Cargando…

Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management

Reactive oxygen and nitrogen species (ROS and RNS) produced by the phagocytic cells are the most common arsenals used to kill the intracellular pathogens. However, Leishmania, an intracellular pathogen, has evolved mechanisms to survive by counterbalancing the toxic oxygen metabolites produced durin...

Descripción completa

Detalles Bibliográficos
Autores principales: Sardar, Abul Hasan, Jardim, Armando, Ghosh, Ayan Kumar, Mandal, Abhishek, Das, Sushmita, Saini, Savita, Abhishek, Kumar, Singh, Ruby, Verma, Sudha, Kumar, Ajay, Das, Pradeep
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4777552/
https://www.ncbi.nlm.nih.gov/pubmed/26939071
http://dx.doi.org/10.1371/journal.pntd.0004308
_version_ 1782419324099624960
author Sardar, Abul Hasan
Jardim, Armando
Ghosh, Ayan Kumar
Mandal, Abhishek
Das, Sushmita
Saini, Savita
Abhishek, Kumar
Singh, Ruby
Verma, Sudha
Kumar, Ajay
Das, Pradeep
author_facet Sardar, Abul Hasan
Jardim, Armando
Ghosh, Ayan Kumar
Mandal, Abhishek
Das, Sushmita
Saini, Savita
Abhishek, Kumar
Singh, Ruby
Verma, Sudha
Kumar, Ajay
Das, Pradeep
author_sort Sardar, Abul Hasan
collection PubMed
description Reactive oxygen and nitrogen species (ROS and RNS) produced by the phagocytic cells are the most common arsenals used to kill the intracellular pathogens. However, Leishmania, an intracellular pathogen, has evolved mechanisms to survive by counterbalancing the toxic oxygen metabolites produced during infection. Polyamines, the major contributor in this anti-oxidant machinery, are largely dependent on the availability of L-arginine in the intracellular milieu. Argininosuccinate synthase (ASS) plays an important role as the rate-limiting step required for converting L-citrulline to argininosuccinate to provide arginine for an assortment of metabolic processes. Leishmania produce an active ASS enzyme, yet it has an incomplete urea cycle as it lacks an argininosuccinate lyase (ASL). There is no evidence for endogenous synthesis of L-arginine in Leishmania, which suggests that these parasites salvage L-arginine from extracellular milieu and makes the biological function of ASS and the production of argininosuccinate in Leishmania unclear. Our previous quantitative proteomic analysis of Leishmania promastigotes treated with sub-lethal doses of ROS, RNS, or a combination of both, led to the identification of several differentially expressed proteins which included ASS. To assess the involvement of ASS in stress management, a mutant cell line with greatly reduced ASS activity was created by a double-targeted gene replacement strategy in L. donovani promastigote. Interestingly, LdASS is encoded by three copies of allele, but Western blot analysis showed the third allele did not appear to express ASS. The free thiol levels in the mutant LdASS(-/-/+) cell line were decreased. Furthermore, the cell viability in L-arginine depleted medium was greatly attenuated on exposure to different stress environments and was adversely impacted in its ability to infect mice. These findings suggest that ASS is important for Leishmania donovani to counterbalance the stressed environments encountered during infection and can be targeted for chemotherapeutic purpose to treat visceral leishmaniasis.
format Online
Article
Text
id pubmed-4777552
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-47775522016-03-10 Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management Sardar, Abul Hasan Jardim, Armando Ghosh, Ayan Kumar Mandal, Abhishek Das, Sushmita Saini, Savita Abhishek, Kumar Singh, Ruby Verma, Sudha Kumar, Ajay Das, Pradeep PLoS Negl Trop Dis Research Article Reactive oxygen and nitrogen species (ROS and RNS) produced by the phagocytic cells are the most common arsenals used to kill the intracellular pathogens. However, Leishmania, an intracellular pathogen, has evolved mechanisms to survive by counterbalancing the toxic oxygen metabolites produced during infection. Polyamines, the major contributor in this anti-oxidant machinery, are largely dependent on the availability of L-arginine in the intracellular milieu. Argininosuccinate synthase (ASS) plays an important role as the rate-limiting step required for converting L-citrulline to argininosuccinate to provide arginine for an assortment of metabolic processes. Leishmania produce an active ASS enzyme, yet it has an incomplete urea cycle as it lacks an argininosuccinate lyase (ASL). There is no evidence for endogenous synthesis of L-arginine in Leishmania, which suggests that these parasites salvage L-arginine from extracellular milieu and makes the biological function of ASS and the production of argininosuccinate in Leishmania unclear. Our previous quantitative proteomic analysis of Leishmania promastigotes treated with sub-lethal doses of ROS, RNS, or a combination of both, led to the identification of several differentially expressed proteins which included ASS. To assess the involvement of ASS in stress management, a mutant cell line with greatly reduced ASS activity was created by a double-targeted gene replacement strategy in L. donovani promastigote. Interestingly, LdASS is encoded by three copies of allele, but Western blot analysis showed the third allele did not appear to express ASS. The free thiol levels in the mutant LdASS(-/-/+) cell line were decreased. Furthermore, the cell viability in L-arginine depleted medium was greatly attenuated on exposure to different stress environments and was adversely impacted in its ability to infect mice. These findings suggest that ASS is important for Leishmania donovani to counterbalance the stressed environments encountered during infection and can be targeted for chemotherapeutic purpose to treat visceral leishmaniasis. Public Library of Science 2016-03-03 /pmc/articles/PMC4777552/ /pubmed/26939071 http://dx.doi.org/10.1371/journal.pntd.0004308 Text en © 2016 Sardar 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Sardar, Abul Hasan
Jardim, Armando
Ghosh, Ayan Kumar
Mandal, Abhishek
Das, Sushmita
Saini, Savita
Abhishek, Kumar
Singh, Ruby
Verma, Sudha
Kumar, Ajay
Das, Pradeep
Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title_full Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title_fullStr Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title_full_unstemmed Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title_short Genetic Manipulation of Leishmania donovani to Explore the Involvement of Argininosuccinate Synthase in Oxidative Stress Management
title_sort genetic manipulation of leishmania donovani to explore the involvement of argininosuccinate synthase in oxidative stress management
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4777552/
https://www.ncbi.nlm.nih.gov/pubmed/26939071
http://dx.doi.org/10.1371/journal.pntd.0004308
work_keys_str_mv AT sardarabulhasan geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT jardimarmando geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT ghoshayankumar geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT mandalabhishek geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT dassushmita geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT sainisavita geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT abhishekkumar geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT singhruby geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT vermasudha geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT kumarajay geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement
AT daspradeep geneticmanipulationofleishmaniadonovanitoexploretheinvolvementofargininosuccinatesynthaseinoxidativestressmanagement