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Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation

Caspases are responsible for the execution of programmed cell death (apoptosis) and must undergo proteolytic activation, in response to apoptotic stimuli, to function. The mechanism of initiator caspase activation has been generalized by the induced proximity model, which is thought to drive dimeriz...

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Autores principales: Chao, Yang, Shiozaki, Eric N, Srinivasula, Srinivasa M, Rigotti, Daniel J, Fairman, Robert, Shi, Yigong
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1088972/
https://www.ncbi.nlm.nih.gov/pubmed/15941357
http://dx.doi.org/10.1371/journal.pbio.0030183
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author Chao, Yang
Shiozaki, Eric N
Srinivasula, Srinivasa M
Rigotti, Daniel J
Fairman, Robert
Shi, Yigong
author_facet Chao, Yang
Shiozaki, Eric N
Srinivasula, Srinivasa M
Rigotti, Daniel J
Fairman, Robert
Shi, Yigong
author_sort Chao, Yang
collection PubMed
description Caspases are responsible for the execution of programmed cell death (apoptosis) and must undergo proteolytic activation, in response to apoptotic stimuli, to function. The mechanism of initiator caspase activation has been generalized by the induced proximity model, which is thought to drive dimerization-mediated activation of caspases. The initiator caspase, caspase-9, exists predominantly as a monomer in solution. To examine the induced proximity model, we engineered a constitutively dimeric caspase-9 by relieving steric hindrance at the dimer interface. Crystal structure of the engineered caspase-9 closely resembles that of the wild-type (WT) caspase-9, including all relevant structural details and the asymmetric nature of two monomers. Compared to the WT caspase-9, this engineered dimer exhibits a higher level of catalytic activity in vitro and induces more efficient cell death when expressed. However, the catalytic activity of the dimeric caspase-9 is only a small fraction of that for the Apaf-1-activated caspase-9. Furthermore, in contrast to the WT caspase-9, the activity of the dimeric caspase-9 can no longer be significantly enhanced in an Apaf-1-dependent manner. These findings suggest that dimerization of caspase-9 may be qualitatively different from its activation by Apaf-1, and in conjunction with other evidence, posit an induced conformation model for the activation of initiator caspases.
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spelling pubmed-10889722005-05-10 Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation Chao, Yang Shiozaki, Eric N Srinivasula, Srinivasa M Rigotti, Daniel J Fairman, Robert Shi, Yigong PLoS Biol Research Article Caspases are responsible for the execution of programmed cell death (apoptosis) and must undergo proteolytic activation, in response to apoptotic stimuli, to function. The mechanism of initiator caspase activation has been generalized by the induced proximity model, which is thought to drive dimerization-mediated activation of caspases. The initiator caspase, caspase-9, exists predominantly as a monomer in solution. To examine the induced proximity model, we engineered a constitutively dimeric caspase-9 by relieving steric hindrance at the dimer interface. Crystal structure of the engineered caspase-9 closely resembles that of the wild-type (WT) caspase-9, including all relevant structural details and the asymmetric nature of two monomers. Compared to the WT caspase-9, this engineered dimer exhibits a higher level of catalytic activity in vitro and induces more efficient cell death when expressed. However, the catalytic activity of the dimeric caspase-9 is only a small fraction of that for the Apaf-1-activated caspase-9. Furthermore, in contrast to the WT caspase-9, the activity of the dimeric caspase-9 can no longer be significantly enhanced in an Apaf-1-dependent manner. These findings suggest that dimerization of caspase-9 may be qualitatively different from its activation by Apaf-1, and in conjunction with other evidence, posit an induced conformation model for the activation of initiator caspases. Public Library of Science 2005-06 2005-05-10 /pmc/articles/PMC1088972/ /pubmed/15941357 http://dx.doi.org/10.1371/journal.pbio.0030183 Text en Copyright: © 2005 Chao et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Chao, Yang
Shiozaki, Eric N
Srinivasula, Srinivasa M
Rigotti, Daniel J
Fairman, Robert
Shi, Yigong
Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title_full Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title_fullStr Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title_full_unstemmed Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title_short Engineering a Dimeric Caspase-9: A Re-evaluation of the Induced Proximity Model for Caspase Activation
title_sort engineering a dimeric caspase-9: a re-evaluation of the induced proximity model for caspase activation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1088972/
https://www.ncbi.nlm.nih.gov/pubmed/15941357
http://dx.doi.org/10.1371/journal.pbio.0030183
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