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146 peer-reviewed articles • 15,998 peer-reviewed citations • Sorted by year • Download PDF (PDF by citations)
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1The role of indole‐3‐acetic acid and characterization of PIN transporters in complex streptophyte alga Chara braunii
New Phytologist, 2025, 246, 1066-1083
5.310Citations (PDF)
2The structure and function of the DNA binding domain of class B MpARF2 share more traits with class A AtARF5 than to that of class B AtARF1
Structure, 2025, 33, 960-973.e4
2.53Citations (PDF)
3A conserved ARF–DNA interface underlies auxin-triggered transcriptional response5.322Citations (PDF)
4Diversification of DIX domain-containing proteins in the SAR supergroup
MBio, 2025, 16,
3.13Citations (PDF)
5Auxin and tryptophan trigger common responses in the streptophyte alga Penium margaritaceum
Current Biology, 2025, 35, 2078-2087.e4
2.516Citations (PDF)
6ARF degradation defines a deeply conserved step in auxin response
Nature Plants, 2025, 11, 717-724
8.014Citations (PDF)
7CarboTag: a modular approach for live and functional imaging of plant cell walls
Nature Methods, 2025, 22, 1081-1090
13.628Citations (PDF)
8RAF-like protein kinases mediate a deeply conserved, rapid auxin response
Cell, 2024, 187, 130-148.e17
23.8101Citations (PDF)
9The maternal embrace: the protection of plant embryos
Journal of Experimental Botany, 2024, 75, 4210-4218
3.89Citations (PDF)
10Protein degradation in auxin response
Plant Cell, 2024, 36, 3025-3035
5.830Citations (PDF)
11CDC48A, an interactor of WOX2, is required for embryonic patterning in Arabidopsis thaliana
Plant Cell Reports, 2024, 43,
3.26Citations (PDF)
12Focus on proteolysis
Plant Cell, 2024, 36, 2929-2930
5.82Citations (PDF)
13Quantitative imaging reveals the role of MpARF proteasomal degradation during gemma germination
Plant Communications, 2024, 5, 101039
7.419Citations (PDF)
14Guidelines for naming and studying plasma membrane domains in plants
Nature Plants, 2024, 10, 1172-1183
8.048Citations (PDF)
15Distribution of specific prokaryotic immune systems correlates with host optimal growth temperature1.48Citations (PDF)
16Analysis of auxin responses in the fern Ceratopteris richardii identifies the developmental phase as a major determinant for response properties2.023Citations (PDF)
17Polar targeting of proteins – a green perspective1.85Citations (PDF)
18The peri-germ cell membrane: poorly characterized but key interface for plant reproduction
Nature Plants, 2024, 10, 1607-1609
8.024Citations (PDF)
19Evolutionary origins and functional diversification of Auxin Response Factors11.047Citations (PDF)
20An actin remodeling role for Arabidopsis processing bodies revealed by their proximity interactome
EMBO Journal, 2023, 42,
5.247Citations (PDF)
21The birth of a giant: evolutionary insights into the origin of auxin responses in plants
EMBO Journal, 2023, 42,
5.289Citations (PDF)
22Cooperative action of separate interaction domains promotes high-affinity DNA binding of Arabidopsis thaliana ARF transcription factors5.328Citations (PDF)
23To bind or not to bind: how AUXIN RESPONSE FACTORs select their target genes
Journal of Experimental Botany, 2023, 74, 6922-6932
3.837Citations (PDF)
24An elastic proteinaceous envelope encapsulates the early Arabidopsis embryo2.05Citations (PDF)
25Dolf Weijers
Current Biology, 2023, 33, R1268-R1269
2.50Citations (PDF)
26Electroporation‐based delivery of proteins in Penium margaritaceum and other zygnematophycean algae2.28Citations (PDF)
27Pole position: How plant cells polarize along the axes
Plant Cell, 2022, 34, 174-192
5.850Citations (PDF)
28A rich and bountiful harvest: Key discoveries in plant cell biology
Plant Cell, 2022, 34, 53-71
5.813Citations (PDF)
29Probing DNA ‐ Transcription Factor Interactions Using Single‐Molecule Fluorescence Detection in Nanofluidic Devices
