The causes of cancer revisited: “Mitochondrial malignancy” and ROS-induced oncogenic transformation – Why mitochondria are targets for cancer therapy

The role of oncoproteins and tumor suppressor proteins in promoting the malignant transformation of mammalian cells by affecting properties such as proliferative signalling, cell cycle regulation and altered adhesion is well established. Chemicals, viruses and radiation are also generally accepted a...

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Published in:Molecular aspects of medicine Vol. 31; no. 2; pp. 145 - 170
Main Authors: Ralph, Stephen J., Rodríguez-Enríquez, Sara, Neuzil, Jiri, Saavedra, Emma, Moreno-Sánchez, Rafael
Format: Journal Article
Language:English
Published: England Elsevier Ltd 01-04-2010
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Abstract The role of oncoproteins and tumor suppressor proteins in promoting the malignant transformation of mammalian cells by affecting properties such as proliferative signalling, cell cycle regulation and altered adhesion is well established. Chemicals, viruses and radiation are also generally accepted as agents that commonly induce mutations in the genes encoding these cancer-causing proteins, thereby giving rise to cancer. However, more recent evidence indicates the importance of two additional key factors imposed on proliferating cells that are involved in transformation to malignancy and these are hypoxia and/or stressful conditions of nutrient deprivation (e.g. lack of glucose). These two additional triggers can initiate and promote the process of malignant transformation when a low percentage of cells overcome and escape cellular senescence. It is becoming apparent that hypoxia causes the progressive elevation in mitochondrial ROS production (chronic ROS) which over time leads to stabilization of cells via increased HIF-2alpha expression, enabling cells to survive with sustained levels of elevated ROS. In cells under hypoxia and/or low glucose, DNA mismatch repair processes are repressed by HIF-2alpha and they continually accumulate mitochondrial ROS-induced oxidative DNA damage and increasing numbers of mutations driving the malignant transformation process. Recent evidence also indicates that the resulting mutated cancer-causing proteins feedback to amplify the process by directly affecting mitochondrial function in combinatorial ways that intersect to play a major role in promoting a vicious spiral of malignant cell transformation. Consequently, many malignant processes involve periods of increased mitochondrial ROS production when a few cells survive the more common process of oxidative damage induced cell senescence and death. The few cells escaping elimination emerge with oncogenic mutations and survive to become immortalized tumors. This review focuses on evidence highlighting the role of mitochondria as drivers of elevated ROS production during malignant transformation and hence, their potential as targets for cancer therapy. The review is organized into five main sections concerning different aspects of “ mitochondrial malignancy”. The first concerns the functions of mitochondrial ROS and its importance as a pacesetter for cell growth versus senescence and death. The second considers the available evidence that cellular stress in the form of hypoxic and/or hypoglycaemic conditions represent two of the major triggering events for cancer and how oncoproteins reinforce this process by altering gene expression to bring about a common set of changes in mitochondrial function and activity in cancer cells. The third section presents evidence that oncoproteins and tumor suppressor proteins physically localize to the mitochondria in cancer cells where they directly regulate malignant mitochondrial programs, including apoptosis. The fourth section covers common mutational changes in the mitochondrial genome as they relate to malignancy and the relationship to the other three areas. The last section concerns the relevance of these findings, their importance and significance for novel targeted approaches to anti-cancer therapy and selective triggering in cancer cells of the mitochondrial apoptotic pathway.
