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1. Compound ID: 6628
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?%S-6)-+
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cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcpNAc |
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Structure type: oligomer
Trivial name: chitin glycolipid
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_142354,IEDB_151531,IEDB_153212,IEDB_1635956,IEDB_241099,IEDB_241119,IEDB_241120,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 2858
Lerouge P "Symbiotic host specificity between leguminous plants and rhizobia is determined by substituted and acylated glucosamine oligosaccharide signals" -
Glycobiology 4 (1994) 127-134
Rhizobia are nitrogen-fixing bacteria which invade root hairs of leguminous plants and induce, in a specific manner, the formation of root nodules in which they fix nitrogen. The early steps of the symbiosis can be considered as a reciprocal molecular communication between the two partners. Initially, the plant excretes a gene inducer which stimulates the expression of bacterial nodulation genes. These nodulation genes are responsible for the synthesis of extracellular host-specific signals, called nodulation factors. The bacterial nodulation factors were isolated and structurally identified as substituted and N-acylated chitin oligosaccharides. These prokaryotic lipo-oligosaccharide signals play a key role in the symbiosis by controlling the host specificity of the bacteria. They constitute a new class of signalling molecules able to elicit nodule organogenesis in leguminous plants in the absence of bacteria.
symbiosis, nodulation factor, nodule organogenesis, plant-microbe interaction, plant-microbe interactions
NCBI PubMed ID: 8054712Publication DOI: 10.1093/glycob/4.2.127Journal NLM ID: 9104124Publisher: IRL Press at Oxford University Press
Institutions: Centre Régional de Spectroscopie, URA-CNRS 464, Université de Rouen, Mont Saint Aignan, France
Methods: 13C NMR, 1H NMR, methylation, FAB-MS, GC-MS, TLC, GC, CID-MIKE-MS
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2. Compound ID: 6630
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a-L-Fucp-(1-6)-+
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cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcpNAc |
Show graphically |
Structure type: oligomer
Trivial name: chitin glycolipid
Contained glycoepitopes: IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 2858
Lerouge P "Symbiotic host specificity between leguminous plants and rhizobia is determined by substituted and acylated glucosamine oligosaccharide signals" -
Glycobiology 4 (1994) 127-134
Rhizobia are nitrogen-fixing bacteria which invade root hairs of leguminous plants and induce, in a specific manner, the formation of root nodules in which they fix nitrogen. The early steps of the symbiosis can be considered as a reciprocal molecular communication between the two partners. Initially, the plant excretes a gene inducer which stimulates the expression of bacterial nodulation genes. These nodulation genes are responsible for the synthesis of extracellular host-specific signals, called nodulation factors. The bacterial nodulation factors were isolated and structurally identified as substituted and N-acylated chitin oligosaccharides. These prokaryotic lipo-oligosaccharide signals play a key role in the symbiosis by controlling the host specificity of the bacteria. They constitute a new class of signalling molecules able to elicit nodule organogenesis in leguminous plants in the absence of bacteria.
symbiosis, nodulation factor, nodule organogenesis, plant-microbe interaction, plant-microbe interactions
NCBI PubMed ID: 8054712Publication DOI: 10.1093/glycob/4.2.127Journal NLM ID: 9104124Publisher: IRL Press at Oxford University Press
Institutions: Centre Régional de Spectroscopie, URA-CNRS 464, Université de Rouen, Mont Saint Aignan, France
Methods: 13C NMR, 1H NMR, methylation, FAB-MS, GC-MS, TLC, GC, CID-MIKE-MS
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3. Compound ID: 6631
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a-L-Fucp2Me-(1-6)-+
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cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcpNAc |
Show graphically |
Structure type: oligomer
Trivial name: chitin glycolipid
Contained glycoepitopes: IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 2858
Lerouge P "Symbiotic host specificity between leguminous plants and rhizobia is determined by substituted and acylated glucosamine oligosaccharide signals" -
Glycobiology 4 (1994) 127-134
Rhizobia are nitrogen-fixing bacteria which invade root hairs of leguminous plants and induce, in a specific manner, the formation of root nodules in which they fix nitrogen. The early steps of the symbiosis can be considered as a reciprocal molecular communication between the two partners. Initially, the plant excretes a gene inducer which stimulates the expression of bacterial nodulation genes. These nodulation genes are responsible for the synthesis of extracellular host-specific signals, called nodulation factors. The bacterial nodulation factors were isolated and structurally identified as substituted and N-acylated chitin oligosaccharides. These prokaryotic lipo-oligosaccharide signals play a key role in the symbiosis by controlling the host specificity of the bacteria. They constitute a new class of signalling molecules able to elicit nodule organogenesis in leguminous plants in the absence of bacteria.
