Epitope-Dependent Blocking of the Angiotensin-Converting Enzyme Dimerization by Monoclonal Antibodies to the N-Terminal Domain of ACE: Possible Link of ACE Dimerization and Shedding from the Cell Surface
- 23 May 2003
- journal article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 42 (23) , 6965-6976
- https://doi.org/10.1021/bi034645y
Abstract
In a biomembrane modeling system, reverse micelles, somatic ACE forms dimers via carbohydrate-mediated interaction, providing evidence for the existence of a carbohydrate-recognizing domain on the ACE molecule. We localized this putative region on the N-domain of ACE using monoclonal antibodies (mAbs) to seven different epitopes of ACE. Two mAbs, 9B9 and 3G8, directed to distinct, but overlapping, epitopes of the N-domain of ACE shielded the CRD. Only "simple" ACE-antibody complexes were found in the system. Five mAbs allowed the formation of "double" antibody-ACE-ACE-antibody complexes via carbohydrate-mediated interactions. The results were confirmed using the ACE N- and C-domains. Testicular ACE was unable to form carbohydrate-mediated ACE dimers in the reverse micelles, while the N-domain of ACE, obtained by limited proteolysis of the parent full-length ACE, retained the ability to form dimers. Furthermore, mAb 3G8, which blocked ACE dimerization in micelles, significantly inhibited ACE shedding from the surface of ACE-expressing cells. Galactose prevented ACE dimerization in reverse micelles and also affected antibody-induced ACE shedding in an epitope-dependent manner. Restricted glycosylation of somatic ACE, obtained by the treatment of CHO-ACE cells with the glucosidase inhibitor N-butyldeoxynojirimycin, significantly increased the rate of basal ACE shedding and altered antibody-induced ACE shedding. A chemical cross-linking approach was used to show that ACE is present (at least in part) as noncovalently linked dimers on the surface of CHO-ACE cells. These results suggest a possible link between putative ACE dimerization on the cell surface and the proteolytic cleavage (shedding) of ACE.Keywords
This publication has 22 references indexed in Scilit:
- Epitope-specific antibody-induced cleavage of angiotensin-converting enzyme from the cell surfaceBiochemical Journal, 2002
- Roles of the juxtamembrane and extracellular domains of angiotensin-converting enzyme in ectodomain sheddingBiochemical Journal, 2001
- Physiological Non-equivalence of the Two Isoforms of Angiotensin-converting EnzymeJournal of Biological Chemistry, 2000
- The α-Helical Domain Near the Amino Terminus Is Essential for Dimerization of Vascular Endothelial Growth FactorPublished by Elsevier ,1998
- Limited Proteolysis of Human Kidney Angiotensin-Converting Enzyme and Generation of Catalytically Active N- and C-Terminal DomainsBiochemical and Biophysical Research Communications, 1997
- Membrane protein secretasesBiochemical Journal, 1997
- The Hemoregulatory Peptide N-Acetyl-Ser-Asp-Lys-Pro Is a Natural and Specific Substrate of the N-terminal Active Site of Human Angiotensin-converting EnzymeJournal of Biological Chemistry, 1995
- Micellar enzymology: its relation to membranologyBiochimica et Biophysica Acta (BBA) - Biomembranes, 1989
- Pig kidney angiotensin converting enzyme. Purification and characterization of amphipathic and hydrophilic forms of the enzyme establishes C-terminal anchorage to the plasma membraneBiochemical Journal, 1987
- Ultracentrifugation of reversed micelles in organic solvent: New approach to determination of molecular weight and effective size of proteinsAnalytical Biochemistry, 1981