| [1] |
Ma C, Wang H, Macnish AJ, Estrada-Melo AC, Lin J, et al. 2015. Transcriptomic analysis reveals numerous diverse protein kinases and transcription factors involved in desiccation tolerance in the resurrection plant Myrothamnus flabellifolia. |
| [2] |
Zhang S, Tong Y, Li Y, Cheng ZM, Zhong Y. 2019. Genome-wide identification of the HKT genes in five Rosaceae species and expression analysis of HKT genes in response to salt-stress in Fragaria vesca. |
| [3] |
Nadeem M, Li J, Yahya M, Wang M, Ali A, et al. 2019. Grain legumes and fear of salt stress: focus on mechanisms and management strategies. |
| [4] |
Passamani LZ, Barbosa RR, Reis RS, Heringer AS, Rangel PL, et al. 2017. Salt stress induces changes in the proteomic profile of micropropagated sugarcane shoots. |
| [5] |
Hassani A, Azapagic A, Shokri N. 2021. Global predictions of primary soil salinization under changing climate in the 21st century. |
| [6] |
Ivushkin K, Bartholomeus H, Bregt AK, Pulatov A, Kempen B, et al. 2019. Global mapping of soil salinity change. |
| [7] |
He Y, Yang B, He Y, Zhan C, Cheng Y, et al. 2019. A quantitative trait locus, qSE3, promotes seed germination and seedling establishment under salinity stress in rice. |
| [8] |
Mahajan S, Tuteja N. 2005. Cold, salinity and drought stresses: an overview. |
| [9] |
van Zelm E, Zhang Y, Testerink C. 2020. Salt Tolerance Mechanisms of Plants. |
| [10] |
Xu L, Chen C. 2023. Economic analysis and development trends of China's peach industry. |
| [11] |
Frenkel C, Belding RD, Williams-Lokaj GR, Reighard GL. 2020. Oxygen- and ethylene-induced germination in dormant peach seeds. |
| [12] |
EL Sabagh A, Islam MS, Skalicky M, Ali Raza M, Singh K, et al. 2021. Salinity stress in wheat (Triticum aestivum L.) in the changing climate: adaptation and management strategies. |
| [13] |
Wang Y, Jiang W, Cheng J, Guo W, Li Y, et al. 2023. Physiological and proteomic analysis of seed germination under salt stress in mulberry. |
| [14] |
Munns R, Tester M. 2008. Mechanisms of salinity tolerance. |
| [15] |
Chen L, Lu B, Liu L, Duan W, Jiang D, et al. 2021. Melatonin promotes seed germination under salt stress by regulating ABA and GA3 in cotton (Gossypium hirsutum L.). |
| [16] |
Sholi NJY. 2012. Effect of salt stress on seed germination, plant growth, photosynthesis and ion accumulation of four tomato cultivars. |
| [17] |
Wang HL, Tian CY, Wang L. 2017. Germination of dimorphic seeds of Suaeda aralocaspica in response to light and salinity conditions during and after cold stratification. |
| [18] |
Xu S, Zhu S, Jiang Y, Wang N, Wang R, et al. 2013. Hydrogen-rich water alleviates salt stress in rice during seed germination. |
| [19] |
Yan M, Yao Y, Mou K, Dan Y, Li W, et al. 2022. The involvement of abscisic acid in hydrogen gas-enhanced drought resistance in tomato seedlings. |
| [20] |
Zhao Z, Li C, Liu H, Yang J, Huang P, et al. 2021. The involvement of glucose in hydrogen gas-medicated adventitious rooting in cucumber. |
| [21] |
Hu H, Zhao S, Li P, Shen W. 2018. Hydrogen gas prolongs the shelf life of kiwifruit by decreasing ethylene biosynthesis. |
| [22] |
Zhu Y, Liao W, Wang M, Niu L, Xu Q, et al. 2016. Nitric oxide is required for hydrogen gas-induced adventitious root formation in cucumber. |
| [23] |
Zhao X, Chen Q, Wang Y, Shen Z, Shen W, et al. 2017. Hydrogen-rich water induces aluminum tolerance in maize seedlings by enhancing antioxidant capacities and nutrient homeostasis. |
| [24] |
Chen Q, Zhao X, Lei D, Hu S, Shen Z, et al. 2017. Hydrogen-rich water pretreatment alters photosynthetic gas exchange, chlorophyll fluorescence, and antioxidant activities in heat-stressed cucumber leaves. |
| [25] |
Su N, Wu Q, Liu Y, Cai J, Shen W, et al. 2014. Hydrogen-rich water reestablishes ROS homeostasis but exerts differential effects on anthocyanin synthesis in two varieties of radish sprouts under UV-A irradiation. |
| [26] |
Ma L, Kong L, Gui R, Yang X, Zhang J, et al. 2021. Application of hydrogen-rich water modulates physio-biochemical functions and early growth of fragrant rice under Cd and Pb stress. |
| [27] |
Fu X, Ma L, Gui R, Ashraf U, Li Y, et al. 2021. Differential response of fragrant rice cultivars to salinity and hydrogen rich water in relation to growth and antioxidative defense mechanisms. |
| [28] |
Yang L, Tian J, Zhu M, Yu B, Sun Y. 2024. Hydrogen-rich water improvement in root growth in maize exposed to saline stress. |
| [29] |
Ma S, Lv L, Meng C, Zhang C, Li Y. 2020. Integrative analysis of the metabolome and transcriptome of Sorghum bicolor reveals dynamic changes in flavonoids accumulation under saline-alkali stress. |
