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Research paper

The role of NaHS pretreatment in improving salt stress resistance in foxtail millet seedlings: physiological and molecular mechanisms

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Article: 2276611 | Received 29 Jul 2023, Accepted 16 Oct 2023, Published online: 02 Nov 2023

References

  • Yang Y, Cheng J, Han H, Sun R, Li Y, Zhang Y, Han Y, Zhang H, Li X. Genome-wide identification of the HKT transcription factor family and their response to salt stress in foxtail millet (setaria italica). Plant Growth Regul. 2023;99(1):113–12. doi:10.1007/s10725-022-00903-z.
  • Abah CR, Ishiwu CN, Obiegbuna JE, Oladejo AA. Nutritional composition, functional properties and food applications of Millet Grains. Asian Food Sci J. 2020;14(2):9–19. doi:10.9734/afsj/2020/v14i230124.
  • Meng L, Yu Z, Shun Guo L. Current situation and development suggestion of foxtail millet production in the Taihang Mountain, Hebei Province——taking foxtail millet production investigation in Wu’an city as a case. J Agric. 2011;6(10):e26550–e26550. doi:10.1371/journal.pone.0026550.
  • Jian-Bing LI, Shou-Guo H, Cai-Ping W. Thinking on the production and Industry development of millet in Shanxi Province. J Shanxi Agric Sci. 2015;43(11):1508–1510. in Chinese.
  • Shun-Guo LI, Fei L, Meng L. The current industry situation, development trend, and suggestions for the future of foxtail millet in China. Res Agric Modernization. 2014;35(5):531–535. in Chinese.
  • Radi AA, Farghaly FA, Hamada AM. Physiological and biochemical responses of salt-tolerant and salt-sensitive wheat and bean cultivars to salinity. J Biol Earth Sci. 2013;3:72–88.
  • Li H, Shi J, Wang Z, Zhang W, Yang H. H2S pretreatment mitigates the alkaline salt stress on Malus hupehensis roots by regulating Na+/K+ homeostasis and oxidative stress. Plant Physiol Bioch. 2020;156:233–241. doi:10.1016/j.plaphy.2020.09.009.
  • Gou QQ, Han ZW, Wang GH. Research progress on soil salinization in arid irrigated area of Northwestern China. Chinese Agric Sci Bull. 2011;27(29):246–250. in Chinese.
  • Jafar MZ, Farooq M, Cheema, M A, Afzal I, Basra SMA, Wahid MA, Aziz T, Shahid M. Improving the performance of wheat by seed priming under saline conditions. J Agron Crop Sci. 2012;198(1):38–45. doi:10.1111/j.1439-037X.2011.00485.x.
  • Raza A, Tabassum J, Fakhar AZ, Sharif R, Chen H, Zhang C, Ju L, Fotopoulos V, Siddique KHM, Singh RK, et al. Smart reprograming of plants against salinity stress using modern biotechnological tools. Critical Reviews In Biotechnology. 2022;43(7):1035–1062. doi:10.1080/07388551.2022.2093695.
  • Ustinov M, Glistin M. Geosystem evaluation of genetic and meliorative peculiarities of soils ofsodal salinization. Melioration Water Manage. 2020;10(12):31–34. doi:10.32962/0235-2524-2019-4-31-34.
  • Zhou WH, Feng RZ, Shi SL, Kou J. Nitric oxide protection of alfalfa seedling roots against salt-induced inhibition of growth and oxidative damage. Acta Ecologica Sinica. 2015;35(11):3606–3614. doi:10.5846/stxb201310142472.
  • Correa-Aragunde N, Graziano M, Lorenzo L. Nitric oxide plays a central role in determining lateral root development in tomato. Planta. 2004;218(6):900–905. doi:10.1007/s00425-003-1172-7.
  • Huang YR, Lin WX, Nie S, Zhu W. Changes of antioxidant metabolism and organic solute accumulation of Pittosporum pentan-drum and Koelreuteria elegans seedlings under salt stress. Chinese J Ecol. 2014;33:3176–3183.
  • Yu CG, Li Y, Xie YF, Yin YL. Effects of NaCl stress on growth and absorption, transportation and distribution of ions in zhongshanshan seedlings. Plant Physiol J. 2016;52(9):1379–1388. doi:10.13592/j.cnki.ppj.2016.0272.
