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Blake C. Meyers

Bio: Blake C. Meyers is an academic researcher from Donald Danforth Plant Science Center. The author has contributed to research in topics: Gene & Small RNA. The author has an hindex of 84, co-authored 308 publications receiving 31434 citations. Previous affiliations of Blake C. Meyers include University of California, Davis & University of Missouri.
Topics: Gene, Small RNA, RNA, Genome, Gene silencing


Papers
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Journal ArticleDOI
Shusei Sato, Satoshi Tabata, Hideki Hirakawa, Erika Asamizu  +320 moreInstitutions (51)
31 May 2012-Nature
TL;DR: A high-quality genome sequence of domesticated tomato is presented, a draft sequence of its closest wild relative, Solanum pimpinellifolium, is compared, and the two tomato genomes are compared to each other and to the potato genome.
Abstract: Tomato (Solanum lycopersicum) is a major crop plant and a model system for fruit development. Solanum is one of the largest angiosperm genera1 and includes annual and perennial plants from diverse habitats. Here we present a high-quality genome sequence of domesticated tomato, a draft sequence of its closest wild relative, Solanum pimpinellifolium2, and compare them to each other and to the potato genome (Solanum tuberosum). The two tomato genomes show only 0.6% nucleotide divergence and signs of recent admixture, but show more than 8% divergence from potato, with nine large and several smaller inversions. In contrast to Arabidopsis, but similar to soybean, tomato and potato small RNAs map predominantly to gene-rich chromosomal regions, including gene promoters. The Solanum lineage has experienced two consecutive genome triplications: one that is ancient and shared with rosids, and a more recent one. These triplications set the stage for the neofunctionalization of genes controlling fruit characteristics, such as colour and fleshiness.

2,687 citations

Journal ArticleDOI
John P. Vogel1, David F. Garvin2, Todd C. Mockler2, Jeremy Schmutz, Daniel S. Rokhsar3, Michael W. Bevan4, Kerrie Barry5, Susan Lucas5, Miranda Harmon-Smith5, Kathleen Lail5, Hope Tice5, Jane Grimwood, Neil McKenzie4, Naxin Huo6, Yong Q. Gu6, Gerard R. Lazo6, Olin D. Anderson6, Frank M. You7, Ming-Cheng Luo7, Jan Dvorak7, Jonathan M. Wright4, Melanie Febrer4, Dominika Idziak8, Robert Hasterok8, Erika Lindquist5, Mei Wang5, Samuel E. Fox2, Henry D. Priest2, Sergei A. Filichkin2, Scott A. Givan2, Douglas W. Bryant2, Jeff H. Chang2, Haiyan Wu9, Wei Wu10, An-Ping Hsia10, Patrick S. Schnable9, Anantharaman Kalyanaraman11, Brad Barbazuk12, Todd P. Michael, Samuel P. Hazen13, Jennifer N. Bragg6, Debbie Laudencia-Chingcuanco6, Yiqun Weng14, Georg Haberer, Manuel Spannagl, Klaus F. X. Mayer, Thomas Rattei15, Therese Mitros3, Sang-Jik Lee16, Jocelyn K. C. Rose16, Lukas A. Mueller16, Thomas L. York16, Thomas Wicker17, Jan P. Buchmann17, Jaakko Tanskanen18, Alan H. Schulman18, Heidrun Gundlach, Michael W. Bevan4, Antonio Costa de Oliveira19, Luciano da C. Maia19, William R. Belknap6, Ning Jiang, Jinsheng Lai9, Liucun Zhu20, Jianxin Ma20, Cheng Sun21, Ellen J. Pritham21, Jérôme Salse, Florent Murat, Michael Abrouk, Rémy Bruggmann, Joachim Messing, Noah Fahlgren2, Christopher M. Sullivan2, James C. Carrington2, Elisabeth J. Chapman, Greg D. May22, Jixian Zhai23, Matthias Ganssmann23, Sai Guna Ranjan Gurazada23, Marcelo A German23, Blake C. Meyers23, Pamela J. Green23, Ludmila Tyler3, Jiajie Wu7, James A. Thomson6, Shan Chen13, Henrik Vibe Scheller24, Jesper Harholt25, Peter Ulvskov25, Jeffrey A. Kimbrel2, Laura E. Bartley24, Peijian Cao24, Ki-Hong Jung26, Manoj Sharma24, Miguel E. Vega-Sánchez24, Pamela C. Ronald24, Chris Dardick6, Stefanie De Bodt27, Wim Verelst27, Dirk Inzé27, Maren Heese28, Arp Schnittger28, Xiaohan Yang29, Udaya C. Kalluri29, Gerald A. Tuskan29, Zhihua Hua14, Richard D. Vierstra14, Yu Cui9, Shuhong Ouyang9, Qixin Sun9, Zhiyong Liu9, Alper Yilmaz30, Erich Grotewold30, Richard Sibout31, Kian Hématy31, Grégory Mouille31, Herman Höfte31, Todd P. Michael, Jérôme Pelloux32, Devin O'Connor3, James C. Schnable3, Scott C. Rowe3, Frank G. Harmon3, Cynthia L. Cass33, John C. Sedbrook33, Mary E. Byrne4, Sean Walsh4, Janet Higgins4, Pinghua Li16, Thomas P. Brutnell16, Turgay Unver34, Hikmet Budak34, Harry Belcram, Mathieu Charles, Boulos Chalhoub, Ivan Baxter35 
11 Feb 2010-Nature
TL;DR: The high-quality genome sequence will help Brachypodium reach its potential as an important model system for developing new energy and food crops and establishes a template for analysis of the large genomes of economically important pooid grasses such as wheat.
Abstract: Three subfamilies of grasses, the Ehrhartoideae, Panicoideae and Pooideae, provide the bulk of human nutrition and are poised to become major sources of renewable energy. Here we describe the genome sequence of the wild grass Brachypodium distachyon (Brachypodium), which is, to our knowledge, the first member of the Pooideae subfamily to be sequenced. Comparison of the Brachypodium, rice and sorghum genomes shows a precise history of genome evolution across a broad diversity of the grasses, and establishes a template for analysis of the large genomes of economically important pooid grasses such as wheat. The high-quality genome sequence, coupled with ease of cultivation and transformation, small size and rapid life cycle, will help Brachypodium reach its potential as an important model system for developing new energy and food crops.

