Publications – Maria Harrison
Receptor-associated kinases control the lipid provisioning program in plant–fungal symbiosis
2024.
Science.
383
:443–448
Information theory and machine learning illuminate large-scale metabolomic responses of Brachypodium distachyon to environmental change
2023.
The Plant Journal.
:
A Medicago truncatula Cell Biology Resource: Transgenic Lines Expressing Fluorescent Protein-Based Markers of Membranes, Organelles, and Subcellular Compartments.
2022.
Mol Plant Microbe Interact..
:
Distinct ankyrin repeat subdomains control VAPYRIN locations and intracellular accommodation functions during arbuscular mycorrhizal symbiosis.
2022.
Nat Commun..
13
:5228
A genetically encoded biosensor reveals spatiotemporal variation in cellular phosphate content in Brachypodium distachyon mycorrhizal roots
2022.
New Phytologist.
:
KIN3 impacts arbuscular mycorrhizal symbiosis and promotes fungal colonisation in Medicago truncatula
2022.
Plant J..
110
:513–528
Conserved and reproducible bacterial communities associate with extraradical hyphae of arbuscular mycorrhizal fungi.
2021.
ISME J..
15
:2276–2288
Constitutive Overexpression of RAM1 Leads to an Increase in Arbuscule Density in Brachypodium distachyon
2020.
Plant Physiology.
184
:1263–1272
Transcriptomic analysis of field-droughted sorghum from seedling to maturity reveals biotic and metabolic responses
2019.
Proceedings of the National Academy of Sciences.
:201907500
A CLE–SUNN module regulates strigolactone content and fungal colonization in arbuscular mycorrhiza
2019.
Nature Plants.
5
:933–939
Phytohormones, miRNAs, and peptide signals integrate plant phosphorus status with arbuscular mycorrhizal symbiosis
2019.
Current Opinion in Plant Biology.
50
:132–139
A phosphate-dependent requirement for the transcription factors IPD3 and IPD3L during AM symbiosis in Medicago truncatula
2019.
Molecular Plant-Microbe Interactions.
32
:1277–1290
Accumulation of phosphoinositides in distinct regions of the periarbuscular membrane
2019.
New Phytologist.
221
:2213–2227
Extensive membrane systems at the host–arbuscular mycorrhizal fungus interface
2019.
Nature Plants.
5
:194–203
Genome and evolution of the arbuscular mycorrhizal fungus Diversispora epigaea (formerly Glomus versiforme) and its bacterial endosymbionts
2019.
New Phytologist.
221
:1556–1573
A short LysM protein with high molecular diversity from an arbuscular mycorrhizal fungus, Rhizophagus irregularis
2019.
Mycoscience.
60
:63–70
Diverse Sorghum bicolor accessions show marked variation in growth and transcriptional responses to arbuscular mycorrhizal fungi
2018.
Plant, Cell & Environment.
42
:1758–1774
Blumenols as shoot markers of root symbiosis with arbuscular mycorrhizal fungi
2018.
Elife.
7
:e37093
RiArsB and RiMT-11 : Two novel genes induced by arsenate in arbuscular mycorrhiza
2017.
Fungal Biology.
122
:121–130
A comprehensive draft genome sequence for lupin ( Lupinus angustifolius ), an emerging health food: insights into plant-microbe interactions and legume evolution
2017.
Plant Biotechnology Journal.
15
:318–330
A Transcriptional Program for Arbuscule Degeneration during AM Symbiosis Is Regulated by MYB1
2017.
Current Biology.
27
:1206–1212
Exocytosis for endosymbiosis: membrane trafficking pathways for development of symbiotic membrane compartments
2017.
Current Opinion in Plant Biology.
38
:101–108
Plant Signaling and Metabolic Pathways Enabling Arbuscular Mycorrhizal Symbiosis
2017.
The Plant Cell.
29
:2319–2335
Arbuscular mycorrhiza-specific enzymes FatM and RAM2 fine-tune lipid biosynthesis to promote development of arbuscular mycorrhiza
2017.
New Phytologist.
214
:1631–1645
A CCaMK-CYCLOPS-DELLA Complex Activates Transcription of RAM1 to Regulate Arbuscule Branching
2016.
Current Biology.
26
:987–998
DELLA proteins regulate expression of a subset of AM symbiosis-induced genes in Medicago truncatula
2016.
Plant Signaling and Behavior.
