

①提取液中含有蛋白沉淀剂,若采用蛋白浓度计算结果,需单独使用PBS提取后再测定蛋白浓度;
②若A测定或∆A测定超出标准吸光值线性范围:高于最高值建议将待测样本使用提取液适当稀释后再进行测定,低于最低值建议适当调整样本量和比例重新提取后再进行测定,计算时相应修改;
[1] Yuan H, Cheng M, Wang R, et al. miR396b/GRF6 module contributes to salt tolerance in rice[J]. Plant Biotechnology Journal, 2024. (IF 13.8)
[2] Zhang C, Chen X, Han M, et al. Revealing the role of microalgae-bacteria niche for boosting wastewater treatment and energy reclamation in response to temperature[J]. Environmental Science and Ecotechnology, 2023, 14: 100230.(IF 9.371)
[3] Zhao Y, Li Y, Jin Y, et al. The inhibitory effects of Ulva prolifera extracts on early growth of Spartina alterniflora and the underlying mechanisms[J]. Journal of Environmental Management, 2022, 319: 115639.(IF 8.91)
[4] Li N, Zhang Y, Huo X, et al. Mechanism of fatty acid synthesis metabolism during tuber swelling period of Chinese yam[J]. Food Chemistry, 2025: 143556. (IF 8.5)
[5] Ye S, Huang Y, Ma T, et al. BnaABF3 and BnaMYB44 regulate the transcription of zeaxanthin epoxidase genes in carotenoid and abscisic acid biosynthesis[J]. Plant Physiology, 2024: kiae184. (IF 7.4)
[6] Liu Y, Yan Y, Ma L, et al. Physiological and metabolomics analyses reveal the resistance response mechanism to tea aphid infestation in new shoots of tea plant (Camellia sinensis)[J]. Plant Stress, 2024: 100545. (IF 6.8)
[7] Liu Z, Wu C, Li W, et al. OsCSLD4 confers salt–alkali tolerance by regulating gene expressions in photosynthesis and carbohydrate biosynthesis pathways, cell wall hemicellulose accumulation and physio-biochemical adaptability in rice[J]. Plant Stress, 2024: 100604. (IF 6.8)
[8] Li X, Chen L, Liu T, et al. Integrated analysis of ATAC-seq and transcriptomic reveals the ScDof3-ScproC molecular module regulating the cold acclimation capacity of potato[J]. Plant Physiology and Biochemistry, 2024: 108576. (IF 6.5)
[9] Weng W, Lu X, Zhou M, et al. FtbZIP12 Positively Regulates Responses to Osmotic Stress in Tartary Buckwheat[J]. International Journal of Molecular Sciences, 2022, 23(21): 13072.(IF 6.208)
[10] Ye F, Jiang M, Zhang P, et al. Exogenous melatonin reprograms the rhizosphere microbial community to modulate the responses of barley to drought stress[J]. International Journal of Molecular Sciences, 2022, 23(17): 9665.(IF 6.208)
[11] Liu Z, Hu Y, Du A, et al. Cell Wall Matrix Polysaccharides Contribute to Salt–Alkali Tolerance in Rice[J]. International Journal of Molecular Sciences, 2022, 23(23): 15019.(IF 6.208)
[12] Wen J, Chen C, Liu Q, et al. Environmental drivers of Leonurus japonicus habitat suitability: An ensemble model approach[J]. Industrial Crops and Products, 2025, 234: 121562. (IF 6.2)
[13] Cao W, Sun H, Wang C, et al. Genome-wide identification of the ECERIFERUM (CER) gene family in cabbage and critical role of BoCER4. 1 in wax biosynthesis[J]. Plant Physiology and Biochemistry, 2025: 109718. (IF 6.1)
[14] Liu N, Jacquemyn H, Liu Q, et al. Effects of a dark septate fungal endophyte on the growth and physiological response of seedlings to drought in an epiphytic orchid[J]. Frontiers in Microbiology, 2022, 13: 961172.(IF 6.064)
[15] Jiang Z, Du L, Shen L, et al. Genome-Wide Exploration and Expression Analysis of the CNGC Gene Family in Eggplant (Solanum melongena L.) under Cold Stress, with Functional Characterization of SmCNGC1a[J]. International Journal of Molecular Sciences, 2023, 24(17): 13049.(IF 5.6)
