Induction of pre-infection thread structures in the leguminous host plant by mitogenic lipo-oligosaccharides of Rhizobium.

PubWeight™: 2.39‹?› | Rank: Top 2%

🔗 View Article (PMID 17800714)

Published in Science on July 03, 1992

Authors

A A van Brussel, R Bakhuizen, P C van Spronsen, H P Spaink, T Tak, B J Lugtenberg, J W Kijne

Articles citing this

Four genes of Medicago truncatula controlling components of a nod factor transduction pathway. Plant Cell (2000) 3.58

Rhizobium symbiosis: nod factors in perspective. Plant Cell (1996) 3.42

Molecular basis of symbiotic promiscuity. Microbiol Mol Biol Rev (2000) 3.39

The Rhizobium-plant symbiosis. Microbiol Rev (1995) 3.29

Infection and invasion of roots by symbiotic, nitrogen-fixing rhizobia during nodulation of temperate legumes. Microbiol Mol Biol Rev (2004) 3.14

Rhizobium meliloti lipooligosaccharide nodulation factors: different structural requirements for bacterial entry into target root hair cells and induction of plant symbiotic developmental responses. Plant Cell (1994) 3.08

Succinoglycan is required for initiation and elongation of infection threads during nodulation of alfalfa by Rhizobium meliloti. J Bacteriol (1998) 3.08

Use of green fluorescent protein to visualize the early events of symbiosis between Rhizobium meliloti and alfalfa (Medicago sativa). J Bacteriol (1996) 2.71

Transient induction of a peroxidase gene in Medicago truncatula precedes infection by Rhizobium meliloti. Plant Cell (1995) 1.98

Medicago truncatula NIN is essential for rhizobial-independent nodule organogenesis induced by autoactive calcium/calmodulin-dependent protein kinase. Plant Physiol (2007) 1.96

Arbuscular mycorrhizal fungi elicit a novel intracellular apparatus in Medicago truncatula root epidermal cells before infection. Plant Cell (2005) 1.88

Dissection of nodulation signaling using pea mutants defective for calcium spiking induced by nod factors and chitin oligomers. Proc Natl Acad Sci U S A (2000) 1.81

How many peas in a pod? Legume genes responsible for mutualistic symbioses underground. Plant Cell Physiol (2010) 1.74

The root hair "infectome" of Medicago truncatula uncovers changes in cell cycle genes and reveals a requirement for Auxin signaling in rhizobial infection. Plant Cell (2014) 1.72

Keys to symbiotic harmony. J Bacteriol (2000) 1.67

The NodC protein of Azorhizobium caulinodans is an N-acetylglucosaminyltransferase. Proc Natl Acad Sci U S A (1994) 1.64

CYCLOPS, a mediator of symbiotic intracellular accommodation. Proc Natl Acad Sci U S A (2008) 1.58

CLE peptides control Medicago truncatula nodulation locally and systemically. Plant Physiol (2010) 1.52

Three unusual modifications, a D-arabinosyl, an N-methyl, and a carbamoyl group, are present on the Nod factors of Azorhizobium caulinodans strain ORS571. Proc Natl Acad Sci U S A (1993) 1.50

Prepenetration apparatus assembly precedes and predicts the colonization patterns of arbuscular mycorrhizal fungi within the root cortex of both Medicago truncatula and Daucus carota. Plant Cell (2008) 1.43

Rearrangement of actin microfilaments in plant root hairs responding to rhizobium etli nodulation signals Plant Physiol (1998) 1.42

Rhizobium nod factor perception and signalling. Plant Cell (2002) 1.34

Functional adaptation of a plant receptor-kinase paved the way for the evolution of intracellular root symbioses with bacteria. PLoS Biol (2008) 1.26

Legume nodulation and mycorrhizae formation; two extremes in host specificity meet. EMBO J (1999) 1.24

NENA, a Lotus japonicus homolog of Sec13, is required for rhizodermal infection by arbuscular mycorrhiza fungi and rhizobia but dispensable for cortical endosymbiotic development. Plant Cell (2010) 1.19

