 72: 819-829. https://doi.org/810.1093/ jxb/eraa1331.
Hatef B, Hosseini F, Chahardehi AM & Hosseini Y (2023) The Effect of Nitric Oxide Precursor (L-Arginine) and Inhibitor (L-NAME) in Nucleus Accumbens on Learning and Memory in Stressed Rats. Activitas Nervosa Superior Rediviva 65: 87-97.
Igamberdiev AU, Ratcliffe RG & Gupta KJ (2014) Plant mitochondria: source and target for nitric oxide. Mitochondrion 19: 329-333. https://doi.org/10.1016/j.mito.2014.02.003.
Jamali B, Eshghi S & Kholdebarin B (2014) Response of strawberry ‘Selva’plants on foliar application of sodium nitroprusside (nitric oxide donor) under saline conditions. Horticultural Research 22: 139-150.
Jindal A & Seth CS (2023) Nitric oxide mediated post-translational modifications and its significance in plants under abiotic stress: Nitric oxide in developing plant stress resilience (ed. Elsevier, pp. 233-250. https://doi.org/210.1016/B1978-1010-1323-91209-91209.00006-91203.
Kataria S, Rastogi A, Bele A & Jain M (2020) Role of nitric oxide and reactive oxygen species in static magnetic field pre-treatment induced tolerance to ambient UV-B stress in soybean. Physiology and Molecular Biology of Plants 26: 931-945.
Kaya C, Ashraf M, Alyemeni MN & Ahmad P (2020) The role of endogenous nitric oxide in salicylic acid-induced up-regulation of ascorbate-glutathione cycle involved in salinity tolerance of pepper (Capsicum annuum L.) plants. Plant Physiology and Biochemistry 147: 10-20. https://doi.org/10.1016/j.plaphy.2019.1011.1040.
Khan M, Al Azzawi TNI, Ali S, Yun B-W & Mun B-G (2023a) Nitric oxide, a key modulator in the alleviation of environmental stress-mediated damage in crop plants: a meta-analysis. Plants 12: 2121. https://doi.org/2110.3390/plants12112121.
Khan M, Ali S, Al Azzawi TNI & Yun B-W (2023b) Nitric oxide acts as a key signaling molecule in plant development under stressful conditions. International Journal of Molecular Sciences 24: 4782.
Khator K, Parihar S, Jasik J & Shekhawat GS (2024) Nitric oxide in plants: an insight on redox activity and responses toward abiotic stress signaling. Plant Signaling & Behavior 19: 2298053.
Klessig DF, Durner J, Noad R, Navarre DA, Wendehenne D, Kumar D, Zhou JM, Shah J, Zhang S & Kachroo P (2000) Nitric oxide and salicylic acid signaling in plant defense. Proceedings of the National Academy of Sciences 97: 8849-8855.
Kolbert Z, Bartha B & Erdei L (2005) Generation of nitric oxide in roots of Pisum sativum, Triticum aestivum and Petroselinum crispum plants under osmotic and drought stress. Acta Biologica Szegediensis 49: 13-16.
Król M & Kepinska M (2020) Human nitric oxide synthase. Its functions, polymorphisms, and inhibitors in the context of inflammation, diabetes and cardiovascular diseases. International Journal of Molecular Sciences 22: 56. https://doi.org/10.3390/ijms22010056.
Kuźniak E & Ciereszko I (2025) Nitric oxide and photosynthesis interplay in plant interactions with pathogens. International Journal of Molecular Sciences 26: 6964. https://doi.org/6910.3390/ijms26146964.
Lamattina L, García-Mata C, Graziano M & Pagnussat G (2003) Nitric oxide: the versatility of an extensive signal molecule. Annual review of plant biology 54: 109-136. https://doi.org/ 10.1146/annurev.arplant.54. 031902.134752.
Lau S-E, Hamdan MF, Pua T-L, Saidi NB & Tan BC (2021) Plant nitric oxide signaling under drought stress. Plants 10: 360-388. https://doi.org/310.3390/plants10020360.
Li P, Liu C-Y, Liu H, Zhang Q & Wang L (2013) Protective function of nitric oxide on marine phytoplankton under abiotic stresses. Nitric Oxide 33: 88-96. https://doi.org/ 10.1016/j.niox. 2013.06.007.
Lopes-Oliveira PJ, Oliveira HC, Kolbert Z & Freschi L (2021) The light and dark sides of nitric oxide: multifaceted roles of nitric oxide in plant responses to light. Journal of experimental botany 72: 885-903. https://doi.org/810.1093/jxb/eraa1504.
Maslennikova D, Knyazeva I, Vershinina O, Titenkov A & Lastochkina O (2023) Seed treatment with sodium nitroprusside ensures a long-term physiological and protective effect on wheat under salinity. Life 13: 1499. https://doi.org/1410.3390/life13071499.
Mello CS, Hermes V, Guerra M & Arisi A (2012) Sodium nitroprusside modulates gene expression involved in glutathione synthesis in Zea mays leaves. Biologia Plantarum 56: 383-388.
Misra A, Misra M & Singh R (2010) Nitric oxide biochemistry, mode of action and signaling in plants. Medicinal Plants Research 4: 2729-2739.