symbiosis, nodulation factor, nodule organogenesis, plant-microbe interaction, plant-microbe interactions
NCBI PubMed ID: 8054712Publication DOI: 10.1093/glycob/4.2.127Journal NLM ID: 9104124Publisher: IRL Press at Oxford University Press
Institutions: Centre Régional de Spectroscopie, URA-CNRS 464, Université de Rouen, Mont Saint Aignan, France
Methods: 13C NMR, 1H NMR, methylation, FAB-MS, GC-MS, TLC, GC, CID-MIKE-MS
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4. Compound ID: 6763
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a-L-Fucp2Me-(1-6)-+
|
cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcNAc |
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Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 3065
Spaink HP "The molecular basis of the host specificity of the Rhizobium bacteria" -
Antonie van Leeuwenhoek 65 (1994) 81-98
The interaction between soil bacteria belonging to the genera Rhizobium, Bradyrhizobium and Azorhizobium and leguminous plants results in the induction of a new plant organ, the root nodule. After invading these root nodules via infection threads the bacteria start to fix atmospheric nitrogen into ammonia which is beneficial for the host plant. This symbiotic interaction is highly host-specific in that each rhizobial strain is able to associate with only a limited number of host plant species. The subject of this presentation is the molecular mechanism by which the bacterium determines its host-specific characteristics. This mechanism appears to be based on at least two stages of molecular signaling between the bacterium and the plant host. In the first stage, flavonoids secreted by the plant root induce, in a host specific way, the transcription of bacterial genes which are involved in nodulation, the so-called nod genes. This leads to the second step of the signaling system: the production and secretion of lipo-oligosaccharide molecules by the Rhizobium bacteria. These signal molecules, which are acylated forms of small fragments of chitin, have various discernable effects on the roots of the host plants. One of these effects is the dedifferentiation of groups of cells located in the cortex which leads to the formation of nodule meristems. In their mitogenic activity the bacterial signals resemble several well-known plant hormones like auxins and cytokinins. However, there are two major differences: (i) the bacterial signals lead to the induction of a specific organ and (ii) they are host-specific in that only the signals produced by compatible bacteria are able to induce meristems. The nod genes determine this stage of host specificity by their essential role in the biosynthesis of the signal molecules. They appear to encode enzymes which are involved in the processes of fatty acid biosynthesis, fatty acid transfer, chitin synthesis and chitin modification. I will illustrate the statement that the nod gene products are ideal model enzymes for the study of these important processes because they are not needed in the free-living state of the bacteria.
symbiosis, plant-microbe interaction, nodulation genes, signal molecules
NCBI PubMed ID: 7718036Publication DOI: 10.1007/BF00871750Journal NLM ID: 0372625Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Clusius Laboratory, Leiden University, Leiden, The Netherlands
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5. Compound ID: 6764
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a-L-Fucp2Me-(1-6)-+
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cVac-(1-2)-b-D-GlcpN6(%)Ac-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
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Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 3065
Spaink HP "The molecular basis of the host specificity of the Rhizobium bacteria" -
Antonie van Leeuwenhoek 65 (1994) 81-98
The interaction between soil bacteria belonging to the genera Rhizobium, Bradyrhizobium and Azorhizobium and leguminous plants results in the induction of a new plant organ, the root nodule. After invading these root nodules via infection threads the bacteria start to fix atmospheric nitrogen into ammonia which is beneficial for the host plant. This symbiotic interaction is highly host-specific in that each rhizobial strain is able to associate with only a limited number of host plant species. The subject of this presentation is the molecular mechanism by which the bacterium determines its host-specific characteristics. This mechanism appears to be based on at least two stages of molecular signaling between the bacterium and the plant host. In the first stage, flavonoids secreted by the plant root induce, in a host specific way, the transcription of bacterial genes which are involved in nodulation, the so-called nod genes. This leads to the second step of the signaling system: the production and secretion of lipo-oligosaccharide molecules by the Rhizobium bacteria. These signal molecules, which are acylated forms of small fragments of chitin, have various discernable effects on the roots of the host plants. One of these effects is the dedifferentiation of groups of cells located in the cortex which leads to the formation of nodule meristems. In their mitogenic activity the bacterial signals resemble several well-known plant hormones like auxins and cytokinins. However, there are two major differences: (i) the bacterial signals lead to the induction of a specific organ and (ii) they are host-specific in that only the signals produced by compatible bacteria are able to induce meristems. The nod genes determine this stage of host specificity by their essential role in the biosynthesis of the signal molecules. They appear to encode enzymes which are involved in the processes of fatty acid biosynthesis, fatty acid transfer, chitin synthesis and chitin modification. I will illustrate the statement that the nod gene products are ideal model enzymes for the study of these important processes because they are not needed in the free-living state of the bacteria.
