Publications – Greg Martin
Ptr1 and ZAR1 immune receptors confer overlapping and distinct bacterial pathogen effector specificities
2023.
New Phytologist.
:
Loss-of-function mutations in WRKY22 and WRKY25 impair stomatal-mediated immunity and PTI and ETI responses against Pseudomonas syringae pv. tomato
2023.
Plant Molecular Biology.
112
:161–177
Tomato receptor-like cytoplasmic kinase Fir1 interacts with a negative regulator of jasmonic acid signaling
2023.
MicroPubl Biol..
:
Tomato receptor-like cytoplasmic kinase Fir1 is involved in flagellin signaling and pre-invasion immunity
2022.
Plant Physiol..
:
Loss of function of the bHLH transcription factor Nrd1 in tomato enhances resistance to Pseudomonas syringae
2022.
Plant Physiol..
190
:1334–1348
The emerging role of PP2C phosphatases in tomato immunity.
2022.
Mol Plant Microbe Interact..
:
A Solanum lycopersicoides reference genome facilitates insights into tomato specialized metabolism and immunity.
2022.
Plant J..
110
:1791–1810
Integrative Proteomic and Phosphoproteomic Analyses of Pattern- and Effector-Triggered Immunity in Tomato
2021.
Front Plant Sci..
12
:768693
Spelling Changes and Fluorescent Tagging With Prime Editing Vectors for Plants
2021.
Frontiers in Genome Editing.
3
:
WRKY22 and WRKY25 transcription factors are positive regulators of defense responses in Nicotiana benthamiana
2020.
Plant Mol Biol..
:
Molecular Characterization of Differences Between the Tomato Immune Receptors Flagellin Sensing 3 and Flagellin Sensing 2
2020.
Plant Physiol..
:
Ptr1 evolved convergently with RPS2 and Mr5 to mediate recognition of AvrRpt2 in diverse solanaceous species.
2020.
Plant J..
:
Tomato wall-associated kinase SlWak1 depends on Fls2/Fls3 to promote apoplastic immune responses to Pseudomonas syringae.
2020.
Plant Physiol..
:
Generation and Molecular Characterization of CRISPR/Cas9-Induced Mutations in 63 Immunity-Associated Genes in Tomato Reveals Specificity and a Range of Gene Modifications
2020.
Frontiers in Plant Science.
11
:
Transcriptome-based identification and validation of reference genes for plant-bacteria interaction studies using Nicotiana benthamiana
2019.
Sci Rep..
9
:
Mai1 protein acts between host recognition of pathogen effectors and MAPK signaling
2019.
Molecular Plant-Microbe Interactions.
:
PP2C phosphatase Pic1 negatively regulates phosphorylation status of Pti1b kinase, a regulator of flagellin-triggered immunity in tomato
2019.
Biochemical Journal.
476
:1621–1635
Natural variation for unusual host responses and flagellin‐mediated immunity against Pseudomonas syringae in genetically diverse tomato accessions
2019.
New Phytologist.
:
Transcriptome-based identification and validation of reference genes for plant-bacteria interaction studies using Nicotiana benthamiana
2019.
Scientific Reports.
9
:
Plant Genome Editing Database (PGED): A Call for Submission of Information about Genome-Edited Plant Mutants
2019.
Molecular Plant.
12
:127–129
The Ptr1 locus of Solanum lycopersicoides confers resistance to race 1 strains of Pseudomonas syringae pv. tomato and to Ralstonia pseudosolanacearum by recognizing the type III effectors AvrRpt2/RipBN
2019.
Molecular Plant-Microbe Interactions.
:
The tomato Pto gene confers resistance to Pseudomonas floridensis, an emergent plant pathogen with just nine type III effectors
2019.
Plant Pathology.
:
Virus-induced gene silencing database for phenomics and functional genomics in Nicotiana benthamiana
2018.
Plant Direct.
2
:e00055
Pseudomonas syringae pv. tomato Strains from New York Exhibit Virulence Attributes Intermediate Between Typical Race 0 and Race 1 Strains
2017.
Plant Disease.
101
:1442–1448
Detecting the interaction of peptide ligands with plant membrane receptors
2017.
Current protocols in plant biology.
2
:240–269
Generation of a Collection of Mutant Tomato Lines Using Pooled CRISPR Libraries
2017.