Legume pectate lyase required for root infection by rhizobia. Proc Natl Acad Sci U S A (2011) 1.18

Nitrogen fixation in eukaryotes--new models for symbiosis. BMC Evol Biol (2007) 1.16

nip, a symbiotic Medicago truncatula mutant that forms root nodules with aberrant infection threads and plant defense-like response. Plant Physiol (2004) 1.16

Mechanism of infection thread elongation in root hairs of Medicago truncatula and dynamic interplay with associated rhizobial colonization. Plant Physiol (2008) 1.14

Nod factor-induced root hair curling: continuous polar growth towards the point of nod factor application. Plant Physiol (2003) 1.12

alpha-Galactoside uptake in Rhizobium meliloti: isolation and characterization of agpA, a gene encoding a periplasmic binding protein required for melibiose and raffinose utilization. J Bacteriol (1998) 1.06

Second site mutations specifically suppress the Fix- phenotype of Rhizobium meliloti ndvF mutations on alfalfa: identification of a conditional ndvF-dependent mucoid colony phenotype. Genetics (1994) 1.05

Medicago truncatula ERN transcription factors: regulatory interplay with NSP1/NSP2 GRAS factors and expression dynamics throughout rhizobial infection. Plant Physiol (2012) 1.04

An important developmental role for oligosaccharides during early embryogenesis of cyprinid fish. Proc Natl Acad Sci U S A (1997) 1.03

The RPG gene of Medicago truncatula controls Rhizobium-directed polar growth during infection. Proc Natl Acad Sci U S A (2008) 0.99

The Rhizobium meliloti regulatory nodD3 and syrM genes control the synthesis of a particular class of nodulation factors N-acylated by (omega-1)-hydroxylated fatty acids. EMBO J (1994) 0.99

Activation of the cell cycle machinery and the isoflavonoid biosynthesis pathway by active Rhizobium meliloti Nod signal molecules in Medicago microcallus suspensions. EMBO J (1994) 0.98

Invasion of Lotus japonicus root hairless 1 by Mesorhizobium loti involves the nodulation factor-dependent induction of root hairs. Plant Physiol (2005) 0.98

Homogalacturonan-modifying enzymes: structure, expression, and roles in plants. J Exp Bot (2014) 0.98

Extracellular glycanases of Rhizobium leguminosarum are activated on the cell surface by an exopolysaccharide-related component. J Bacteriol (2000) 0.96

Nuclear calcium signaling in plants. Plant Physiol (2013) 0.91

The diversity of actinorhizal symbiosis. Protoplasma (2012) 0.91

Architecture of infection thread networks in developing root nodules induced by the symbiotic bacterium Sinorhizobium meliloti on Medicago truncatula. Plant Physiol (2005) 0.90

Serine residue 45 of nodulation protein NodF from Rhizobium leguminosarum bv. viciae is essential for its biological function. J Bacteriol (1994) 0.87

Modulation of development, growth dynamics, wall crystallinity, and infection sites in white clover root hairs by membrane chitolipooligosaccharides from Rhizobium leguminosarum biovar trifolii. J Bacteriol (1996) 0.85

The key Sinorhizobium meliloti succinoglycan biosynthesis gene exoY is expressed from two promoters. FEMS Microbiol Lett (2004) 0.85

How membranes shape plant symbioses: signaling and transport in nodulation and arbuscular mycorrhiza. Front Plant Sci (2012) 0.85

The role of the cell wall compartment in mutualistic symbioses of plants. Front Plant Sci (2014) 0.84

Nuclei in motion: movement and positioning of plant nuclei in development, signaling, symbiosis, and disease. Front Plant Sci (2014) 0.83

Reproducible hairy root transformation and spot-inoculation methods to study root symbioses of pea. Plant Methods (2011) 0.83

Cloning of an Azorhizobium caulinodans endoglucanase gene and analysis of its role in symbiosis. Appl Environ Microbiol (1995) 0.82

Nodule-inducing activity of synthetic Sinorhizobium meliloti nodulation factors and related lipo-chitooligosaccharides on alfalfa. Importance of the acyl chain structure. Plant Physiol (1999) 0.82

