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Calcium-dependent protein interactions in MUC5B provide reversible cross-links in salivary mucus
Bertrand D E Raynal1, Timothy E Hardingham, John K Sheehan
1Wellcome Trust Centre for Cell-Matrix Research, School of Biological Sciences, 2.205 Stopford Bldg., University of Manchester, Manchester M13 9PT, United Kingdom.
Abstract:
The macromolecular organization within saliva was investigated by tracer diffusion measurements of fluorescent polystyrene microspheres by fluorescence recovery after photobleaching using a confocal microscope (confocal-FRAP). There was a concentration-dependent reduction in microsphere diffusion; this was much greater in the presence of calcium (10 mm) and was reduced by the addition of EGTA (10 mm). These effects on tracer diffusion showed that native saliva contained a macromolecular organization that was sensitive to free calcium concentrations. This was supported by a major increase in the weight average molecular weight of the high molecular weight mucin fraction in saliva (10-62 x 106) and an increase in intrinsic viscosity of saliva (733 to 1203 ml/g) both caused by calcium. Analysis of the change in tracer diffusion in saliva showed a 20-fold increase in the apparent pore size (from 130 nm in 10 mm CaCl2 to 2600 nm in 10 mm EGTA at physiological concentration). The effect was specific for calcium and was unaffected by up to 2 m NaCl. The calcium binding activity was contained in a high buoyant density fraction of saliva excluded from Sepharose CL-2B. Calcium binding to this fraction gave an approximate Kd of 7 x 10-6 m, and the binding was irreversibly destroyed by treatment with 6 m guanidinium chloride and by mild reduction, suggesting it to be to a protein site. This fraction of saliva was shown to contain MUC5B as the single major protein species by positive ion electrospray ionization-tandem mass spectrometry analysis. The results suggested that oligomeric MUC5B in saliva is assembled into much larger linear or branched assemblies through calcium-mediated protein cross-links.
Insights
Saliva
Area of Science:
- Biochemistry
- Materials Science
- Rheology
Background:
- Saliva's macromolecular organization influences its physical properties.
- Understanding this organization is crucial for various physiological processes.
Purpose of the Study:
- To investigate the macromolecular organization of saliva.
- To determine the role of calcium in saliva's structural organization.
Main Methods:
- Tracer diffusion measurements using confocal fluorescence recovery after photobleaching (confocal-FRAP).
- Analysis of molecular weight and intrinsic viscosity.
- Calcium binding assays and mass spectrometry (MUC5B identification).
Main Results:
- Microsphere diffusion in saliva is concentration-dependent and sensitive to free calcium.
- Calcium significantly increases mucin molecular weight and saliva viscosity.
- Apparent pore size in saliva dramatically increases upon calcium chelation with EGTA.
- Calcium binding activity is associated with MUC5B, a major salivary protein.
Conclusions:
- Saliva exhibits a calcium-sensitive macromolecular organization.
- MUC5B forms larger assemblies via calcium-mediated cross-links, influencing saliva structure and rheology.