Plant Physiology.
174
:2023–2037
A Subset of Ubiquitin-Conjugating Enzymes Is Essential for Plant Immunity
2017.
Plant Physiology.
173
:1371–1390
The Bacterial Effector AvrPto Targets the Regulatory Coreceptor SOBIR1 and Suppresses Defense Signaling Mediated by the Receptor-Like Protein Cf-4
2017.
Molecular Plant-Microbe Interactions.
31
:MPMI08170203FI–MPMI-08-17-0203
Pseudomonas syringae – tomato interactions: an unfolding New York story
2017.
PHYTOPATHOLOGY.
107
:10–10
Ser 360 and Ser 364 in the Kinase Domain of Tomato SIMAPKKKα are Critical for Programmed Cell Death Associated with Plant Immunity
2017.
The plant pathology journal.
33
:163–169
Use of RNA-seq data to identify and validate RT-qPCR reference genes for studying the tomato-Pseudomonas pathosystem
2017.
Nature Scientific Reports.
7
:44905–44905
The Tomato Kinase Pti1 Contributes to Production of Reactive Oxygen Species in Response to Two Flagellin-Derived Peptides and Promotes Resistance to Pseudomonas syringae Infection
2017.
Molecular Plant-Microbe Interactions.
30
:725–738
Natural Variation in Tomato Reveals Differences in the Recognition of AvrPto and AvrPtoB Effectors from Pseudomonas syringae
2016.
Molecular Plant.
9
:639–649
Detecting N-myristoylation and S-acylation of host and pathogen proteins in plants using click chemistry
2016.
Plant Methods.
12
:
High-throughput CRISPR Vector Construction and Characterization of DNA Modifications by Generation of Tomato Hairy Roots
2016.
Journal of visualized experiments : JoVE.
:
Tomato receptor FLAGELLIN-SENSING 3 binds flgII-28 and activates the plant immune system
2016.
Nature Plants.
2
:16128–16128
iTAK: A Program for Genome-wide Prediction and Classification of Plant Transcription Factors, Transcriptional Regulators, and Protein Kinases
2016.
Molecular Plant.
9
:1667–1670
A novel method of transcriptome interpretation reveals a quantitative suppressive effect on tomato immune signaling by two domains in a single pathogen effector protein
2016.
BMC Genomics.
17
:
Identification of a Candidate Gene in Solanum habrochaites for Resistance to a Race 1 Strain of Pseudomonas syringae pv. tomato
2015.
The Plant Genome.
8
:0–0
Comparative genomics and phylogenetic discordance of cultivated tomato and close wild relatives
2015.
PeerJ.
2015
:e793–e793
The SGN VIGS Tool: User-Friendly Software to Design Virus-Induced Gene Silencing (VIGS) Constructs for Functional Genomics
2015.
Molecular Plant.
8
:486–488
Five Xanthomonas type III effectors suppress cell death induced by components of immunity-associated MAP kinase cascades
2015.
Plant Signaling and Behavior.
10
:e1064573–e1064573
Greasy tactics in the plant-pathogen molecular arms race
2015.
Journal of Experimental Botany.
66
:1607–1616
Pseudomonas syringae pv. tomato DC3000 Type III Secretion Effector Polymutants Reveal an Interplay between HopAD1 and AvrPtoB
2015.
Cell Host & Microbe.
17
:752–762
Functional genomics of tomato for the study of plant immunity: Table 1
2015.
Briefings in Functional Genomics and Proteomics.
14
:291–301
Acquisition of Iron Is Required for Growth of Salmonella spp. in Tomato Fruit
2015.
Applied and Environmental Microbiology.
81
:3663–3670
Complete Genome Sequence of a Tomato-Infecting Tomato Mottle Mosaic Virus in New York
2015.
Genome Announcements.
3
:e01523-15–e01523-15
Analysis of wild-species introgressions in tomato inbreds uncovers ancestral origins
2014.
BMC Plant Biology.
14
:
Natural Variation for Responsiveness to flg22, flgII-28, and csp22 and Pseudomonas syringae pv. tomato in Heirloom Tomatoes
2014.
PLOS One.
9
:e106119–e106119
Pto Kinase Binds Two Domains of AvrPtoB and Its Proximity to the Effector E3 Ligase Determines if It Evades Degradation and Activates Plant Immunity
2014.
