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PMID: 15283675 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

Evaluation of angiotensin-converting enzyme (ACE), its homologue ACE2 and neprilysin in angiotensin peptide metabolism.

The Biochemical journal ·Vol. 383 ·No. Pt 1 ·2004-10-01 ·Pages 45-51

Rice GI, Thomas DA, Grant PJ, Turner AJ, Hooper NM

Abstract

In the RAS (renin-angiotensin system), Ang I (angiotensin I) is cleaved by ACE (angiotensin-converting enzyme) to form Ang II (angiotensin II), which has effects on blood pressure, fluid and electrolyte homoeostasis. We have examined the kinetics of angiotensin peptide cleavage by full-length human ACE, the separate N- and C-domains of ACE, the homologue of ACE, ACE2, and NEP (neprilysin). The activity of the enzyme preparations was determined by active-site titrations using competitive tight-binding inhibitors and fluorogenic substrates. Ang I was effectively cleaved by NEP to Ang (1-7) (kcat/K(m) of 6.2x10(5) M(-1) x s(-1)), but was a poor substrate for ACE2 (kcat/K(m) of 3.3x10(4) M(-1) x s(-1)). Ang (1-9) was a better substrate for NEP than ACE (kcat/K(m) of 3.7x10(5) M(-1) x s(-1) compared with kcat/K(m) of 6.8x10(4) M(-1) x s(-1)). Ang II was cleaved efficiently by ACE2 to Ang (1-7) (kcat/K(m) of 2.2x10(6) M(-1) x s(-1)) and was cleaved by NEP (kcat/K(m) of 2.2x10(5) M(-1) x s(-1)) to several degradation products. In contrast with a previous report, Ang (1-7), like Ang I and Ang (1-9), was cleaved with a similar efficiency by both the N- and C-domains of ACE (kcat/K(m) of 3.6x10(5) M(-1) x s(-1) compared with kcat/K(m) of 3.3x10(5) M(-1) x s(-1)). The two active sites of ACE exhibited negative co-operativity when either Ang I or Ang (1-7) was the substrate. In addition, a range of ACE inhibitors failed to inhibit ACE2. These kinetic data highlight that the flux of peptides through the RAS is complex, with the levels of ACE, ACE2 and NEP dictating whether vasoconstriction or vasodilation will predominate.

