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Featured researches published by Jinghua Chen.


Journal of Biological Chemistry | 2002

Heparan sulfate 3-O-sulfotransferase isoform 5 generates both an antithrombin-binding site and an entry receptor for herpes simplex virus, type 1.

Guoqing Xia; Jinghua Chen; Vaibhav Tiwari; Wujian Ju; Jin Ping Li; Anders Malmström; Deepak Shukla; Jian Liu

Heparan sulfate 3-O-sulfotransferase transfers sulfate to the 3-OH position of a glucosamine residue of heparan sulfate (HS) to form 3-O-sulfated HS. The 3-O-sulfated glucosamine residue contributes to two important biological functions of HS: binding to antithrombin and thereby carrying anticoagulant activity, and binding to herpes simplex viral envelope glycoprotein D to serve as an entry receptor for herpes simplex virus 1. A total of five HS 3-O-sulfotransferase isoforms were reported previously. Here we report the isolation and characterization of a novel HS 3-O-sulfotransferase isoform, designated as HS 3-O-sulfotransferase isoform 5 (3-OST-5). 3-OST-5 cDNA was isolated from a human placenta cDNA library and expressed in COS-7 cells. The disaccharide analysis of 3-OST-5-modified HS revealed that 3-OST-5 generated at least three 3-O-sulfated disaccharides as follows: IdoUA2S-AnMan3S, GlcUA-AnMan3S6S, and IdoUA2S-AnMan3S6S. Transfection of the plasmid expressing 3-OST-5 rendered wild type Chinese hamster ovary cells susceptible to the infection by herpes simplex virus 1, suggesting that 3-OST-5-modified HS serves as an entry receptor for herpes simplex virus 1. In addition, 3-OST-5-modified HS bound to herpes simplex viral envelope protein glycoprotein D. Furthermore, we found that 3-OST-5-modified HS also bound to antithrombin, suggesting that 3-OST-5 also produces anticoagulant HS. In summary, our results indicate that a new member of 3-OST family generates both anticoagulant HS and an entry receptor for herpes simplex virus 1. These results provide a new insight regarding the mechanism for the biosynthesis of biologically active HS.


Journal of Biological Chemistry | 2005

Enzymatic redesigning of biologically active heparan sulfate

Jinghua Chen; Fikri Y. Avci; Eva M. Muñoz; Lynda M. McDowell; Miao Chen; Lars C. Pedersen; Lijuan Zhang; Robert J. Linhardt; Jian Liu

Heparan sulfate carries a wide range of biological activities, regulating blood coagulation, cell differentiation, and inflammatory responses. The sulfation patterns of the polysaccharide are essential for the biological activities. In this study, we report an enzymatic method for the sulfation of multimilligram amounts of heparan sulfate with specific functions using immobilized sulfotransferases combined with a 3′-phosphoadenosine 5′-phosphosulfate regeneration system. By selecting appropriate enzymatic modification steps, an inactive precursor has been converted to the heparan sulfate having three distinct biological activities, associated with binding to antithrombin, fibroblast growth factor-2, and herpes simplex virus envelope glycoprotein D. Because the recombinant sulfotransferases are expressed in bacteria, and the method uses a low cost sulfo donor, it can be readily utilized to synthesize large quantities of anticoagulant heparin drug or other biologically active heparan sulfates.


Journal of Biological Chemistry | 2006

INHIBITION OR ACTIVATION OF APERT SYNDROME FGFR2 (S252W) SIGNALING BY SPECIFIC GLYCOSAMINOGLYCANS

Lynda M. McDowell; Beth Frazier; Daniel R. Studelska; Kari Giljum; Jinghua Chen; Jian Liu; Kai Yu; David M. Ornitz; Lijuan Zhang

Most Apert syndrome patients harbor a single amino acid mutation (S252W) in fibroblast growth factor (FGF) receptor 2 (FGFR2), which leads to abnormal FGF/FGFR2 signaling. Here we show that specific combinations of FGFs and glycosaminoglycans activate both alternative splice forms of the mutant but not of the wild-type FGF receptors. More importantly, 2-O- and N-sulfated heparan sulfate, prepared by a combined chemical and enzymatic synthesis, antagonized the over-activated FGFR2b (S252W) to basal levels at nanomolar concentrations. These studies demonstrated that specific glycosaminoglycans could be useful in treating ligand-dependent FGFR signaling-related diseases, such as Apert syndrome and cancer.


Journal of General Virology | 2004

A role for 3-O-sulfated heparan sulfate in cell fusion induced by herpes simplex virus type 1.

Vaibhav Tiwari; Christian Clement; Michael B. Duncan; Jinghua Chen; Jian Liu; Deepak Shukla


Glycobiology | 2003

Biosynthesis of 3-O-sulfated heparan sulfate: unique substrate specificity of heparan sulfate 3-O-sulfotransferase isoform 5

Jinghua Chen; Michael B. Duncan; Kevin Carrick; R. Marshall Pope; Jian Liu


Biochimica et Biophysica Acta | 2004

The biosynthesis of anticoagulant heparan sulfate by the heparan sulfate 3-O-sulfotransferase isoform 5.

Michael B. Duncan; Jinghua Chen; Jeffrey P. Krise; Jian Liu


Glycobiology | 2004

Analysis of the interaction between adeno-associated virus and heparan sulfate using atomic force microscopy

Atsuko Negishi; Jinghua Chen; Douglas M. McCarty; R. Jude Samulski; Jian Liu; Richard Superfine


Biochimica et Biophysica Acta | 2005

Characterization of the structure of antithrombin-binding heparan sulfate generated by heparan sulfate 3-O-sulfotransferase 5.

Jinghua Chen; Jian Liu


US 7,531,338 B2. 2009 May 12. p. 57. | 2003

Purified and isolated heparan sulfate 3-o-sulfotransferase isoform 5 nucleic acids and polypeptides and therapeutic and screening methods using same

Jian Liu; Guoqing Xia; Jinghua Chen; Michael B. Duncan; Deepak Shukla; Vaibhav Tiwari; Anders Malmström


Archive | 2004

Short Communication A role for 3-O-sulfated heparan sulfate in cell fusion induced by herpes simplex virus type 1

Vaibhav Tiwari; Christopher Clement; Michael B. Duncan; Jinghua Chen; Jian Liu; Deepak Shukla

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Jian Liu

University of North Carolina at Chapel Hill

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Michael B. Duncan

University of North Carolina at Chapel Hill

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Deepak Shukla

University of Illinois at Chicago

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Guoqing Xia

University of Tübingen

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Anders Malmström

University of Illinois at Chicago

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Lijuan Zhang

Washington University in St. Louis

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Lynda M. McDowell

Washington University in St. Louis

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Atsuko Negishi

University of North Carolina at Chapel Hill

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