PLoS Pathogens.
10
:e1004227–e1004227
Transcriptomic analysis reveals tomato genes whose expression is induced specifically during effector-triggered immunity and identifies the Epk1 protein kinase which is required for the host response to three bacterial effector proteins
2014.
Genome Biology.
15
:
Thymoquinone causes multiple effects, including cell death, on dividing plant cells
2013.
Comptes Rendus Biologies.
336
:546–556
Salmonella colonization activates the plant immune system and benefits from association with plant-pathogenic bacteria
2013.
PHYTOPATHOLOGY.
103
:95–95
Salmonella colonization activates the plant immune system and benefits from association with plant pathogenic bacteria
2013.
Environmental Microbiology.
15
:2418–2430
Nonhost Resistance of Tomato to the Bean Pathogen Pseudomonas syringae pv. syringae B728a Is Due to a Defective E3 Ubiquitin Ligase Domain in AvrPtoB B728a
2013.
Molecular Plant-Microbe Interactions.
26
:387–397
The Tomato Fni3 Lysine-63-Specific Ubiquitin-Conjugating Enzyme and Suv Ubiquitin E2 Variant Positively Regulate Plant Immunity
2013.
The Plant Cell.
25
:3615–3631
Two leucines in the N-terminal MAPK-docking site of tomato SlMKK2 are critical for interaction with a downstream MAPK to elicit programmed cell death associated with plant immunity
2013.
Febs Letters.
587
:1460–1465
Allelic variation in two distinct Pseudomonas syringae flagellin epitopes modulates the strength of plant immune responses but not bacterial motility
2013.
New Phytologist.
200
:847–860
The Tomato Calcium Sensor Cbl10 and Its Interacting Protein Kinase Cipk6 Define a Signaling Pathway in Plant Immunity
2013.
The Plant Cell.
25
:2748–2764
Transcriptomics-based screen for genes induced by flagellin and repressed by pathogen effectors identifies a cell wall-associated kinase involved in plant immunity
2013.
Genome Biology.
14
:R139–R139
A tomato LysM receptor-like kinase promotes immunity and its kinase activity is inhibited by AvrPtoB
2012.
The Plant Journal.
69
:92–103
The -Subunit of the SnRK1 Complex Is Phosphorylated by the Plant Cell Death Suppressor Adi3
2012.
Plant Physiology.
159
:1277–1290
A Draft Genome Sequence of Nicotiana benthamiana to Enhance Molecular Plant-Microbe Biology Research
2012.
Molecular Plant-Microbe Interactions.
25
:1523–1530
Plant Programmed Cell Death Caused by an Autoactive Form of Prf Is Suppressed by Co-Expression of the Prf LRR Domain
2012.
Molecular Plant.
5
:1058–1067
Type III Secretion and Effectors Shape the Survival and Growth Pattern of Pseudomonas syringae on Leaf Surfaces
2012.
Plant Physiology.
158
:1803–1818
Effector-triggered immunity mediated by the Pto kinase
2011.
Trends in Plant Science.
16
:132–140
Genetic disassembly and combinatorial reassembly identify a minimal functional repertoire of type III effectors in Pseudomonas syringae pv. tomato DC3000
2011.
Proceedings of the National Academy of Sciences.
108
:2975–2980
Tomato 14-3-3 Protein TFT7 Interacts with a MAP Kinase Kinase to Regulate Immunity-associated Programmed Cell Death Mediated by Diverse Disease Resistance Proteins
2011.
Journal of Biological Chemistry.
286
:14129–14136
Structural Analysis of Pseudomonas syringae AvrPtoB Bound to Host BAK1 Reveals Two Similar Kinase-Interacting Domains in a Type III Effector
2011.
Cell Host & Microbe.
10
:616–626
The T-loop Extension of the Tomato Protein Kinase AvrPto-dependent Pto-interacting Protein 3 (Adi3) Directs Nuclear Localization for Suppression of Plant Cell Death
2010.
Journal of Biological Chemistry.
285
:17584–17594
Methods to Study PAMP-Triggered Immunity Using Tomato and Nicotiana benthamiana
2010.
Molecular Plant-Microbe Interactions.