1,603 citations

Journal ArticleDOI
TL;DR: The observed diversity of these NBS-LRR proteins indicates the variety of recognition molecules available in an individual genotype to detect diverse biotic challenges.
Abstract: The Arabidopsis genome contains ∼200 genes that encode proteins with similarity to the nucleotide binding site and other domains characteristic of plant resistance proteins. Through a reiterative process of sequence analysis and reannotation, we identified 149 NBS-LRR–encoding genes in the Arabidopsis (ecotype Columbia) genomic sequence. Fifty-six of these genes were corrected from earlier annotations. At least 12 are predicted to be pseudogenes. As described previously, two distinct groups of sequences were identified: those that encoded an N-terminal domain with Toll/Interleukin-1 Receptor homology (TIR-NBS-LRR, or TNL), and those that encoded an N-terminal coiled-coil motif (CC-NBS-LRR, or CNL). The encoded proteins are distinct from the 58 predicted adapter proteins in the previously described TIR-X, TIR-NBS, and CC-NBS groups. Classification based on protein domains, intron positions, sequence conservation, and genome distribution defined four subgroups of CNL proteins, eight subgroups of TNL proteins, and a pair of divergent NL proteins that lack a defined N-terminal motif. CNL proteins generally were encoded in single exons, although two subclasses were identified that contained introns in unique positions. TNL proteins were encoded in modular exons, with conserved intron positions separating distinct protein domains. Conserved motifs were identified in the LRRs of both CNL and TNL proteins. In contrast to CNL proteins, TNL proteins contained large and variable C-terminal domains. The extant distribution and diversity of the NBS-LRR sequences has been generated by extensive duplication and ectopic rearrangements that involved segmental duplications as well as microscale events. The observed diversity of these NBS-LRR proteins indicates the variety of recognition molecules available in an individual genotype to detect diverse biotic challenges.