11
:e1162369–e1162369
Genes conserved for arbuscular mycorrhizal symbiosis identified through phylogenomics
2016.
Nature Plants.
2
:15208–15208
How grow-and-switch gravitropism generates root coiling and root waving growth responses in Medicago truncatula
2015.
Proceedings of the National Academy of Sciences.
112
:12938–12943
Hyphal Branching during Arbuscule Development Requires Reduced Arbuscular Mycorrhiza1
2015.
Plant Physiology.
169
:2774–2788
EXO70I Is Required for Development of a Sub-domain of the Periarbuscular Membrane during Arbuscular Mycorrhizal Symbiosis
2015.
Current Biology.
25
:2189–2195
Suppression of Arbuscule Degeneration in Medicago truncatula phosphate transporter4 Mutants Is Dependent on the Ammonium Transporter 2 Family Protein AMT2;3
2015.
The Plant Cell.
27
:1352–1366
Signaling events during initiation of arbuscular mycorrhizal symbiosis
2014.
Journal of Integrative Plant Biology.
56
:250–261
A set of fluorescent protein-based markers expressed from constitutive and arbuscular mycorrhiza-inducible promoters to label organelles, membranes and cytoskeletal elements in Medicago truncatula
2014.
The Plant Journal.
80
:1151–1163
The NR4A2 Nuclear Receptor Is Recruited to Novel Nuclear Foci in Response to UV Irradiation and Participates in Nucleotide Excision Repair
2013.
PLOS One.
8
:e78075–e78075
Using membrane transporters to improve crops for sustainable food production
2013.
Nature.
497
:60–66
Gene Silencing in Medicago truncatula roots using RNAi
2013.
The Nucleus (Methods in Molecular Biology).
1069
:163–177
DELLA proteins regulate arbuscule formation in arbuscular mycorrhizal symbiosis
2013.
Proceedings of the National Academy of Sciences.
110
:E5025–E5034
Spatio-Temporal Expression Patterns of Arabidopsis thaliana and Medicago truncatula Defensin-Like Genes
2013.
PLOS One.
8
:e58992–e58992
Cellular programs for arbuscular mycorrhizal symbiosis
2012.
Current Opinion in Plant Biology.
15
:691–698
Transgenic expression of phytase and acid phosphatase genes in alfalfa (Medicago sativa) leads to improved phosphate uptake in natural soils
2012.
Molecular Breeding.
30
:377–391
The half-size ABC transporters STR1 and STR2 are indispensable for mycorrhizal arbuscule formation in rice
2012.
The Plant Journal.
69
:906–920
Diversity of morphology and function in arbuscular mycorrhizal symbioses in Brachypodium distachyon
2012.
Planta.
236
:851–865
3D imaging and mechanical modeling of helical buckling in Medicago truncatula plant roots
2012.
Proceedings of the National Academy of Sciences.
109
:16794–16799
The transcriptome of the arbuscular mycorrhizal fungus Glomus intraradices (DAOM 197198) reveals functional tradeoffs in an obligate symbiont
2012.
New Phytologist.
193
:755–769
Polar localization of a symbiosis-specific phosphate transporter is mediated by a transient reorientation of secretion
2012.
Proceedings of the National Academy of Sciences.
109
:E665–E672
Medicago truncatula mtpt4 mutants reveal a role for nitrogen in the regulation of arbuscule degeneration in arbuscular mycorrhizal symbiosis
2011.
The Plant Journal.
68
:954–965
Arsenate induces the expression of fungal genes involved in As transport in arbuscular mycorrhiza
2011.
Fungal Biology.
115
:1197–1209
Two Medicago truncatula Half-ABC Transporters Are Essential for Arbuscule Development in Arbuscular Mycorrhizal Symbiosis
2010.
The Plant Cell.
22
:1483–1497
Genetic variation for root architecture, nutrient uptake and mycorrhizal colonisation in Medicago truncatula accessions
2010.
Plant and Soil.
336
:113–128
Genomic Inventory and Transcriptional Analysis of Medicago truncatula Transporters
2010.
Plant Physiology.
152
:1716–1730
Symbiosis research, technology, and education: Proceedings of the 6th International Symbiosis Society Congress held in Madison Wisconsin, USA, August 2009
2010.
Symbiosis.
51
:1–12
Medicago truncatula Vapyrin is a novel protein required for arbuscular mycorrhizal symbiosis
2010.
The Plant Journal.
