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Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia

Despite the high cure rates in childhood acute lymphoblastic leukemia (ALL), relapsed ALL remains a significant clinical problem. Genetic heterogeneity does not adequately explain variations in response to therapy. The chemoprotective tumor microenvironment may additionally contribute to disease rec...

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Autores principales: Liu, Jizhong, Masurekar, Ashish, Johnson, Suzanne, Chakraborty, Sohini, Griffiths, John, Smith, Duncan, Alexander, Seema, Dempsey, Clare, Parker, Catriona, Harrison, Stephanie, Li, Yaoyong, Miller, Crispin, Di, Yujun, Ghosh, Zhumur, Krishnan, Shekhar, Saha, Vaskar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4767490/
https://www.ncbi.nlm.nih.gov/pubmed/26474278
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author Liu, Jizhong
Masurekar, Ashish
Johnson, Suzanne
Chakraborty, Sohini
Griffiths, John
Smith, Duncan
Alexander, Seema
Dempsey, Clare
Parker, Catriona
Harrison, Stephanie
Li, Yaoyong
Miller, Crispin
Di, Yujun
Ghosh, Zhumur
Krishnan, Shekhar
Saha, Vaskar
author_facet Liu, Jizhong
Masurekar, Ashish
Johnson, Suzanne
Chakraborty, Sohini
Griffiths, John
Smith, Duncan
Alexander, Seema
Dempsey, Clare
Parker, Catriona
Harrison, Stephanie
Li, Yaoyong
Miller, Crispin
Di, Yujun
Ghosh, Zhumur
Krishnan, Shekhar
Saha, Vaskar
author_sort Liu, Jizhong
collection PubMed
description Despite the high cure rates in childhood acute lymphoblastic leukemia (ALL), relapsed ALL remains a significant clinical problem. Genetic heterogeneity does not adequately explain variations in response to therapy. The chemoprotective tumor microenvironment may additionally contribute to disease recurrence. This study identifies metabolic reprogramming of leukemic cells by bone marrow stromal cells (BMSC) as a putative mechanism of drug resistance. In a BMSC-extracellular matrix culture model, BMSC produced chemoprotective soluble factors and facilitated the emergence of a reversible multidrug resistant phenotype in ALL cells. BMSC environment induced a mitochondrial calcium influx leading to increased reactive oxygen species (ROS) levels in ALL cells. In response to this oxidative stress, drug resistant cells underwent a redox adaptation process, characterized by a decrease in ROS levels and mitochondrial membrane potential with an upregulation of antioxidant production and MCL-1 expression. Similar expanded subpopulations of low ROS expressing and drug resistant cells were identified in pre-treatment bone marrow samples from ALL patients with slower response to therapy. This suggests that the bone marrow microenvironment induces a redox adaptation in ALL subclones that protects against cytotoxic stress and potentially gives rise to minimal residual disease. Targeting metabolic remodeling by inhibiting antioxidant production and antiapoptosis was able to overcome drug resistance. Thus metabolic plasticity in leukemic cell response to environmental factors contributes to chemoresistance and disease recurrence. Adjunctive strategies targeting such processes have the potential to overcome therapeutic failure in ALL.
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spelling pubmed-47674902016-03-25 Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia Liu, Jizhong Masurekar, Ashish Johnson, Suzanne Chakraborty, Sohini Griffiths, John Smith, Duncan Alexander, Seema Dempsey, Clare Parker, Catriona Harrison, Stephanie Li, Yaoyong Miller, Crispin Di, Yujun Ghosh, Zhumur Krishnan, Shekhar Saha, Vaskar Oncotarget Research Paper Despite the high cure rates in childhood acute lymphoblastic leukemia (ALL), relapsed ALL remains a significant clinical problem. Genetic heterogeneity does not adequately explain variations in response to therapy. The chemoprotective tumor microenvironment may additionally contribute to disease recurrence. This study identifies metabolic reprogramming of leukemic cells by bone marrow stromal cells (BMSC) as a putative mechanism of drug resistance. In a BMSC-extracellular matrix culture model, BMSC produced chemoprotective soluble factors and facilitated the emergence of a reversible multidrug resistant phenotype in ALL cells. BMSC environment induced a mitochondrial calcium influx leading to increased reactive oxygen species (ROS) levels in ALL cells. In response to this oxidative stress, drug resistant cells underwent a redox adaptation process, characterized by a decrease in ROS levels and mitochondrial membrane potential with an upregulation of antioxidant production and MCL-1 expression. Similar expanded subpopulations of low ROS expressing and drug resistant cells were identified in pre-treatment bone marrow samples from ALL patients with slower response to therapy. This suggests that the bone marrow microenvironment induces a redox adaptation in ALL subclones that protects against cytotoxic stress and potentially gives rise to minimal residual disease. Targeting metabolic remodeling by inhibiting antioxidant production and antiapoptosis was able to overcome drug resistance. Thus metabolic plasticity in leukemic cell response to environmental factors contributes to chemoresistance and disease recurrence. Adjunctive strategies targeting such processes have the potential to overcome therapeutic failure in ALL. Impact Journals LLC 2015-10-13 /pmc/articles/PMC4767490/ /pubmed/26474278 Text en Copyright: © 2015 Liu et al. http://creativecommons.org/licenses/by/2.5/ 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 credited.
spellingShingle Research Paper
Liu, Jizhong
Masurekar, Ashish
Johnson, Suzanne
Chakraborty, Sohini
Griffiths, John
Smith, Duncan
Alexander, Seema
Dempsey, Clare
Parker, Catriona
Harrison, Stephanie
Li, Yaoyong
Miller, Crispin
Di, Yujun
Ghosh, Zhumur
Krishnan, Shekhar
Saha, Vaskar
Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title_full Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title_fullStr Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title_full_unstemmed Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title_short Stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
title_sort stromal cell-mediated mitochondrial redox adaptation regulates drug resistance in childhood acute lymphoblastic leukemia
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4767490/
https://www.ncbi.nlm.nih.gov/pubmed/26474278
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