1,503 citations

Journal ArticleDOI
Brian J. Haas1, Sophien Kamoun2, Sophien Kamoun3, Michael C. Zody1, Michael C. Zody4, Rays H. Y. Jiang5, Rays H. Y. Jiang1, Robert E. Handsaker1, Liliana M. Cano3, Manfred Grabherr1, Chinnappa D. Kodira1, Chinnappa D. Kodira6, Sylvain Raffaele3, Trudy Torto-Alalibo6, Trudy Torto-Alalibo2, Tolga O. Bozkurt3, Audrey M. V. Ah-Fong7, Lucia Alvarado1, Vicky L. Anderson8, Miles R. Armstrong9, Anna O. Avrova9, Laura Baxter10, Jim Beynon10, Petra C. Boevink9, Stephanie R. Bollmann11, Jorunn I. B. Bos2, Vincent Bulone12, Guohong Cai13, Cahid Cakir2, James C. Carrington14, Megan Chawner15, Lucio Conti16, Stefano Costanzo11, Richard Ewan16, Noah Fahlgren14, Michael A. Fischbach17, Johanna Fugelstad12, Eleanor M. Gilroy9, Sante Gnerre1, Pamela J. Green18, Laura J. Grenville-Briggs8, John Griffith15, Niklaus J. Grünwald11, Karolyn Horn15, Neil R. Horner8, Chia-Hui Hu19, Edgar Huitema2, Dong-Hoon Jeong18, Alexandra M. E. Jones3, Jonathan D. G. Jones3, Richard W. Jones11, Elinor K. Karlsson1, Sridhara G. Kunjeti20, Kurt Lamour21, Zhenyu Liu2, Li-Jun Ma1, Dan MacLean3, Marcus C. Chibucos22, Hayes McDonald23, Jessica McWalters15, Harold J. G. Meijer5, William Morgan24, Paul Morris25, Carol A. Munro8, Keith O'Neill6, Keith O'Neill1, Manuel D. Ospina-Giraldo15, Andrés Pinzón, Leighton Pritchard9, Bernard H Ramsahoye26, Qinghu Ren27, Silvia Restrepo, Sourav Roy7, Ari Sadanandom16, Alon Savidor28, Sebastian Schornack3, David C. Schwartz29, Ulrike Schumann8, Ben Schwessinger3, Lauren Seyer15, Ted Sharpe1, Cristina Silvar3, Jing Song2, David J. Studholme3, Sean M. Sykes1, Marco Thines3, Marco Thines30, Peter J. I. van de Vondervoort5, Vipaporn Phuntumart25, Stephan Wawra8, R. Weide5, Joe Win3, Carolyn A. Young2, Shiguo Zhou29, William E. Fry13, Blake C. Meyers18, Pieter van West8, Jean B. Ristaino19, Francine Govers5, Paul R. J. Birch31, Stephen C. Whisson9, Howard S. Judelson7, Chad Nusbaum1 
17 Sep 2009-Nature
TL;DR: The sequence of the P. infestans genome is reported, which at ∼240 megabases (Mb) is by far the largest and most complex genome sequenced so far in the chromalveolates and probably plays a crucial part in the rapid adaptability of the pathogen to host plants and underpins its evolutionary potential.
Abstract: Phytophthora infestans is the most destructive pathogen of potato and a model organism for the oomycetes, a distinct lineage of fungus-like eukaryotes that are related to organisms such as brown algae and diatoms. As the agent of the Irish potato famine in the mid-nineteenth century, P. infestans has had a tremendous effect on human history, resulting in famine and population displacement(1). To this day, it affects world agriculture by causing the most destructive disease of potato, the fourth largest food crop and a critical alternative to the major cereal crops for feeding the world's population(1). Current annual worldwide potato crop losses due to late blight are conservatively estimated at $6.7 billion(2). Management of this devastating pathogen is challenged by its remarkable speed of adaptation to control strategies such as genetically resistant cultivars(3,4). Here we report the sequence of the P. infestans genome, which at similar to 240 megabases (Mb) is by far the largest and most complex genome sequenced so far in the chromalveolates. Its expansion results from a proliferation of repetitive DNA accounting for similar to 74% of the genome. Comparison with two other Phytophthora genomes showed rapid turnover and extensive expansion of specific families of secreted disease effector proteins, including many genes that are induced during infection or are predicted to have activities that alter host physiology. These fast-evolving effector genes are localized to highly dynamic and expanded regions of the P. infestans genome. This probably plays a crucial part in the rapid adaptability of the pathogen to host plants and underpins its evolutionary potential.

