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Glycoproteomics of the Extracellular Matrix: A Method for Intact Glycopeptide Analysis Using Mass Spectrometry
Published on: April 21, 2017
Glycoproteomic Analysis of the Aortic Extracellular Matrix in Marfan Patients
Xiaoke Yin 殷晓科1, Shaynah Wanga2,3, Adam L Fellows1
1From the King's British Heart Foundation Centre, King's College London, United Kingdom (X.Y., A.L.F., J.B.-B., R.L., M.F., F.B., P.S., Q.X., M.M.).
Objective:
Marfan syndrome (MFS) is caused by mutations in FBN1 (fibrillin-1), an extracellular matrix (ECM) component, which is modified post-translationally by glycosylation. This study aimed to characterize the glycoproteome of the aortic ECM from patients with MFS and relate it to aortopathy. Approach and Results: ECM extracts of aneurysmal ascending aortic tissue from patients with and without MFS were enriched for glycopeptides. Direct N-glycopeptide analysis by mass spectrometry identified 141 glycoforms from 47 glycosites within 35 glycoproteins in the human aortic ECM. Notably, MFAP4 (microfibril-associated glycoprotein 4) showed increased and more diverse N-glycosylation in patients with MFS compared with control patients. MFAP4 mRNA levels were markedly higher in MFS aortic tissue. MFAP4 protein levels were also increased at the predilection (convexity) site for ascending aorta aneurysm in bicuspid aortic valve patients, preceding aortic dilatation. In human aortic smooth muscle cells, MFAP4 mRNA expression was induced by TGF (transforming growth factor)-β1 whereas siRNA knockdown of MFAP4 decreased FBN1 but increased elastin expression. These ECM changes were accompanied by differential gene expression and protein abundance of proteases from ADAMTS (a disintegrin and metalloproteinase with thrombospondin motifs) family and their proteoglycan substrates, respectively. Finally, high plasma MFAP4 concentrations in patients with MFS were associated with a lower thoracic descending aorta distensibility and greater incidence of type B aortic dissection during 68 months follow-up.
Conclusions:
Our glycoproteomics analysis revealed that MFAP4 glycosylation is enhanced, as well as its expression during the advanced, aneurysmal stages of MFS compared with control aneurysms from patients without MFS.
Insights
Marfan syndrome (MFS) involves altered microfibril-associated glycoprotein 4 (MFAP4) glycosylation and expression in the aorta. These changes are linked to aortic disease progression and adverse cardiovascular events in MFS patients.
Area of Science:
- Biochemistry
- Genetics
- Cardiovascular Biology
Background:
- Marfan syndrome (MFS) results from FBN1 mutations, affecting the extracellular matrix (ECM).
- Glycosylation is a key post-translational modification of ECM components, including fibrillin-1.
- Aortic complications, particularly aneurysms, are a major concern in MFS patients.
Purpose of the Study:
- To characterize the aortic ECM glycoproteome in Marfan syndrome.
- To investigate the role of microfibril-associated glycoprotein 4 (MFAP4) in MFS-related aortopathy.
- To correlate MFAP4 alterations with disease severity and clinical outcomes.
Main Methods:
- Mass spectrometry-based glycopeptide analysis of aortic ECM extracts.
- Quantification of MFAP4 mRNA and protein levels in patient tissues.
- In vitro studies using human aortic smooth muscle cells.
- Analysis of plasma MFAP4 levels and association with aortic distensibility and dissection.
Main Results:
- MFAP4 exhibited increased and more diverse N-glycosylation in MFS aortic ECM.
- MFAP4 mRNA and protein levels were elevated in MFS aortic tissue, preceding dilatation.
- MFAP4 knockdown in vitro altered FBN1 and elastin expression, impacting ECM composition.
- High plasma MFAP4 correlated with reduced aortic distensibility and increased dissection risk.
Conclusions:
- Enhanced MFAP4 glycosylation and expression are characteristic of advanced MFS aortopathy.
- MFAP4 plays a significant role in the ECM remodeling associated with Marfan syndrome.
- Plasma MFAP4 may serve as a biomarker for MFS aortic disease severity and prognosis.
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