symbiosis, plant-microbe interaction, nodulation genes, signal molecules
NCBI PubMed ID: 7718036Publication DOI: 10.1007/BF00871750Journal NLM ID: 0372625Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Clusius Laboratory, Leiden University, Leiden, The Netherlands
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6. Compound ID: 6765
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D-Araf-(1-6)-+
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cVac-(1-2)-b-D-GlcpNMe6Cm-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
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Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_151531,IEDB_153212,IEDB_241099,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 3065
Spaink HP "The molecular basis of the host specificity of the Rhizobium bacteria" -
Antonie van Leeuwenhoek 65 (1994) 81-98
The interaction between soil bacteria belonging to the genera Rhizobium, Bradyrhizobium and Azorhizobium and leguminous plants results in the induction of a new plant organ, the root nodule. After invading these root nodules via infection threads the bacteria start to fix atmospheric nitrogen into ammonia which is beneficial for the host plant. This symbiotic interaction is highly host-specific in that each rhizobial strain is able to associate with only a limited number of host plant species. The subject of this presentation is the molecular mechanism by which the bacterium determines its host-specific characteristics. This mechanism appears to be based on at least two stages of molecular signaling between the bacterium and the plant host. In the first stage, flavonoids secreted by the plant root induce, in a host specific way, the transcription of bacterial genes which are involved in nodulation, the so-called nod genes. This leads to the second step of the signaling system: the production and secretion of lipo-oligosaccharide molecules by the Rhizobium bacteria. These signal molecules, which are acylated forms of small fragments of chitin, have various discernable effects on the roots of the host plants. One of these effects is the dedifferentiation of groups of cells located in the cortex which leads to the formation of nodule meristems. In their mitogenic activity the bacterial signals resemble several well-known plant hormones like auxins and cytokinins. However, there are two major differences: (i) the bacterial signals lead to the induction of a specific organ and (ii) they are host-specific in that only the signals produced by compatible bacteria are able to induce meristems. The nod genes determine this stage of host specificity by their essential role in the biosynthesis of the signal molecules. They appear to encode enzymes which are involved in the processes of fatty acid biosynthesis, fatty acid transfer, chitin synthesis and chitin modification. I will illustrate the statement that the nod gene products are ideal model enzymes for the study of these important processes because they are not needed in the free-living state of the bacteria.
symbiosis, plant-microbe interaction, nodulation genes, signal molecules
NCBI PubMed ID: 7718036Publication DOI: 10.1007/BF00871750Journal NLM ID: 0372625Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Clusius Laboratory, Leiden University, Leiden, The Netherlands
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7. Compound ID: 6766
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/Variants 0/-a-L-Fucp2Me-(1-6)-+
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cVac-(1-2)-b-D-GlcpNMe3(%)Cm4(%)Cm-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcNAc
/Variants 0/ is:
Ac-4)-
OR (exclusively)
S-3)- |
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Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 3065
Spaink HP "The molecular basis of the host specificity of the Rhizobium bacteria" -
Antonie van Leeuwenhoek 65 (1994) 81-98
The interaction between soil bacteria belonging to the genera Rhizobium, Bradyrhizobium and Azorhizobium and leguminous plants results in the induction of a new plant organ, the root nodule. After invading these root nodules via infection threads the bacteria start to fix atmospheric nitrogen into ammonia which is beneficial for the host plant. This symbiotic interaction is highly host-specific in that each rhizobial strain is able to associate with only a limited number of host plant species. The subject of this presentation is the molecular mechanism by which the bacterium determines its host-specific characteristics. This mechanism appears to be based on at least two stages of molecular signaling between the bacterium and the plant host. In the first stage, flavonoids secreted by the plant root induce, in a host specific way, the transcription of bacterial genes which are involved in nodulation, the so-called nod genes. This leads to the second step of the signaling system: the production and secretion of lipo-oligosaccharide molecules by the Rhizobium bacteria. These signal molecules, which are acylated forms of small fragments of chitin, have various discernable effects on the roots of the host plants. One of these effects is the dedifferentiation of groups of cells located in the cortex which leads to the formation of nodule meristems. In their mitogenic activity the bacterial signals resemble several well-known plant hormones like auxins and cytokinins. However, there are two major differences: (i) the bacterial signals lead to the induction of a specific organ and (ii) they are host-specific in that only the signals produced by compatible bacteria are able to induce meristems. The nod genes determine this stage of host specificity by their essential role in the biosynthesis of the signal molecules. They appear to encode enzymes which are involved in the processes of fatty acid biosynthesis, fatty acid transfer, chitin synthesis and chitin modification. I will illustrate the statement that the nod gene products are ideal model enzymes for the study of these important processes because they are not needed in the free-living state of the bacteria.