[16] Zhou J, Zhang H, Huang Y, et al. Impact of Sulfur Deficiency and Excess on the Growth and Development of Soybean Seedlings[J]. International Journal of Molecular Sciences, 2024, 25(20): 11253. (IF 4.9)
[17] Zhang Y, Wang R, Wang H, et al. LuCSD3 Enhances Salt Stress Tolerance in Flax: Genome-Wide Profiling and Functional Validation of the SOD Gene Family[J]. Frontiers in Plant Science, 2025, 16: 1609085. (IF 4.8)
[18] Song X, Hou X, Zeng Y, et al. Genome-wide identification and comprehensive analysis of WRKY transcription factor family in safflower during drought stress[J]. Scientific Reports, 2023, 13(1): 16955.(IF 4.6)
[18] You X X, Li X G, Zhang X K, et al. Arsenic Stress Resistance in the Endophytic Fungus Cladosporium cladosporioides: Physiological and Transcriptomic Insights into Heavy Metal Detoxification[J]. Journal of Fungi, 2025, 11(5): 374. (IF 4.2)
[20] Yang J, Chen R, Liu W, et al. Genome-wide identification, phylogenetic investigation and abiotic stress responses analysis of the PP2C gene family in litchi (Litchi chinensis Sonn.)[J]. Frontiers in Plant Science, 2025, 16: 1547526. (IF 4.1)
[21] Zhang Y, Zhang H, Zhang Y, et al. Utilizing physiologies, transcriptomics, and metabolomics to unravel key genes and metabolites of Salvia miltiorrhiza Bge. seedlings in response to drought stress[J]. Frontiers in Plant Science, 2025, 15: 1484688. (IF 4.1)
[22] Zeng L, Brown S E, Wu H, et al. Comprehensive genome-wide analysis of the HMGR gene family of Asparagus taliensis and functional validation of AtaHMGR10 under different abiotic stresses[J]. Frontiers in Plant Science, 2025, 16: 1455592. (IF 4.1)
[23] Sun X, Zhu C, Li B, et al. Combining Physiology and Transcriptome to Reveal Mechanisms of Hosta ‘Golden Cadet’in Response to Alkali Stress[J]. Plants, 2025, 14(4): 593. (IF 4.0)
[24] Li Z, Li X, He F. Drip Irrigation Depth Alters Root Morphology and Architecture and Cold Resistance of Alfalfa[J]. Agronomy, 2022, 12(9): 2192.(IF 3.949)
[25] Yao X, Zhou M, Ruan J, et al. Pretreatment with H2O2 alleviates the negative impacts of NaCl stress on seed germination of Tartary buckwheat (Fagopyrum tataricum)[J]. Plants, 2021, 10(9): 1784.(IF 3.935)
[26] Yang J, Zhou Z, Qi W, et al. Phenotypic plasticity and integration synergistically enhance plant adaptability to flooding and nitrogen stresses[J]. Plant and Soil, 2025: 1-22. (IF 3.9)
[27] Liu Y, Zhou J, Chen Y, et al. GmSTK12 Participates in Salt Stress Resistance in Soybean[J]. Agronomy, 2023, 13(2): 613.(IF 3.7)
[28] Zhang L, Zhang R, Ye X, et al. Overexpressing VvWRKY18 from grapevine reduces the drought tolerance in Arabidopsis by increasing leaf stomatal density[J]. Journal of Plant Physiology, 2022, 275: 153741.(IF 3.686)
[29] Kou J, Su Y, Lei T, et al. Transcriptome and Physio-Biochemical Profiling Reveals Differentially Expressed Genes in Seedlings from Aerial and Subterranean Seeds Subjected to Drought Stress in Amphicarpaea edgeworthii Benth[J]. Agronomy, 2025, 15(3): 735. (IF 3.3)
[30] Hou S, Liu Z, Li Y, et al. Exogenous salicylic acid enhanced resistance of Foxtail Millet (Setaria italica) to Sclerospora graminicola[J]. Plant Growth Regulation, 2023, 99(1): 35-44.(IF 3.242)
[31] Xiao H, Deng W, Ahmad B, et al. Cucurbita ficifolia Rootstock Enhances Resistance to Low-Temperature Stress in Cucumber[J]. Horticulturae, 2025, 11(3): 242. (IF 3.1)
[32] Zhang J, Fan J, Tan Z, et al. Identification of Glucose-6-Phosphate Dehydrogenase Family Members Associated with Cold Stress in Pepper (Capsicum annuum L.)[J]. Horticulturae, 2025, 11(7): 719. (IF 3.0)