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Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation

In the intrinsic death pathway, cytochrome C (CC) released from mitochondria to the cytosol triggers Apaf-1 apoptosome formation and subsequent caspase activation. This process can be recapitulated using recombinant Apaf-1 and CC in the presence of nucleotides ATP or dATP [(d)ATP] or using fresh cyt...

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Autores principales: Zhang, Honghao, Gogada, Raghu, Yadav, Neelu, Lella, Ravi K., Badeaux, Mark, Ayres, Mary, Gandhi, Varsha, Tang, Dean G., Chandra, Dhyan
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3029307/
https://www.ncbi.nlm.nih.gov/pubmed/21297999
http://dx.doi.org/10.1371/journal.pone.0016379
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author Zhang, Honghao
Gogada, Raghu
Yadav, Neelu
Lella, Ravi K.
Badeaux, Mark
Ayres, Mary
Gandhi, Varsha
Tang, Dean G.
Chandra, Dhyan
author_facet Zhang, Honghao
Gogada, Raghu
Yadav, Neelu
Lella, Ravi K.
Badeaux, Mark
Ayres, Mary
Gandhi, Varsha
Tang, Dean G.
Chandra, Dhyan
author_sort Zhang, Honghao
collection PubMed
description In the intrinsic death pathway, cytochrome C (CC) released from mitochondria to the cytosol triggers Apaf-1 apoptosome formation and subsequent caspase activation. This process can be recapitulated using recombinant Apaf-1 and CC in the presence of nucleotides ATP or dATP [(d)ATP] or using fresh cytosol and CC without the need of exogenous nucleotides. Surprisingly, we found that stored cytosols failed to support CC-initiated caspase activation. Storage of cytosols at different temperatures led to the loss of all (deoxy)nucleotides including (d)ATP. Addition of (d)ATP to such stored cytosols partially restored CC-initiated caspase activation. Nevertheless, CC could not induce complete caspase-9/3 activation in stored cytosols, even with the addition of (d)ATP, despite robust Apaf-1 oligomerization. The Apaf-1 apoptosome, which functions as a proteolytic-based molecular timer appeared to be defective as auto-processing of recruited procaspase-9 was inhibited. Far Western analysis revealed that procaspase-9 directly interacted with Apaf-1 and this interaction was reduced in the presence of physiological levels of ATP. Co-incubation of recombinant Apaf-1 and procaspase-9 prior to CC and ATP addition inhibited CC-induced caspase activity. These findings suggest that in the absence of nucleotide such as ATP, direct association of procaspase-9 with Apaf-1 leads to defective molecular timer, and thus, inhibits apoptosome-mediated caspase activation. Altogether, our results provide novel insight on nucleotide regulation of apoptosome.
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spelling pubmed-30293072011-02-04 Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation Zhang, Honghao Gogada, Raghu Yadav, Neelu Lella, Ravi K. Badeaux, Mark Ayres, Mary Gandhi, Varsha Tang, Dean G. Chandra, Dhyan PLoS One Research Article In the intrinsic death pathway, cytochrome C (CC) released from mitochondria to the cytosol triggers Apaf-1 apoptosome formation and subsequent caspase activation. This process can be recapitulated using recombinant Apaf-1 and CC in the presence of nucleotides ATP or dATP [(d)ATP] or using fresh cytosol and CC without the need of exogenous nucleotides. Surprisingly, we found that stored cytosols failed to support CC-initiated caspase activation. Storage of cytosols at different temperatures led to the loss of all (deoxy)nucleotides including (d)ATP. Addition of (d)ATP to such stored cytosols partially restored CC-initiated caspase activation. Nevertheless, CC could not induce complete caspase-9/3 activation in stored cytosols, even with the addition of (d)ATP, despite robust Apaf-1 oligomerization. The Apaf-1 apoptosome, which functions as a proteolytic-based molecular timer appeared to be defective as auto-processing of recruited procaspase-9 was inhibited. Far Western analysis revealed that procaspase-9 directly interacted with Apaf-1 and this interaction was reduced in the presence of physiological levels of ATP. Co-incubation of recombinant Apaf-1 and procaspase-9 prior to CC and ATP addition inhibited CC-induced caspase activity. These findings suggest that in the absence of nucleotide such as ATP, direct association of procaspase-9 with Apaf-1 leads to defective molecular timer, and thus, inhibits apoptosome-mediated caspase activation. Altogether, our results provide novel insight on nucleotide regulation of apoptosome. Public Library of Science 2011-01-27 /pmc/articles/PMC3029307/ /pubmed/21297999 http://dx.doi.org/10.1371/journal.pone.0016379 Text en Zhang 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
Zhang, Honghao
Gogada, Raghu
Yadav, Neelu
Lella, Ravi K.
Badeaux, Mark
Ayres, Mary
Gandhi, Varsha
Tang, Dean G.
Chandra, Dhyan
Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title_full Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title_fullStr Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title_full_unstemmed Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title_short Defective Molecular Timer in the Absence of Nucleotides Leads to Inefficient Caspase Activation
title_sort defective molecular timer in the absence of nucleotides leads to inefficient caspase activation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3029307/
https://www.ncbi.nlm.nih.gov/pubmed/21297999
http://dx.doi.org/10.1371/journal.pone.0016379
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