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706 related items for PubMed ID: 32293274
21. Transcription Factors Interact with ABA through Gene Expression and Signaling Pathways to Mitigate Drought and Salinity Stress. Hussain Q, Asim M, Zhang R, Khan R, Farooq S, Wu J. Biomolecules; 2021 Aug 05; 11(8):. PubMed ID: 34439825 [Abstract] [Full Text] [Related]
22. Transcriptome Profiling of the Potato (Solanum tuberosum L.) Plant under Drought Stress and Water-Stimulus Conditions. Gong L, Zhang H, Gan X, Zhang L, Chen Y, Nie F, Shi L, Li M, Guo Z, Zhang G, Song Y. PLoS One; 2015 Aug 05; 10(5):e0128041. PubMed ID: 26010543 [Abstract] [Full Text] [Related]
23. Gene expression profiling of Bothriochloa ischaemum leaves and roots under drought stress. Li C, Dong J, Zhang X, Zhong H, Jia H, Fang Z, Dong K. Gene; 2019 Apr 05; 691():77-86. PubMed ID: 30593916 [Abstract] [Full Text] [Related]
24. Involvement of abscisic acid-responsive element-binding factors in cassava (Manihot esculenta) dehydration stress response. Feng RJ, Ren MY, Lu LF, Peng M, Guan X, Zhou DB, Zhang MY, Qi DF, Li K, Tang W, Yun TY, Chen YF, Wang F, Zhang D, Shen Q, Liang P, Zhang YD, Xie JH. Sci Rep; 2019 Sep 02; 9(1):12661. PubMed ID: 31477771 [Abstract] [Full Text] [Related]
25. Transcriptome profiles identify the common responsive genes to drought stress in two Elymus species. Li MQ, Yang J, Wang X, Li DX, Zhang CB, Tian ZH, You MH, Bai SQ, Lin HH. J Plant Physiol; 2020 Jul 02; 250():153183. PubMed ID: 32422512 [Abstract] [Full Text] [Related]
26. Comparative transcriptome and coexpression network analysis reveals key pathways and hub candidate genes associated with sunflower (Helianthus annuus L.) drought tolerance. Shi H, Hou J, Li D, Hu H, Wang Y, Wu Y, Yi L. BMC Plant Biol; 2024 Mar 27; 24(1):224. PubMed ID: 38539093 [Abstract] [Full Text] [Related]
27. Full-length transcriptome of in Medicago sativa L. roots in response to drought stress. Fang Z, Liu J, Wu X, Zhang Y, Jia H, Shi Y. Front Genet; 2022 Mar 27; 13():1086356. PubMed ID: 36685877 [Abstract] [Full Text] [Related]
28. Key Maize Drought-Responsive Genes and Pathways Revealed by Comparative Transcriptome and Physiological Analyses of Contrasting Inbred Lines. Zenda T, Liu S, Wang X, Liu G, Jin H, Dong A, Yang Y, Duan H. Int J Mol Sci; 2019 Mar 13; 20(6):. PubMed ID: 30871211 [Abstract] [Full Text] [Related]
29. Transcriptome Profiling Reveals Molecular Responses to Salt Stress in Common Vetch (Vicia sativa L.). Sun Y, Zhao N, Sun H, Xu S, Lu Y, Xi H, Guo Z, Shi H. Plants (Basel); 2024 Mar 03; 13(5):. PubMed ID: 38475559 [Abstract] [Full Text] [Related]
30. Root system architecture, physiological analysis and dynamic transcriptomics unravel the drought-responsive traits in rice genotypes. Tiwari P, Srivastava D, Chauhan AS, Indoliya Y, Singh PK, Tiwari S, Fatima T, Mishra SK, Dwivedi S, Agarwal L, Singh PC, Asif MH, Tripathi RD, Shirke PA, Chakrabarty D, Chauhan PS, Nautiyal CS. Ecotoxicol Environ Saf; 2021 Jan 01; 207():111252. PubMed ID: 32916530 [Abstract] [Full Text] [Related]
