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PUBMED FOR HANDHELDS

Journal Abstract Search


308 related items for PubMed ID: 34401950

  • 1. Unfolding molecular switches in plant heat stress resistance: A comprehensive review.
    Haider S, Iqbal J, Naseer S, Shaukat M, Abbasi BA, Yaseen T, Zahra SA, Mahmood T.
    Plant Cell Rep; 2022 Mar; 41(3):775-798. PubMed ID: 34401950
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  • 3. Progress in Research on the Mechanisms Underlying Chloroplast-Involved Heat Tolerance in Plants.
    Zeng C, Jia T, Gu T, Su J, Hu X.
    Genes (Basel); 2021 Aug 28; 12(9):. PubMed ID: 34573325
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  • 5. Molecular insights into sensing, regulation and improving of heat tolerance in plants.
    Saini N, Nikalje GC, Zargar SM, Suprasanna P.
    Plant Cell Rep; 2022 Mar 28; 41(3):799-813. PubMed ID: 34676458
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  • 9. Heterologous expression of heat stress-responsive AtPLC9 confers heat tolerance in transgenic rice.
    Liu Y, Liu X, Wang X, Gao K, Qi W, Ren H, Hu H, Sun D, Bai J, Zheng S.
    BMC Plant Biol; 2020 Nov 11; 20(1):514. PubMed ID: 33176681
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  • 11. Can wheat survive in heat? Assembling tools towards successful development of heat stress tolerance in Triticum aestivum L.
    Kaur R, Sinha K, Bhunia RK.
    Mol Biol Rep; 2019 Apr 11; 46(2):2577-2593. PubMed ID: 30758807
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  • 12. Identification of Heat Shock Transcription Factor Genes Involved in Thermotolerance of Octoploid Cultivated Strawberry.
    Liao WY, Lin LF, Jheng JL, Wang CC, Yang JH, Chou ML.
    Int J Mol Sci; 2016 Dec 17; 17(12):. PubMed ID: 27999304
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  • 13. Beat the heat: plant- and microbe-mediated strategies for crop thermotolerance.
    Shekhawat K, Almeida-Trapp M, García-Ramírez GX, Hirt H.
    Trends Plant Sci; 2022 Aug 17; 27(8):802-813. PubMed ID: 35331665
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  • 14. Heat Stress Responses and Thermotolerance in Maize.
    Li Z, Howell SH.
    Int J Mol Sci; 2021 Jan 19; 22(2):. PubMed ID: 33477941
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  • 15. A review of changes at the phenotypic, physiological, biochemical, and molecular levels of plants due to high temperatures.
    Wang Q, Wu Y, Wu W, Lyu L, Li W.
    Planta; 2024 Feb 03; 259(3):57. PubMed ID: 38307982
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  • 16. CaHsfA1d Improves Plant Thermotolerance via Regulating the Expression of Stress- and Antioxidant-Related Genes.
    Gai WX, Ma X, Li Y, Xiao JJ, Khan A, Li QH, Gong ZH.
    Int J Mol Sci; 2020 Nov 08; 21(21):. PubMed ID: 33171626
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  • 17. Insights into heat response mechanisms in Clematis species: physiological analysis, expression profiles and function verification.
    Zhang H, Jiang C, Wang R, Zhang L, Gai R, Peng S, Zhang Y, Mao C, Lou Y, Mo J, Feng S, Ming F.
    Plant Mol Biol; 2021 Aug 08; 106(6):569-587. PubMed ID: 34260001
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  • 18. Ethylene Response Factor (ERF) Family Proteins in Abiotic Stresses and CRISPR-Cas9 Genome Editing of ERFs for Multiple Abiotic Stress Tolerance in Crop Plants: A Review.
    Debbarma J, Sarki YN, Saikia B, Boruah HPD, Singha DL, Chikkaputtaiah C.
    Mol Biotechnol; 2019 Feb 08; 61(2):153-172. PubMed ID: 30600447
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  • 19. Characterization of novel heat-responsive transcription factor (TaHSFA6e) gene involved in regulation of heat shock proteins (HSPs) - A key member of heat stress-tolerance network of wheat.
    Kumar RR, Goswami S, Singh K, Dubey K, Rai GK, Singh B, Singh S, Grover M, Mishra D, Kumar S, Bakshi S, Rai A, Pathak H, Chinnusamy V, Praveen S.
    J Biotechnol; 2018 Aug 10; 279():1-12. PubMed ID: 29746879
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  • 20. The protein phosphatase RCF2 and its interacting partner NAC019 are critical for heat stress-responsive gene regulation and thermotolerance in Arabidopsis.
    Guan Q, Yue X, Zeng H, Zhu J.
    Plant Cell; 2014 Jan 10; 26(1):438-53. PubMed ID: 24415771
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