61
:482–494
Laser microdissection and its application to analyze gene expression in arbuscular mycorrhizal symbiosis
2009.
Pest Management Science.
65
:504–511
Live-Cell Imaging Reveals Periarbuscular Membrane Domains and Organelle Location in Medicago truncatula Roots during Arbuscular Mycorrhizal Symbiosis
2009.
Plant Physiology.
151
:809–819
Medicago truncatula and Glomus intraradices gene expression in cortical cells harboring arbuscules in the arbuscular mycorrhizal symbiosis
2009.
BMC Plant Biology.
9
:10–10
Closely Related Members of the Medicago truncatula PHT1 Phosphate Transporter Gene Family Encode Phosphate Transporters with Distinct Biochemical Activities
2008.
Journal of Biological Chemistry.
283
:24673–24681
Novel plant and fungal AGP-like proteins in the Medicago truncatula-Glomus intraradices arbuscular mycorrhizal symbiosis
2008.
Mycorrhiza.
18
:403–412
The Medicago truncatula ortholog of Arabidopsis EIN2, sickle , is a negative regulator of symbiotic and pathogenic microbial associations
2008.
The Plant Journal.
55
:580–595
A Medicago truncatula phosphate transporter indispensable for the arbuscular mycorrhizal symbiosis
2007.
Proceedings of the National Academy of Sciences.
104
:1720–1725
Arbuscular mycorrhizal symbiosis is accompanied by local and systemic alterations in gene expression and an increase in disease resistance in the shoots
2007.
The Plant Journal.
50
:529–544
Phosphate in the arbuscular mycorrhizal symbiosis: Transport properties and regulatory roles
2007.
Plant Cell and Environment.
30
:310–322
Loss of At4 function impacts phosphate distribution between the roots and the shoots during phosphate starvation
2006.
The Plant Journal.
45
:712–726
Expression characteristics of MtPAP1 and its exotic expression in Arabidopsis affecting organic phosphorus absorption of plants
2006.
Zhi wu sheng li yu fen zi sheng wu xue xue bao = Journal of plant physiology and molecular biology.
32
:99–106
Improved phosphorus acquisition and biomass production in Arabidopsis by transgenic expression of a purple acid phosphatase gene from M. truncatula
2006.
Plant Science.
170
:191–202
Ectopic Expression of a Phytase Gene from Medicago truncatula Barrel Medic Enhances Phosphorus Absorption in Plants
2006.
Journal of Integrative Plant Biology.
48
:35–43
Cloning and Characterization of a Novel Purple Acid Phosphatase Gene (MtPAP1) from Medicago truncatula Barrel Medic
2006.
Journal of Integrative Plant Biology.
48
:204–211
Isolation and Characterization of Root-Specific Phosphate Transporter Promoters from Medicago truncatula
2006.
Plant Biology.
8
:439–449
RNA Interference Identifies a Calcium-Dependent Protein Kinase Involved in Medicago truncatula Root Development
2005.
The Plant Cell.
17
:2911–2921
Isolation and characterization of a novel plant promoter that directs strong constitutive expression of transgenes in plants
2005.
Molecular Breeding.
15
:221–231
Expression of a xyloglucan endotransglucosylase/hydrolase gene, Mt-XTH1, from Medicago truncatula is induced systemically in mycorrhizal roots
2005.
Gene.
345
:191–197
Transgenic expression of novel purple acid phosphatase and phytase genes from M-truncatula results in improved acquisition of organic phosphorus by Arabidopsis
2005.
IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-ANIMAL.
41
:32A–32A
Signaling in the arbuscular mycorrhizal symbiosis
2005.
Annual Review of Microbiology.
59
:19–42
Peace Talks and Trade Deals. Keys to Long-Term Harmony in Legume-Microbe Symbioses
2005.
Plant Physiology.
137
:1205–1210
Defensin gene family in Medicago truncatula: Structure, expression and induction by signal molecules
2005.
Plant Molecular Biology.
58
:385–399
Transgenic expression of a novel M. truncatula phytase gene results in improved acquisition of organic phosphorus by Arabidopsis
2005.
Planta.
222
:27–36
Phosphate transport in Arabidopsis : Pht1;1 and Pht1;4 play a major role in phosphate acquisition from both low- and high-phosphate environments
2004.
The Plant Journal.
39
:629–642
Expression of alkaline phosphatase genes in arbuscular mycorrhizas
2004.