1,341 citations

Journal ArticleDOI
Nevin D. Young1, Frédéric Debellé2, Frédéric Debellé3, Giles E. D. Oldroyd4, René Geurts5, Steven B. Cannon6, Steven B. Cannon7, Michael K. Udvardi, Vagner A. Benedito8, Klaus F. X. Mayer, Jérôme Gouzy2, Jérôme Gouzy3, Heiko Schoof9, Yves Van de Peer10, Sebastian Proost10, Douglas R. Cook11, Blake C. Meyers12, Manuel Spannagl, Foo Cheung13, Stéphane De Mita5, Vivek Krishnakumar13, Heidrun Gundlach, Shiguo Zhou14, Joann Mudge15, Arvind K. Bharti15, Jeremy D. Murray4, Marina Naoumkina, Benjamin D. Rosen11, Kevin A. T. Silverstein1, Haibao Tang13, Stephane Rombauts10, Patrick X. Zhao, Peng Zhou1, Valérie Barbe, Philippe Bardou3, Philippe Bardou2, Michael Bechner14, Arnaud Bellec3, Anne Berger, Hélène Bergès3, Shelby L. Bidwell13, Ton Bisseling16, Ton Bisseling5, Nathalie Choisne, Arnaud Couloux, Roxanne Denny1, Shweta Deshpande17, Xinbin Dai, Jeff J. Doyle18, Anne Marie Dudez3, Anne Marie Dudez2, Andrew Farmer15, Stéphanie Fouteau, Carolien Franken5, Chrystel Gibelin3, Chrystel Gibelin2, John Gish11, Steven A. Goldstein14, Alvaro J. González12, Pamela J. Green12, Asis Hallab19, Marijke Hartog5, Axin Hua17, Sean Humphray20, Dong-Hoon Jeong12, Yi Jing17, Anika Jöcker19, Steve Kenton17, Dong-Jin Kim11, Dong-Jin Kim21, Kathrin Klee19, Hongshing Lai17, Chunting Lang5, Shaoping Lin17, Simone L. Macmil17, Ghislaine Magdelenat, Lucy Matthews20, Jamison McCorrison13, Erin L. Monaghan13, Jeong Hwan Mun22, Jeong Hwan Mun11, Fares Z. Najar17, Christine Nicholson20, Céline Noirot3, Majesta O'Bleness17, Charles Paule1, Julie Poulain, Florent Prion2, Florent Prion3, Baifang Qin17, Chunmei Qu17, Ernest F. Retzel15, Claire Riddle20, Erika Sallet3, Erika Sallet2, Sylvie Samain, Nicolas Samson2, Nicolas Samson3, Iryna Sanders17, Olivier Saurat2, Olivier Saurat3, Claude Scarpelli, Thomas Schiex3, Béatrice Segurens, Andrew J. Severin7, D. Janine Sherrier12, Ruihua Shi17, Sarah Sims20, Susan R. Singer23, Senjuti Sinharoy, Lieven Sterck10, Agnès Viollet, Bing Bing Wang1, Keqin Wang17, Mingyi Wang, Xiaohong Wang1, Jens Warfsmann19, Jean Weissenbach, Doug White17, James D. White17, Graham B. Wiley17, Patrick Wincker, Yanbo Xing17, Limei Yang17, Ziyun Yao17, Fu Ying17, Jixian Zhai12, Liping Zhou17, Antoine Zuber3, Antoine Zuber2, Jean Dénarié2, Jean Dénarié3, Richard A. Dixon, Gregory D. May15, David C. Schwartz14, Jane Rogers24, Francis Quetier, Christopher D. Town13, Bruce A. Roe17 
22 Dec 2011-Nature
TL;DR: The draft sequence of the M. truncatula genome sequence is described, a close relative of alfalfa (Medicago sativa), a widely cultivated crop with limited genomics tools and complex autotetraploid genetics, which provides significant opportunities to expand al falfa’s genomic toolbox.
Abstract: Legumes (Fabaceae or Leguminosae) are unique among cultivated plants for their ability to carry out endosymbiotic nitrogen fixation with rhizobial bacteria, a process that takes place in a specialized structure known as the nodule. Legumes belong to one of the two main groups of eurosids, the Fabidae, which includes most species capable of endosymbiotic nitrogen fixation. Legumes comprise several evolutionary lineages derived from a common ancestor 60 million years ago (Myr ago). Papilionoids are the largest clade, dating nearly to the origin of legumes and containing most cultivated species. Medicago truncatula is a long-established model for the study of legume biology. Here we describe the draft sequence of the M. truncatula euchromatin based on a recently completed BAC assembly supplemented with Illumina shotgun sequence, together capturing ∼94% of all M. truncatula genes. A whole-genome duplication (WGD) approximately 58 Myr ago had a major role in shaping the M. truncatula genome and thereby contributed to the evolution of endosymbiotic nitrogen fixation. Subsequent to the WGD, the M. truncatula genome experienced higher levels of rearrangement than two other sequenced legumes, Glycine max and Lotus japonicus. M. truncatula is a close relative of alfalfa (Medicago sativa), a widely cultivated crop with limited genomics tools and complex autotetraploid genetics. As such, the M. truncatula genome sequence provides significant opportunities to expand alfalfa's genomic toolbox.