Mur LA, Mandon J, Cristescu SM, Harren FJ & Prats E (2011) Methods of nitric oxide detection in plants: a commentary. Plant Science 181: 509-519. https://doi.org/ 10.1016/j.plantsci. 2011.04.003.
Neill SJ, Desikan R & Hancock JT (2003) Nitric oxide signalling in plants. New Phytologist 159: 11-35.
Parankusam S, Adimulam SS, Bhatnagar-Mathur P & Sharma KK (2017) Nitric oxide (NO) in plant heat stress tolerance: current knowledge and perspectives. Frontiers in plant science 8: 1582. https://doi.org/10.3389/fpls.2017.01582.
Polverari A, Molesini B, Pezzotti M, Buonaurio R, Marte M & Delledonne M (2003) Nitric oxide-mediated transcriptional changes in Arabidopsis thaliana. Molecular Plant-Microbe Interactions 16: 1094-1105. https://doi.org/10.1094/ MPMI.2003.16.12.1094.
Popova L & Tuan T (2010) Nitric oxide in plants: properties, biosynthesis and physiological functions. Iranian Journal of Science and Technology (Sciences) 34:173-183.
Rezayian M, Ebrahimzadeh H & Niknam V (2020) Nitric oxide stimulates antioxidant system and osmotic adjustment in soybean under drought stress. Journal of Soil Science and Plant Nutrition 20: 1122-1132.
Santa-Cruz DM, Pacienza NA, Zilli CG, Tomaro ML, Balestrasse KB & Yannarelli GG (2014) Nitric oxide induces specific isoforms of antioxidant enzymes in soybean leaves subjected to enhanced ultraviolet-B radiation. Photochemistry and Photobiology B: Biology 141: 202-209. https://doi.org/ 10.1016/j.jphotobiol. 2014.09.019.
Seabra AB, Silveira NM, Ribeiro RV, Pieretti JC, Barroso JB, Corpas FJ, Palma JM, Hancock JT, Petřivalský M & Gupta KJ (2022) Nitric oxide‐releasing nanomaterials: from basic research to potential biotechnological applications in agriculture. New Phytologist 234: 1119-1125. https://doi.org/1110.1111/nph.18073.
Sehar Z, Mir IR, Khan S, Masood A & Khan NA (2023) Nitric oxide and proline modulate redox homeostasis and photosynthetic metabolism in wheat plants under high temperature stress acclimation. Plants 12: 1256. https://doi.org/1210.3390/plants12061256.
Shi Q, Ding F, Wang X & Wei M (2007) Exogenous nitric oxide protect cucumber roots against oxidative stress induced by salt stress. Plant Physiology and Biochemistry 45: 542-550. https://doi.org/ 10.1016/j.plaphy. 2007.05.005.
Taheri S, SAEIDI SS, Masoudian N, Ebadi M & Roudi B (2021) Molecular and biochemical protective roles of sodium nitroprusside in tomato (Lycopersicon esculentum mill.) under salt stress. Iranian Journal of Plant Physiology 11: 3466-3473.
Wendehenne D, Durner J & Klessig DF (2004) Nitric oxide: a new player in plant signalling and defence responses. Current opinion in plant biology 7: 449-455. https://doi.org/ 10.1016/j.pbi.2004.04.002.
Wu X, Liu Z & Liao W (2021) The involvement of gaseous signaling molecules in plant MAPK cascades: function and signal transduction. Planta 254: 127. https://doi.org/110.1007/s00425-00021-03792-00420.
Xie Z, Yang C, Li M, Zhang Z, Wu Y, Gu L & Peng X (2022) Nitric oxide crosstalk with phytohormone is involved in enhancing photosynthesis of Tetrastigma hemsleyanum for photovoltaic adaptation. Frontiers in Plant Science 13: 852956. https://doi.org/852910. 853389/fpls.852022.852956.
Yang Y, Huang Z & Li L-L (2021) Advanced nitric oxide donors: Chemical structure of NO drugs, NO nanomedicines and biomedical applications. Nanoscale 13: 444-459. https://doi.org/410.1039/D1030NR07484E.
Zangani E, Angourani HR, Andalibi B, Rad SV & Mastinu A (2023) Sodium nitroprusside improves the growth and behavior of the stomata of Silybum marianum L. subjected to different degrees of drought. Life 13: 875. https://doi.org/ 810.3390/life13040875.
Zhang J, Zhou M, Zhou H, Zhao D, Gotor C, Romero LC, Shen J, Ge Z, Zhang Z & Shen W (2021) Hydrogen sulfide, a signaling molecule in plant stress responses. Journal of Integrative Plant Biology 63: 146-160. https://doi.org/110.1111/jipb.13022.
Zhang W, Yu P, Liu W, Wang L, Song X, Yao Y, Liu X & Meng X (2025) Mechanism of sodium nitroprusside regulating ginseng quality. Scientific Reports 15: 1562. https://doi.org/1510.1038/s41598-41025-85905-41593.
Zhou X, Joshi S, Khare T, Patil S, Shang J & Kumar V (2021) Nitric oxide, crosstalk with stress regulators and plant abiotic stress tolerance. Plant Cell Reports 40: 1395-1414. https://doi.org/1310.1007/s00299-00021-02705-00295.