| 1 | The role of indole‐3‐acetic acid and characterization of PIN transporters in complex streptophyte alga Chara braunii | 5.3 | 10 | Citations (PDF) |
| 2 | The 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 | 2.5 | 3 | Citations (PDF) |
| 3 | A conserved ARF–DNA interface underlies auxin-triggered transcriptional response | 5.3 | 22 | Citations (PDF) |
| 4 | Diversification of DIX domain-containing proteins in the SAR supergroup | 3.1 | 3 | Citations (PDF) |
| 5 | Auxin and tryptophan trigger common responses in the streptophyte alga Penium margaritaceum | 2.5 | 16 | Citations (PDF) |
| 6 | ARF degradation defines a deeply conserved step in auxin response | 8.0 | 14 | Citations (PDF) |
| 7 | CarboTag: a modular approach for live and functional imaging of plant cell walls | 13.6 | 28 | Citations (PDF) |
| 8 | RAF-like protein kinases mediate a deeply conserved, rapid auxin responseCell, 2024, 187, 130-148.e17 | 23.8 | 101 | Citations (PDF) |
| 9 | The maternal embrace: the protection of plant embryos | 3.8 | 9 | Citations (PDF) |
| 10 | Protein degradation in auxin response | 5.8 | 30 | Citations (PDF) |
| 11 | CDC48A, an interactor of WOX2, is required for embryonic patterning in Arabidopsis thaliana | 3.2 | 6 | Citations (PDF) |
| 12 | Focus on proteolysis | 5.8 | 2 | Citations (PDF) |
| 13 | Quantitative imaging reveals the role of MpARF proteasomal degradation during gemma germination | 7.4 | 19 | Citations (PDF) |
| 14 | Guidelines for naming and studying plasma membrane domains in plants | 8.0 | 48 | Citations (PDF) |
| 15 | Distribution of specific prokaryotic immune systems correlates with host optimal growth temperature | 1.4 | 8 | Citations (PDF) |
| 16 | Analysis of auxin responses in the fern Ceratopteris richardii identifies the developmental phase as a major determinant for response properties | 2.0 | 23 | Citations (PDF) |
| 17 | Polar targeting of proteins – a green perspective | 1.8 | 5 | Citations (PDF) |
| 18 | The peri-germ cell membrane: poorly characterized but key interface for plant reproduction | 8.0 | 24 | Citations (PDF) |
| 19 | Evolutionary origins and functional diversification of Auxin Response Factors | 11.0 | 47 | Citations (PDF) |
| 20 | An actin remodeling role for
Arabidopsis
processing bodies revealed by their proximity interactome | 5.2 | 47 | Citations (PDF) |
| 21 | The birth of a giant: evolutionary insights into the origin of auxin responses in plants | 5.2 | 89 | Citations (PDF) |
| 22 | Cooperative action of separate interaction domains promotes high-affinity DNA binding of
Arabidopsis thaliana
ARF transcription factors | 5.3 | 28 | Citations (PDF) |
| 23 | To bind or not to bind: how AUXIN RESPONSE FACTORs select their target genes | 3.8 | 37 | Citations (PDF) |
| 24 | An elastic proteinaceous envelope encapsulates the early Arabidopsis embryo | 2.0 | 5 | Citations (PDF) |
| 25 | Dolf Weijers | 2.5 | 0 | Citations (PDF) |
| 26 | Electroporation‐based delivery of proteins in Penium margaritaceum and other zygnematophycean algae | 2.2 | 8 | Citations (PDF) |
| 27 | Pole position: How plant cells polarize along the axes | 5.8 | 50 | Citations (PDF) |
| 28 | A rich and bountiful harvest: Key discoveries in plant cell biology | 5.8 | 13 | Citations (PDF) |
| 29 | Probing DNA ‐ Transcription Factor Interactions Using Single‐Molecule Fluorescence Detection in Nanofluidic Devices | 1.6 | 7 | Citations (PDF) |
| 30 | Plant transcription factors — being in the right place with the right company | 4.4 | 226 | Citations (PDF) |
| 31 | Back to the roots: A focus on plant cell biology | 5.8 | 1 | Citations (PDF) |