31. Genome-Wide Gene Expression Profiles Analysis Reveal Novel Insights into Drought Stress in Foxtail Millet (Setaria italica L.). Qin L, Chen E, Li F, Yu X, Liu Z, Yang Y, Wang R, Zhang H, Wang H, Liu B, Guan Y, Ruan Y. Int J Mol Sci; 2020 Nov 12; 21(22):. PubMed ID: 33198267 [Abstract] [Full Text] [Related]
32. Transcriptome-Wide Characterization and Functional Identification of the Aquaporin Gene Family During Drought Stress in Common Vetch. Wei X, Jin X, Ndayambaza B, Min X, Zhang Z, Wang Y, Liu W. DNA Cell Biol; 2019 Apr 12; 38(4):374-384. PubMed ID: 30807211 [Abstract] [Full Text] [Related]
33. Elevated carbon dioxide and drought modulate physiology and storage-root development in sweet potato by regulating microRNAs. Saminathan T, Alvarado A, Lopez C, Shinde S, Gajanayake B, Abburi VL, Vajja VG, Jagadeeswaran G, Raja Reddy K, Nimmakayala P, Reddy UK. Funct Integr Genomics; 2019 Jan 12; 19(1):171-190. PubMed ID: 30244303 [Abstract] [Full Text] [Related]
34. Time-course transcriptome and WGCNA analysis revealed the drought response mechanism of two sunflower inbred lines. Wu Y, Wang Y, Shi H, Hu H, Yi L, Hou J. PLoS One; 2022 Jan 12; 17(4):e0265447. PubMed ID: 35363798 [Abstract] [Full Text] [Related]
35. Transcriptomic Analysis of Drought Stress Responses in Ammopiptanthus mongolicus Leaves Using the RNA-Seq Technique. Gao F, Wang J, Wei S, Li Z, Wang N, Li H, Feng J, Li H, Zhou Y, Zhang F. PLoS One; 2015 Jan 12; 10(4):e0124382. PubMed ID: 25923822 [Abstract] [Full Text] [Related]
36. Exploring drought stress-regulated genes in senna (Cassia angustifolia Vahl.): a transcriptomic approach. Mehta RH, Ponnuchamy M, Kumar J, Reddy NR. Funct Integr Genomics; 2017 Jan 12; 17(1):1-25. PubMed ID: 27709374 [Abstract] [Full Text] [Related]
37. Transcriptomic and Metabolomic Insights into ABA-Related Genes in Cerasus humilis under Drought Stress. Liu Y, Zhao C, Tang X, Wang L, Guo R. Int J Mol Sci; 2024 Jul 11; 25(14):. PubMed ID: 39062878 [Abstract] [Full Text] [Related]
38. Analysis of Whole Transcriptome RNA-seq Data Reveals Many Alternative Splicing Events in Soybean Roots under Drought Stress Conditions. Song L, Pan Z, Chen L, Dai Y, Wan J, Ye H, Nguyen HT, Zhang G, Chen H. Genes (Basel); 2020 Dec 19; 11(12):. PubMed ID: 33352659 [Abstract] [Full Text] [Related]
39. Rootstock-induced molecular responses associated with drought tolerance in sweet orange as revealed by RNA-Seq. Gonçalves LP, Boscariol Camargo RL, Takita MA, Machado MA, Dos Soares Filho WS, Costa MGC. BMC Genomics; 2019 Feb 06; 20(1):110. PubMed ID: 30727949 [Abstract] [Full Text] [Related]
40. Transcript and metabolic adjustments triggered by drought in Ilex paraguariensis leaves. Acevedo RM, Avico EH, González S, Salvador AR, Rivarola M, Paniego N, Nunes-Nesi A, Ruiz OA, Sansberro PA. Planta; 2019 Aug 06; 250(2):445-462. PubMed ID: 31055624 [Abstract] [Full Text] [Related] Page: [Previous] [Next] [New Search]