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PUBMED FOR HANDHELDS

Journal Abstract Search


295 related items for PubMed ID: 30767781

  • 1. Insights from transcriptome profiling on the non-photosynthetic and stomatal signaling response of maize carbonic anhydrase mutants to low CO2.
    Kolbe AR, Studer AJ, Cornejo OE, Cousins AB.
    BMC Genomics; 2019 Feb 15; 20(1):138. PubMed ID: 30767781
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  • 2. Carbonic Anhydrase Mutants in Zea mays Have Altered Stomatal Responses to Environmental Signals.
    Kolbe AR, Brutnell TP, Cousins AB, Studer AJ.
    Plant Physiol; 2018 Jul 15; 177(3):980-989. PubMed ID: 29794168
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  • 3. A Carbonic Anhydrase, ZmCA4, Contributes to Photosynthetic Efficiency and Modulates CO2 Signaling Gene Expression by Interacting with Aquaporin ZmPIP2;6 in Maize.
    Zhou L, Xiang X, Ji D, Chen Q, Ma T, Wang J, Liu C.
    Plant Cell Physiol; 2024 Feb 15; 65(2):243-258. PubMed ID: 37955399
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  • 4. Lack of leaf carbonic anhydrase activity eliminates the C4 carbon-concentrating mechanism requiring direct diffusion of CO2 into bundle sheath cells.
    DiMario RJ, Giuliani R, Ubierna N, Slack AD, Cousins AB, Studer AJ.
    Plant Cell Environ; 2022 May 15; 45(5):1382-1397. PubMed ID: 35233800
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  • 8. Regulation of photosynthesis and stomatal and mesophyll conductance under water stress and recovery in olive trees: correlation with gene expression of carbonic anhydrase and aquaporins.
    Perez-Martin A, Michelazzo C, Torres-Ruiz JM, Flexas J, Fernández JE, Sebastiani L, Diaz-Espejo A.
    J Exp Bot; 2014 Jul 15; 65(12):3143-56. PubMed ID: 24799563
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  • 11. A low CO2-responsive mutant of Setaria viridis reveals that reduced carbonic anhydrase limits C4 photosynthesis.
    Chatterjee J, Coe RA, Acebron K, Thakur V, Yennamalli RM, Danila F, Lin HC, Balahadia CP, Bagunu E, Padhma PPOS, Bala S, Yin X, Rizal G, Dionora J, Furbank RT, von Caemmerer S, Quick WP.
    J Exp Bot; 2021 Apr 02; 72(8):3122-3136. PubMed ID: 33528493
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  • 15. Carbonic anhydrases are upstream regulators of CO2-controlled stomatal movements in guard cells.
    Hu H, Boisson-Dernier A, Israelsson-Nordström M, Böhmer M, Xue S, Ries A, Godoski J, Kuhn JM, Schroeder JI.
    Nat Cell Biol; 2010 Jan 02; 12(1):87-93; sup pp 1-18. PubMed ID: 20010812
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  • 16. Evolution of carbonic anhydrase in C4 plants.
    Ludwig M.
    Curr Opin Plant Biol; 2016 Jun 02; 31():16-22. PubMed ID: 27016649
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  • 17. A two-dimensional microscale model of gas exchange during photosynthesis in maize (Zea mays L.) leaves.
    Retta M, Ho QT, Yin X, Verboven P, Berghuijs HNC, Struik PC, Nicolaï BM.
    Plant Sci; 2016 May 02; 246():37-51. PubMed ID: 26993234
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  • 18. Loss of the Chloroplast Transit Peptide from an Ancestral C3 Carbonic Anhydrase Is Associated with C4 Evolution in the Grass Genus Neurachne.
    Clayton H, Saladié M, Rolland V, Sharwood R, Macfarlane T, Ludwig M.
    Plant Physiol; 2017 Mar 02; 173(3):1648-1658. PubMed ID: 28153918
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  • 19. Overexpression of cytoplasmic C4 Flaveria bidentis carbonic anhydrase in C3 Arabidopsis thaliana increases amino acids, photosynthetic potential, and biomass.
    Kandoi D, Ruhil K, Govindjee G, Tripathy BC.
    Plant Biotechnol J; 2022 Aug 02; 20(8):1518-1532. PubMed ID: 35467074
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  • 20. Comparative genomic analysis of C4 photosynthetic pathway evolution in grasses.
    Wang X, Gowik U, Tang H, Bowers JE, Westhoff P, Paterson AH.
    Genome Biol; 2009 Aug 02; 10(6):R68. PubMed ID: 19549309
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