Advanced Biology, 2022, 6,
1.67Citations (PDF)
30Plant transcription factors — being in the right place with the right company4.4226Citations (PDF)
31Back to the roots: A focus on plant cell biology
Plant Cell, 2022, 34, 1-3
5.81Citations (PDF)
32Highly Specific Protein Identification by Immunoprecipitation–Mass Spectrometry Using Antifouling Microbeads5.514Citations (PDF)
33Quantitative analysis of 3D cellular geometry and modelling of the Arabidopsis embryo
Journal of Microscopy, 2022, 287, 107-113
1.11Citations (PDF)
34Deep origin and gradual evolution of transporting tissues: Perspectives from across the land plants
Plant Physiology, 2022, 190, 85-99
4.048Citations (PDF)
35ABP1–TMK auxin perception for global phosphorylation and auxin canalization
Nature, 2022, 609, 575-581
31.3180Citations (PDF)
36Conserved, divergent and heterochronic gene expression during Brachypodium and Arabidopsis embryo development
Plant Reproduction, 2021, 34, 207-224
1.437Citations (PDF)
37Two-Component Nanoparticle Vaccine Displaying Glycosylated Spike S1 Domain Induces Neutralizing Antibody Response against SARS-CoV-2 Variants
MBio, 2021, 12,
3.141Citations (PDF)
38Auxin-dependent control of cytoskeleton and cell shape regulates division orientation in the Arabidopsis embryo
Current Biology, 2021, 31, 4946-4955.e4
2.555Citations (PDF)
39Cell surface and intracellular auxin signalling for H+ fluxes in root growth
Nature, 2021, 599, 273-277
31.3264Citations (PDF)
40Plant cell polarity as the nexus of tissue mechanics and morphogenesis
Nature Plants, 2021, 7, 1548-1559
8.042Citations (PDF)
41Rice microtubule‐associated protein IQ67‐DOMAIN14 regulates grain shape by modulating microtubule cytoskeleton dynamics
Plant Biotechnology Journal, 2020, 18, 1141-1152
6.570Citations (PDF)
42Evolution of vascular plants through redeployment of ancient developmental regulators5.331Citations (PDF)
43A PXY-Mediated Transcriptional Network Integrates Signaling Mechanisms to Control Vascular Development in Arabidopsis
Plant Cell, 2020, 32, 319-335
5.8158Citations (PDF)
44Complete microviscosity maps of living plant cells and tissues with a toolbox of targeting mechanoprobes5.396Citations (PDF)
45Architecture of DNA elements mediating ARF transcription factor binding and auxin-responsive gene expression in Arabidopsis5.3126Citations (PDF)
46Design principles of a minimal auxin response system
Nature Plants, 2020, 6, 473-482
8.0127Citations (PDF)
47Suspensor-derived somatic embryogenesis in Arabidopsis2.016Citations (PDF)
48Specification and regulation of vascular tissue identity in the Arabidopsis embryo2.032Citations (PDF)
49Anthoceros genomes illuminate the origin of land plants and the unique biology of hornworts
Nature Plants, 2020, 6, 259-272
8.0359Citations (PDF)
50Deep Evolutionary History of the Phox and Bem1 (PB1) Domain Across Eukaryotes
Scientific Reports, 2020, 10,
2.723Citations (PDF)
51DIX Domain Polymerization Drives Assembly of Plant Cell Polarity Complexes
Cell, 2020, 180, 427-439.e12
23.882Citations (PDF)
52Evolution of Plant Hormone Response Pathways14.3275Citations (PDF)
53High-resolution and Deep Phylogenetic Reconstruction of Ancestral States from Large Transcriptomic Data Sets
Bio-protocol, 2020, 10,
0.25Citations (PDF)
54The Transcriptional Landscape of Polyploid Wheats and Their Diploid Ancestors during Embryogenesis and Grain Development
Plant Cell, 2019, 31, 2888-2911
5.8100Citations (PDF)
55Evolution, Initiation, and Diversity in Early Plant Embryogenesis
Developmental Cell, 2019, 50, 533-543
5.454Citations (PDF)
56A SOSEKI-based coordinate system interprets global polarity cues in Arabidopsis
Nature Plants, 2019, 5, 160-166
8.0103Citations (PDF)
57A Robust Auxin Response Network Controls Embryo and Suspensor Development through a Basic Helix Loop Helix Transcriptional Module
Plant Cell, 2019, 31, 52-67
5.854Citations (PDF)
