Organisms | Evidence |
---|---|
Mus musculus (house mouse) | |
Rattus norvegicus (Norway rat) | |
Homo sapiens (human) | |
Drosophila melanogaster (fruit fly) | |
Streptococcus pneumoniae |
Gene Symbol | Donor | Acceptor | Reducing terminal(Acceptor) | Product | Reducing terminal(Product) | Reference |
---|---|---|---|---|---|---|
B4GALT5 | (not applicable) |
|
[beta]-S-pNP |
|
[beta]-S-pNP | |
B3GALT2 | UDP-Gal |
|
Lemieux |
|
Lemieux | |
B4GALT2 | UDP-Gal |
|
Benzyl-[beta] |
|
Benzyl-[beta] | |
B4GALT1 | UDP-Gal |
|
R |
|
R | |
B3GALT5 | UDP-Gal |
|
R |
|
R |
Gene Symbol | Donor | Acceptor | Reducing terminal(Acceptor) | Product | Reducing terminal(Product) | Reference |
---|---|---|---|---|---|---|
B4GALT5 | (not applicable) |
|
[beta]-S-pNP |
|
[beta]-S-pNP | |
B4GALT3 | UDP-Gal |
|
Benzyl-[beta] |
|
Benzyl-[beta] | |
B4GALT4 | UDP-Gal |
|
[beta]-1-Benzl |
|
[beta]-1-Benzl | |
B3GALT2 | UDP-Gal |
|
Lemieux |
|
Lemieux | |
B4GALT4 | UDP-Gal |
|
[beta]-1-4-methyl-umbelliferyl |
|
[beta]-1-4-methyl-umbelliferyl |
UniProt ID | Protein Name | Reference | Source |
---|---|---|---|
Q9HC96 | Calpain-10 | ||
Q9HCB6 | Spondin-1 | ||
Q9HCD5 | Nuclear receptor coactivator 5 | ||
Q9HCD6 | Protein TANC2 | ||
Q9HCE3 | Zinc finger protein 532 | ||
Q9HCF6 | Transient receptor potential cation channel subfamily M member 3 | ||
Q9HCH5 | Synaptotagmin-like protein 2 | ||
Q9HCJ0 | Trinucleotide repeat-containing gene 6C protein | ||
Q9HCK1 | DBF4-type zinc finger-containing protein 2 | ||
Q9HCK8 | Chromodomain-helicase-DNA-binding protein 8 |
Pathway Name | Organism |
---|---|
E.coli O116 | Escherichia coli |
E.coli O118 | Escherichia coli |
E.coli O12 | Escherichia coli |
E.coli O126 | Escherichia coli |
E.coli O126H27 | Escherichia coli |
E.coli O129 | Escherichia coli |
E.coli O13 | Escherichia coli |
E.coli O132 | Escherichia coli |
E.coli O135 | Escherichia coli |
E.coli O136 | Escherichia coli |
RES 1b:b-dglc-HEX-1:5 2s:n-acetyl LIN 1:1d(2+1)2n
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37797623 | High dietary fructose promotes hepatocellular carcinoma progression by enhancing O-GlcNAcylation via microbiota-derived acetate | Zhou P | 2023 Nov 07 |
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37958983 | Integrating Embeddings from Multiple Protein Language Models to Improve Protein O-GlcNAc Site Prediction | Pokharel S | 2023 Nov 06 |
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37932445 | Cryo-EM structures of human SID-1 transmembrane family proteins and implications for their low-pH-dependent RNA transport activity | Zheng L | 2023 Nov 06 |
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37924140 | Amino acid metabolism reprogramming: shedding new light on T cell anti-tumor immunity | Zheng Y | 2023 Nov 03 |
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37919470 | Structural insights into asymmetric activation of the calcium-sensing receptor–Gq complex | Ling S | 2023 Nov 02 |
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37914842 | Benchmark Glycan Profile of Therapeutic Monoclonal Antibodies Produced by Mammalian Cell Expression Systems | Luo S | 2023 Nov 01 |
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37586141 | Identification of salivary metabolic biomarker signatures for oral tongue squamous cell carcinoma | Vimal J | 2023 Nov |
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37838167 | On a sugar high: Role of O-GlcNAcylation in cancer | Le Minh G | 2023 Nov |
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37595808 | Two-stage process production of microbial lipid by co-fermentation of glucose and N-acetylglucosamine from food wastes with Cryptococcus curvatus | Zhang JX | 2023 Nov |
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Supported by JST NBDC Grant Number JPMJND2204
Partly supported by NIH Common Fund Grant #1U01GM125267-01
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