23
:991–999
A tomato 14-3-3 protein (TFT7) positively regulates immunity-associated programmed cell death mediated by diverse disease resistance proteins
2010.
PHYTOPATHOLOGY.
100
:S92–S92
Phosphorylation of Pseudomonas syringae effector AvrPto is required for an FLS2/BAK1-independent virulence activity and recognition by tobacco
2010.
The Plant Journal.
61
:16–24
Two virulence determinants of type III effector AvrPto are functionally conserved in diverse Pseudomonas syringae pathovars
2010.
New Phytologist.
187
:969–982
A secreted effector protein (SNE1) from Phytophthora infestans is a broadly acting suppressor of programmed cell death
2010.
The Plant Journal.
62
:357–366
Tomato 14-3-3 Protein 7 Positively Regulates Immunity-Associated Programmed Cell Death by Enhancing Protein Abundance and Signaling Ability of MAPKKK
2010.
The Plant Cell.
22
:260–272
Identification of Nicotiana benthamiana Genes Involved in Pathogen-Associated Molecular Pattern-Triggered Immunity
2010.
Molecular Plant-Microbe Interactions.
23
:715–726
Endosome-Associated CRT1 Functions Early in Resistance Gene-Mediated Defense Signaling in Arabidopsis and Tobacco
2010.
The Plant Cell.
22
:918–936
Virus-induced gene silencing (VIGS) in Nicotiana benthamiana and tomato
2009.
Journal of visualized experiments : JoVE.
:
Xanthomonas T3S Effector XopN Suppresses PAMP-Triggered Immunity and Interacts with a Tomato Atypical Receptor-Like Kinase and TFT1
2009.
The Plant Cell.
21
:1305–1323
Deletions in the Repertoire of Pseudomonas syringae pv. tomato DC3000 Type III Secretion Effector Genes Reveal Functional Overlap among Effectors
2009.
PLoS Pathogens.
5
:e1000388–e1000388
Virus-induced Gene Silencing (VIGS) in Nicotiana benthamiana and Tomato
2009.
Journal of visualized experiments : JoVE.
28
:
A Draft Genome Sequence of Pseudomonas syringae pv. tomato T1 Reveals a Type III Effector Repertoire Significantly Divergent from That of Pseudomonas syringae pv. tomato DC3000
2009.
Molecular Plant-Microbe Interactions.
22
:52–62
Assay for Pathogen-Associated Molecular Pattern (PAMP)-Triggered Immunity (PTI) in Plants
2009.
Journal of visualized experiments : JoVE.
31
:1330–1331
Advances in experimental methods for the elucidation of Pseudomonas syringae effector function with a focus on AvrPtoB
2009.
Molecular Plant Pathology.
10
:777–793
Bacterial Effectors Target the Common Signaling Partner BAK1 to Disrupt Multiple MAMP Receptor-Signaling Complexes and Impede Plant Immunity
2008.
Cell Host & Microbe.
4
:17–27
A bacterial E3 ubiquitin ligase targets a host protein kinase to disrupt plant immunity
2007.
Nature.
448
:370–374
The N-terminal region of Pseudomonas type III effector AvrPtoB elicits Pto-dependent immunity and has two distinct virulence determinants
2007.
The Plant Journal.
52
:595–614
Pto- and Prf-Mediated Recognition of AvrPto and AvrPtoB Restricts the Ability of Diverse Pseudomonas syringae Pathovars to Infect Tomato
2007.
Molecular Plant-Microbe Interactions.
20
:806–815
A Pseudomonas syringae pv. tomato DC3000 mutant lacking the type III effector HopQ1-1 is able to cause disease in the model plant Nicotiana benthamiana
2007.
The Plant Journal.
51
:32–46
An NB-LRR protein required for HR signaling mediated by both extra- and intracellular resistance proteins
2007.
The Plant Journal.
50
:14–28
Pseudomonas syringae Type III Effector AvrPtoB Is Phosphorylated in Plant Cells on Serine 258, Promoting Its Virulence Activity
2007.
Journal of Biological Chemistry.
282
:30737–30744
DspA/E, a type III effector of Erwinia amylovora, is required for early rapid growth in Nicotiana benthamiana and causes NbSGT1-dependent cell death
2007.
Molecular Plant Pathology.