58Regulation of intercellular TARGET OF MONOPTEROS 7 protein transport in the Arabidopsis root2.027Citations (PDF)
59Auxin: small molecule, big impact3.888Citations (PDF)
60Diversity of cis-regulatory elements associated with auxin response in Arabidopsis thaliana3.859Citations (PDF)
61Auxin Response Factors: output control in auxin biology3.8248Citations (PDF)
62Evolution of nuclear auxin signaling: lessons from genetic studies with basal land plants3.869Citations (PDF)
63A Plausible Microtubule-Based Mechanism for Cell Division Orientation in Plant Embryogenesis
Current Biology, 2018, 28, 3031-3043.e2
2.583Citations (PDF)
64Adapting INTACT to analyse cell-type-specific transcriptomes and nucleocytoplasmic mRNA dynamics in the Arabidopsis embryo
Plant Reproduction, 2018, 32, 113-121
1.420Citations (PDF)
65RIMA-Dependent Nuclear Accumulation of IYO Triggers Auxin-Irreversible Cell Differentiation in Arabidopsis
Plant Cell, 2017, 29, 575-588
5.829Citations (PDF)
66Auxin response cell-autonomously controls ground tissue initiation in the early Arabidopsis embryo5.388Citations (PDF)
67The developmental and environmental regulation of gravitropic setpoint angle in Arabidopsis and bean2.758Citations (PDF)
68Boosting LPMO-driven lignocellulose degradation by polyphenol oxidase-activated lignin building blocks6.4102Citations (PDF)
69Framework for gradual progression of cell ontogeny in the Arabidopsis root meristem5.352Citations (PDF)
70Predicting gene regulatory networks by combining spatial and temporal gene expression data in Arabidopsis root stem cells5.3104Citations (PDF)
71Multiple PPR protein interactions are involved in the RNA editing system in Arabidopsis mitochondria and plastids5.3117Citations (PDF)
72Transcriptome dynamics revealed by a gene expression atlas of the early Arabidopsis embryo
Nature Plants, 2017, 3, 894-904
8.084Citations (PDF)
73Theoretical approaches to understanding root vascular patterning: a consensus between recent models3.837Citations (PDF)
74The anaphase‐promoting complex initiates zygote division in Arabidopsis through degradation of cyclin B1
Plant Journal, 2016, 86, 161-174
4.057Citations (PDF)
75Auxin responsiveness of the MONOPTEROS‐BODENLOS module in primary root initiation critically depends on the nuclear import kinetics of the Aux/IAA inhibitor BODENLOS
Plant Journal, 2016, 85, 269-277
4.029Citations (PDF)
76Phyllotaxis: A Matthew Effect in Auxin Action
Current Biology, 2016, 26, R1233-R1235
2.52Citations (PDF)
77Molecular characterization of Arabidopsis GAL4/UAS enhancer trap lines identifies novel cell type-specific promoters
Plant Physiology, 2016, , pp.00213.2016
4.023Citations (PDF)
78Tissue and Organ Initiation in the Plant Embryo: A First Time for Everything6.485Citations (PDF)
79Quiescent center initiation in the Arabidopsis lateral root primordia is dependent on the SCARECROW transcription factor2.067Citations (PDF)
80Q&A: Auxin: the plant molecule that influences almost anything
BMC Biology, 2016, 14,
3.0133Citations (PDF)
81A noncanonical auxin-sensing mechanism is required for organ morphogenesis in Arabidopsis
Genes and Development, 2016, 30, 2286-2296
2.9165Citations (PDF)
82Plant Organogenesis: Rules of Order
Current Biology, 2016, 26, R157-R159
2.57Citations (PDF)
83Transcriptional Responses to the Auxin Hormone14.3548Citations (PDF)
84Centering the Organizing Center in the Arabidopsis thaliana Shoot Apical Meristem by a Combination of Cytokinin Signaling and Self-Organization
PLoS ONE, 2016, 11, e0147830
1.532Citations (PDF)
85Organizer-Derived WOX5 Signal Maintains Root Columella Stem Cells through Chromatin-Mediated Repression of CDF4 Expression
Developmental Cell, 2015, 33, 576-588
5.4391Citations (PDF)
86Reporters for sensitive and quantitative measurement of auxin response
Nature Methods, 2015, 12, 207-210
13.6489Citations (PDF)
87Plant embryogenesis requires AUX/LAX-mediated auxin influx2.0101Citations (PDF)