  • Chinnusamy V, Jagendorf A, Zhu JK. Understanding and improving salt tolerance in plants. Crop Sci. 2005;45(2):437–48. doi:10.2135/cropsci2005.0437.
  • Xiang BY, Qing LI, Shao Wu W. Research progress of exogenous substances for alleviate seed germination under salt stress. Heilongjiang Agric Sci. 2013; 11:147.
  • Hosoki R, Matsuki N, Kimura H. The possible role of Hydrogen sulfide as an endogenous smooth muscle relaxant in synergy with Nitric oxide. Biochem Bioph Res Co. 1997;237(3):527–531. doi:10.1006/bbrc.1997.6878.
  • Zhang H, Tang J, Liu X-P, Wang Y, Yu W, Peng W-Y, Fang F, Ma D-F, Wei Z-J, Hu L-Y. Hydrogen sulfide promotes root organogenesis in Ipomoea batatas, Salix matsudana and Glycine max. JIPB. 2009;51(12):1086–1094. doi:10.1111/j.1744-7909.2009.00885.x.
  • Wang LJ, Mu XJ, Chen X, Han Y. Hydrogen sulfide attenuates intracellular oxidative stress via repressing gly‐ colate oxidase activities in Arabidopsis thaliana. BMC Plant Biol. 2022;22(1):98. doi:10.1186/s12870-022-03490-3.
  • Yoo CY, Pence HE, Jin JB, Miura K, Gosney MJ, Hasegawa PM, Mickelbart MV. The Arabidopsis GTL1 transcription factor regulates water use efficiency and drought tolerance by modulating stomatal density via transrepression of SDD1. The Plant Cell. 2010;22(12):4128–4141. doi:10.1105/tpc.110.078691.
  • Turan M, Ekinci M, Kul R, Boynueyri FG, Yildirim E. Mitigation of salinity stress in cucumber seedlings by NaHS. J Plant Res. 2022;135(3):517–529. doi:10.1007/s10265-022-01391-y.
  • Fang HH, Jing T, Liu ZQ, Zhang L, Jin Z, Pei Y. Hydrogen sulfide interacts with calcium signaling to enhance the chromium tolerance in Setaria italica. Cell Calcium. 2014;56(6):472–481. doi:10.1016/j.ceca.2014.10.004.
  • Mostofa MG, Daisuke S, Masayuki F, Tran LSP. Hydrogen sulfide regulates salt tolerance in rice by maintaining Na+/K+ balance, mineral homeostasis and oxidative metabolism under excessive salt stress. Front Plant Sci. 2015;6:1055. doi:10.3389/fpls.2015.01055.
  • Henry IM, Carpentier SC, Pampurova S, Van Hoylandt A, Panis B, Swennen R, Remy S. Structure and regulation of the asr gene family in banana. Planta Int J Plant Biol. 2011;234(4):785-798.234785–798. doi:10.1007/s00425-011-1421-0.
  • Kalifa Y, Gilad A, Konrad Z, Zaccai M, Scolnik P, Bar-zvi D. The water- and salt-stress-regulated Asr1 (abscisic acid stress ripening) gene encodes a zinc-dependent DNA-binding protein. Biochem J. 2004;381(2):373–378. doi:10.1042/bj20031800.
  • Kalifa Y, Perlson E, Gilad A, Konrad Z, Scolnik PA, Bar‐zvi D. Over‐expression of the water and salt stress‐regulated Asr1 gene confers an increased salt tolerance. Blackwell Sci Ltd. 2004;27(12):1459–1468. doi:10.1111/J.1365-3040.2004.01251.X.
  • Li W, Xu G, Alli A, Yu L. Plant HAK/KUP/KT K + transporters: function and regulation. Semin Cell Dev Biol. 2017;74:S1084952116303688. doi:10.1016/j.semcdb.2017.07.009.
  • Gierth M, Mäser P. Potassium transporters in plants – involvement in K + acquisition, redistribution and homeostasis. FEBS Lett. 2007;581(12):2348–2356. doi:10.1016/j.febslet.2007.03.035.
