Literature DB >> 23211391

NF-kB in premature aging.

Fernando G Osorio1, Carlos López-Otín, José M P Freije.   

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Year:  2012        PMID: 23211391      PMCID: PMC3560436          DOI: 10.18632/aging.100502

Source DB:  PubMed          Journal:  Aging (Albany NY)        ISSN: 1945-4589            Impact factor:   5.682


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During decades, aging has been regarded as the consequence of a stochastic process caused by the accumulative effect of damaged molecules. However, recent experimental evidences have extended this view and suggested that aging also requires active signaling programs for the maintenance of the aged state [1]. Beyond cell-autonomous alterations, age signals get systemic through changes in intercellular communication pathways [2]. The identification of the precise nature of these mechanisms and signals could provide valuable information, uncovering potential targets for rejuvenation-aimed approaches [3]. Aging research has greatly benefited from the study of progeroid syndromes, accelerated aging conditions caused by an excessive accumulation of cellular damage or by an inefficient response of the repair mechanisms. Progeroid laminopathies are accelerated aging syndromes caused by defects of the nuclear lamina. Among them, Hutchinson-Gilford Progeria Syndrome (HGPS) is one the most intensely studied. This syndrome is caused by a point mutation in the LMNA gene, leading to the accumulation of a truncated form of lamin A called progerin which induces important alterations in the cell nucleus. Interestingly, progerin accumulation has also been reported during normal aging, adding a new layer of interest to the study of this syndrome. NF-κB transcription factors respond to a large variety of external and internal stress signals, having essential roles in development and tissue homeostasis maintenance. Through the study of two related mouse models of progeroid laminopathies (Zmpste24-deficient and Lmna knock-in mice), we have recently found that aberrant activation of NF-κB is involved in the pathogenesis of accelerated aging syndromes, providing new insights into the mechanisms that allow the integration of cellular and systemic alterations in the aging process [4]. The in vivo monitoring of NF-κB activity by using a reporter-based assay revealed that this pathway was constitutively hyperactivated in progeroid mice. Further experiments allowed us to unveil the molecular pathway involved in this aberrant activation. Thus, in response to nuclear envelope alterations some important DNA damage sensors such as p53 or ATM were activated. In this context, we provide evidence that active ATM kinase cooperates with nuclear NEMO, an NF-κB regulatory subunit, resulting in the activation of NF-κB. We also found that, in response to NF-κB activation, several pro-inflammatory cytokines were significantly up-regulated. Among them, secretion of IL-6, CXCL-1 and TNF-α could have a causal role in the premature aging syndrome by establishing a chronic inflammatory situation through feed-forward regulatory signaling, affecting distant cells and tissues. Aimed at dissecting the precise contribution of NF-κB hyperactivation to the progeroid phenotype, we used an anti-inflammatory genetic strategy based on crossing Zmpste24-deficient mice with RelA haploinsufficient mice [5]. Interestingly, double mutant Zmpste24 mice displayed a retardation in the aging process, showing an extended longevity as compared with Zmpste24 mice. Furthermore, double mutant mice showed a remarkable recovery of skin and immunological alterations, which is consistent with the proposed relevance of NF-κB activity in tissue homeostasis maintenance. These results prompted us to test a pharmacological approach to target NF-κB activation in progeroid mice. Thus, sodium salicylate treatment of both Zmpste24 and Lmna mice extended longevity and led to a significant prevention of skin and immune alterations, demonstrating the feasibility of targeting this pathway for slowing down the progression of accelerated aging. Finally, our results indicate that these findings can be extended to normal aging, suggesting that a common accumulation of genetic damage and nuclear envelope alterations with age could be responsible, at least in part, of the abnormal NF-κB activity reported in tissues from advanced aged donors. The accumulation of senescent cells together with the decline in adult stem cell function is a primary cause of the compromise of tissue homeostasis during aging. The primary function of NF-κB activation in this context could be related to the prevention of apoptosis of damaged cells, so that chronic activation of this pathway with the subsequent immunological decline could preclude a proper clearance of senescent and damaged cells. In this regard, a recent report has described the causal involvement of inflammatory pathways in the age-related decline in stem cell function [6]. Globally, the data discussed herein clarify three important aspects that define NF-κB role during aging. Thus, experimental data confirm that NF-κB signaling is active during normal aging [7], its hyperactivation is associated with the development of accelerated aging and its amelioration retards the aging process [4-5, 8]. These characteristics support the use of strategies aimed at controlling NF-κB related inflammation as putative rejuvenation strategies during both normal and pathological aging. Over the last years, aging research has composed a complex picture where both cell autonomous and systemic alterations cooperate for establishing the aged state in organisms. Rational design of new interventions aimed to slow down this process should act in a coordinate way, targeting pro-aging signals as well as altered cellular communication pathways for the effective prevention of aging-related disorders. Exacerbated NF- κB signaling leads to age-related loss of tissue homeostasis, which takes place at an accelerated rate in progeroid syndromes. This phenomenon can be alleviated through NF- κB inhibition.
  8 in total