88Building a plant: cell fate specification in the early Arabidopsis embryo
Development (Cambridge), 2015, 142, 420-430
2.0209Citations (PDF)
89The role of auxin signaling in early embryo pattern formation4.479Citations (PDF)
90Cytokinin response factors regulate PIN-FORMED auxin transporters11.0142Citations (PDF)
91A set of domain-specific markers in the Arabidopsis embryo
Plant Reproduction, 2015, 28, 153-160
1.417Citations (PDF)
92A bHLH-Based Feedback Loop Restricts Vascular Cell Proliferation in Plants
Developmental Cell, 2015, 35, 432-443
5.4125Citations (PDF)
93Control of oriented cell division in the Arabidopsis embryo4.413Citations (PDF)
94Plant vascular development: from early specification to differentiation68.4265Citations (PDF)
95Omics and modelling approaches for understanding regulation of asymmetric cell divisions in arabidopsis and other angiosperm plants
Annals of Botany, 2014, 113, 1083-1105
2.142Citations (PDF)
96Prenatal plumbing—vascular tissue formation in the plant embryo
Physiologia Plantarum, 2014, 151, 126-133
2.223Citations (PDF)
97Structural Basis for DNA Binding Specificity by the Auxin-Dependent ARF Transcription Factors
Cell, 2014, 156, 577-589
23.8457Citations (PDF)
98Integration of growth and patterning during vascular tissue formation in Arabidopsis
Science, 2014, 345,
26.5347Citations (PDF)
99A roadmap to embryo identity in plants
Trends in Plant Science, 2014, 19, 709-716
8.980Citations (PDF)
100Genetic Control of Plant Development by Overriding a Geometric Division Rule
Developmental Cell, 2014, 29, 75-87
5.4239Citations (PDF)
101An integrative model of the control of ovule primordia formation
Plant Journal, 2013, 76, 446-455
4.0131Citations (PDF)
102A bHLH Complex Controls Embryonic Vascular Tissue Establishment and Indeterminate Growth in Arabidopsis
Developmental Cell, 2013, 24, 426-437
5.4318Citations (PDF)
103Transcriptomics approaches in the early Arabidopsis embryo
Trends in Plant Science, 2013, 18, 514-521
8.948Citations (PDF)
104The Arabidopsis embryo as a miniature morphogenesis model
New Phytologist, 2013, 199, 14-25
5.382Citations (PDF)
105Transcriptional repression of BODENLOS by HD-ZIP transcription factor HB5 in Arabidopsis thaliana
Journal of Experimental Botany, 2013, 64, 3009-3019
3.840Citations (PDF)
106Auxin Regulation of Embryonic Root Formation
Plant and Cell Physiology, 2013, 54, 325-332
2.524Citations (PDF)
107Control of embryonic meristem initiation in Arabidopsis by PHD-finger protein complexes
Development (Cambridge), 2012, 139, 1391-1398
2.038Citations (PDF)
108Different Auxin Response Machineries Control Distinct Cell Fates in the Early Plant Embryo
Developmental Cell, 2012, 22, 211-222
5.4210Citations (PDF)
109A cellular expression map of the Arabidopsis AUXIN RESPONSE FACTOR gene family
Plant Journal, 2011, 68, 597-606
4.0247Citations (PDF)
110A Mutually Inhibitory Interaction between Auxin and Cytokinin Specifies Vascular Pattern in Roots
Current Biology, 2011, 21, 917-926
2.5428Citations (PDF)
111A Versatile Set of Ligation-Independent Cloning Vectors for Functional Studies in Plants      
Plant Physiology, 2011, 156, 1292-1299
4.0145Citations (PDF)
112The AP-3 adaptor complex is required for vacuolar function in Arabidopsis
Cell Research, 2011, 21, 1711-1722
10.2125Citations (PDF)
113POPCORNFunctions in the Auxin Pathway to Regulate Embryonic Body Plan and Meristem Organization inArabidopsis   
Plant Cell, 2011, 23, 4348-4367
5.827Citations (PDF)
114A Novel Aux/IAA28 Signaling Cascade Activates GATA23-Dependent Specification of Lateral Root Founder Cell Identity
Current Biology, 2010, 20, 1697-1706
2.5509Citations (PDF)
115MONOPTEROS controls embryonic root initiation by regulating a mobile transcription factor
Nature, 2010, 464, 913-916
31.3600Citations (PDF)