MeSH Terms
Angiotensin I/metabolism Angiotensin II/metabolism Angiotensin-Converting Enzyme 2 Angiotensin-Converting Enzyme Inhibitors/pharmacology Angiotensins/metabolism Animals Binding Sites CHO Cells Carboxypeptidases/antagonists & inhibitors,metabolism Cricetinae Cricetulus Humans Hydrolysis Kinetics Neprilysin/metabolism Peptide Fragments/metabolism Peptidyl-Dipeptidase A/metabolism Substrate Specificity
Chemicals
Angiotensin-Converting Enzyme Inhibitors Angiotensins Peptide Fragments Angiotensin II Angiotensin I Carboxypeptidases Peptidyl-Dipeptidase A ACE2 protein, human Angiotensin-Converting Enzyme 2 Neprilysin angiotensin I (1-7)
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Rice Gillian I
Proteolysis Research Group, School of Biochemistry and Microbiology, University of Leeds, Leeds LS2 9JT, UK.
Thomas Daniel A
Grant Peter J
Turner Anthony J
Hooper Nigel M
References (50)
50 references, click to expand
  1. Pig kidney angiotensin converting enzyme. Purification and characterization of amphipathic and hydrophilic forms of the enzyme establishes C-terminal anchorage to the plasma membrane.
    Biochem J. 1987 Oct 1;247(1):85-93 PMID: 2825659
  2. Heart failure: recent advances in prevention and treatment.
    Rev Cardiovasc Med. 2000 Summer;1(1):25-33, 54 PMID: 12457149
  3. The angiotensin-converting enzyme gene family: genomics and pharmacology.
    Trends Pharmacol Sci. 2002 Apr;23(4):177-83 PMID: 11931993
  4. A pair of ACEs, for openers?
    Circ Res. 2000 Sep 29;87(7):523-5 PMID: 11009551
  5. Effects of the N-terminal sequence of ACE on the properties of its C-domain.
    Hypertension. 2000 Jul;36(1):116-21 PMID: 10904022
  6. A zinc metalloendopeptidase associated with dog pancreatic membranes.
    J Biol Chem. 1980 Mar 25;255(6):2227-30 PMID: 6987219
  7. An alternative strategy for the radioimmunoassay of angiotensin peptides using amino-terminal-directed antisera: measurement of eight angiotensin peptides in human plasma.
    J Hypertens. 1990 Aug;8(8):715-24 PMID: 2170511
  8. Vasopeptidase inhibition: a double-edged sword?
    Hypertension. 2003 Mar;41(3):383-9 PMID: 12623931
  9. Arg(1098) is critical for the chloride dependence of human angiotensin I-converting enzyme C-domain catalytic activity.
    J Biol Chem. 2001 Sep 7;276(36):33518-25 PMID: 11432860
  10. Products of angiotensin I hydrolysis by human cardiac enzymes potentiate bradykinin.
    J Mol Cell Cardiol. 2002 Dec;34(12):1569-76 PMID: 12505055
  11. Two ACEs and a heart.
    Nature. 2002 Jun 20;417(6891):799-802 PMID: 12075331
  12. Angiotensin-(1-7) formation in the intact human heart: in vivo dependence on angiotensin II as substrate.
    Circulation. 2003 Oct 7;108(14):1679-81 PMID: 14504185
  13. Measurement of protein using bicinchoninic acid.
    Anal Biochem. 1985 Oct;150(1):76-85 PMID: 3843705
  14. Expression and characterization of recombinant human angiotensin I-converting enzyme. Evidence for a C-terminal transmembrane anchor and for a proteolytic processing of the secreted recombinant and plasma enzymes.
    J Biol Chem. 1991 Mar 25;266(9):5540-6 PMID: 1848554
  15. Shedding of somatic angiotensin-converting enzyme (ACE) is inefficient compared with testis ACE despite cleavage at identical stalk sites.
    Biochem J. 2000 May 1;347 Pt 3:711-8 PMID: 10769174
  16. Increased angiotensin-(1-7)-forming activity in failing human heart ventricles: evidence for upregulation of the angiotensin-converting enzyme Homologue ACE2.
    Circulation. 2003 Oct 7;108(14):1707-12 PMID: 14504186
  17. Isolation of acein-2, a novel angiotensin-I-converting enzyme inhibitory peptide derived from a tryptic hydrolysate of human plasma.
    FEBS Lett. 2000 Feb 11;467(2-3):235-8 PMID: 10675545
  18. Essential hypertension : part II: treatment.
    Circulation. 2000 Feb 1;101(4):446-53 PMID: 10653838
  19. The angiotensin type 1 and type 2 receptor families. Siblings or cousins?
    Adv Exp Med Biol. 1995;377:193-215 PMID: 7484423
  20. Human kidney "enkephalinase", a neutral metalloendopeptidase that cleaves active peptides.
    Biochemistry. 1983 Jun 21;22(13):3265-71 PMID: 6349683
  21. Selective inhibition of the C-domain of angiotensin I converting enzyme by bradykinin potentiating peptides.
    Biochemistry. 2002 May 14;41(19):6065-71 PMID: 11994001
  22. The Renin-Angiotensin and fibrinolytic systems co-conspirators in the pathogenesis of ischemic cardiovascular disease.
    Trends Cardiovasc Med. 1996 Oct;6(7):239-43 PMID: 21232303
  23. The two homologous domains of human angiotensin I-converting enzyme are both catalytically active.
    J Biol Chem. 1991 May 15;266(14):9002-8 PMID: 1851160
