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Tracking autophagy during proliferation and differentiation of Trypanosoma brucei

Autophagy is a lysosome-dependent degradation mechanism that sequesters target cargo into autophagosomal vesicles. The Trypanosoma brucei genome contains apparent orthologues of several autophagy-related proteins including an ATG8 family. These ubiquitin-like proteins are required for autophagosome...

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Autores principales: Proto, William R., Jones, Nathaniel G., Coombs, Graham H., Mottram, Jeremy C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Shared Science Publishers OG 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5349162/
https://www.ncbi.nlm.nih.gov/pubmed/28357206
http://dx.doi.org/10.15698/mic2014.01.120
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author Proto, William R.
Jones, Nathaniel G.
Coombs, Graham H.
Mottram, Jeremy C.
author_facet Proto, William R.
Jones, Nathaniel G.
Coombs, Graham H.
Mottram, Jeremy C.
author_sort Proto, William R.
collection PubMed
description Autophagy is a lysosome-dependent degradation mechanism that sequesters target cargo into autophagosomal vesicles. The Trypanosoma brucei genome contains apparent orthologues of several autophagy-related proteins including an ATG8 family. These ubiquitin-like proteins are required for autophagosome membrane formation, but our studies show that ATG8.3 is atypical. To investigate the function of other ATG proteins, RNAi compatible T. brucei were modified to function as autophagy reporter lines by expressing only either YFP-ATG8.1 or YFP-ATG8.2. In the insect procyclic lifecycle stage, independent RNAi down-regulation of ATG3 or ATG7 generated autophagy-defective mutants and confirmed a pro-survival role for autophagy in the procyclic form nutrient starvation response. Similarly, RNAi depletion of ATG5 or ATG7 in the bloodstream form disrupted autophagy, but did not impede proliferation. Further characterisation showed bloodstream form autophagy mutants retain the capacity to undergo the complex cellular remodelling that occurs during differentiation to the procyclic form and are equally susceptible to dihydroxyacetone-induced cell death as wild type parasites, not supporting a role for autophagy in this cell death mechanism. The RNAi reporter system developed, which also identified TOR1 as a negative regulator controlling YFP-ATG8.2 but not YFP-ATG8.1 autophagosome formation, will enable further targeted analysis of the mechanisms and function of autophagy in the medically relevant bloodstream form of T. brucei.
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spelling pubmed-53491622017-03-29 Tracking autophagy during proliferation and differentiation of Trypanosoma brucei Proto, William R. Jones, Nathaniel G. Coombs, Graham H. Mottram, Jeremy C. Microb Cell Microbiology Autophagy is a lysosome-dependent degradation mechanism that sequesters target cargo into autophagosomal vesicles. The Trypanosoma brucei genome contains apparent orthologues of several autophagy-related proteins including an ATG8 family. These ubiquitin-like proteins are required for autophagosome membrane formation, but our studies show that ATG8.3 is atypical. To investigate the function of other ATG proteins, RNAi compatible T. brucei were modified to function as autophagy reporter lines by expressing only either YFP-ATG8.1 or YFP-ATG8.2. In the insect procyclic lifecycle stage, independent RNAi down-regulation of ATG3 or ATG7 generated autophagy-defective mutants and confirmed a pro-survival role for autophagy in the procyclic form nutrient starvation response. Similarly, RNAi depletion of ATG5 or ATG7 in the bloodstream form disrupted autophagy, but did not impede proliferation. Further characterisation showed bloodstream form autophagy mutants retain the capacity to undergo the complex cellular remodelling that occurs during differentiation to the procyclic form and are equally susceptible to dihydroxyacetone-induced cell death as wild type parasites, not supporting a role for autophagy in this cell death mechanism. The RNAi reporter system developed, which also identified TOR1 as a negative regulator controlling YFP-ATG8.2 but not YFP-ATG8.1 autophagosome formation, will enable further targeted analysis of the mechanisms and function of autophagy in the medically relevant bloodstream form of T. brucei. Shared Science Publishers OG 2014-01-06 /pmc/articles/PMC5349162/ /pubmed/28357206 http://dx.doi.org/10.15698/mic2014.01.120 Text en https://creativecommons.org/licenses/by-nc-sa/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Non Commercial No Derivatives License, which permits the copy and distribution of the material in any medium or format as well as to remix transform, and build upon the material, provided the original work is properly cited and the material not used for commercial purposes. If the material is remixed, transformed or build upon, the modified material can only be distributed under the same license as the original.
spellingShingle Microbiology
Proto, William R.
Jones, Nathaniel G.
Coombs, Graham H.
Mottram, Jeremy C.
Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title_full Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title_fullStr Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title_full_unstemmed Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title_short Tracking autophagy during proliferation and differentiation of Trypanosoma brucei
title_sort tracking autophagy during proliferation and differentiation of trypanosoma brucei
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5349162/
https://www.ncbi.nlm.nih.gov/pubmed/28357206
http://dx.doi.org/10.15698/mic2014.01.120
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