8
:255–265
Identification and Characterization of Plant Genes Involved in Agrobacterium -Mediated Plant Transformation by Virus-Induced Gene Silencing
2007.
Molecular Plant-Microbe Interactions.
20
:41–52
Manipulation of Plant Programmed Cell Death Pathways During Plant-Pathogen Interactions
2007.
Plant Signaling and Behavior.
2
:188–190
Aconitase plays a role in regulating resistance to oxidative stress and cell death in Arabidopsis and Nicotiana benthamiana
2007.
Plant Molecular Biology.
63
:273–287
A Bacterial Inhibitor of Host Programmed Cell Death Defenses Is an E3 Ubiquitin Ligase
2006.
Science.
311
:222–226
Roles or Pseudomonas type III effectors AvrPto and AvrPtoB in promoting susceptibility in tomato
2006.
PHYTOPATHOLOGY.
96
:S151–S151
Type III effector AvrPtoB requires intrinsic E3 ubiquitin ligase activity to suppress plant cell death and immunity
2006.
Proceedings of the National Academy of Sciences.
103
:2851–2856
Comparative Genomics of Host-Specific Virulence in Pseudomonas syringae
2006.
Genetics.
174
:1041–1056
Adi3 is a Pdk1-interacting AGC kinase that negatively regulates plant cell death
2006.
The EMBO Journal.
25
:255–265
A novel link between tomato GRAS genes, plant disease resistance and mechanical stress response
2006.
Molecular Plant Pathology.
7
:593–604
Specific Bacterial Suppressors of MAMP Signaling Upstream of MAPKKK in Arabidopsis Innate Immunity
2006.
Cell.
125
:563–575
Bacterial elicitation and evasion of plant innate immunity
2006.
Nature Reviews Molecular Cell Biology.
7
:601–611
Whole-Genome Expression Profiling Defines the HrpL Regulon of Pseudomonas syringae pv. tomato DC3000, Allows de novo Reconstruction of the Hrp cis Element, and Identifies Novel Coregulated Genes
2006.
Molecular Plant-Microbe Interactions.
19
:1167–1179
Diverse AvrPtoB Homologs from Several Pseudomonas syringae Pathovars Elicit Pto-Dependent Resistance and Have Similar Virulence Activities
2006.
Applied and Environmental Microbiology.
72
:702–712
Host-Mediated Phosphorylation of Type III Effector AvrPto Promotes Pseudomonas Virulence and Avirulence in Tomato
2006.
The Plant Cell.
18
:502–514
Ancient signals: comparative genomics of plant MAPK and MAPKK gene families
2006.
Trends in Plant Science.
11
:192–198
Gene Profiling of a Compatible Interaction Between Phytophthora infestans and Solanum tuberosum Suggests a Role for Carbonic Anhydrase
2005.
Molecular Plant-Microbe Interactions.
18
:913–922
Pseudomonas syringae pv. tomato type III effectors AvrPto and AvrPtoB promote ethylene-dependent cell death in tomato
2005.
The Plant journal : for cell and molecular biology.
44
:139–154
Role of mitogen-activated protein kinases in plant immunity
2005.
Current Opinion in Plant Biology.
8
:541–547
An avrPto/avrPtoB Mutant of Pseudomonas syringae pv. tomato DC3000 Does Not Elicit Pto-Mediated Resistance and Is Less Virulent on Tomato
2005.
Molecular Plant-Microbe Interactions.
18
:43–51
AvrPtoB: a bacterial type III effector that both elicits and suppresses programmed cell death associated with plant immunity
2005.
FEMS microbiology letters.
245
:1–8
Calmodulin-like Proteins from Arabidopsis and Tomato are Involved in Host Defense Against Pseudomonas syringae pv. tomato
2005.
Plant Molecular Biology.
58
:887–897
Transcriptome and Selected Metabolite Analyses Reveal Multiple Points of Ethylene Control during Tomato Fruit Development
2005.
The Plant Cell.
17
:2954–2965
PeerGAD: a peer-review-based and community-centric web application for viewing and annotating prokaryotic genome sequences
2004.
Nucleic Acids Research.
32
:3124–3135
Identification and Expression Profiling of Tomato Genes Differentially Regulated During a Resistance Response to Xanthomonas campestris pv. vesicatoria
2004.
Molecular Plant-Microbe Interactions.