New Phytologist.
162
:525–534
Biotic interactions ploy and counter-ploy in the biotic interactions of plants – Editorial overview
2004.
Current Opinion in Plant Biology.
7
:353–355
cDNA arrays as a tool to identify mycorrhiza-regulated genes: Identification of mycorrhiza-induced genes that encode or generate signaling molecules implicated in the control of root growth
2004.
CANADIAN JOURNAL OF BOTANY-REVUE CANADIENNE DE BOTANIQUE.
82
:1177–1185
Transcript Profiling Coupled with Spatial Expression Analyses Reveals Genes Involved in Distinct Developmental Stages of an Arbuscular Mycorrhizal Symbiosis
2003.
The Plant Cell.
15
:2106–2123
A phosphate transporter from Medicago truncatula is expressed in the photosynthetic tissues of the plant and located in the chloroplast envelope
2003.
New Phytologist.
157
:291–302
A Phosphate Transporter from Medicago truncatula Involved in the Acquisition of Phosphate Released by Arbuscular Mycorrhizal Fungi
2002.
The Plant Cell.
14
:2413–2429
A Chloroplast Phosphate Transporter, PHT2;1, Influences Allocation of Phosphate within the Plant and Phosphate-Starvation Responses
2002.
The Plant Cell.
14
:1751–1766
Methods to estimate the proportion of plant and fungal RNA in an arbuscular mycorrhiza
2002.
Mycorrhiza.
12
:67–74
Phosphate transporters of Medicago truncatula and arbuscular mycorrhizal fungi
2002.
PLANT AND SOIL.
244
:239–245
The Medicago Genome Initiative: a model legume database
2001.
Nucleic Acids Research.
29
:114–117
Microtubule organization in root cells of Medicago truncatula during development of an arbuscular mycorrhizal symbiosis with Glomus versiforme
2001.
Protoplasma.
217
:154–165
A Phosphate Transporter Gene from the Extra-Radical Mycelium of an Arbuscular Mycorrhizal Fungus Glomus intraradices Is Regulated in Response to Phosphate in the Environment
2001.
Molecular Plant-Microbe Interactions.
14
:1140–1148
The spatial expression patterns of a phosphate transporter (MtPT1) from Medicago truncatula indicate a role in phosphate transport at the root/soil interface
2001.
The Plant Journal.
25
:281–293
Transformation of Medicago truncatula via infiltration of seedlings or flowering plants with Agrobacterium
2000.
The Plant Journal.
22
:531–541
Genes induced in the arbuscular mycorrhizal symbiosis formed between Medicago truncatula and Glomus versiforme
2000.
:
202–207
Novel Genes Induced During an Arbuscular Mycorrhizal (AM) Symbiosis Formed Between Medicago truncatula and Glomus versiforme
1999.
Molecular Plant-Microbe Interactions.
12
:171–181
MOLECULAR AND CELLULAR ASPECTS OF THE ARBUSCULAR MYCORRHIZAL SYMBIOSIS
1999.
Annual Review of Plant Physiology and Plant Molecular Biology.
50
:361–389
Construction and characterization of genomic libraries of two endomycorrhizal fungi: Glomus versiforme and Gigaspora margarita
1999.
Mycological Research.
103
:955–960
Biotrophic interfaces and nutrient transport in plant fungal symbioses
1999.
Journal of Experimental Botany.
50
:1013–1022
Biotrophic interfaces and nutrient transport in plant/fungal symbioses
1999.
Journal of Experimental Botany.
50
:1013–1022
The Down-Regulation of Mt4 -Like Genes by Phosphate Fertilization Occurs Systemically and Involves Phosphate Translocation to the Shoots
1999.
Plant Physiology.
119
:241–248
Mt4, a phosphorus starvation-inducible cDNA from Medicago truncatula, which is down-regulated both by phosphorus fertilization and arbuscular-mycorrhizal colonization
1999.
19
:359–360
Expression of phosphate transporters and the phosphate starvation-inducible gene Mt4 in mycorrhizal roots
1999.
19
:261–270
Cloning and Characterization of Two Phosphate Transporters from Medicago truncatula Roots: Regulation in Response to Phosphate and to Colonization by Arbuscular Mycorrhizal (AM) Fungi
1998.
Molecular Plant-Microbe Interactions.
11
:14–22
Development of the arbuscular mycorrhizal symbiosis
1998.