symbiosis, plant-microbe interaction, nodulation genes, signal molecules
NCBI PubMed ID: 7718036Publication DOI: 10.1007/BF00871750Journal NLM ID: 0372625Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Clusius Laboratory, Leiden University, Leiden, The Netherlands
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8. Compound ID: 10132
|
S-6)-+
|
cVac-(1-2)-b-D-GlcpN6(%)Ac-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcpNAc |
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Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_142354,IEDB_151531,IEDB_153212,IEDB_1635956,IEDB_241099,IEDB_241119,IEDB_241120,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 4215
Ardourel M, Demont N, Debellé F, Maillet F, de Billy F, Promé J, Dénarié J, Truchet G "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 6 (1994) 1357-1374
Rhizobium meliloti produces lipochitooligosaccharide nodulation NodRm factors that are required for nodulation of legume hosts. NodRm factors are O-acetylated and N-acylated by specific C16-unsaturated fatty acids. nodL mutants produce non-O-acetylated factors, and nodFE mutants produce factors with modified acyl substituents. Both mutants exhibited a significantly reduced capacity to elicit infection thread (IT) formation in alfalfa. However, once initiated, ITs developed and allowed the formation of nitrogen-fixing nodules. In contrast, double nodF/nodL mutants were unable to penetrate into legume hosts and to form ITs. Nevertheless, these mutants induced widespread cell wall tip growth in trichoblasts and other epidermal cells and were also able to elicit cortical cell activation at a distance. NodRm factor structural requirements are thus clearly more stringent for bacterial entry than for the elicitation of developmental plant responses.
NCBI PubMed ID: 7994171Publication DOI: 10.1105/tpc.6.10.1357Journal NLM ID: 9208688Publisher: Rockville, MD: American Society of Plant Physiologists
Institutions: Laboratoire de Biologie Moléculaire des Relations Plantes-Microorganismes, CNRS-INRA, Castanet-Tolosan, France
Methods: GC-MS, LSI-MS, microscopy, plant assays
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9. Compound ID: 10133
|
S-6)-+
|
cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-D-GlcpNAc |
Show graphically |
Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_142354,IEDB_151531,IEDB_153212,IEDB_1635956,IEDB_241099,IEDB_241119,IEDB_241120,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 4215
Ardourel M, Demont N, Debellé F, Maillet F, de Billy F, Promé J, Dénarié J, Truchet G "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 6 (1994) 1357-1374
Rhizobium meliloti produces lipochitooligosaccharide nodulation NodRm factors that are required for nodulation of legume hosts. NodRm factors are O-acetylated and N-acylated by specific C16-unsaturated fatty acids. nodL mutants produce non-O-acetylated factors, and nodFE mutants produce factors with modified acyl substituents. Both mutants exhibited a significantly reduced capacity to elicit infection thread (IT) formation in alfalfa. However, once initiated, ITs developed and allowed the formation of nitrogen-fixing nodules. In contrast, double nodF/nodL mutants were unable to penetrate into legume hosts and to form ITs. Nevertheless, these mutants induced widespread cell wall tip growth in trichoblasts and other epidermal cells and were also able to elicit cortical cell activation at a distance. NodRm factor structural requirements are thus clearly more stringent for bacterial entry than for the elicitation of developmental plant responses.