17
:1212–1222
Strategies used by bacterial pathogens to suppress plant defenses
2004.
Current Opinion in Plant Biology.
7
:356–364
Pseudomonas syringae pathogenicity explored from the perspective of type III secretion systems and comparative genomics
2004.
PHYTOPATHOLOGY.
94
:S121–S121
Identification of MAPKs and Their Possible MAPK Kinase Activators Involved in the Pto-mediated Defense Response of Tomato
2004.
Journal of Biological Chemistry.
279
:49229–49235
The Solution Structure of Type III Effector Protein AvrPto Reveals Conformational and Dynamic Features Important for Plant Pathogenesis
2004.
Structure (London, England : 1993).
12
:1257–1268
Silencing of subfamily I of protein phosphatase 2A catalytic subunits results in activation of plant defense responses and localized cell death
2004.
The Plant Journal.
38
:563–577
MAPKKKα is a positive regulator of cell death associated with both plant immunity and disease
2004.
The EMBO Journal.
23
:3072–3082
Applications and advantages of virus-induced gene silencing for gene function studies in plants
2004.
The Plant Journal.
39
:734–746
Comprehensive EST analysis of tomato and comparative genomics of fruit ripening
2004.
The Plant Journal.
40
:47–59
ESTs, cDNA microarrays, and gene expression profiling: Tools for dissecting plant physiology and development
2004.
The Plant Journal.
39
:697–714
Overexpression of the Disease Resistance Gene Pto in Tomato Induces Gene Expression Changes Similar to Immune Responses in Human and Fruitfly
2003.
Plant Physiology.
132
:1901–1912
Understanding the Functions of Plant Disease Resistance Proteins
2003.
Annual Review of Plant Biology.
54
:23–61
The complete genome sequence of the Arabidopsis and tomato pathogen Pseudomonas syringae pv. tomato DC3000
2003.
Proceedings of the National Academy of Sciences.
100
:10181–10186
The Tomato Transcription Factor Pti4 Regulates Defense-Related Gene Expression via GCC Box and Non-GCC Box cis Elements
2003.
The Plant Cell.
15
:3033–3050
Molecular Basis of Pto-Mediated Resistance to Bacterial Speck Disease in Tomato
2003.
Annual Review of Phytopathology.
41
:215–243
Partial Resistance of Tomato to Phytophthora infestans Is Not Dependent upon Ethylene, Jasmonic Acid, or Salicylic Acid Signaling Pathways
2003.
Molecular Plant-Microbe Interactions.
16
:141–148
Two MAPK cascades, NPR1, and TGA transcription factors play a role in Pto-mediated disease resistance in tomato
2003.
The Plant Journal.
36
:905–917
Pseudomonas type III effector AvrPtoB induces plant disease susceptibility by inhibition of host programmed cell death
2003.
The EMBO Journal.
22
:60–69
Tomato Transcription Factors Pti4, Pti5, and Pti6 Activate Defense Responses When Expressed in Arabidopsis
2002.
The Plant Cell.
14
:817–831
Genomewide identification of Pseudomonas syringae pv. tomato DC3000 promoters controlled by the HrpL alternative sigma factor
2002.
Proceedings of the National Academy of Sciences.
99
:2275–2280
Comprehensive transcript profiling of Pto- and Prf-mediated host defense responses to infection by Pseudomonas syringae pv. tomato
2002.
The Plant Journal.
32
:299–315
Two Distinct Pseudomonas Effector Proteins Interact with the Pto Kinase and Activate Plant Immunity
2002.
Cell.
109
:589–598
Location and activity of members of a family of virPphA homologues in pathovars of Pseudomonas syringae and P. savastanoi
2002.
Molecular Plant Pathology.
3
:205–216
The tobacco salicylic acid-binding protein 3 (SABP3) is the chloroplast carbonic anhydrase, which exhibits antioxidant activity and plays a role in the hypersensitive defense response
2002.
Proceedings of the National Academy of Sciences.
99
:11640–11645
Deductions about the Number, Organization, and Evolution of Genes in the Tomato Genome Based on Analysis of a Large Expressed Sequence Tag Collection and Selective Genomic Sequencing
2002.
The Plant Cell.
14
:1441–1456
Arabidopsis genome sequence as a tool for functional genomics in tomato
2001.
