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Dimerization and Crowding in the Binding of Interleukin 8 to Dendritic Glycosaminoglycans as Artificial Proteoglycans
Jan-Niklas Dürig1, Christian Schulze2, Mathias Bosse2
1Institute of Pharmacy - Medicinal Chemistry, Freie Universität Berlin, Königin-Luise-Str. 2+4, 14195, Berlin, Germany) Corresponding author.
Insights
Oligomerizing glycosaminoglycans (GAG) enhances binding affinity for interleukin-8 (IL-8) proteins. This GAG oligomerization concentrates monomeric IL-8, potentially promoting its dimerization in the extracellular matrix.
Area of Science:
- Biochemistry
- Glycobiology
- Extracellular Matrix Biology
Background:
- Glycosaminoglycans (GAGs) are crucial for extracellular matrix (ECM) functions, regulating cellular processes through protein interactions.
- Proteoglycans present repetitive GAG-binding motifs, suggesting multivalent interactions enhance GAG-protein binding.
Purpose of the Study:
- To investigate the binding of interleukin-8 (IL-8) to synthetic, well-defined proteoglycan architectures.
- To explore how dendritic oligomerization of GAGs affects IL-8 binding affinity.
Main Methods:
- Chemical synthesis of dendritic GAG oligomers from nonasulfated hyaluronan tetrasaccharides.
- Investigation of IL-8 binding using NMR spectroscopy and isothermal titration calorimetry.
Main Results:
- Dendritic GAG oligomerization significantly increased the binding affinity for both monomeric and dimeric IL-8.
- Monomeric IL-8 showed enhanced binding to dimeric GAG (KD = 0.108 μM) compared to monomeric GAG (KD = 7.3 μM).
- Dimeric IL-8 affinity improved with GAG dimerization (34 nM to 5 nM), but steric crowding limited subsequent binding to oligomeric GAG.
Conclusions:
- GAG oligomerization strongly amplifies the binding of IL-8 monomers.
- This amplification may concentrate monomeric IL-8 in the ECM, promoting protein dimerization under physiological conditions.
Abstract:
The interactions of glycosaminoglycans (GAG) with proteins of the extracellular matrix govern and regulate complex physiological functions including cellular growth, immune response, and inflammation. Repetitive presentation of GAG binding motifs, as found in native proteoglycans, might enhance GAG-protein binding through multivalent interactions. Here, we report the chemical synthesis of dendritic GAG oligomers constructed of nonasulfated hyaluronan tetrasaccharides for investigating the binding of the protein chemokine interleukin 8 (IL-8) to artificial, well-defined proteoglycan architectures. Binding of mutant monomeric and native dimerizable IL-8 was investigated by NMR spectroscopy and isothermal titration calorimetry. Dendritic oligomerization of GAG increased the binding affinity of both monomeric and dimeric IL-8. Monomeric IL-8 bound to monomeric and dimeric GAG with KD values of 7.3 and 0.108 μM, respectively. The effect was less pronounced for dimerizable wild-type IL-8, for which GAG dimerization improved the affinity from 34 to 5 nM. Binding of dimeric IL-8 to oligomeric GAG was limited by steric crowding effects, strongly reducing the affinity of subsequent binding events. In conclusion, the strongest effect of GAG oligomerization was the amplified binding of IL-8 monomers, which might concentrate monomeric protein in the extracellular matrix and thus promote protein dimerization under physiological conditions.
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