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| 2 | TRY plant trait database – enhanced coverage and open access | Global Change Biology | 2020 | 1,713 |
| 3 | Use of DNA barcodes to identify flowering plants | Proceedings of the National Academy of Sciences of the United States of America | 2005 | 1,706 |
| 4 | Methods and concepts in quantifying resistance to drought, salt and freezing, abiotic stresses that affect plant water status | Plant Journal | 2006 | 1,500 |
| 5 | Hybridization as a stimulus for the evolution of invasiveness in plants? | Proceedings of the National Academy of Sciences of the United States of America | 2000 | 1,367 |
| 6 | Genetic strategies for improving crop yields | Nature | 2019 | 1,240 |
| 7 | Posttranscriptional Induction of Two Cu/Zn Superoxide Dismutase Genes in Arabidopsis Is Mediated by Downregulation of miR398 and Important for Oxidative Stress Tolerance | Plant Cell | 2006 | 1,210 |
| 8 | Understanding and Improving Salt Tolerance in Plants | Crop Science | 2005 | 1,140 |
| 9 | Endogenous siRNAs Derived from a Pair of Natural cis-Antisense Transcripts Regulate Salt Tolerance in Arabidopsis | Cell | 2005 | 1,049 |
| 10 | Small RNAs as big players in plant abiotic stress responses and nutrient deprivation | Trends in Plant Science | 2007 | 916 |
| 11 | The Arabidopsis NFYA5 Transcription Factor Is Regulated Transcriptionally and Posttranscriptionally to Promote Drought Resistance | Plant Cell | 2008 | 896 |
| 12 | A R2R3 Type MYB Transcription Factor Is Involved in the Cold Regulation of CBF Genes and in Acquired Freezing Tolerance | Journal of Biological Chemistry | 2006 | 875 |
| 13 | A miRNA Involved in Phosphate-Starvation Response in Arabidopsis | Current Biology | 2005 | 831 |
| 14 | Flood adaptive traits and processes: an overview | New Phytologist | 2015 | 720 |
| 15 | Homeostatic response to hypoxia is regulated by the N-end rule pathway in plants | Nature | 2011 | 719 |
| 16 | Active DNA Demethylation Mediated by DNA Glycosylases | Annual Review of Genetics | 2009 | 715 |
| 17 | Identification of Two Protein Kinases Required for Abscisic Acid Regulation of Seed Germination, Root Growth, and Gene Expression in Arabidopsis | Plant Cell | 2007 | 708 |
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| 20 | Profiling translatomes of discrete cell populations resolves altered cellular priorities during hypoxia in
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| 22 | Upper thermal limits in terrestrial ectotherms: how constrained are they? | Functional Ecology | 2013 | 598 |
| 23 | Projecting the continental accumulation of alien species through to 2050 | Global Change Biology | 2021 | 587 |
| 24 | Modulation of drought resistance by the abscisic acid receptor PYL5 through inhibition of clade A PP2Cs | Plant Journal | 2009 | 546 |
| 25 | A genomic perspective on hybridization and speciation | Molecular Ecology | 2016 | 542 |
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| 27 | The abscisic acid receptor PYR1 in complex with abscisic acid | Nature | 2009 | 507 |
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| 29 | Cloning and Characterization of MicroRNAs from Rice | Plant Cell | 2005 | 485 |
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| 32 | From Laboratory to Field. Using Information from Arabidopsis to Engineer Salt, Cold, and Drought Tolerance in Crops | Plant Physiology | 2004 | 444 |
| 33 | UV-B photoreceptor-mediated signalling in plants | Trends in Plant Science | 2012 | 432 |
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| 35 | Translational dynamics revealed by genome-wide profiling of ribosome footprints in
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| 36 | ABP1 Mediates Auxin Inhibition of Clathrin-Dependent Endocytosis in Arabidopsis | Cell | 2010 | 406 |
| 37 | What we still don't know about invasion genetics | Molecular Ecology | 2015 | 387 |
| 38 | Extinction risk and threats to plants and fungi | Plants People Planet | 2020 | 386 |
| 39 | Defining the Impact of Non‐Native Species | Conservation Biology | 2014 | 366 |
| 40 | The origins of reproductive isolation in plants | New Phytologist | 2015 | 364 |
| 41 | The ROP2 GTPase Controls the Formation of Cortical Fine F-Actin and the Early Phase of Directional Cell Expansion during Arabidopsis Organogenesis | Plant Cell | 2002 | 359 |
| 42 | Naturalization of introduced plants: ecological drivers of biogeographical patterns | New Phytologist | 2012 | 357 |
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| 46 | Brassinosteroids Interact with Auxin to Promote Lateral Root Development in Arabidopsis | Plant Physiology | 2004 | 334 |
| 47 | A Rho family GTPase controls actin dynamics and tip growth via two counteracting downstream pathways in pollen tubes | Journal of Cell Biology | 2005 | 332 |
| 48 | CzcR-CzcS, a Two-component System Involved in Heavy Metal and Carbapenem Resistance in Pseudomonas aeruginosa | Journal of Biological Chemistry | 2004 | 328 |
| 49 | CLV3 Is Localized to the Extracellular Space, Where It Activates the Arabidopsis CLAVATA Stem Cell Signaling Pathway | Plant Cell | 2002 | 326 |
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