Journal Article (46)
21.
Journal Article
10, 1184 (2019)
Ramf: An Open-Source R Package for Statistical Analysis and Display of Quantitative Root Colonization by Arbuscular Mycorrhiza Fungi. Frontiers in Plant Science 22.
Journal Article
15 (8), e1008327 (2019)
SMAX1/SMXL2 regulate root and root hair development downstream of KAI2-mediated signalling in Arabidopsis. PLoS Genetics 23.
Journal Article
95 (2), pp. 219 - 232 (2018)
The Lotus japonicus acyl-acyl carrier protein thioesterase FatM is required for mycorrhiza formation and lipid accumulation of Rhizophagus irregularis. The Plant Journal 24.
Journal Article
8 (7), e2786 (2018)
Tracking Lipid Transfer by Fatty Acid Isotopolog Profiling from Host Plants to Arbuscular Mycorrhiza Fungi. BIO-PROTOCOL 25.
Journal Article
217 (3), pp. 1240 - 1253 (2018)
Root type and soil phosphate determine the taxonomic landscape of colonizing fungi and the transcriptome of field-grown maize roots. New Phytologist 26.
Journal Article
6, e29107 (2017)
Lipid transfer from plants to arbuscular mycorrhiza fungi. eLife 27.
Journal Article
3 (6), 17073 (2017)
An N-acetylglucosamine transporter required for arbuscular mycorrhizal symbioses in rice and maize. Nature Plants 28.
Journal Article
21 (1), pp. 106 - 112 (2017)
Positive Gene Regulation by a Natural Protective miRNA Enables Arbuscular Mycorrhizal Symbiosis. Cell Host & Microbe 29.
Journal Article
26 (8), pp. 987 - 998 (2016)
A CCaMK-CYCLOPS-DELLA Complex Activates Transcriptiori of RAM1 to Regulate Arbuscule Branching. Current Biology 30.
Journal Article
350 (6267), pp. 1521 - 1524 (2015)
Rice perception of symbiotic arbuscular mycorrhizal fungi requires the karrikin receptor complex. Science 31.
Journal Article
112 (21), pp. 6754 - 6759 (2015)
Transcriptome diversity among rice root types during asymbiosis and interaction with arbuscular mycorrhizal fungi. Proceedings of the National Academy of Sciences of the United States of America 32.
Journal Article
10 (4), e0123422 (2015)
Full Establishment of Arbuscular Mycorrhizal Symbiosis in Rice Occurs Independently of Enzymatic Jasmonate Biosynthesis. PLOS ONE 33.
Journal Article
55 (11), pp. 1945 - 1953 (2014)
Lipid Droplets of Arbuscular Mycorrhizal Fungi Emerge in Concert with Arbuscule Collapse. Plant and Cell Physiology 34.
Journal Article
166 (1), pp. 281 - 292 (2014)
Auxin Perception Is Required for Arbuscule Development in Arbuscular Mycorrhizal Symbiosis. PLANT PHYSIOLOGY 35.
Journal Article
75 (1), pp. 117 - 129 (2013)
Two Lotus japonicus symbiosis mutants impaired at distinct steps of arbuscule development. The Plant Journal 36.
Journal Article
31 (4), pp. 325 - 330 (2013)
Mutation identification by direct comparison of whole-genome sequencing data from mutant and wild-type individuals using k-mers. Nature Biotechnology 37.
Journal Article
69 (5), pp. 906 - 920 (2012)
The half-size ABC transporters STR1 and STR2 are indispensable for mycorrhizal arbuscule formation in rice. The Plant Journal 38.
Journal Article
234 (3), pp. 639 - 646 (2011)
Root starch accumulation in response to arbuscular mycorrhizal colonization differs among Lotus japonicus starch mutants. Planta 39.
Journal Article
182 (4), pp. 829 - 837 (2009)
Glomus intraradices induces changes in root system architecture of rice independently of common symbiosis signaling. New Phytologist 40.
Journal Article
183 (1), pp. 53 - 61 (2009)
Presymbiotic factors released by the arbuscular mycorrhizal fungus Gigaspora margarita induce starch accumulation in Lotus japonicus roots. New Phytologist