AbstractList The role of oncoproteins and tumor suppressor proteins in promoting the malignant transformation of mammalian cells by affecting properties such as proliferative signalling, cell cycle regulation and altered adhesion is well established. Chemicals, viruses and radiation are also generally accepted as agents that commonly induce mutations in the genes encoding these cancer-causing proteins, thereby giving rise to cancer. However, more recent evidence indicates the importance of two additional key factors imposed on proliferating cells that are involved in transformation to malignancy and these are hypoxia and/or stressful conditions of nutrient deprivation (e.g. lack of glucose). These two additional triggers can initiate and promote the process of malignant transformation when a low percentage of cells overcome and escape cellular senescence. It is becoming apparent that hypoxia causes the progressive elevation in mitochondrial ROS production (chronic ROS) which over time leads to stabilization of cells via increased HIF-2alpha expression, enabling cells to survive with sustained levels of elevated ROS. In cells under hypoxia and/or low glucose, DNA mismatch repair processes are repressed by HIF-2alpha and they continually accumulate mitochondrial ROS-induced oxidative DNA damage and increasing numbers of mutations driving the malignant transformation process. Recent evidence also indicates that the resulting mutated cancer-causing proteins feedback to amplify the process by directly affecting mitochondrial function in combinatorial ways that intersect to play a major role in promoting a vicious spiral of malignant cell transformation. Consequently, many malignant processes involve periods of increased mitochondrial ROS production when a few cells survive the more common process of oxidative damage induced cell senescence and death. The few cells escaping elimination emerge with oncogenic mutations and survive to become immortalized tumors. This review focuses on evidence highlighting the role of mitochondria as drivers of elevated ROS production during malignant transformation and hence, their potential as targets for cancer therapy. The review is organized into five main sections concerning different aspects of “ mitochondrial malignancy”. The first concerns the functions of mitochondrial ROS and its importance as a pacesetter for cell growth versus senescence and death. The second considers the available evidence that cellular stress in the form of hypoxic and/or hypoglycaemic conditions represent two of the major triggering events for cancer and how oncoproteins reinforce this process by altering gene expression to bring about a common set of changes in mitochondrial function and activity in cancer cells. The third section presents evidence that oncoproteins and tumor suppressor proteins physically localize to the mitochondria in cancer cells where they directly regulate malignant mitochondrial programs, including apoptosis. The fourth section covers common mutational changes in the mitochondrial genome as they relate to malignancy and the relationship to the other three areas. The last section concerns the relevance of these findings, their importance and significance for novel targeted approaches to anti-cancer therapy and selective triggering in cancer cells of the mitochondrial apoptotic pathway.
The role of oncoproteins and tumor suppressor proteins in promoting the malignant transformation of mammalian cells by affecting properties such as proliferative signalling, cell cycle regulation and altered adhesion is well established. Chemicals, viruses and radiation are also generally accepted as agents that commonly induce mutations in the genes encoding these cancer-causing proteins, thereby giving rise to cancer. However, more recent evidence indicates the importance of two additional key factors imposed on proliferating cells that are involved in transformation to malignancy and these are hypoxia and/or stressful conditions of nutrient deprivation (e.g. lack of glucose). These two additional triggers can initiate and promote the process of malignant transformation when a low percentage of cells overcome and escape cellular senescence. It is becoming apparent that hypoxia causes the progressive elevation in mitochondrial ROS production (chronic ROS) which over time leads to stabilization of cells via increased HIF-2alpha expression, enabling cells to survive with sustained levels of elevated ROS. In cells under hypoxia and/or low glucose, DNA mismatch repair processes are repressed by HIF-2alpha and they continually accumulate mitochondrial ROS-induced oxidative DNA damage and increasing numbers of mutations driving the malignant transformation process. Recent evidence also indicates that the resulting mutated cancer-causing proteins feedback to amplify the process by directly affecting mitochondrial function in combinatorial ways that intersect to play a major role in promoting a vicious spiral of malignant cell transformation. Consequently, many malignant processes involve periods of increased mitochondrial ROS production when a few cells survive the more common process of oxidative damage induced cell senescence and death. The few cells escaping elimination emerge with oncogenic mutations and survive to become immortalized tumors. This review focuses on evidence highlighting the role of mitochondria as drivers of elevated ROS production during malignant transformation and hence, their potential as targets for cancer therapy. The review is organized into five main sections concerning different aspects of "mitochondrial malignancy". The first concerns the functions of mitochondrial ROS and its importance as a pacesetter for cell growth versus senescence and death. The second considers the available evidence that cellular stress in the form of hypoxic and/or hypoglycaemic conditions represent two of the major triggering events for cancer and how oncoproteins reinforce this process by altering gene expression to bring about a common set of changes in mitochondrial function and activity in cancer cells. The third section presents evidence that oncoproteins and tumor suppressor proteins physically localize to the mitochondria in cancer cells where they directly regulate malignant mitochondrial programs, including apoptosis. The fourth section covers common mutational changes in the mitochondrial genome as they relate to malignancy and the relationship to the other three areas. The last section concerns the relevance of these findings, their importance and significance for novel targeted approaches to anti-cancer therapy and selective triggering in cancer cells of the mitochondrial apoptotic pathway.