| 32 | Highly Specific Protein Identification by Immunoprecipitation–Mass Spectrometry Using Antifouling Microbeads | 5.5 | 14 | Citations (PDF) |
| 33 | Quantitative analysis of 3D cellular geometry and modelling of the Arabidopsis embryo | 1.1 | 1 | Citations (PDF) |
| 34 | Deep origin and gradual evolution of transporting tissues: Perspectives from across the land plants | 4.0 | 48 | Citations (PDF) |
| 35 | ABP1–TMK auxin perception for global phosphorylation and auxin canalization | 31.3 | 180 | Citations (PDF) |
| 36 | Conserved, divergent and heterochronic gene expression during Brachypodium and Arabidopsis embryo development | 1.4 | 37 | Citations (PDF) |
| 37 | Two-Component Nanoparticle Vaccine Displaying Glycosylated Spike S1 Domain Induces Neutralizing Antibody Response against SARS-CoV-2 Variants | 3.1 | 41 | Citations (PDF) |
| 38 | Auxin-dependent control of cytoskeleton and cell shape regulates division orientation in the Arabidopsis embryo | 2.5 | 55 | Citations (PDF) |
| 39 | Cell surface and intracellular auxin signalling for H+ fluxes in root growth | 31.3 | 264 | Citations (PDF) |
| 40 | Plant cell polarity as the nexus of tissue mechanics and morphogenesis | 8.0 | 42 | Citations (PDF) |
| 41 | Rice microtubule‐associated protein IQ67‐DOMAIN14 regulates grain shape by modulating microtubule cytoskeleton dynamics | 6.5 | 70 | Citations (PDF) |
| 42 | Evolution of vascular plants through redeployment of ancient developmental regulators | 5.3 | 31 | Citations (PDF) |
| 43 | A PXY-Mediated Transcriptional Network Integrates Signaling Mechanisms to Control Vascular Development in Arabidopsis | 5.8 | 158 | Citations (PDF) |
| 44 | Complete microviscosity maps of living plant cells and tissues with a toolbox of targeting mechanoprobes | 5.3 | 96 | Citations (PDF) |
| 45 | Architecture of DNA elements mediating ARF transcription factor binding and auxin-responsive gene expression in
Arabidopsis | 5.3 | 126 | Citations (PDF) |
| 46 | Design principles of a minimal auxin response system | 8.0 | 127 | Citations (PDF) |
| 47 | Suspensor-derived somatic embryogenesis in Arabidopsis | 2.0 | 16 | Citations (PDF) |
| 48 | Specification and regulation of vascular tissue identity in the Arabidopsis embryo | 2.0 | 32 | Citations (PDF) |
| 49 | Anthoceros genomes illuminate the origin of land plants and the unique biology of hornworts | 8.0 | 359 | Citations (PDF) |
| 50 | Deep Evolutionary History of the Phox and Bem1 (PB1) Domain Across Eukaryotes | 2.7 | 23 | Citations (PDF) |
| 51 | DIX Domain Polymerization Drives Assembly of Plant Cell Polarity ComplexesCell, 2020, 180, 427-439.e12 | 23.8 | 82 | Citations (PDF) |
| 52 | Evolution of Plant Hormone Response Pathways | 14.3 | 275 | Citations (PDF) |
| 53 | High-resolution and Deep Phylogenetic Reconstruction of Ancestral States from Large Transcriptomic Data Sets | 0.2 | 5 | Citations (PDF) |
| 54 | The Transcriptional Landscape of Polyploid Wheats and Their Diploid Ancestors during Embryogenesis and Grain Development | 5.8 | 100 | Citations (PDF) |
| 55 | Evolution, Initiation, and Diversity in Early Plant Embryogenesis | 5.4 | 54 | Citations (PDF) |
| 56 | A SOSEKI-based coordinate system interprets global polarity cues in Arabidopsis | 8.0 | 103 | Citations (PDF) |
| 57 | A Robust Auxin Response Network Controls Embryo and Suspensor Development through a Basic Helix Loop Helix Transcriptional Module | 5.8 | 54 | Citations (PDF) |
| 58 | Regulation of intercellular TARGET OF MONOPTEROS 7 protein transport in the
Arabidopsis
root | 2.0 | 27 | Citations (PDF) |