Current Opinion in Plant Biology.
1
:360–365
A cDNA from the arbuscular mycorrhizal fungus Glomus versiforme with homology to a cruciform DNA-binding protein from Ustilago maydis
1998.
Mycorrhiza.
7
:301–306
Establishment of monoxenic root organ cultures for the study of gene expression of fungal phosphate transporters in the arbuscular mycorrhizal association
1998.
18
:496–497
Identification of mycorrhizal mutants of Medicago truncatula
1998.
18
:500–501
Gene expression in mycorrhizal roots of Medicago truncatula
1998.
18
:498–499
A novel gene whose expression in Medicago truncatula roots is suppressed in response to colonization by vesicular-arbuscular mycorrhizal (VAM) fungi and to phosphate nutrition
1997.
Plant Molecular Biology.
34
:199–208
Localization of sucrose synthase in differentiating tracheary elements of Zinnia elegans
1997.
Plant Physiology.
114
:349–349
Development of a molecular genetic system in the diploid legume Medicago truncatula
1997.
Plant Physiology.
114
:110–110
Progress towards the molecular characterization of phosphate transporters from arbuscular mycorrhizal fungi
1997.
Plant Physiology.
114
:1125–1125
The arbuscular mycorrhizal symbiosis: An underground association
1997.
Trends in Plant Science.
2
:54–60
Vesicular-arbuscular mycorrhizae: Molecular approaches to investigate phosphate nutrition in the symbiosis
1996.
:
515–520
A sugar transporter from Medicago truncatula: Altered expression pattern in roots during vesicular-arbuscular (VA) mycorrhizal associations
1996.
The Plant Journal.
9
:491–503
Rapid transformation of Medicago truncatula: Regeneration via shoot organogenesis
1996.
Plant Cell Reports.
16
:6–11
A phosphate transporter from the mycorrhizal fungus Glomus versiforme
1995.
Nature.
378
:626–629
Cis elements and potential trans-acting factors for the developmental regulation of the Phaseolus vulgaris CHS15 promoter
1995.
Plant Molecular Biology.
28
:967–981
Spatial patterns of expression of flavonoid/isoflavonoid pathway genes during interactions between roots of Medicago truncatula and the mycorrhizal fungus Glomus versiforme
1994.
The Plant Journal.
6
:9–20
Regulation of isoflavonoid metabolism in alfalfa
1994.
Plant Cell Tissue and Organ Culture.
38
:213–220
Early Events in the Activation of Plant Defense Responses
1994.
Annual Review of Phytopathology.
32
:479–501
Isoflavonoid Accumulation and Expression of Defense Gene Transcripts During the Establishment of Vesicular-Arbuscular Mycorrhizal Associations in Roots of Medicago truncatula
1993.
Molecular Plant-Microbe Interactions.
6
:643–654
MOLECULAR-BIOLOGY OF DISEASE RESISTANCE
1993.
:
177–203
Molecular characterization and expression of alfalfa isoliquiritigenin 2′-O-methyltransferase, an enzyme specifically involved in the biosynthesis of an inducer of Rhizobium meliloti nodulation genes
1993.
The Plant Journal.
4
:971–981
TRANSCRIPTIONAL REGULATION OF PHYTOALEXIN BIOSYNTHETIC GENES
1993.
14
:497–509
Phenylpropanoid Pathway Intermediates Regulate Transient Expression of a Chalcone Synthase Gene Promoter
1991.
The Plant Cell.
3
:829–840
Stress responses in alfalfa (Medicago sativa L.). 8. Cis-elements and trans-acting factors for the quantitative expression of a bean chalcone synthase gene promoter in electroporated alfalfa protoplasts
1991.
Plant Molecular Biology.
16
:877–890
Characterization of a nuclear protein that binds to three elements within the silencer region of a bean chalcone synthase gene promoter
1991.
Proceedings of the National Academy of Sciences.
88
:2515–2519
Silencer region of a chalcone synthase promoter contains multiple binding sites for a factor, SBF-1, closely related to GT-1
1991.
Plant Molecular Biology.
16
:235–249
CIS-ELEMENTS AND TRANS-ACTING FACTORS FOR REGULATION OF THE PLANT DEFENSE GENE CHALCONE SYNTHASE
1990.
129
:101–109
Activation, Structure, and Organization of Genes Involved in Microbial Defense in Plants
1990.
Advances in Genetics.
28
:165–234