TY - JOUR
T1 - Oxidative stress and autophagy
T2 - The clash between damage and metabolic needs
AU - Filomeni, G.
AU - De Zio, D.
AU - Cecconi, F.
N1 - Funding Information:
Acknowledgements. We thank M Acuña Villa and MW Bennett for editorial and secretarial work. We are also grateful to Costanza Montagna and Giuseppina Di Giacomo for having provided part of unpublished results obtained on GSNOR-KO mice. The Unit of Cell Stress and Survival is supported by grants from the Danish Cancer Society (KBVU R72-A4408 to FC and KBVU R72-A4647 to GF); Lundbeck Foundation (nn. R167-2013-16100) and NovoNordisk (nn. 7559). We are also grateful to AIRC (IG2010 to FC and MFAG2011 to GF); Telethon Foundation (GGP10225); the Italian Ministry of University and Research (PRIN 2009 and FIRB Accordi di Programma 2011); and the Italian Ministry of Health (RF 2009 to FC and GR 2008).
Publisher Copyright:
© 2015 Macmillan Publishers Limited All rights reserved.
PY - 2015/3
Y1 - 2015/3
N2 - Autophagy is a catabolic process aimed at recycling cellular components and damaged organelles in response to diverse conditions of stress, such as nutrient deprivation, viral infection and genotoxic stress. A growing amount of evidence in recent years argues for oxidative stress acting as the converging point of these stimuli, with reactive oxygen species (ROS) and reactive nitrogen species (RNS) being among the main intracellular signal transducers sustaining autophagy. This review aims at providing novel insight into the regulatory pathways of autophagy in response to glucose and amino acid deprivation, as well as their tight interconnection with metabolic networks and redox homeostasis. The role of oxidative and nitrosative stress in autophagy is also discussed in the light of its being harmful for both cellular biomolecules and signal mediator through reversible posttranslational modifications of thiol-containing proteins. The redox-independent relationship between autophagy and antioxidant response, occurring through the p62/Keap1/Nrf2 pathway, is also addressed in order to provide a wide perspective upon the interconnection between autophagy and oxidative stress. Herein, we also attempt to afford an overview of the complex crosstalk between autophagy and DNA damage response (DDR), focusing on the main pathways activated upon ROS and RNS overproduction. Along these lines, the direct and indirect role of autophagy in DDR is dissected in depth.
AB - Autophagy is a catabolic process aimed at recycling cellular components and damaged organelles in response to diverse conditions of stress, such as nutrient deprivation, viral infection and genotoxic stress. A growing amount of evidence in recent years argues for oxidative stress acting as the converging point of these stimuli, with reactive oxygen species (ROS) and reactive nitrogen species (RNS) being among the main intracellular signal transducers sustaining autophagy. This review aims at providing novel insight into the regulatory pathways of autophagy in response to glucose and amino acid deprivation, as well as their tight interconnection with metabolic networks and redox homeostasis. The role of oxidative and nitrosative stress in autophagy is also discussed in the light of its being harmful for both cellular biomolecules and signal mediator through reversible posttranslational modifications of thiol-containing proteins. The redox-independent relationship between autophagy and antioxidant response, occurring through the p62/Keap1/Nrf2 pathway, is also addressed in order to provide a wide perspective upon the interconnection between autophagy and oxidative stress. Herein, we also attempt to afford an overview of the complex crosstalk between autophagy and DNA damage response (DDR), focusing on the main pathways activated upon ROS and RNS overproduction. Along these lines, the direct and indirect role of autophagy in DDR is dissected in depth.
U2 - 10.1038/cdd.2014.150
DO - 10.1038/cdd.2014.150
M3 - Review
C2 - 25257172
AN - SCOPUS:84922489435
SN - 1350-9047
VL - 22
SP - 377
EP - 388
JO - Cell Death and Differentiation
JF - Cell Death and Differentiation
IS - 3
ER -