  24. Regulation of local angiotensin II formation in the human heart in the presence of interstitial fluid. Inhibition of chymase by protease inhibitors of interstitial fluid and of angiotensin-converting enzyme by Ang-(1-9) formed by heart carboxypeptidase A-like activity.
    Circulation. 1997 Mar 18;95(6):1455-63 PMID: 9118513
  25. The kinetics of reversible tight-binding inhibition.
    Methods Enzymol. 1979;63:437-67 PMID: 502865
  26. Hydrolysis of biological peptides by human angiotensin-converting enzyme-related carboxypeptidase.
    J Biol Chem. 2002 Apr 26;277(17):14838-43 PMID: 11815627
  27. Roles of the two active sites of somatic angiotensin-converting enzyme in the cleavage of angiotensin I and bradykinin: insights from selective inhibitors.
    Circ Res. 2003 Jul 25;93(2):148-54 PMID: 12805239
  28. Inhibition by converting enzyme inhibitors of pig kidney aminopeptidase P.
    Hypertension. 1992 Mar;19(3):281-5 PMID: 1312513
  29. RXP 407, a phosphinic peptide, is a potent inhibitor of angiotensin I converting enzyme able to differentiate between its two active sites.
    Proc Natl Acad Sci U S A. 1999 Apr 13;96(8):4330-5 PMID: 10200262
  30. Neutral endopeptidase 24.11 (enkephalinase) and related regulators of peptide hormones.
    FASEB J. 1989 Feb;3(2):145-51 PMID: 2521610
  31. A human homolog of angiotensin-converting enzyme. Cloning and functional expression as a captopril-insensitive carboxypeptidase.
    J Biol Chem. 2000 Oct 27;275(43):33238-43 PMID: 10924499
  32. Molecular biology of the angiotensin I converting enzyme: I. Biochemistry and structure of the gene.
    J Hypertens. 1993 May;11(5):471-6 PMID: 8390518
  33. Cell-specific activity of neprilysin 2 isoforms and enzymic specificity compared with neprilysin.
    Biochem J. 2002 May 1;363(Pt 3):697-705 PMID: 11964170
  34. Structure of the angiotensin I-converting enzyme gene. Two alternate promoters correspond to evolutionary steps of a duplicated gene.
    J Biol Chem. 1991 Aug 15;266(23):15377-83 PMID: 1651327
  35. N-domain-specific substrate and C-domain inhibitors of angiotensin-converting enzyme: angiotensin-(1-7) and keto-ACE.
    Hypertension. 1998 Apr;31(4):912-7 PMID: 9535414
  36. Angiotensin-converting enzyme-2 (ACE2): comparative modeling of the active site, specificity requirements, and chloride dependence.
    Biochemistry. 2003 Nov 18;42(45):13185-92 PMID: 14609329
  37. Characteristics of angiotensin converting enzyme and its role in the metabolism of angiotensin I by endothelium.
    J Cardiovasc Pharmacol. 1986;8 Suppl 10:S52-7 PMID: 2438491
  38. Cell biology and genetics of angiotensin in cardiovascular disease.
    J Hypertens Suppl. 1994 Jul;12(4):S3-10 PMID: 7965271
  39. Angiotensin converting enzyme and angiotensin II type 1-receptor gene polymorphisms and risk of ischaemic heart disease.
    Cardiovasc Res. 1999 Mar;41(3):746-53 PMID: 10435047
  40. Inhibition of rabbit lung angiotensin-converting enzyme by N alpha-[(S)-1-carboxy-3-phenylpropyl]L-alanyl-L-proline and N alpha-[(S)-1-carboxy-3-phenylpropyl]L-lysyl-L-proline.
    J Biol Chem. 1985 Mar 10;260(5):2952-62 PMID: 2982845
  41. The neprilysin (NEP) family of zinc metalloendopeptidases: genomics and function.
    Bioessays. 2001 Mar;23(3):261-9 PMID: 11223883
  42. A novel angiotensin-converting enzyme-related carboxypeptidase (ACE2) converts angiotensin I to angiotensin 1-9.
    Circ Res. 2000 Sep 1;87(5):E1-9 PMID: 10969042
  43. Angiotensin-converting enzyme 2 is an essential regulator of heart function.
    Nature. 2002 Jun 20;417(6891):822-8 PMID: 12075344
  44. Two putative active centers in human angiotensin I-converting enzyme revealed by molecular cloning.
    Proc Natl Acad Sci U S A. 1988 Dec;85(24):9386-90 PMID: 2849100
  45. Hypothesis: ACE2 modulates blood pressure in the mammalian organism.
    Hypertension. 2003 Apr;41(4):871-3 PMID: 12654716
  46. Evidence for the negative cooperativity of the two active sites within bovine somatic angiotensin-converting enzyme.
    FEBS Lett. 2003 Aug 28;550(1-3):84-8 PMID: 12935891
  47. The role of ACE2 in cardiovascular physiology.
    Trends Cardiovasc Med. 2003 Apr;13(3):93-101 PMID: 12691672
  48. Purification of angiotensin-converting enzyme from rabbit lung and human plasma by affinity chromatography.
    J Biol Chem. 1985 Mar 10;260(5):2963-72 PMID: 2982846
  49. Counterregulatory actions of angiotensin-(1-7).
    Hypertension. 1997 Sep;30(3 Pt 2):535-41 PMID: 9322978
  50. Angiotensin 1-9 and 1-7 release in human heart: role of cathepsin A.
    Hypertension. 2002 May;39(5):976-81 PMID: 12019279
Article Info
Journal
The Biochemical journal
Abbr.
Biochem J
ISSN
1470-8728
Published
2004-10-01
Pages
45-51
Language
English
Region
England
NLM ID
2984726R
PMCID
PMC1134042
Subset
IM
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