Angiotensin-Converting Enzyme: Difference between revisions

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<StructureSection load='1o8a' size='450' side='right' scene='Angiotensin-Converting_Enzyme/Ace_opening/1' caption=''>
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[[Image: 1o8a2.png|320px|left|thumb| Crystal Structure of Human tACE, [[1o8a]]]]
[[Image: 1o8a2.png|320px|left|thumb| Crystal Structure of Human tACE, [[1o8a]]]]
{{STRUCTURE_1o8a| right| PDB=1o8a  | SCENE=Angiotensin-Converting_Enzyme/Ace_opening/1 |CAPTION= Human tACE complex with Zn+2 (grey) and Cl- (yellow) ions, [[1o8a]] }}
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[[Angiotensin-Converting Enzyme]] (ACE) is both an exopeptidase and endopeptindase first discovered by Skeggs et al. in 1956. <ref>Skeggs, L. T., Dorer, F. E., Kahn, J. R., Lentz, K. E., Levin, M. (1981) Experimental renal hypertension: the discovery of the Renin-Angiotensin system. Soffer, R. eds. Biochemical Regulation of Blood Pressure ,3-38 John Wiley & Sons, Inc. Hoboken.</ref> ACE is a zinc- and chloride-dependent metallopeptidase that is responsible for the metabolism of key biologically active peptides, namely Angiotensin I and Bradykinin. These two peptides play a critical role in maintaining appropriate blood pressure in the human body along with a host of other homeostatic circulatory functions. ACE catalyzes the conversion of the decapeptide Angiostensin I to the octapeptide Angiostensin II. Due to its critical role in the Renin-Angiotensin-Aldosterone System (RAAS), ACE has been targeted by a number of pharmaceutical compounds to treat hypertension, diabetic nephropathy, and renal failure. <ref>PMID:10780101</ref>
[[Angiotensin-Converting Enzyme]] (ACE) is both an exopeptidase and endopeptindase first discovered by Skeggs et al. in 1956. <ref>Skeggs, L. T., Dorer, F. E., Kahn, J. R., Lentz, K. E., Levin, M. (1981) Experimental renal hypertension: the discovery of the Renin-Angiotensin system. Soffer, R. eds. Biochemical Regulation of Blood Pressure ,3-38 John Wiley & Sons, Inc. Hoboken.</ref> ACE is a zinc- and chloride-dependent metallopeptidase that is responsible for the metabolism of key biologically active peptides, namely Angiotensin I and Bradykinin. These two peptides play a critical role in maintaining appropriate blood pressure in the human body along with a host of other homeostatic circulatory functions. ACE catalyzes the conversion of the decapeptide Angiostensin I to the octapeptide Angiostensin II. Due to its critical role in the Renin-Angiotensin-Aldosterone System (RAAS), ACE has been targeted by a number of pharmaceutical compounds to treat hypertension, diabetic nephropathy, and renal failure. <ref>PMID:10780101</ref>
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<StructureSection load='1o8a' size='450' side='right' scene='Angiotensin-Converting_Enzyme/Ace_opening/1' caption=''> __NOTOC__
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==Structural Analysis, Mechanism, & Activation==
==Structural Analysis, Mechanism, & Activation==



Revision as of 07:38, 15 September 2013

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3D Structures of Angiotensin-Converting Enzyme

Updated on 15-September-2013

1o8a – hANCE - human
Renin, 1n9u, 1n9v – hANCE (mutant)
1o86 – hANCE N domain
1uzf - hANCE N domain+lisinopril
Capoten - hANCE +lisinopril
Altace - hANCE + captopril analog
1o86, Prinivil, Lotensin, Lisinopril, Captopril – hANCE 2 fragment+spike glycoprotein
Enalaprilat – hANCE+LISW
1uze, Ramipril – hANCE+ketone inhibitor
Benazepril - hANCE+phosphinic inhibitor
Perindopril, Trandolapril - hANCE N domain + phosphinic inhibitor
3d0g, 1uzf - hANCE+anti-hypertensive drug
4aph – hANCE + angiotensin II
4apj – hANCE + bradykinin-potentiating peptide B
2xhm – DmANCE+K26 – Drosophila melanogaster
2x8y – DmANCE
2x8z, 2x90, 2x91, 2x92, 2x93, 2x94, 2x95, 2x96, 2x97, 1j36, 1j37, 1j38 – DmANCE+anti-hypertensive drug
3zqz – DmANCE + captopril analog
4aa1 – DmANCE + angiotensin II
4aa2, 4asr – DmANCE + bradykinin-potentiating peptide B
4asq – DmANCE + bradykinin peptide

Additional Resources

For Additional Information, see: Hypertension & Congestive Heart Failure

References


Proteopedia Page Contributors and Editors (what is this?)

David Canner, Cristina Murga, Alexander Berchansky, Michal Harel