Genome Biology.
2
:
Ancient origin of pathogen recognition specificity conferred by the tomato disease resistance gene Pto
2001.
Proceedings of the National Academy of Sciences.
98
:2059–2064
Pti4 Is Induced by Ethylene and Salicylic Acid, and Its Product Is Phosphorylated by the Pto Kinase
2000.
The Plant Cell.
12
:771–785
Early events in AvrPto/Pto-Mediated activation of defense responses
2000.
:
238–242
Signal recognition and transduction mediated by the tomato Pto kinase: a paradigm of innate immunity in plants
2000.
Microbes and Infection.
2
:1591–1597
AvrPto-dependent Pto-interacting proteins and AvrPto-interacting proteins in tomato
2000.
Proceedings of the National Academy of Sciences.
97
:8836–8840
Thr38 and Ser198 are Pto autophosphorylation sites required for the AvrPto-Pto-mediated hypersensitive response
2000.
The EMBO Journal.
19
:2257–2269
The Pseudomonas AvrPto Protein Is Differentially Recognized by Tomato and Tobacco and Is Localized to the Plant Plasma Membrane
2000.
The Plant Cell.
12
:2323–2337
The major site of the Pti1 kinase phosphorylated by the Pto kinase is located in the activation domain and is required for Pto-Pti1 physical interaction
2000.
European Journal of Biochemistry.
267
:171–178
High-resolution linkage analysis and physical characterization of the EIX-responding locus in tomato
2000.
TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik.
100
:184–189
Protein kinases in the plant defense response
2000.
Plant Microbe Interactions Advances in Botanical Research.
32
:379–404
Thr38 and Ser198 are Pto autophosphorylation sites required for the AvrPto-Pto-mediated hypersensitive response (vol 19, pg 2257, 2000)
2000.
The EMBO Journal.
19
:3157–3157
Rapid transcript accumulation of pathogenesis-related genes during an incompatible interaction in bacterial speck disease-resistant tomato plants
1999.
Plant Molecular Biology.
40
:455–465
Pseudomonas syringae pv tomato induces the expression of tomato EREBP-like genes Pti4 and Pti5 independent of ethylene, salicylate and jasmonate
1999.
The Plant Journal.
20
:475–483
Functional analysis of plant disease resistance genes and their downstream effectors
1999.
Current Opinion in Plant Biology.
2
:273–279
Overexpression of P to Activates Defense Responses and Confers Broad Resistance
1999.
The Plant Cell.
11
:15–29
Molecular mechanisms involved in bacterial speck disease resistance of tomato
1998.
Philosophical Transactions of the Royal Society B: Biological Sciences.
353
:1455–1461
Recognition Specificity for the Bacterial Avirulence Protein AvrPto Is Determined by Thr-204 in the Activation Loop of the Tomato Pto Kinase
1998.
Molecular cell.
2
:241–245
Biochemical Properties of Two Protein Kinases Involved in Disease Resistance Signaling in Tomato
1998.
Journal of Biological Chemistry.
273
:15860–15865
Pathogen recognition and signal transduction by the Pto kinase
1998.
Journal of Plant Research.
111
:353–356
A Nitrilase-Like Protein Interacts with GCC Box DNA-Binding Proteins Involved in Ethylene and Defense Responses
1998.
Plant Physiology.
118
:867–874
The Myristylation Motif of Pto Is Not Required for Disease Resistance
1998.
Molecular Plant-Microbe Interactions.
11
:572–576
Signal recognition and transduction involved in plant disease resistance
1997.
ESSAYS IN BIOCHEMISTRY, VOL 32, 1997.
32
:87–99
Alleles of Pto and Fen occur in bacterial speck-susceptible and fenthion-insensitive tomato cultivars and encode active protein kinases
1997.
The Plant Cell.
9
:61–73
The Pto kinase conferring resistance to tomato bacterial speck disease interacts with proteins that bind a cis-element of pathogenesis-related genes
1997.
The EMBO Journal.
16
:3207–3218
Initiation of Plant Disease Resistance by Physical Interaction of AvrPto and Pto Kinase
1996.
Science.
274
:2060–2063
The Pto kinase mediates a signaling pathway leading to the oxidative burst in tomato
1996.
Proceedings of the National Academy of Sciences.
93
:13393–13397
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