Comparison of the nodule vs. root transcriptome of the actinorhizal plant Datisca glomerata: actinorhizal nodules contain a specific class of defensins. PLoS One (2013) 0.82

Root Lectins and Rhizobia. Plant Physiol (1997) 0.79

Lotus japonicus SUNERGOS1 encodes a predicted subunit A of a DNA topoisomerase VI that is required for nodule differentiation and accommodation of rhizobial infection. Plant J (2014) 0.79

Microtubule array formation during root hair infection thread initiation and elongation in the Mesorhizobium-Lotus symbiosis. Protoplasma (2014) 0.76

Articles by these authors

A novel highly unsaturated fatty acid moiety of lipo-oligosaccharide signals determines host specificity of Rhizobium. Nature (1991) 4.46

Promoters in the nodulation region of the Rhizobium leguminosarum Sym plasmid pRL1JI. Plant Mol Biol (1987) 4.13

Green fluorescent protein as a marker for Pseudomonas spp. Appl Environ Microbiol (1997) 3.77

Infection-blocking genes of a symbiotic Rhizobium leguminosarum strain that are involved in temperature-dependent protein secretion. Mol Plant Microbe Interact (2003) 2.85

Induction of the nodA promoter of Rhizobium leguminosarum Sym plasmid pRL1JI by plant flavanones and flavones. J Bacteriol (1987) 2.77

Molecular basis of plant growth promotion and biocontrol by rhizobacteria. Curr Opin Plant Biol (2001) 2.59

Role of plant root exudate and Sym plasmid-localized nodulation genes in the synthesis by Rhizobium leguminosarum of Tsr factor, which causes thick and short roots on common vetch. J Bacteriol (1986) 2.34

Conjugation deficient E. coli K12 F- mutants with heptose-less lipopolysaccharide. Mol Gen Genet (1976) 2.22

Auxin transport inhibition precedes root nodule formation in white clover roots and is regulated by flavonoids and derivatives of chitin oligosaccharides. Plant J (1998) 2.20

Gnotobiotic system for studying rhizosphere colonization by plant growth-promoting Pseudomonas bacteria. Mol Plant Microbe Interact (1996) 2.16

A novel jasmonate- and elicitor-responsive element in the periwinkle secondary metabolite biosynthetic gene Str interacts with a jasmonate- and elicitor-inducible AP2-domain transcription factor, ORCA2. EMBO J (1999) 2.10

A 2-O-methylfucose moiety is present in the lipo-oligosaccharide nodulation signal of Bradyrhizobium japonicum. Proc Natl Acad Sci U S A (1992) 2.09

Use of Bioluminescence Markers To Detect Pseudomonas spp. in the Rhizosphere. Appl Environ Microbiol (1991) 2.06

Involvement of both cellulose fibrils and a Ca2+-dependent adhesin in the attachment of Rhizobium leguminosarum to pea root hair tips. J Bacteriol (1987) 1.93

Isolation and characterization of mutants of Rhizobium leguminosarum bv. viciae 248 with altered lipopolysaccharides: possible role of surface charge or hydrophobicity in bacterial release from the infection thread. J Bacteriol (1989) 1.82

Bacteriocin small of Rhizobium leguminosarum belongs to the class of N-acyl-L-homoserine lactone molecules, known as autoinducers and as quorum sensing co-transcription factors. J Bacteriol (1996) 1.79

Single-molecule imaging of l-type Ca(2+) channels in live cells. Biophys J (2001) 1.72

Lipo-oligosaccharides of Rhizobium induce infection-related early nodulin gene expression in pea root hairs. Plant J (1993) 1.71

Regulation of nodulation gene expression by NodD in rhizobia. J Bacteriol (1992) 1.66

Rhizobium meliloti host range nodH gene determines production of an alfalfa-specific extracellular signal. J Bacteriol (1988) 1.57

Flocculence of Saccharomyces cerevisiae cells is induced by nutrient limitation, with cell surface hydrophobicity as a major determinant. Appl Environ Microbiol (1992) 1.57

Structural identification of metabolites produced by the NodB and NodC proteins of Rhizobium leguminosarum. Mol Microbiol (1994) 1.54

