G49108TO
| Organisms | Evidence |
|---|---|
| Streptococcus pneumoniae | |
| Mus musculus (house mouse) | |
| Saccharomyces cerevisiae (brewer's yeast) | |
| Sus scrofa (pig) | |
| Rattus norvegicus (Norway rat) |
| Gene Symbol | Donor | Acceptor | Reducing terminal(Acceptor) | Product | Reducing terminal(Product) | Reference |
|---|---|---|---|---|---|---|
| B4GALT5 | (not applicable) |
|
[beta]-S-pNP |
|
[beta]-S-pNP | |
| B4GALT1 | UDP-Gal |
|
R |
|
R | |
| B4GALT2 | UDP-Gal |
|
Benzyl-[beta] |
|
Benzyl-[beta] | |
| B3GALT2 | UDP-Gal |
|
Lemieux |
|
Lemieux | |
| 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 | |
| B4GALT4 | UDP-Gal |
|
[beta]-1-thio-p-Nitrophenyl |
|
[beta]-1-thio-p-Nitrophenyl | |
| B4GALT3 | UDP-Gal |
|
4-Me-lumbelyl-[beta] |
|
4-Me-lumbelyl-[beta] | |
| B4GALT4 | UDP-Gal |
|
[beta]-1-4-methyl-umbelliferyl |
|
[beta]-1-4-methyl-umbelliferyl | |
| B4GALT1 | UDP-Gal |
|
|
| UniProt ID | Protein Name | Reference | Source |
|---|---|---|---|
| A0A0G2JFN0 | T cell receptor alpha joining 42 (Fragment) | ||
| A0A0G2JUA5 | AHNAK nucleoprotein | ||
| A0A0G2JY58 | Pogo transposable element derived with ZNF domain | ||
| A0A0G2K1L0 | Tenascin C | ||
| A0A0G2KB82 | CCR4-NOT transcription complex, subunit 2 | ||
| A0A0U1RQS6 | Transmembrane protein 275 | ||
| A0A131MAQ8 | histone acetyltransferase | ||
| A0A131MBU3 | Protein irg-7 | ||
| A0A140LIW3 | FERM and PDZ domain containing 3 | ||
| A0A183 | Late cornified envelope protein 6A |
| Pathway Name | Organism |
|---|---|
| Antimicrobial peptides | Sus scrofa |
| Antimicrobial peptides | Rattus norvegicus |
| Antimicrobial peptides | Dictyostelium discoideum |
| Antimicrobial peptides | Bos taurus |
| Antimicrobial peptides | Canis familiaris |
| Antimicrobial peptides | Mus musculus |
| Antimicrobial peptides | Gallus gallus |
| Antimicrobial peptides | Homo sapiens |
| Antimicrobial peptides | Drosophila melanogaster |
| Antimicrobial peptides | Xenopus tropicalis |
RES 1b:b-dglc-HEX-1:5 2s:n-acetyl LIN 1:1d(2+1)2n
| PubMed ID | Title | First Author | Publication Date | Source |
|---|---|---|---|---|
| 35230385 | Epitope convergence of broadly HIV-1 neutralizing IgA and IgG antibody lineages in a viremic controller | Lorin V | 2022 Mar 01 |
|
| 35232398 | Structural insights into the non-inhibitory mechanism of the anti-EGFR EgB4 nanobody | Zeronian MR | 2022 Mar 01 |
|
| 35120929 | Comparison of glycoside hydrolase family 3 β-xylosidases from basidiomycetes and ascomycetes reveals evolutionarily distinct xylan degradation systems | Kojima K | 2022 Mar |
|
| 35183508 | Nutrient-responsive O-GlcNAcylation dynamically modulates the secretion of glycan-binding protein galectin 3 | Mathew MP | 2022 Mar |
|
| 34958847 | Structure of recombinantly expressed cockroach Lili-Mip protein in glycosylated and deglycosylated forms | KanagaVijayan D | 2022 Mar |
|
| 35427837 | The beneficial effect of global O-GlcNAcylation on odontogenic differentiation of human dental pulp cells via mTORC1 pathway | Hu Y | 2022 Jun |
|
| 35289036 | Endo-M Mediated Chemoenzymatic Approach Enables Reversible Glycopeptide Labeling for O-GlcNAcylation Analysis | Chen Y | 2022 Jun 7 |
|
| 35768499 | A broadly neutralizing antibody against SARS-CoV-2 Omicron variant infection exhibiting a novel trimer dimer conformation in spike protein binding | Wang Y | 2022 Jun 29 |
|
| 35665438 | N -Acetylglucosamine Promotes Tomato Plant Growth by Shaping the Community Structure and Metabolism of the Rhizosphere Microbiome | Sun J | 2022 Jun 29 |
|
| 35738279 | Superimmunity by pan-sarbecovirus nanobodies | Xiang Y | 2022 Jun 28 |
|
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Supported by JST NBDC Grant Number JPMJND2204
Partly supported by NIH Common Fund Grant #1U01GM125267-01
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Last updated: December 8, 2025