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Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling

Two different mechanisms are considered to be the primary cause of aging. Cumulative DNA damage caused by reactive oxygen species (ROS), the by-products of oxidative phosphorylation, is one of these mechanisms (ROS concept). Constitutive stimulation of mitogen- and nutrient-sensing mTOR/S6 signaling...

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Autores principales: Halicka, H. Dorota, Zhao, Hong, Li, Jiangwei, Lee, Yong-Syu, Hsieh, Tze-Chen, Wu, Joseph M., Darzynkiewicz, Zbigniew
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3615161/
https://www.ncbi.nlm.nih.gov/pubmed/23363784
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author Halicka, H. Dorota
Zhao, Hong
Li, Jiangwei
Lee, Yong-Syu
Hsieh, Tze-Chen
Wu, Joseph M.
Darzynkiewicz, Zbigniew
author_facet Halicka, H. Dorota
Zhao, Hong
Li, Jiangwei
Lee, Yong-Syu
Hsieh, Tze-Chen
Wu, Joseph M.
Darzynkiewicz, Zbigniew
author_sort Halicka, H. Dorota
collection PubMed
description Two different mechanisms are considered to be the primary cause of aging. Cumulative DNA damage caused by reactive oxygen species (ROS), the by-products of oxidative phosphorylation, is one of these mechanisms (ROS concept). Constitutive stimulation of mitogen- and nutrient-sensing mTOR/S6 signaling is the second mechanism (TOR concept). The flow- and laser scanning- cytometric methods were developed to measure the level of the constitutive DNA damage/ROS- as well as of mTOR/S6- signaling in individual cells. Specifically, persistent activation of ATM and expression of γH2AX in untreated cells appears to report constitutive DNA damage induced by endogenous ROS. The level of phosphorylation of Ser235/236-ribosomal protein (RP), of Ser2448-mTOR and of Ser65-4EBP1, informs on constitutive signaling along the mTOR/S6 pathway. Potential gero-suppressive agents rapamycin, metformin, 2-deoxyglucose, berberine, resveratrol, vitamin D3 and aspirin, all decreased the level of constitutive DNA damage signaling as seen by the reduced expression of γH2AX in proliferating A549, TK6, WI-38 cells and in mitogenically stimulated human lymphocytes. They all also decreased the level of intracellular ROS and mitochondrial trans-membrane potential ΔΨm, the marker of mitochondrial energizing as well as reduced phosphorylation of mTOR, RP-S6 and 4EBP1. The most effective was rapamycin. Although the primary target of each on these agents may be different the data are consistent with the downstream mechanism in which the decline in mTOR/S6K signaling and translation rate is coupled with a decrease in oxidative phosphorylation, (revealed by ΔΨm) that leads to reduction of ROS and oxidative DNA damage. The decreased rate of translation induced by these agents may slow down cells hypertrophy and alleviate other features of cell aging/senescence. Reduction of oxidative DNA damage may lower predisposition to neoplastic transformation which otherwise may result from errors in repair of DNA sites coding for oncogenes or tumor suppressor genes. The data suggest that combined assessment of constitutive γH2AX expression, mitochondrial activity (ROS, ΔΨm) and mTOR signaling provides an adequate gamut of cell responses to evaluate effectiveness of gero-suppressive agents.
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spelling pubmed-36151612013-04-09 Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling Halicka, H. Dorota Zhao, Hong Li, Jiangwei Lee, Yong-Syu Hsieh, Tze-Chen Wu, Joseph M. Darzynkiewicz, Zbigniew Aging (Albany NY) Research Paper Two different mechanisms are considered to be the primary cause of aging. Cumulative DNA damage caused by reactive oxygen species (ROS), the by-products of oxidative phosphorylation, is one of these mechanisms (ROS concept). Constitutive stimulation of mitogen- and nutrient-sensing mTOR/S6 signaling is the second mechanism (TOR concept). The flow- and laser scanning- cytometric methods were developed to measure the level of the constitutive DNA damage/ROS- as well as of mTOR/S6- signaling in individual cells. Specifically, persistent activation of ATM and expression of γH2AX in untreated cells appears to report constitutive DNA damage induced by endogenous ROS. The level of phosphorylation of Ser235/236-ribosomal protein (RP), of Ser2448-mTOR and of Ser65-4EBP1, informs on constitutive signaling along the mTOR/S6 pathway. Potential gero-suppressive agents rapamycin, metformin, 2-deoxyglucose, berberine, resveratrol, vitamin D3 and aspirin, all decreased the level of constitutive DNA damage signaling as seen by the reduced expression of γH2AX in proliferating A549, TK6, WI-38 cells and in mitogenically stimulated human lymphocytes. They all also decreased the level of intracellular ROS and mitochondrial trans-membrane potential ΔΨm, the marker of mitochondrial energizing as well as reduced phosphorylation of mTOR, RP-S6 and 4EBP1. The most effective was rapamycin. Although the primary target of each on these agents may be different the data are consistent with the downstream mechanism in which the decline in mTOR/S6K signaling and translation rate is coupled with a decrease in oxidative phosphorylation, (revealed by ΔΨm) that leads to reduction of ROS and oxidative DNA damage. The decreased rate of translation induced by these agents may slow down cells hypertrophy and alleviate other features of cell aging/senescence. Reduction of oxidative DNA damage may lower predisposition to neoplastic transformation which otherwise may result from errors in repair of DNA sites coding for oncogenes or tumor suppressor genes. The data suggest that combined assessment of constitutive γH2AX expression, mitochondrial activity (ROS, ΔΨm) and mTOR signaling provides an adequate gamut of cell responses to evaluate effectiveness of gero-suppressive agents. Impact Journals LLC 2012-12-30 /pmc/articles/PMC3615161/ /pubmed/23363784 Text en Copyright: © 2012 Halicka 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
Halicka, H. Dorota
Zhao, Hong
Li, Jiangwei
Lee, Yong-Syu
Hsieh, Tze-Chen
Wu, Joseph M.
Darzynkiewicz, Zbigniew
Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title_full Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title_fullStr Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title_full_unstemmed Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title_short Potential anti-aging agents suppress the level of constitutive mTOR- and DNA damage- signaling
title_sort potential anti-aging agents suppress the level of constitutive mtor- and dna damage- signaling
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3615161/
https://www.ncbi.nlm.nih.gov/pubmed/23363784
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