Author Neuzil, Jiri
Saavedra, Emma
Ralph, Stephen J.
Rodríguez-Enríquez, Sara
Moreno-Sánchez, Rafael
Author_xml – sequence: 1
  givenname: Stephen J.
  surname: Ralph
  fullname: Ralph, Stephen J.
  email: s.ralph@griffith.edu.au
  organization: Genomic Research Centre, Griffith Institute of Health and Medical Research, School of Medical Science, Griffith University, Parklands Avenue, Southport, 4222 Qld, Australia
– sequence: 2
  givenname: Sara
  surname: Rodríguez-Enríquez
  fullname: Rodríguez-Enríquez, Sara
  organization: Department of Biochemistry, National Institute of Cardiology, Mexico City, Mexico
– sequence: 3
  givenname: Jiri
  surname: Neuzil
  fullname: Neuzil, Jiri
  organization: Apoptosis Research Group, School of Medical Science, Griffith University, Southport, Qld, Australia
– sequence: 4
  givenname: Emma
  surname: Saavedra
  fullname: Saavedra, Emma
  organization: Department of Biochemistry, National Institute of Cardiology, Mexico City, Mexico
– sequence: 5
  givenname: Rafael
  surname: Moreno-Sánchez
  fullname: Moreno-Sánchez, Rafael
  organization: Department of Biochemistry, National Institute of Cardiology, Mexico City, Mexico
BackLink https://www.ncbi.nlm.nih.gov/pubmed/20206201$$D View this record in MEDLINE/PubMed
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Issue 2
Keywords HmtSSB
UBcH5a
NRF
UCP
KCa
OxPhos
MEF-2
GPX
SHC
Mitochondria
QD
SDH
ETCBs
PRX
TRX
PBN
Oncogenes
QP
PSA
FOXO
MEFs
CII
SREBP
DCA
HCC
cyt c
PCR-RFLP
SIRT1
PPARγ
VE
RB
Nur77/TR3
MMP
ShRNA
PP2
MSH2
ARF
VK
ND
ROS
Hypoxia
TFAM
AMPK
D-loop
DPI
Mitocans
FDA
HMG-box
ERR
mtDNA
SRC
UbQ
MCL-1
αTOS
Mito Q
Carcinogenesis
8-oxodG
PDK
mitoKCa
GSH
CYBL
CKI
GLUT1
NQO1
BMK
HIF
DMN
PGC-1α
BRAF
COX
GSK3β
NMR
αTOH
ETC
SOS
TAD
MnSOD
VDAC
PIN1
KRAS
GRB2
MDM4
MPTP
CSBs
SIPS
Language English
License Crown Copyright 2010. Published by Elsevier Ltd. All rights reserved.
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Snippet The role of oncoproteins and tumor suppressor proteins in promoting the malignant transformation of mammalian cells by affecting properties such as...
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SubjectTerms Animals
Carcinogenesis
Cell Communication - physiology
Cell Growth Processes - physiology
Cell Hypoxia - physiology
Cell Transformation, Neoplastic - metabolism
Drug Delivery Systems - methods
Genome, Mitochondrial
Glucose - metabolism
Humans
Hypoxia
Mitocans
Mitochondria
Mitochondria - drug effects
Mitochondria - metabolism
Mitochondria - pathology
Neoplasms - drug therapy
Neoplasms - metabolism
Neoplasms - pathology
Oncogenes
Reactive Oxygen Species - metabolism
ROS
Title The causes of cancer revisited: “Mitochondrial malignancy” and ROS-induced oncogenic transformation – Why mitochondria are targets for cancer therapy
URI https://dx.doi.org/10.1016/j.mam.2010.02.008
https://www.ncbi.nlm.nih.gov/pubmed/20206201
https://search.proquest.com/docview/733652675
Volume 31
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