1,153 citations


Cited by
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Journal ArticleDOI
TL;DR: The RNA-Seq approach to transcriptome profiling that uses deep-sequencing technologies provides a far more precise measurement of levels of transcripts and their isoforms than other methods.
Abstract: RNA-Seq is a recently developed approach to transcriptome profiling that uses deep-sequencing technologies. Studies using this method have already altered our view of the extent and complexity of eukaryotic transcriptomes. RNA-Seq also provides a far more precise measurement of levels of transcripts and their isoforms than other methods. This article describes the RNA-Seq approach, the challenges associated with its application, and the advances made so far in characterizing several eukaryote transcriptomes.

11,528 citations

Journal ArticleDOI
16 Nov 2006-Nature
TL;DR: A detailed understanding of plant immune function will underpin crop improvement for food, fibre and biofuels production and provide extraordinary insights into molecular recognition, cell biology and evolution across biological kingdoms.
Abstract: Many plant-associated microbes are pathogens that impair plant growth and reproduction. Plants respond to infection using a two-branched innate immune system. The first branch recognizes and responds to molecules common to many classes of microbes, including non-pathogens. The second responds to pathogen virulence factors, either directly or through their effects on host targets. These plant immune systems, and the pathogen molecules to which they respond, provide extraordinary insights into molecular recognition, cell biology and evolution across biological kingdoms. A detailed understanding of plant immune function will underpin crop improvement for food, fibre and biofuels production.

10,539 citations

Journal ArticleDOI
14 Dec 2000-Nature
TL;DR: This is the first complete genome sequence of a plant and provides the foundations for more comprehensive comparison of conserved processes in all eukaryotes, identifying a wide range of plant-specific gene functions and establishing rapid systematic ways to identify genes for crop improvement.
Abstract: The flowering plant Arabidopsis thaliana is an important model system for identifying genes and determining their functions. Here we report the analysis of the genomic sequence of Arabidopsis. The sequenced regions cover 115.4 megabases of the 125-megabase genome and extend into centromeric regions. The evolution of Arabidopsis involved a whole-genome duplication, followed by subsequent gene loss and extensive local gene duplications, giving rise to a dynamic genome enriched by lateral gene transfer from a cyanobacterial-like ancestor of the plastid. The genome contains 25,498 genes encoding proteins from 11,000 families, similar to the functional diversity of Drosophila and Caenorhabditis elegans--the other sequenced multicellular eukaryotes. Arabidopsis has many families of new proteins but also lacks several common protein families, indicating that the sets of common proteins have undergone differential expansion and contraction in the three multicellular eukaryotes. This is the first complete genome sequence of a plant and provides the foundations for more comprehensive comparison of conserved processes in all eukaryotes, identifying a wide range of plant-specific gene functions and establishing rapid systematic ways to identify genes for crop improvement.