| 59 | Auxin: small molecule, big impact | 3.8 | 88 | Citations (PDF) |
| 60 | Diversity of cis-regulatory elements associated with auxin response in Arabidopsis thaliana | 3.8 | 59 | Citations (PDF) |
| 61 | Auxin Response Factors: output control in auxin biology | 3.8 | 248 | Citations (PDF) |
| 62 | Evolution of nuclear auxin signaling: lessons from genetic studies with basal land plants | 3.8 | 69 | Citations (PDF) |
| 63 | A Plausible Microtubule-Based Mechanism for Cell Division Orientation in Plant Embryogenesis | 2.5 | 83 | Citations (PDF) |
| 64 | Adapting INTACT to analyse cell-type-specific transcriptomes and nucleocytoplasmic mRNA dynamics in the Arabidopsis embryo | 1.4 | 20 | Citations (PDF) |
| 65 | RIMA-Dependent Nuclear Accumulation of IYO Triggers Auxin-Irreversible Cell Differentiation in Arabidopsis | 5.8 | 29 | Citations (PDF) |
| 66 | Auxin response cell-autonomously controls ground tissue initiation in the early
Arabidopsis
embryo | 5.3 | 88 | Citations (PDF) |
| 67 | The developmental and environmental regulation of gravitropic setpoint angle in Arabidopsis and bean | 2.7 | 58 | Citations (PDF) |
| 68 | Boosting LPMO-driven lignocellulose degradation by polyphenol oxidase-activated lignin building blocks | 6.4 | 102 | Citations (PDF) |
| 69 | Framework for gradual progression of cell ontogeny in the
Arabidopsis
root meristem | 5.3 | 52 | Citations (PDF) |
| 70 | Predicting gene regulatory networks by combining spatial and temporal gene expression data in
Arabidopsis
root stem cells | 5.3 | 104 | Citations (PDF) |
| 71 | Multiple PPR protein interactions are involved in the RNA editing system in
Arabidopsis
mitochondria and plastids | 5.3 | 117 | Citations (PDF) |
| 72 | Transcriptome dynamics revealed by a gene expression atlas of the early Arabidopsis embryo | 8.0 | 84 | Citations (PDF) |
| 73 | Theoretical approaches to understanding root vascular patterning: a consensus between recent models | 3.8 | 37 | Citations (PDF) |
| 74 | The anaphase‐promoting complex initiates zygote division in Arabidopsis through degradation of cyclin B1 | 4.0 | 57 | Citations (PDF) |
| 75 | Auxin responsiveness of the MONOPTEROS‐BODENLOS module in primary root initiation critically depends on the nuclear import kinetics of the Aux/IAA inhibitor BODENLOS | 4.0 | 29 | Citations (PDF) |
| 76 | Phyllotaxis: A Matthew Effect in Auxin Action | 2.5 | 2 | Citations (PDF) |
| 77 | Molecular characterization of Arabidopsis GAL4/UAS enhancer trap lines identifies novel cell type-specific promoters | 4.0 | 23 | Citations (PDF) |
| 78 | Tissue and Organ Initiation in the Plant Embryo: A First Time for Everything | 6.4 | 85 | Citations (PDF) |
| 79 | Quiescent center initiation in the Arabidopsis lateral root primordia is dependent on the SCARECROW transcription factor | 2.0 | 67 | Citations (PDF) |
| 80 | Q&A: Auxin: the plant molecule that influences almost anything | 3.0 | 133 | Citations (PDF) |
| 81 | A noncanonical auxin-sensing mechanism is required for organ morphogenesis in
Arabidopsis | 2.9 | 165 | Citations (PDF) |
| 82 | Plant Organogenesis: Rules of Order | 2.5 | 7 | Citations (PDF) |
| 83 | Transcriptional Responses to the Auxin Hormone | 14.3 | 548 | Citations (PDF) |
| 84 | Centering the Organizing Center in the Arabidopsis thaliana Shoot Apical Meristem by a Combination of Cytokinin Signaling and Self-Organization | 1.5 | 32 | Citations (PDF) |
| 85 | Organizer-Derived WOX5 Signal Maintains Root Columella Stem Cells through Chromatin-Mediated Repression of CDF4 Expression | 5.4 | 391 | Citations (PDF) |