| [30] |
Taylor LP, Grotewold E. 2005. Flavonoids as developmental regulators. |
| [31] |
Zhu T, Yang J, Zhang D, Cai Q, Zhou D, et al. 2020. Effects of white LED Light and UV-C radiation on stilbene biosynthesis and phytochemicals accumulation identified by UHPLC-MS/MS during peanut (Arachis hypogaea L.) germination. |
| [32] |
Lewis DR, Ramirez MV, Miller ND, Vallabhaneni P, Ray WK, et al. 2011. Auxin and ethylene induce flavonol accumulation through distinct transcriptional networks. |
| [33] |
Zhang Q, Wang S, Qin B, Sun HY, Yuan XK, et al. 2023. Analysis of the transcriptome and metabolome reveals phenylpropanoid mechanism in common bean (Phaseolus vulgaris) responding to salt stress at sprout stage. |
| [34] |
Zhu Y, Wang Q, Wang Y, Xu Y, Li J, et al. 2021. Combined transcriptomic and metabolomic analysis reveals the role of phenylpropanoid biosynthesis pathway in the salt tolerance process of Sophora alopecuroides. |
| [35] |
Chen S, Wu F, Li Y, Qian Y, Pan X, et al. 2019. NtMYB4 and NtCHS1 are critical factors in the regulation of flavonoid biosynthesis and are involved in salinity responsiveness. |
| [36] |
Predieri S, Norman HA, Krizek DT, Pillai P, Mirecki RM, et al. 1995. Influence of UV-B radiation on membrane lipid composition and ethylene evolution in 'Doyenne d'Hiver' pear shoots grown in vitro under different photosynthetic photon fluxes. |
| [37] |
Giannopolitis CN, Ries SK. 1977. Superoxide dismutases: I. Occurrence in higher plants 12. |
| [38] |
Lu X, Min W, Shi Y, Tian L, Li P, et al. 2022. Exogenous melatonin alleviates alkaline stress by removing reactive oxygen species and promoting antioxidant defence in rice seedlings. |
| [39] |
Bates LS, Waldren RP, Teare ID. 1973. Rapid determination of free proline for water-stress studies. |
| [40] |
Buysse J, Merckx R. 1993. An improved colorimetric method to quantify sugar content of plant tissue. Journal of Experimental Botany 44:1627−1629 |
| [41] |
Bradford MM. 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. |
| [42] |
Verde I, Abbott AG, Scalabrin S, Jung S, Shu S, et al. 2013. The high-quality draft genome of peach (Prunus persica) identifies unique patterns of genetic diversity, domestication and genome evolution. |
| [43] |
Verde I, Jenkins J, Dondini L, Micali S, Pagliarani G, et al. 2017. The Peach v2.0 release: high-resolution linkage mapping and deep resequencing improve chromosome-scale assembly and contiguity. |
| [44] |
Tan Q, He D, Xu Z, Luo T, Zhao W, et al. 2025. Integration of physiological, transcriptomic, and metabolomic approaches reveals the responses of sweet orange (Citrus sinensis) seedlings exposed to polystyrene microplastics. |
| [45] |
Wu Q, Su N, Cai J, Shen Z, Cui J. 2015. Hydrogen-rich water enhances cadmium tolerance in Chinese cabbage by reducing cadmium uptake and increasing antioxidant capacities. |
| [46] |
Yu Y, Zhang H, Xing H, Cui N, Liu X, et al. 2023. Regulation of growth and salt resistance in cucumber seedlings by hydrogen-rich water. |
| [47] |
Chapman J, Muhlemann JK, Gayomba SR, Muday GK. 2019. RBOH-dependent ROS synthesis and ROS scavenging by plant specialized metabolites to modulate plant development and stress responses. |
| [48] |
Rao MJ, Zheng B. 2025. The role of polyphenols in abiotic stress tolerance and their antioxidant properties to scavenge reactive oxygen species and free radicals. |
| [49] |
Ozfidan-Konakci C, Yildiztugay E, Alp FN, Kucukoduk M, Turkan I. 2020. Naringenin induces tolerance to salt/osmotic stress through the regulation of nitrogen metabolism, cellular redox and ROS scavenging capacity in bean plants. |
| [50] |
Su X, Yao L, Wang X, Zhang Y, Zhang G, et al. 2025. Mechanisms for cell survival during abiotic stress: focusing on plasma membrane. |
| [51] |
Brunetti C, Sebastiani F, Tattini M. 2019. Review: ABA, flavonols, and the evolvability of land plants. |
| [52] |
Han C, Chen G, Zheng D, Feng N. 2023. Transcriptomic and metabolomic analyses reveal that ABA increases the salt tolerance of rice significantly correlated with jasmonic acid biosynthesis and flavonoid biosynthesis. |
| [53] |
Wang Y, Jiang W, Li C, Wang Z, Lu C, et al. 2024. Integrated transcriptomic and metabolomic analyses elucidate the mechanism of flavonoid biosynthesis in the regulation of mulberry seed germination under salt stress. |
| [54] |
Zhang J, Wang Y, Li J, Zhu Y, Wang L, et al. 2024. Overexpression of chalcone isomerase-like genes, GmCHI4A and GmCHI4B, enhances salt tolerance of cotyledon hairy roots and composite plant in soybean (Glycine max (L.) Merr.). |