NCBI PubMed ID: 7994171Publication DOI: 10.1105/tpc.6.10.1357Journal NLM ID: 9208688Publisher: Rockville, MD: American Society of Plant Physiologists
Institutions: Laboratoire de Biologie Moléculaire des Relations Plantes-Microorganismes, CNRS-INRA, Castanet-Tolosan, France
Methods: GC-MS, LSI-MS, microscopy, plant assays
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10. Compound ID: 10138
|
?%S-6)-+
|
cVac-(1-2)-b-D-GlcpNMe-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
Show graphically |
Structure type: oligomer
Compound class: LOS
Contained glycoepitopes: IEDB_135813,IEDB_137340,IEDB_141807,IEDB_142354,IEDB_151531,IEDB_153212,IEDB_1635956,IEDB_241099,IEDB_241119,IEDB_241120,SB_74,SB_85
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
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11. Compound ID: 10142
|
/Variants 0/-Fucp2Me-(1-6)-+
|
cVac-(1-2)-b-D-GlcpNMe3(%)Cm4(%)Cm-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc
/Variants 0/ is:
?%Ac-4)-
OR (exclusively)
?%S-3)- |
Show graphically |
Structure type: oligomer
Trivial name: NodNGR
Compound class: LOS
Contained glycoepitopes: IEDB_115015,IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_149135,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
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12. Compound ID: 10143
|
Fucp2(%)Me-(1-6)-+
|
cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
Show graphically |
Structure type: oligomer
Contained glycoepitopes: IEDB_115015,IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_149135,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
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13. Compound ID: 10144
|
Fucp2Me-(1-6)-+
|
cVac-(1-2)-b-D-GlcpN-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
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Structure type: oligomer
Trivial name: NodBj-V(C16:0,MeFuc), NodBj-V(C18:1,MeFuc)
Compound class: LOS
Contained glycoepitopes: IEDB_115015,IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_149135,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
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14. Compound ID: 10145
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Fucp2Me-(1-6)-+
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cVac-(1-2)-b-D-GlcpN6(%)Ac-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc |
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Structure type: oligomer
Trivial name: NodBj-V(C18:1 MeFuc), NodBj-V(Ac,C18:1 MeFuc), NodBj-V(Ac,C16:1 MeFuc), NodBj-V(C16:1 MeFuc)
Compound class: LOS
Contained glycoepitopes: IEDB_115015,IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_149135,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
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15. Compound ID: 10146
|
cVac-(1-2)-+ Fucp2(%)Me-(1-6)-+
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/Variants 0/-b-D-GlcpN(%)Me3(%)Cm4(%)Cm-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc-(1-4)-b-D-GlcpNAc
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?%Gro-(1-1)-+
/Variants 0/ is:
?%Cm-6)-
OR (exclusively)
?%Ac-6)- |
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Structure type: oligomer
Trivial name: NodBj-IV(C18:1,Ac,MeFuc), NodBj-IV(C18:1,MeFuc)
Contained glycoepitopes: IEDB_115015,IEDB_135813,IEDB_136045,IEDB_137340,IEDB_141807,IEDB_142489,IEDB_144562,IEDB_149135,IEDB_151531,IEDB_152214,IEDB_153212,IEDB_174333,IEDB_241099,SB_74,SB_85,SB_86
The structure is contained in the following publication(s):
- Article ID: 4217
Spaink HP, Lugtenberg BJJ "Role of rhizobial lipo-chitin oligosaccharide signal molecules in root nodule organogenesis" -
Plant Molecular Biology 26 (1994) 1413-1422
The role of oligosaccharide molecules in plant development is discussed. In particular the role of the rhizobial lipo-chitin oligosaccharide (LCO) signal molecules in the development of the root nodule indicates that oligosaccharides play an important role in organogenesis in plants. Recent results of the analyses of structures and of the biosynthesis of the LCO molecules are summarized in this paper. The knowledge and technologies that resulted from these studies will be important tools for further studying the function of LCO signals in the plant and in the search for analogous signal molecules produced by plants.
NCBI PubMed ID: 7858197Publication DOI: 10.1007/BF00016482Journal NLM ID: 9106343Publisher: Dordrecht: Kluwer Academic
Institutions: Institute of Molecular Plant Sciences, Leiden University, The Netherlands
Expand this compound
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