| 86 | Reporters for sensitive and quantitative measurement of auxin response | 13.6 | 489 | Citations (PDF) |
| 87 | Plant embryogenesis requires AUX/LAX-mediated auxin influx | 2.0 | 101 | Citations (PDF) |
| 88 | Building a plant: cell fate specification in the early Arabidopsis embryo | 2.0 | 209 | Citations (PDF) |
| 89 | The role of auxin signaling in early embryo pattern formation | 4.4 | 79 | Citations (PDF) |
| 90 | Cytokinin response factors regulate PIN-FORMED auxin transporters | 11.0 | 142 | Citations (PDF) |
| 91 | A set of domain-specific markers in the Arabidopsis embryo | 1.4 | 17 | Citations (PDF) |
| 92 | A bHLH-Based Feedback Loop Restricts Vascular Cell Proliferation in Plants | 5.4 | 125 | Citations (PDF) |
| 93 | Control of oriented cell division in the Arabidopsis embryo | 4.4 | 13 | Citations (PDF) |
| 94 | Plant vascular development: from early specification to differentiation | 68.4 | 265 | Citations (PDF) |
| 95 | Omics and modelling approaches for understanding regulation of asymmetric cell divisions in arabidopsis and other angiosperm plants | 2.1 | 42 | Citations (PDF) |
| 96 | Prenatal plumbing—vascular tissue formation in the plant embryo | 2.2 | 23 | Citations (PDF) |
| 97 | Structural Basis for DNA Binding Specificity by the Auxin-Dependent ARF Transcription Factors | 23.8 | 457 | Citations (PDF) |
| 98 | Integration of growth and patterning during vascular tissue formation in
Arabidopsis | 26.5 | 347 | Citations (PDF) |
| 99 | A roadmap to embryo identity in plants | 8.9 | 80 | Citations (PDF) |
| 100 | Genetic Control of Plant Development by Overriding a Geometric Division Rule | 5.4 | 239 | Citations (PDF) |
| 101 | An integrative model of the control of ovule primordia formation | 4.0 | 131 | Citations (PDF) |
| 102 | A bHLH Complex Controls Embryonic Vascular Tissue Establishment and Indeterminate Growth in Arabidopsis | 5.4 | 318 | Citations (PDF) |
| 103 | Transcriptomics approaches in the early Arabidopsis embryo | 8.9 | 48 | Citations (PDF) |
| 104 | The Arabidopsis embryo as a miniature morphogenesis model | 5.3 | 82 | Citations (PDF) |
| 105 | Transcriptional repression of BODENLOS by HD-ZIP transcription factor HB5 in Arabidopsis thaliana | 3.8 | 40 | Citations (PDF) |
| 106 | Auxin Regulation of Embryonic Root Formation | 2.5 | 24 | Citations (PDF) |
| 107 | Control of embryonic meristem initiation in Arabidopsis by PHD-finger protein complexes | 2.0 | 38 | Citations (PDF) |
| 108 | Different Auxin Response Machineries Control Distinct Cell Fates in the Early Plant Embryo | 5.4 | 210 | Citations (PDF) |
| 109 | A cellular expression map of the Arabidopsis
AUXIN RESPONSE FACTOR
gene family | 4.0 | 247 | Citations (PDF) |
| 110 | A Mutually Inhibitory Interaction between Auxin and Cytokinin Specifies Vascular Pattern in Roots | 2.5 | 428 | Citations (PDF) |
| 111 | A Versatile Set of Ligation-Independent Cloning Vectors for Functional Studies in Plants | 4.0 | 145 | Citations (PDF) |
| 112 | The AP-3 adaptor complex is required for vacuolar function in Arabidopsis | 10.2 | 125 | Citations (PDF) |
| 113 | POPCORNFunctions in the Auxin Pathway to Regulate Embryonic Body Plan and Meristem Organization inArabidopsis | 5.8 | 27 | Citations (PDF) |
| 114 | A Novel Aux/IAA28 Signaling Cascade Activates GATA23-Dependent Specification of Lateral Root Founder Cell Identity | 2.5 | 509 | Citations (PDF) |
| 115 | MONOPTEROS controls embryonic root initiation by regulating a mobile transcription factor | 31.3 | 600 | Citations (PDF) |
| 116 | miR390,
Arabidopsis TAS3
tasiRNAs, and Their
AUXIN RESPONSE FACTOR
