Literature DB >> 18576678

Mapping of conformational mAb epitopes to the C domain of human angiotensin I-converting enzyme.

Irina A Naperova1, Irina V Balyasnikova, David E Schwartz, Jean Watermeyer, Edward D Sturrock, Olga A Kost, Sergei M Danilov.   

Abstract

Angiotensin I-converting enzyme (ACE, CD143) has two homologous domains, each having a functional active site. Fine epitope mapping of 8 mAbs to the C-terminal domain of human ACE was carried out using plate precipitation assays, mAbs' cross-reactivity with ACE from different species, site-directed mutagenesis, and antigen- and cell-based ELISAs. Almost all epitopes contained potential glycosylation sites. Therefore, these mAbs could be used to distinguish different glycoforms of ACE expressed in different tissues or cell lines. mAbs 1B8 and 3F10 were especially sensitive to the composition of the N-glycan attached to Asn 731; mAbs 2H9 and 3F11 detected the glycosylation status of the glycan attached to Asn 685 and perhaps Asn1162; and mAb 1E10 and 4E3 recognized the glycan on Asn 666. The epitope of mAb 1E10 is located at the N-terminal end of the C domain, close to the unique 36 amino acid residues of testicular ACE (tACE). Moreover, it binds preferentially to tACE on the surface of human spermatozoa and thus may find application as an immunocontraceptive drug. mAb 4E3 was the best mAb for quantification of ACE-expressing somatic cells by flow cytometry. In contrast to the other mAbs, binding of mAb 2B11 was not markedly influenced by ACE glycosylation or by the cell culture conditions or cell types, making this mAb a suitable reference antibody. Epitope mapping of these C-domain mAbs, particularly those that compete with N-domain mAbs, enabled us to propose a model of the two-domain somatic ACE that might explain the interdomain cooperativity. Our findings demonstrated that mAbs directed to conformational epitopes on the C-terminal domain of human ACE are very useful for the detection of testicular and somatic ACE, quantification using flow cytometry and ELISA assays, and for the study of different aspects of ACE biology.

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Year:  2008        PMID: 18576678     DOI: 10.1021/pr800142w

Source DB:  PubMed          Journal:  J Proteome Res        ISSN: 1535-3893            Impact factor:   4.466


  16 in total

Review 1.  Interacting cogs in the machinery of the renin angiotensin system.

Authors:  Lizelle Lubbe; Edward D Sturrock
Journal:  Biophys Rev       Date:  2019-06-08

2.  ACE phenotyping in Gaucher disease.

Authors:  Sergei M Danilov; Victoria E Tikhomirova; Roman Metzger; Irina A Naperova; Tatiana M Bukina; Ozlem Goker-Alpan; Nahid Tayebi; Nurshat M Gayfullin; David E Schwartz; Larisa M Samokhodskaya; Olga A Kost; Ellen Sidransky
Journal:  Mol Genet Metab       Date:  2018-02-17       Impact factor: 4.797

Review 3.  A modern understanding of the traditional and nontraditional biological functions of angiotensin-converting enzyme.

Authors:  Kenneth E Bernstein; Frank S Ong; Wendell-Lamar B Blackwell; Kandarp H Shah; Jorge F Giani; Romer A Gonzalez-Villalobos; Xiao Z Shen; Sebastien Fuchs; Rhian M Touyz
Journal:  Pharmacol Rev       Date:  2012-12-20       Impact factor: 25.468

4.  Angiotensin I-converting enzyme Gln1069Arg mutation impairs trafficking to the cell surface resulting in selective denaturation of the C-domain.

Authors:  Sergei M Danilov; Sergey Kalinin; Zhenlong Chen; Elena I Vinokour; Andrew B Nesterovitch; David E Schwartz; Olivier Gribouval; Marie-Claire Gubler; Richard D Minshall
Journal:  PLoS One       Date:  2010-05-03       Impact factor: 3.240

5.  Conformational changes of blood ACE in chronic uremia.

Authors:  Maxim N Petrov; Valery Y Shilo; Alexandr V Tarasov; David E Schwartz; Joe G N Garcia; Olga A Kost; Sergei M Danilov
Journal:  PLoS One       Date:  2012-11-16       Impact factor: 3.240

6.  An angiotensin I-converting enzyme mutation (Y465D) causes a dramatic increase in blood ACE via accelerated ACE shedding.

Authors:  Sergei M Danilov; Kerry Gordon; Andrew B Nesterovitch; Heinrich Lünsdorf; Zhenlong Chen; Maricela Castellon; Isolda A Popova; Sergey Kalinin; Emma Mendonca; Pavel A Petukhov; David E Schwartz; Richard D Minshall; Edward D Sturrock
Journal:  PLoS One       Date:  2011-10-05       Impact factor: 3.240

7.  Collaborative enhancement of antibody binding to distinct PECAM-1 epitopes modulates endothelial targeting.

Authors:  Ann-Marie Chacko; Madhura Nayak; Colin F Greineder; Horace M Delisser; Vladimir R Muzykantov
Journal:  PLoS One       Date:  2012-04-13       Impact factor: 3.240

8.  Epitope mapping of novel monoclonal antibodies to human angiotensin I-converting enzyme.

Authors:  Isolda A Popova; Lizelle Lubbe; Pavel A Petukhov; Gavriil F Kalantarov; Ilya N Trakht; Elena R Chernykh; Olga Y Leplina; Alex V Lyubimov; Joe G N Garcia; Steven M Dudek; Edward D Sturrock; Sergei M Danilov
Journal:  Protein Sci       Date:  2021-05-11       Impact factor: 6.993

9.  A novel angiotensin I-converting enzyme mutation (S333W) impairs N-domain enzymatic cleavage of the anti-fibrotic peptide, AcSDKP.

Authors:  Sergei M Danilov; Michael S Wade; Sylva L Schwager; Ross G Douglas; Andrew B Nesterovitch; Isolda A Popova; Kyle D Hogarth; Nakul Bhardwaj; David E Schwartz; Edward D Sturrock; Joe G N Garcia
Journal:  PLoS One       Date:  2014-02-04       Impact factor: 3.240

10.  Tissue Specificity of Human Angiotensin I-Converting Enzyme.

Authors:  Olga V Kryukova; Victoria E Tikhomirova; Elena Z Golukhova; Valery V Evdokimov; Gavreel F Kalantarov; Ilya N Trakht; David E Schwartz; Randal O Dull; Alexander V Gusakov; Igor V Uporov; Olga A Kost; Sergei M Danilov
Journal:  PLoS One       Date:  2015-11-23       Impact factor: 3.240

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