| EC Number | Organism | UniProt | Comment | Textmining |
|---|---|---|---|---|
| 3.1.3.56 | Acorus calamus | - |
- |
- |
| 3.1.3.56 | Amborella trichopoda | - |
- |
- |
| 3.1.3.56 | Arabidopsis thaliana | - |
- |
- |
| 3.1.3.56 | Caenorhabditis elegans | - |
- |
- |
| 3.1.3.56 | Capsella grandiflora | - |
- |
- |
| 3.1.3.56 | Capsella rubella | - |
- |
- |
| 3.1.3.56 | Carica papaya | - |
- |
- |
| 3.1.3.56 | Chlamydomonas reinhardtii | - |
- |
- |
| 3.1.3.56 | Danio rerio | - |
- |
- |
| 3.1.3.56 | Eutrema salsugineum | - |
- |
- |
| 3.1.3.56 | Ginkgo biloba | - |
- |
- |
| 3.1.3.56 | Glycine max | - |
- |
- |
| 3.1.3.56 | Homo sapiens | - |
- |
- |
| 3.1.3.56 | Lotus japonicus | - |
- |
- |
| 3.1.3.56 | Medicago truncatula | - |
- |
- |
| 3.1.3.56 | Mus musculus | - |
- |
- |
| 3.1.3.56 | Oryza sativa | - |
- |
- |
| 3.1.3.56 | Physcomitrium patens | - |
- |
- |
| 3.1.3.56 | Populus trichocarpa | - |
- |
- |
| 3.1.3.56 | Saccharomyces cerevisiae | - |
- |
- |
| 3.1.3.56 | Xenopus tropicalis | - |
- |
- |
| 3.1.3.56 | Zea mays | - |
- |
- |
| EC Number | Synonyms | Comment | Organism |
|---|---|---|---|
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Arabidopsis thaliana |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Capsella grandiflora |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Capsella rubella |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Eutrema salsugineum |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Carica papaya |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Populus trichocarpa |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Glycine max |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Lotus japonicus |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Medicago truncatula |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Zea mays |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Oryza sativa |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Acorus calamus |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Amborella trichopoda |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Ginkgo biloba |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Physcomitrium patens |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Chlamydomonas reinhardtii |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Homo sapiens |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Mus musculus |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Xenopus tropicalis |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Danio rerio |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Caenorhabditis elegans |
| 3.1.3.56 | inositol polyphosphate 5-phosphatase | - |
Saccharomyces cerevisiae |
| EC Number | General Information | Comment | Organism |
|---|---|---|---|
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Arabidopsis thaliana |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Capsella grandiflora |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Capsella rubella |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Eutrema salsugineum |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Carica papaya |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Populus trichocarpa |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Glycine max |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Lotus japonicus |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Medicago truncatula |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Zea mays |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Oryza sativa |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Acorus calamus |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Amborella trichopoda |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Ginkgo biloba |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Physcomitrium patens |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Chlamydomonas reinhardtii |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Homo sapiens |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Mus musculus |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Xenopus tropicalis |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Danio rerio |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Caenorhabditis elegans |
| 3.1.3.56 | evolution | phylogenetic analyses are performed to delineate the evolutionary history of the polyphosphate 5-phosphatase family in major angiosperm lineages | Saccharomyces cerevisiae |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Arabidopsis thaliana |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Arabidopsis thaliana |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Capsella grandiflora |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Capsella grandiflora |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Capsella rubella |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Capsella rubella |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Eutrema salsugineum |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Eutrema salsugineum |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Carica papaya |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Carica papaya |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Populus trichocarpa |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Populus trichocarpa |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Glycine max |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Glycine max |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Lotus japonicus |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Lotus japonicus |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Medicago truncatula |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Medicago truncatula |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Zea mays |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Zea mays |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Oryza sativa |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Oryza sativa |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Acorus calamus |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Acorus calamus |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Amborella trichopoda |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Amborella trichopoda |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Ginkgo biloba |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Ginkgo biloba |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Physcomitrium patens |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Physcomitrium patens |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Chlamydomonas reinhardtii |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Chlamydomonas reinhardtii |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Homo sapiens |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Homo sapiens |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Mus musculus |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Mus musculus |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Xenopus tropicalis |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Xenopus tropicalis |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Danio rerio |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Danio rerio |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Caenorhabditis elegans |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Caenorhabditis elegans |
| 3.1.3.56 | physiological function | the enzyme has essential functions in growth, development, and stress responses in plants, yeasts, and animals | Saccharomyces cerevisiae |
| 3.1.3.56 | physiological function | divergent functions of polyphosphate 5-phosphatase genes, allowing the angiosperms to successfully adapt to a great number of ecological niches | Saccharomyces cerevisiae |