  • Vaid N, Pandey P, Srivastava VK, Tuteja N. Pea lectin receptor-like kinase functions in salinity adaptation without yield penalty, by alleviating osmotic and ionic stresses and upregulating stress-responsive genes. Plant Mol Biol. 2015;88(1–2):193–206. doi:10.1007/s11103-015-0319-9.
  • Yifan W, Zhen L, Jiaowen P, Li Y, Wang Q, Guan YA, Liu W. Cloning and functional analysis of the SiRLK35 gene in Setaria italic L. Yi Chuan = Hereditas. 2017;39(5):413. doi:10.16288/j.yczz.17-027.
  • Jianrui L, Yang D, Cong L, Pan Y, Yu J. SiASR4, the target gene of SiARDP from Setaria italica, improves abiotic stress adaption in plants. Front Plant Sci. 2016;7:2053. doi:10.3389/fpls.2016.02053.
  • Qiao ZJ, Jing T, Jin ZP, Liang YL, Zhang LP, Liu ZQ, Liu D, Pei Y. Cdpks enhance cd tolerance through intensifying H2S signal in Arabidopsis thaliana. Plant Soil. 2016;398(1–2):99–110. doi:10.1007/s11104-015-2643-x.
  • Bates LS, Waldren RP, Teare ID. Rapid determination of free proline for water-stress studies. Plant Soil. 1973;39(1):205–207. doi:10.1007/BF00018060.
  • Shams M, Ekinci M, Ors S, Turan M, Agar G, Kul R, Yildirim E. Nitric oxide mitigates salt stress effects of pepper seedlings by altering nutrient uptake, enzyme activity and osmolyte accumulation. Physiol Mol Biol Plants: Int J Funct Plant Biol. 2019;25(5):1149–1161. doi:10.1007/s12298-019-00692-2.
  • Chen T, Zhang B. Measurements of proline and malondialdehyde contents and antioxidant enzyme activities in leaves of drought stressed cotton. BIO-PROTOCOL. 2016;6(17). doi:10.21769/BioProtoc.1913.
  • Yin L, Wang S, Tanaka K, Fujihara S, Itai A, Den X, Zhang S. Silicon-mediated changes in polyamines participate in silicon-induced salt tolerance in Sorghum bicolor L. Plant Cell & Environment. 2016;39(2):245–258. doi:10.1111/pce.12521.
  • Raju AD, Prasad SM. Hydrogen sulfide implications on easing NaCl induced toxicity in eggplant and tomato seedlings. Plant Physiol Bioch. 2021;164(1):173–184. doi:10.1016/j.plaphy.2021.05.001.
  • Bollivar DW. Recent advances in chlorophyll biosynthesis. Photosynth Res: Int J. 2006;90(2):173–194. doi:10.1007/PL00022068.
  • Mukami A, Ng’etich A, Syombua E, Oduor R, Mbinda W. Varietal differences in physiological and biochemical responses to salinity stress in six finger millet plants. Physiol Mol Biol Plants. 2020;26(8):1569–1582. doi:10.1007/s12298-020-00853-8.
  • Haider SI, Kang W, Zhang GP. Synergistic interaction of NaCl and cd on growth and photosynthetic parameters in soybean genotypes differing in salinity tolerance. J Zhejiang Univ (Sci B: Int Biomed & Biotechnol J). 2007;8(4):6. doi:10.1631/jzus.2007.B0266.
  • Liu B, Kang C, Wang X, Bao G. Physiological and morphological responses of leymus chinensis to saline-alkali stress. Grassl Sci. 2015;61(4):217–226. doi:10.1111/grs.12099.
  • Zai XM, Zhu SN, Qin P, Wang XY, Che L, Luo FX. Effect of glomus mosseae on chlorophyll content, chlorophyll fluorescence parameters, and chloroplast ultrastructure of beach plum (prunus maritima) under NaCl stress. Photosynthetica. 2012;50(3):323–328. doi:10.1007/s11099-012-0035-5.
  • Zhou Yuan Z, Hairong L, Huimei C. Effect of NaHS on the physiological and biochemical characteristics of Processing tomato seedlings under NaCl stress. Acta Agricu Boreali-Sinica. 2017.
