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Mechanism and specificity of the human paracaspase MALT1

The paracaspase domain of MALT1 (mucosa-associated lymphoid tissue lymphoma translocation protein 1) is a component of a gene translocation fused to the N-terminal domains of the cellular inhibitor of apoptosis protein 2. The paracaspase itself, commonly known as MALT1, participates in the NF-κB (nu...

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Autores principales: Hachmann, Janna, Snipas, Scott J., van Raam, Bram J., Cancino, Erik M., Houlihan, Emily J., Poreba, Marcin, Kasperkiewicz, Paulina, Drag, Marcin, Salvesen, Guy S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3304489/
https://www.ncbi.nlm.nih.gov/pubmed/22309193
http://dx.doi.org/10.1042/BJ20120035
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author Hachmann, Janna
Snipas, Scott J.
van Raam, Bram J.
Cancino, Erik M.
Houlihan, Emily J.
Poreba, Marcin
Kasperkiewicz, Paulina
Drag, Marcin
Salvesen, Guy S.
author_facet Hachmann, Janna
Snipas, Scott J.
van Raam, Bram J.
Cancino, Erik M.
Houlihan, Emily J.
Poreba, Marcin
Kasperkiewicz, Paulina
Drag, Marcin
Salvesen, Guy S.
author_sort Hachmann, Janna
collection PubMed
description The paracaspase domain of MALT1 (mucosa-associated lymphoid tissue lymphoma translocation protein 1) is a component of a gene translocation fused to the N-terminal domains of the cellular inhibitor of apoptosis protein 2. The paracaspase itself, commonly known as MALT1, participates in the NF-κB (nuclear factor κB) pathway, probably by driving survival signals downstream of the B-cell antigen receptor through MALT1 proteolytic activity. We have developed methods for the expression and purification of recombinant full-length MALT1 and its constituent catalytic domain alone. Both are activated by dimerization without cleavage, with a similar dimerization barrier to the distantly related cousins, the apical caspases. By using positional-scanning peptidyl substrate libraries we demonstrate that the activity and specificity of full-length MALT1 is recapitulated by the catalytic domain alone, showing a stringent requirement for cleaving after arginine, and with striking peptide length constraints for efficient hydrolysis. Rates of cleavage (k(cat)/K(m) values) of optimal peptidyl substrates are in the same order (10(3)–10(4) M(−1)·s(−1)) as for a putative target protein CYLD. Thus MALT1 has many similarities to caspase 8, even cleaving the putative target protein CYLD with comparable efficiencies, but with diametrically opposite primary substrate specificity.
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spelling pubmed-33044892012-03-16 Mechanism and specificity of the human paracaspase MALT1 Hachmann, Janna Snipas, Scott J. van Raam, Bram J. Cancino, Erik M. Houlihan, Emily J. Poreba, Marcin Kasperkiewicz, Paulina Drag, Marcin Salvesen, Guy S. Biochem J Research Article The paracaspase domain of MALT1 (mucosa-associated lymphoid tissue lymphoma translocation protein 1) is a component of a gene translocation fused to the N-terminal domains of the cellular inhibitor of apoptosis protein 2. The paracaspase itself, commonly known as MALT1, participates in the NF-κB (nuclear factor κB) pathway, probably by driving survival signals downstream of the B-cell antigen receptor through MALT1 proteolytic activity. We have developed methods for the expression and purification of recombinant full-length MALT1 and its constituent catalytic domain alone. Both are activated by dimerization without cleavage, with a similar dimerization barrier to the distantly related cousins, the apical caspases. By using positional-scanning peptidyl substrate libraries we demonstrate that the activity and specificity of full-length MALT1 is recapitulated by the catalytic domain alone, showing a stringent requirement for cleaving after arginine, and with striking peptide length constraints for efficient hydrolysis. Rates of cleavage (k(cat)/K(m) values) of optimal peptidyl substrates are in the same order (10(3)–10(4) M(−1)·s(−1)) as for a putative target protein CYLD. Thus MALT1 has many similarities to caspase 8, even cleaving the putative target protein CYLD with comparable efficiencies, but with diametrically opposite primary substrate specificity. Portland Press Ltd. 2012-03-14 2012-04-01 /pmc/articles/PMC3304489/ /pubmed/22309193 http://dx.doi.org/10.1042/BJ20120035 Text en © 2012 The Author(s) The author(s) has paid for this article to be freely available under the terms of the Creative Commons Attribution Non-Commercial Licence (http://creativecommons.org/licenses/by-nc/2.5/) which permits unrestricted non-commercial use, distribution and reproduction in any medium, provided the original work is properly cited. http://creativecommons.org/licenses/by-nc/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Hachmann, Janna
Snipas, Scott J.
van Raam, Bram J.
Cancino, Erik M.
Houlihan, Emily J.
Poreba, Marcin
Kasperkiewicz, Paulina
Drag, Marcin
Salvesen, Guy S.
Mechanism and specificity of the human paracaspase MALT1
title Mechanism and specificity of the human paracaspase MALT1
title_full Mechanism and specificity of the human paracaspase MALT1
title_fullStr Mechanism and specificity of the human paracaspase MALT1
title_full_unstemmed Mechanism and specificity of the human paracaspase MALT1
title_short Mechanism and specificity of the human paracaspase MALT1
title_sort mechanism and specificity of the human paracaspase malt1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3304489/
https://www.ncbi.nlm.nih.gov/pubmed/22309193
http://dx.doi.org/10.1042/BJ20120035
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