116miR390, Arabidopsis TAS3 tasiRNAs, and Their AUXIN RESPONSE FACTOR Targets Define an Autoregulatory Network Quantitatively Regulating Lateral Root Growth
Plant Cell, 2010, 22, 1104-1117
5.8580Citations (PDF)
117Bimodular auxin response controls organogenesis in Arabidopsis5.3300Citations (PDF)
118Cyclophilin 40 is required for microRNA activity in Arabidopsis5.3161Citations (PDF)
119Auxin Control of Embryo Patterning4.6258Citations (PDF)
120DORNRÖSCHENis a direct target of the auxin response factor MONOPTEROS in theArabidopsisembryo
Development (Cambridge), 2009, 136, 1643-1651
2.0168Citations (PDF)
121Auxin enters the matrix—assembly of response machineries for specific outputs4.469Citations (PDF)
122SnapShot: Auxin Signaling and Transport
Cell, 2009, 136, 1172-1172.e1
23.851Citations (PDF)
123Cytokinins Act Directly on Lateral Root Founder Cells to Inhibit Root Initiation
Plant Cell, 2008, 19, 3889-3900
5.8558Citations (PDF)
124Antagonistic Regulation of PIN Phosphorylation by PP2A and PINOID Directs Auxin Flux
Cell, 2007, 130, 1044-1056
23.8649Citations (PDF)
125AXL and AXR1 have redundant functions in RUB conjugation and growth and development in Arabidopsis
Plant Journal, 2007, 52, 114-123
4.070Citations (PDF)
126Auxin Triggers Transient Local Signaling for Cell Specification in Arabidopsis Embryogenesis
Developmental Cell, 2006, 10, 265-270
5.4328Citations (PDF)
127Apical–basal polarity: why plant cells don't standon their heads
Trends in Plant Science, 2006, 11, 12-14
8.937Citations (PDF)
128Developmental specificity of auxin response by pairs of ARF and Aux/IAA transcriptional regulators
EMBO Journal, 2005, 24, 1874-1885
5.2402Citations (PDF)
129Auxin and embryo axis formation: the ends in sight?4.4109Citations (PDF)
130Maintenance of Embryonic Auxin Distribution for Apical-Basal Patterning by PIN-FORMED–Dependent Auxin Transport in Arabidopsis
Plant Cell, 2005, 17, 2517-2526
5.8144Citations (PDF)
131Plant Development Is Regulated by a Family of Auxin Receptor F Box Proteins
Developmental Cell, 2005, 9, 109-119
5.4941Citations (PDF)
132A PINOID-Dependent Binary Switch in Apical-Basal PIN Polar Targeting Directs Auxin Efflux
Science, 2004, 306, 862-865
26.5753Citations (PDF)
133Funneling auxin action: specificity in signal transduction4.472Citations (PDF)
134Mis-expression of the CLV3/ESR-like gene CLE19 in Arabidopsis leads to a consumption of root meristem
Gene, 2004, 327, 37-49
1.6111Citations (PDF)
135Second hand smoke stimulates tumor angiogenesis and growth
Cancer Cell, 2003, 4, 191-196
28.7126Citations (PDF)
136Efflux-dependent auxin gradients establish the apical–basal axis of Arabidopsis
Nature, 2003, 426, 147-153
31.31,833Citations (PDF)
137Diphtheria Toxin-Mediated Cell Ablation Reveals Interregional Communication during Arabidopsis Seed Development
Plant Physiology, 2003, 133, 1882-1892
4.0126Citations (PDF)
138Early paternal gene activity in Arabidopsis
Nature, 2001, 414, 709-710
31.3115Citations (PDF)
139The PINOID protein kinase regulates organ development inArabidopsisby enhancing polar auxin transport
Development (Cambridge), 2001, 128, 4057-4067
2.0417Citations (PDF)
140AnArabidopsisMinute-like phenotype caused by a semi-dominant mutation in aRIBOSOMAL PROTEIN S5gene
Development (Cambridge), 2001, 128, 4289-4299
2.0299Citations (PDF)
141Origin and evolution of the nuclear auxin response system
ELife, 0, 7,
1.0293Citations (PDF)
142Masters of perception: phosphorylation‐dependent signaling in plants
New Phytologist, 0, 250, 89-94
5.31Citations (PDF)
143Diversification of functional requirements for proteolysis of auxin response factors11.03Citations (PDF)
144Convergent paths to multicellular complexity in photosynthetic eukaryotes
Current Biology, 0, 36, R668-R676
2.50Citations (PDF)
145The origin and evolution of auxin as a plant signaling molecule
Current Biology, 0, 36, R545-R552
2.51Citations (PDF)
146Auxin signaling
Cell, 0, 189, 4531-4547
23.81Citations (PDF)