8,742 citations

Journal ArticleDOI
Gerald A. Tuskan1, Gerald A. Tuskan2, Stephen P. DiFazio2, Stephen P. DiFazio3, Stefan Jansson4, Joerg Bohlmann5, Igor V. Grigoriev6, Uffe Hellsten6, Nicholas H. Putnam6, Steven G. Ralph5, Stephane Rombauts7, Asaf Salamov6, Jacquie Schein, Lieven Sterck7, Andrea Aerts6, Rishikeshi Bhalerao4, Rishikesh P. Bhalerao8, Damien Blaudez9, Wout Boerjan7, Annick Brun9, Amy M. Brunner10, Victor Busov11, Malcolm M. Campbell12, John E. Carlson13, Michel Chalot9, Jarrod Chapman6, G.-L. Chen2, Dawn Cooper5, Pedro M. Coutinho14, Jérémy Couturier9, Sarah F. Covert15, Quentin C. B. Cronk5, R. Cunningham2, John M. Davis16, Sven Degroeve7, Annabelle Déjardin9, Claude W. dePamphilis13, John C. Detter6, Bill Dirks17, Inna Dubchak6, Inna Dubchak18, Sébastien Duplessis9, Jürgen Ehlting5, Brian E. Ellis5, Karla C Gendler19, David Goodstein6, Michael Gribskov20, Jane Grimwood21, Andrew Groover22, Lee E. Gunter2, Björn Hamberger5, Berthold Heinze, Yrjö Helariutta8, Yrjö Helariutta23, Yrjö Helariutta24, Bernard Henrissat14, D. Holligan15, Robert A. Holt, Wenyu Huang6, N. Islam-Faridi22, Steven J.M. Jones, M. Jones-Rhoades25, Richard A. Jorgensen19, Chandrashekhar P. Joshi11, Jaakko Kangasjärvi23, Jan Karlsson4, Colin T. Kelleher5, Robert Kirkpatrick, Matias Kirst16, Annegret Kohler9, Udaya C. Kalluri2, Frank W. Larimer2, Jim Leebens-Mack15, Jean-Charles Leplé9, Philip F. LoCascio2, Y. Lou6, Susan Lucas6, Francis Martin9, Barbara Montanini9, Carolyn A. Napoli19, David R. Nelson26, C D Nelson22, Kaisa Nieminen23, Ove Nilsson8, V. Pereda9, Gary F. Peter16, Ryan N. Philippe5, Gilles Pilate9, Alexander Poliakov18, J. Razumovskaya2, Paul G. Richardson6, Cécile Rinaldi9, Kermit Ritland5, Pierre Rouzé7, D. Ryaboy18, Jeremy Schmutz21, J. Schrader27, Bo Segerman4, H. Shin, Asim Siddiqui, Fredrik Sterky, Astrid Terry6, Chung-Jui Tsai11, Edward C. Uberbacher2, Per Unneberg, Jorma Vahala23, Kerr Wall13, Susan R. Wessler15, Guojun Yang15, T. Yin2, Carl J. Douglas5, Marco A. Marra, Göran Sandberg8, Y. Van de Peer7, Daniel S. Rokhsar6, Daniel S. Rokhsar17 
15 Sep 2006-Science
TL;DR: The draft genome of the black cottonwood tree, Populus trichocarpa, has been reported in this paper, with more than 45,000 putative protein-coding genes identified.
Abstract: We report the draft genome of the black cottonwood tree, Populus trichocarpa. Integration of shotgun sequence assembly with genetic mapping enabled chromosome-scale reconstruction of the genome. More than 45,000 putative protein-coding genes were identified. Analysis of the assembled genome revealed a whole-genome duplication event; about 8000 pairs of duplicated genes from that event survived in the Populus genome. A second, older duplication event is indistinguishably coincident with the divergence of the Populus and Arabidopsis lineages. Nucleotide substitution, tandem gene duplication, and gross chromosomal rearrangement appear to proceed substantially more slowly in Populus than in Arabidopsis. Populus has more protein-coding genes than Arabidopsis, ranging on average from 1.4 to 1.6 putative Populus homologs for each Arabidopsis gene. However, the relative frequency of protein domains in the two genomes is similar. Overrepresented exceptions in Populus include genes associated with lignocellulosic wall biosynthesis, meristem development, disease resistance, and metabolite transport.

4,025 citations

Journal ArticleDOI
14 Jun 2001-Nature
TL;DR: The current knowledge of recognition-dependent disease resistance in plants is reviewed, and a few crucial concepts are included to compare and contrast plant innate immunity with that more commonly associated with animals.
Abstract: Plants cannot move to escape environmental challenges. Biotic stresses result from a battery of potential pathogens: fungi, bacteria, nematodes and insects intercept the photosynthate produced by plants, and viruses use replication machinery at the host's expense. Plants, in turn, have evolved sophisticated mechanisms to perceive such attacks, and to translate that perception into an adaptive response. Here, we review the current knowledge of recognition-dependent disease resistance in plants. We include a few crucial concepts to compare and contrast plant innate immunity with that more commonly associated with animals. There are appreciable differences, but also surprising parallels.

3,814 citations