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      ACE for all – a molecular perspective

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          Abstract

          Angiotensin-I converting enzyme (ACE, EC 3.4.15.1) is a zinc dependent dipeptidyl carboxypeptidase with an essential role in mammalian blood pressure regulation as part of the renin-angiotensin aldosterone system (RAAS). As such, it has long been targeted in the treatment of hypertension through the use of ACE inhibitors. Although ACE has been studied since the 1950s, only recently have the full range of functions of this enzyme begun to truly be appreciated. ACE homologues have been found in a host of other organisms, and are now known to be conserved in insects. Insect ACE homologues typically share over 30 % amino acid sequence identity with human ACE. Given that insects lack a mammalian type circulatory system, they must have crucial roles in other physiological processes. The first ACE crystal structures were reported during the last decade and have enabled these enzymes to be studied from an entirely different perspective. Here we review many of these key developments and the implications that they have had on our understanding of the diverse functions of these enzymes. Specifically, we consider how structural information is being used in the design of a new generation of ACE inhibitors with increased specificity, and how the structures of ACE homologues are related to their functions. The Anopheles gambiae genome is predicted to code for ten ACE homologues, more than any genome studied so far. We have modelled the active sites of some of these as yet uncharacterised enzymes to try and infer more about their potential roles at the molecular level.

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          Most cited references10

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          The angiotensin-converting enzyme gene family: genomics and pharmacology.

          Modulation of the renin-angiotensin system (RAS), and particularly inhibition of angiotensin-converting enzyme (ACE), a zinc metallopeptidase, has long been a prime strategy in the treatment of hypertension. However, other angiotensin metabolites are gaining in importance as our understanding of the RAS increases. Recently, genomic approaches have identified the first human homologue of ACE, termed ACEH (or ACE2). ACEH differs in specificity and physiological roles from ACE, which opens a potential new area for discovery biology. The gene that encodes collectrin, a homologue of ACEH, is upregulated in response to renal injury. Collectrin lacks a catalytic domain, which indicates that there is more to ACE-like function than simple peptide hydrolysis.
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            Spectrophotometric assay and properties of the angiotensin-converting enzyme of rabbit lung.

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              Drugs targeting the renin-angiotensin-aldosterone system.

              Effective antihypertensive therapy has made a major contribution to the reductions in the morbidity and mortality of cardiovascular disease that have been achieved since the 1960s. However, blood-pressure control with conventional drugs has not succeeded in reducing cardiovascular disease risks to levels seen in normotensive persons. Drugs that inhibit or antagonize components of the renin-angiotensin-aldosterone system are addressing this deficiency by targeting both blood pressure and related structural and functional abnormalities of the heart and blood vessels, thus preventing target-organ damage and related cardiovascular events.
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                Author and article information

                Contributors
                +44-1225-386238 , bsskra@bath.ac.uk
                Journal
                J Cell Commun Signal
                J Cell Commun Signal
                Journal of Cell Communication and Signaling
                Springer Netherlands (Dordrecht )
                1873-9601
                1873-961X
                16 July 2014
                September 2014
                : 8
                : 3
                : 195-210
                Affiliations
                Department of Biology and Biochemistry, University of Bath, Claverton Down, Bath, BA2 7AY UK
                Article
                236
                10.1007/s12079-014-0236-8
                4165820
                25027949
                7a549e65-c804-4b4b-9ce3-f1627bdab865
                © The International CCN Society 2014
                History
                : 17 April 2014
                : 12 June 2014
                Categories
                Review
                Custom metadata
                © The International CCN Society 2014

                Cell biology
                angiotensin-i converting enzyme (ace),molecular structure,drosophila melanogaster,anopheles gambiae,inhibitor design

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