Detection and separation of Rhizobium and Bradyrhizobium Nod metabolites using thin-layer chromatography. Mol Plant Microbe Interact (1992) 1.53

The molecular basis of infection and nodulation by rhizobia: the ins and outs of sympathogenesis. Annu Rev Phytopathol (1995) 1.53

Simultaneous imaging of Pseudomonas fluorescens WCS365 populations expressing three different autofluorescent proteins in the rhizosphere: new perspectives for studying microbial communities. Mol Plant Microbe Interact (2000) 1.51

Subcellular localization of the nodD gene product in Rhizobium leguminosarum. J Bacteriol (1989) 1.49

Correlation between extracellular fibrils and attachment of Rhizobium leguminosarum to pea root hair tips. J Bacteriol (1986) 1.44

The structures and biological activities of the lipo-oligosaccharide nodulation signals produced by type I and II strains of Bradyrhizobium japonicum. J Biol Chem (1993) 1.42

ORCAnization of jasmonate-responsive gene expression in alkaloid metabolism. Trends Plant Sci (2001) 1.40

Platelet activation in patients with mitral valve prolapse. Can J Cardiol (1989) 1.39

In vivo plasma membrane organization: results of biophysical approaches. Biochim Biophys Acta (2004) 1.39

Selection of a plant-bacterium pair as a novel tool for rhizostimulation of polycyclic aromatic hydrocarbon-degrading bacteria. Mol Plant Microbe Interact (2001) 1.38

Immunological characterization of Rhizobium leguminosarum outer membrane antigens by use of polyclonal and monoclonal antibodies. J Bacteriol (1989) 1.38

Root colonization by phenazine-1-carboxamide-producing bacterium Pseudomonas chlororaphis PCL1391 is essential for biocontrol of tomato foot and root rot. Mol Plant Microbe Interact (2000) 1.38

Binding of pea lectins to a glycan type polysaccharide in the cell walls of Rhizobium leguminosarum. FEBS Lett (1977) 1.36

Structural identification of the lipo-chitin oligosaccharide nodulation signals of Rhizobium loti. Mol Microbiol (1995) 1.34

Recognition of individual strains of fast-growing rhizobia by using profiles of membrane proteins and lipopolysaccharides. J Bacteriol (1988) 1.33

Inoculation of Vicia sativa subsp. nigra roots with Rhizobium leguminosarum biovar viciae results in release of nod gene activating flavanones and chalcones. Plant Mol Biol (1991) 1.33

Roles of flagella, lipopolysaccharide, and a Ca2+-dependent cell surface protein in attachment of Rhizobium leguminosarum biovar viciae to pea root hair tips. J Bacteriol (1989) 1.32

Nodulation protein NodL of Rhizobium leguminosarum O-acetylates lipo-oligosaccharides, chitin fragments and N-acetylglucosamine in vitro. Mol Microbiol (1994) 1.31

Lectin-enhanced accumulation of manganese-limited Rhizobium leguminosarum cells on pea root hair tips. J Bacteriol (1988) 1.30

Androgenic switch: an example of plant embryogenesis from the male gametophyte perspective. J Exp Bot (2005) 1.27

Analysis of the major inducers of the Rhizobium nodA promoter from Vicia sativa root exudate and their activity with different nodD genes. Plant Mol Biol (1989) 1.27

Cell wall degradation during infection thread formation by the root nodule bacterium Rhizobium leguminosarum is a two-step process. Eur J Cell Biol (1994) 1.26

Introduction of the phzH gene of Pseudomonas chlororaphis PCL1391 extends the range of biocontrol ability of phenazine-1-carboxylic acid-producing Pseudomonas spp. strains. Mol Plant Microbe Interact (2001) 1.26

Molecular mechanisms of attachment of Rhizobium bacteria to plant roots. Mol Microbiol (1992) 1.26

Flavonoids induce Rhizobium leguminosarum to produce nodDABC gene-related factors that cause thick, short roots and root hair responses on common vetch. J Bacteriol (1987) 1.26