Targets Define an Autoregulatory Network Quantitatively Regulating Lateral Root Growth | 5.8 | 580 | Citations (PDF) |
| 117 | Bimodular auxin response controls organogenesis in
Arabidopsis | 5.3 | 300 | Citations (PDF) |
| 118 | Cyclophilin 40 is required for microRNA activity in
Arabidopsis | 5.3 | 161 | Citations (PDF) |
| 119 | Auxin Control of Embryo Patterning | 4.6 | 258 | Citations (PDF) |
| 120 | DORNRÖSCHENis a direct target of the auxin response factor MONOPTEROS in theArabidopsisembryo | 2.0 | 168 | Citations (PDF) |
| 121 | Auxin enters the matrix—assembly of response machineries for specific outputs | 4.4 | 69 | Citations (PDF) |
| 122 | SnapShot: Auxin Signaling and TransportCell, 2009, 136, 1172-1172.e1 | 23.8 | 51 | Citations (PDF) |
| 123 | Cytokinins Act Directly on Lateral Root Founder Cells to Inhibit Root Initiation | 5.8 | 558 | Citations (PDF) |
| 124 | Antagonistic Regulation of PIN Phosphorylation by PP2A and PINOID Directs Auxin FluxCell, 2007, 130, 1044-1056 | 23.8 | 649 | Citations (PDF) |
| 125 | AXL and AXR1 have redundant functions in RUB conjugation and growth and development in Arabidopsis | 4.0 | 70 | Citations (PDF) |
| 126 | Auxin Triggers Transient Local Signaling for Cell Specification in Arabidopsis Embryogenesis | 5.4 | 328 | Citations (PDF) |
| 127 | Apical–basal polarity: why plant cells don't standon their heads | 8.9 | 37 | Citations (PDF) |
| 128 | Developmental specificity of auxin response by pairs of ARF and Aux/IAA transcriptional regulators | 5.2 | 402 | Citations (PDF) |
| 129 | Auxin and embryo axis formation: the ends in sight? | 4.4 | 109 | Citations (PDF) |
| 130 | Maintenance of Embryonic Auxin Distribution for Apical-Basal Patterning by PIN-FORMED–Dependent Auxin Transport in Arabidopsis | 5.8 | 144 | Citations (PDF) |
| 131 | Plant Development Is Regulated by a Family of Auxin Receptor F Box Proteins | 5.4 | 941 | Citations (PDF) |
| 132 | A PINOID-Dependent Binary Switch in Apical-Basal PIN Polar Targeting Directs Auxin Efflux | 26.5 | 753 | Citations (PDF) |
| 133 | Funneling auxin action: specificity in signal transduction | 4.4 | 72 | Citations (PDF) |
| 134 | Mis-expression of the CLV3/ESR-like gene CLE19 in Arabidopsis leads to a consumption of root meristem | 1.6 | 111 | Citations (PDF) |
| 135 | Second hand smoke stimulates tumor angiogenesis and growth | 28.7 | 126 | Citations (PDF) |
| 136 | Efflux-dependent auxin gradients establish the apical–basal axis of Arabidopsis | 31.3 | 1,833 | Citations (PDF) |
| 137 | Diphtheria Toxin-Mediated Cell Ablation Reveals Interregional Communication during Arabidopsis Seed Development | 4.0 | 126 | Citations (PDF) |
| 138 | Early paternal gene activity in Arabidopsis | 31.3 | 115 | Citations (PDF) |
| 139 | The PINOID protein kinase regulates organ development inArabidopsisby enhancing polar auxin transport | 2.0 | 417 | Citations (PDF) |
| 140 | AnArabidopsisMinute-like phenotype caused by a semi-dominant mutation in aRIBOSOMAL PROTEIN S5gene | 2.0 | 299 | Citations (PDF) |
| 141 | Origin and evolution of the nuclear auxin response system | 1.0 | 293 | Citations (PDF) |
| 142 | Masters of perception: phosphorylation‐dependent signaling in plants | 5.3 | 1 | Citations (PDF) |
| 143 | Diversification of functional requirements for proteolysis of auxin response factors | 11.0 | 3 | Citations (PDF) |
| 144 | Convergent paths to multicellular complexity in photosynthetic eukaryotes | 2.5 | 0 | Citations (PDF) |
| 145 | The origin and evolution of auxin as a plant signaling molecule | 2.5 | 1 | Citations (PDF) |
| 146 | Auxin signaling | 23.8 | 1 | Citations (PDF) |