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Coreceptor Functions of Cell Surface Heparan Sulfate Proteoglycans

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Abstract

Receptor-ligand interactions play an important role in many biological processes by triggering specific cellular responses. These interactions are frequently regulated by coreceptors that facilitate, alter, or inhibit signaling. Coreceptors work in parallel with other specific and accessory molecules to coordinate receptor-ligand interactions. Cell surface heparan sulfate proteoglycans (HSPGs) function as unique coreceptors because they can bind to many ligands and receptors through their HS and core protein motifs. Cell surface HSPGs are typically expressed in abundance of the signaling receptors and, thus, are capable of mediating the initial binding of ligands to the cell surface. HSPG coreceptors do not possess kinase domains or intrinsic enzyme activities and, for the most part, binding to cell surface HSPGs does not directly stimulate intracellular signaling. Because of these features, cell surface HSPGs primarily function as coreceptors for many receptor-ligand interactions. Given that cell surface HSPGs are widely conserved, they likely serve fundamental functions to preserve basic physiological processes. Indeed, cell surface HSPGs can support specific cellular interactions with growth factors, morphogens, chemokines, extracellular matrix (ECM) components, and microbial pathogens and their secreted virulence factors. Through these interactions, HSPG coreceptors regulate cell adhesion, proliferation, migration, and differentiation, and impact the onset, progression, and outcome of pathophysiological processes, such as development, tissue repair, inflammation, infection, and tumorigenesis. This review seeks to provide an overview of the various mechanisms of how cell surface HSPGs function as coreceptors.

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References
1.
Makarenkova H, Hoffman M, Beenken A, Eliseenkova A, Meech R, Tsau C . Differential interactions of FGFs with heparan sulfate control gradient formation and branching morphogenesis. Sci Signal. 2009; 2(88):ra55. PMC: 2884999. DOI: 10.1126/scisignal.2000304. View

2.
Urbinati C, Nicoli S, Giacca M, David G, Fiorentini S, Caruso A . HIV-1 Tat and heparan sulfate proteoglycan interaction: a novel mechanism of lymphocyte adhesion and migration across the endothelium. Blood. 2009; 114(15):3335-42. DOI: 10.1182/blood-2009-01-198945. View

3.
Jones E, Yuan L, Breant C, Watts R, Eichmann A . Separating genetic and hemodynamic defects in neuropilin 1 knockout embryos. Development. 2008; 135(14):2479-88. DOI: 10.1242/dev.014902. View

4.
Li S, Edgar D, Fassler R, Wadsworth W, Yurchenco P . The role of laminin in embryonic cell polarization and tissue organization. Dev Cell. 2003; 4(5):613-24. DOI: 10.1016/s1534-5807(03)00128-x. View

5.
van Putten J, Paul S . Binding of syndecan-like cell surface proteoglycan receptors is required for Neisseria gonorrhoeae entry into human mucosal cells. EMBO J. 1995; 14(10):2144-54. PMC: 398320. DOI: 10.1002/j.1460-2075.1995.tb07208.x. View