Purification and partial characterization of the Rhizobium leguminosarum biovar viciae Ca2+-dependent adhesin, which mediates the first step in attachment of cells of the family Rhizobiaceae to plant root hair tips. J Bacteriol (1989) 1.25

Symbiotic properties of rhizobia containing a flavonoid-independent hybrid nodD product. J Bacteriol (1989) 1.22

A Rhizobium leguminosarum biovar trifolii locus not localized on the sym plasmid hinders effective nodulation on plants of the pea cross-inoculation group. Mol Plant Microbe Interact (1997) 1.22

Genetic analysis and cellular localization of the Rhizobium host specificity-determining NodE protein. EMBO J (1989) 1.22

A site-specific recombinase is required for competitive root colonization by Pseudomonas fluorescens WCS365. Proc Natl Acad Sci U S A (1998) 1.20

Accumulation of a nod gene inducer, the flavonoid naringenin, in the cytoplasmic membrane of Rhizobium leguminosarum biovar viciae is caused by the pH-dependent hydrophobicity of naringenin. J Bacteriol (1989) 1.20

Phenazine-1-carboxamide production in the biocontrol strain Pseudomonas chlororaphis PCL1391 is regulated by multiple factors secreted into the growth medium. Mol Plant Microbe Interact (2001) 1.18

Role of the O-antigen of lipopolysaccharide, and possible roles of growth rate and of NADH:ubiquinone oxidoreductase (nuo) in competitive tomato root-tip colonization by Pseudomonas fluorescens WCS365. Mol Plant Microbe Interact (1998) 1.18

A two-component system plays an important role in the root-colonizing ability of Pseudomonas fluorescens strain WCS365. Mol Plant Microbe Interact (1998) 1.18

Suppression of nodulation gene expression in bacteroids of Rhizobium leguminosarum biovar viciae. J Bacteriol (1991) 1.17

Isolation of the Rhizobium leguminosarum NodF nodulation protein: NodF carries a 4'-phosphopantetheine prosthetic group. J Bacteriol (1991) 1.16

Rhizobium leguminosarum exoB mutants are deficient in the synthesis of UDP-glucose 4'-epimerase. J Biol Chem (1990) 1.16

Use of green fluorescent protein color variants expressed on stable broad-host-range vectors to visualize rhizobia interacting with plants. Mol Plant Microbe Interact (2000) 1.13

Cloning and characterization of four genes of Rhizobium leguminosarum bv. trifolii involved in exopolysaccharide production and nodulation. Mol Plant Microbe Interact (1997) 1.11

Genes and signal molecules involved in the rhizobia-leguminoseae symbiosis. Curr Opin Plant Biol (1998) 1.11

The sss colonization gene of the tomato-Fusarium oxysporum f. sp. radicis-lycopersici biocontrol strain Pseudomonas fluorescens WCS365 can improve root colonization of other wild-type pseudomonas spp.bacteria. Mol Plant Microbe Interact (2000) 1.09

Cell biological changes of outer cortical root cells in early determinate nodulation. Mol Plant Microbe Interact (2001) 1.08

Increased uptake of putrescine in the rhizosphere inhibits competitive root colonization by Pseudomonas fluorescens strain WCS365. Mol Plant Microbe Interact (2001) 1.08

nodO, a new nod gene of the Rhizobium leguminosarum biovar viciae sym plasmid pRL1JI, encodes a secreted protein. J Bacteriol (1989) 1.08

B-type granule containing protrusions and interconnections between amyloplasts in developing wheat endosperm revealed by transmission electron microscopy and GFP expression. J Exp Bot (2000) 1.07

Purification and partial characterization of a flocculin from brewer's yeast. Appl Environ Microbiol (1994) 1.06

Nitrogen fixation by Rhizobium sp. 32H1. A morphological and ultrastructural comparison of asymbiotic and symbiotic nitrogen-fixing forms. Can J Microbiol (1979) 1.06

A biovar-specific signal of Rhizobium leguminosarum bv. viciae induces increased nodulation gene-inducing activity in root exudate of Vicia sativa subsp. nigra. J Bacteriol (1990) 1.05