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Items: 6

1.

Resetting the ligand binding site of placental protein 13/galectin-13 recovers its ability to bind lactose.

Su J, Cui L, Si Y, Song C, Li Y, Yang T, Wang H, Mayo KH, Tai G, Zhou Y.

Biosci Rep. 2018 Dec 14;38(6). pii: BSR20181787. doi: 10.1042/BSR20181787. Print 2018 Dec 21.

2.

Identification of key amino acid residues determining ligand binding specificity, homodimerization and cellular distribution of human galectin-10.

Su J, Song C, Si Y, Cui L, Yang T, Li Y, Wang H, Tai G, Zhou Y.

Glycobiology. 2019 Jan 1;29(1):85-93. doi: 10.1093/glycob/cwy087.

PMID:
30239701
3.

Galectin-13, a different prototype galectin, does not bind β-galacto-sides and forms dimers via intermolecular disulfide bridges between Cys-136 and Cys-138.

Su J, Wang Y, Si Y, Gao J, Song C, Cui L, Wu R, Tai G, Zhou Y.

Sci Rep. 2018 Jan 17;8(1):980. doi: 10.1038/s41598-018-19465-0.

4.

Galectin-10: a new structural type of prototype galectin dimer and effects on saccharide ligand binding.

Su J, Gao J, Si Y, Cui L, Song C, Wang Y, Wu R, Tai G, Zhou Y.

Glycobiology. 2018 Mar 1;28(3):159-168. doi: 10.1093/glycob/cwx107.

PMID:
29293962
5.

Crystallization of Galectin-8 Linker Reveals Intricate Relationship between the N-terminal Tail and the Linker.

Si Y, Wang Y, Gao J, Song C, Feng S, Zhou Y, Tai G, Su J.

Int J Mol Sci. 2016 Dec 12;17(12). pii: E2088.

6.

Human galectin-2 interacts with carbohydrates and peptides non-classically: new insight from X-ray crystallography and hemagglutination.

Si Y, Feng S, Gao J, Wang Y, Zhang Z, Meng Y, Zhou Y, Tai G, Su J.

Acta Biochim Biophys Sin (Shanghai). 2016 Oct;48(10):939-947. Epub 2016 Aug 25.

PMID:
27563008

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