Cargando…

The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer

We previously described a novel suicide (or ‘cell fate control’) gene therapy enzyme/prodrug system based on an engineered variant of human thymidylate kinase (TMPK) that potentiates azidothymidine (AZT) activation. Delivery of a suicide gene sequence into tumors by lentiviral transduction embodies...

Descripción completa

Detalles Bibliográficos
Autores principales: Sato, Takeya, Neschadim, Anton, Lavie, Arnon, Yanagisawa, Teruyuki, Medin, Jeffrey A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3806853/
https://www.ncbi.nlm.nih.gov/pubmed/24194950
http://dx.doi.org/10.1371/journal.pone.0078711
_version_ 1782288447784878080
author Sato, Takeya
Neschadim, Anton
Lavie, Arnon
Yanagisawa, Teruyuki
Medin, Jeffrey A.
author_facet Sato, Takeya
Neschadim, Anton
Lavie, Arnon
Yanagisawa, Teruyuki
Medin, Jeffrey A.
author_sort Sato, Takeya
collection PubMed
description We previously described a novel suicide (or ‘cell fate control’) gene therapy enzyme/prodrug system based on an engineered variant of human thymidylate kinase (TMPK) that potentiates azidothymidine (AZT) activation. Delivery of a suicide gene sequence into tumors by lentiviral transduction embodies a cancer gene therapy that could employ bystander cell killing as a mechanism driving significant tumor regression in vivo. Here we present evidence of a significant bystander cell killing in vitro and in vivo mediated by the TMPK/AZT suicide gene axis that is reliant on the formation of functional gap-junctional intercellular communications (GJICs). Potentiation of AZT activation by the engineered TMPK expressed in the human prostate cancer cell line, PC-3, resulted in effective bystander killing of PC-3 cells lacking TMPK expression – an effect that could be blocked by the GJIC inhibitor, carbenoxolone. Although GJICs are mainly formed by connexins, a new family of GJIC molecules designated pannexins has been recently identified. PC-3 cells expressed both connexin43 (Cx43) and Pannexin1 (Panx1), but Panx1 expression predominated at the plasma membrane, whereas Cx43 expression was primarily localized to the cytosol. The contribution of bystander effects to the reduction of solid tumor xenografts established by the PC-3 cell line was evaluated in an animal model. We demonstrate the contribution of bystander cell killing to tumor regression in a xenograft model relying on the delivery of expression of the TMPK suicide gene into tumors via direct intratumoral injection of recombinant therapeutic lentivirus. Taken together, our data underscore that the TMPK/AZT enzyme-prodrug axis can be effectively utilized in suicide gene therapy of solid tumors, wherein significant tumor regression can be achieved via bystander effects mediated by GJICs.
format Online
Article
Text
id pubmed-3806853
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-38068532013-11-05 The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer Sato, Takeya Neschadim, Anton Lavie, Arnon Yanagisawa, Teruyuki Medin, Jeffrey A. PLoS One Research Article We previously described a novel suicide (or ‘cell fate control’) gene therapy enzyme/prodrug system based on an engineered variant of human thymidylate kinase (TMPK) that potentiates azidothymidine (AZT) activation. Delivery of a suicide gene sequence into tumors by lentiviral transduction embodies a cancer gene therapy that could employ bystander cell killing as a mechanism driving significant tumor regression in vivo. Here we present evidence of a significant bystander cell killing in vitro and in vivo mediated by the TMPK/AZT suicide gene axis that is reliant on the formation of functional gap-junctional intercellular communications (GJICs). Potentiation of AZT activation by the engineered TMPK expressed in the human prostate cancer cell line, PC-3, resulted in effective bystander killing of PC-3 cells lacking TMPK expression – an effect that could be blocked by the GJIC inhibitor, carbenoxolone. Although GJICs are mainly formed by connexins, a new family of GJIC molecules designated pannexins has been recently identified. PC-3 cells expressed both connexin43 (Cx43) and Pannexin1 (Panx1), but Panx1 expression predominated at the plasma membrane, whereas Cx43 expression was primarily localized to the cytosol. The contribution of bystander effects to the reduction of solid tumor xenografts established by the PC-3 cell line was evaluated in an animal model. We demonstrate the contribution of bystander cell killing to tumor regression in a xenograft model relying on the delivery of expression of the TMPK suicide gene into tumors via direct intratumoral injection of recombinant therapeutic lentivirus. Taken together, our data underscore that the TMPK/AZT enzyme-prodrug axis can be effectively utilized in suicide gene therapy of solid tumors, wherein significant tumor regression can be achieved via bystander effects mediated by GJICs. Public Library of Science 2013-10-23 /pmc/articles/PMC3806853/ /pubmed/24194950 http://dx.doi.org/10.1371/journal.pone.0078711 Text en © 2013 Sato 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
Sato, Takeya
Neschadim, Anton
Lavie, Arnon
Yanagisawa, Teruyuki
Medin, Jeffrey A.
The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title_full The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title_fullStr The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title_full_unstemmed The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title_short The Engineered Thymidylate Kinase (TMPK)/AZT Enzyme-Prodrug Axis Offers Efficient Bystander Cell Killing for Suicide Gene Therapy of Cancer
title_sort engineered thymidylate kinase (tmpk)/azt enzyme-prodrug axis offers efficient bystander cell killing for suicide gene therapy of cancer
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3806853/
https://www.ncbi.nlm.nih.gov/pubmed/24194950
http://dx.doi.org/10.1371/journal.pone.0078711
work_keys_str_mv AT satotakeya theengineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT neschadimanton theengineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT laviearnon theengineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT yanagisawateruyuki theengineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT medinjeffreya theengineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT satotakeya engineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT neschadimanton engineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT laviearnon engineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT yanagisawateruyuki engineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer
AT medinjeffreya engineeredthymidylatekinasetmpkaztenzymeprodrugaxisoffersefficientbystandercellkillingforsuicidegenetherapyofcancer