  • Zhong Y-H, Guo Z-J, Wei M-Y, Wang J-C, Song S-W, Chi B-J, Zhang Y-C, Liu J-W, Li J, Zhu X-Y, et al. Hydrogen sulfide upregulates the alternative respiratory pathway in mangrove plant Avicennia marina to attenuate waterlogging-induced oxidative stress and mitochondrial damage in a calcium-dependent manner. Plant Cell & Environment. 2023;46(5):1521–1539. doi:10.1111/PCE.14546.
  • Mittler R. Oxidative stress, antioxidants and stress tolerance. Trends In Plant Science. 2002;7(9):405–410. doi:10.1016/S1360-1385(02)02312-9.
  • Xiao-Jing HU. Influence of low temperature stress on electrolyte permeability and content of MDA of hippophae rhamnoides L. J Anhui Agri Sci. 2008;30(8):1008–14. doi:10.3724/SP.J.1005.2008.01008.
  • Jun L. Effects of infection with botryosphaeria dothidea on Cell membrane permeability, soluble sugar and MDA content in Poplar Calli. Scientia Silvae Sinicae. 2008;44(8):72–77. doi:10.1016/S1872-2040(08)60061-4.
  • Zhao S, Zhang Q, Liu M, Zhou H, Ma C, Wang P. Regulation of plant responses to salt stress. Int J Mol Sci. 2021;22(9). doi:10.3390/ijms22094609.
  • Raza A, Tabassum J, Mubarik MS, Anwar S, Zahra N, Sharif Y, Hafeez MB, Zhang C, Corpas FJ, Chen H, et al. Hydrogen sulfide: an emerging component against abiotic stress in plants. Plant Biol (Stuttgart,germany). 2022;24(4):540–558. doi:10.1111/plb.13368.
  • Wei M-Y, Liu J-Y, Li H, Hu W-J, Shen Z-J, Qiao F, Zhu C-Q, Chen J, Liu X, Zheng H-L. Proteomic analysis reveals the protective role of exogenous hydrogen sulfide against salt stress in rice seedlings. Nitric Oxide (Prepublish). 2021;111-112:14–30. doi:10.1016/j.niox.2021.04.002.
  • Egbichi I, Keyster M, Jacobs A, Klein A, Ludidi N. Modulation of antioxidant enzyme activities and metabolites ratios by nitric oxide in short-term salt stressed soybean root nodules. S Afr J Bot. 2013;88:326–333. doi:10.1016/j.sajb.2013.08.008.
  • Yan HE. Responses of the growth and the protective enzymes activities in two genotypic wheats under salt stress. J Shanxi Agric Univ. 2005;25(1):42–4.
  • Liang Jie X, Jiayue W, Lixin W. Prospect of per capita grain demand driven by dietary structure change in China. Resour Sci. 2015;37(7):1347–1356. in Chinese.
  • Li W, Xu G, Alli A, Yu L. Plant HAK/KUP/KT K+ transporters: function and regulation. Semin Cell Dev Biol. 2018;74:133–141. doi:10.1016/j.semcdb.2017.07.009.
  • Meiyun Z, Qian JI, Shi Zhang Z. Studies on free proline and soluble sugar of wild soybeans (glycine soja)Under osmotic stress. J Fudan Univ. 2001;40(5):558–561. in Chinese.
  • Wu DH, Li YL, Xun X, Pu ZP, Liao JM, Huang K, Li ZG. Hydrogen sulfide donor sodium hydrosulfide pretreatment improved multiple resistance abilities of wheat to high temperature and drought stress. J Yunnan Normal Univ (Nat Sci Ed). 2013;33:29–35. doi:10.1016/j.semcdb.2017.07.009.
  • Maathuis F. The role of monovalent cation transporters in plant responses to salinity. J Exp Bot. 2006;57:1137–1147. doi:10.1093/jxb/erj001.
  • YeY Y, Ding YF, Jiang Q, Wang FJ, Sun JW, Zhu C. The role of receptor-like protein kinases (RLKs)in abiotic stress response in plants. Plant Cell Report. 2017;36(2):235–242. doi:10.1007/s00299-016-2084-x.
  • Zhang PY, Zhang ZH, Wang J, Cong BL, Chen KS, Liu SH. A novel receptor-like kinase (PnRLK-1) from the Antarctic Moss Pohlia nutans enhances salt and oxidative stress tolerance. Plant Mol Biol Rep. 2014;33(4):1156–1170. doi:10.1007/s11105-014-0823-0.