1.  NF-κB inhibition delays DNA damage-induced senescence and aging in mice.

Authors:  Jeremy S Tilstra; Andria R Robinson; Jin Wang; Siobhán Q Gregg; Cheryl L Clauson; Daniel P Reay; Luigi A Nasto; Claudette M St Croix; Arvydas Usas; Nam Vo; Johnny Huard; Paula R Clemens; Donna B Stolz; Denis C Guttridge; Simon C Watkins; George A Garinis; Yinsheng Wang; Laura J Niedernhofer; Paul D Robbins
Journal:  J Clin Invest       Date:  2012-06-18       Impact factor: 14.808

Review 2.  Reprogramming aging and progeria.

Authors:  José M P Freije; Carlos López-Otín
Journal:  Curr Opin Cell Biol       Date:  2012-09-06       Impact factor: 8.382

3.  Age-associated inflammation inhibits epidermal stem cell function.

Authors:  Jason Doles; Mekayla Storer; Luca Cozzuto; Guglielmo Roma; William M Keyes
Journal:  Genes Dev       Date:  2012-09-12       Impact factor: 11.361

Review 4.  Aging, rejuvenation, and epigenetic reprogramming: resetting the aging clock.

Authors:  Thomas A Rando; Howard Y Chang
Journal:  Cell       Date:  2012-01-20       Impact factor: 41.582

Review 5.  Cell autonomous and systemic factors in progeria development.

Authors:  Fernando G Osorio; Alejandro P Ugalde; Guillermo Mariño; Xose S Puente; José M P Freije; Carlos López-Otín
Journal:  Biochem Soc Trans       Date:  2011-12       Impact factor: 5.407

6.  Nuclear lamina defects cause ATM-dependent NF-κB activation and link accelerated aging to a systemic inflammatory response.

Authors:  Fernando G Osorio; Clea Bárcena; Clara Soria-Valles; Andrew J Ramsay; Félix de Carlos; Juan Cobo; Antonio Fueyo; José M P Freije; Carlos López-Otín
Journal:  Genes Dev       Date:  2012-09-26       Impact factor: 11.361

7.  SIRT6 links histone H3 lysine 9 deacetylation to NF-kappaB-dependent gene expression and organismal life span.

Authors:  Tiara L A Kawahara; Eriko Michishita; Adam S Adler; Mara Damian; Elisabeth Berber; Meihong Lin; Ron A McCord; Kristine C L Ongaigui; Lisa D Boxer; Howard Y Chang; Katrin F Chua
Journal:  Cell       Date:  2009-01-09       Impact factor: 41.582

8.  Motif module map reveals enforcement of aging by continual NF-kappaB activity.

Authors:  Adam S Adler; Saurabh Sinha; Tiara L A Kawahara; Jennifer Y Zhang; Eran Segal; Howard Y Chang
Journal:  Genes Dev       Date:  2007-11-30       Impact factor: 11.361

  8 in total
  14 in total

1.  Bile acid-induced inflammatory signaling in mice lacking Foxa2 in the liver leads to activation of mTOR and age-onset obesity.

Authors:  Irina Mikhailovna Bochkis; Soona Shin; Klaus Hermann Kaestner
Journal:  Mol Metab       Date:  2013-08-24       Impact factor: 7.422

2.  RRM2B-Mediated Regulation of Mitochondrial Activity and Inflammation under Oxidative Stress.

Authors:  Er-Chieh Cho; Mei-Ling Kuo; Jia-Hui Cheng; Yu-Chi Cheng; Yi-Chen Hsieh; Yun-Ru Liu; Rong-Hong Hsieh; Yun Yen
Journal:  Mediators Inflamm       Date:  2015-05-18       Impact factor: 4.711

3.  Mast cells and histamine are triggering the NF-κB-mediated reactions of adult and aged perilymphatic mesenteric tissues to acute inflammation.

Authors:  Irina Tsoy Nizamutdinova; Giuseppina F Dusio; Olga Yu Gasheva; Hunter Skoog; Richard Tobin; Chander Peddaboina; Cynthia J Meininger; David C Zawieja; M Karen Newell-Rogers; Anatoliy A Gashev
Journal:  Aging (Albany NY)       Date:  2016-11-21       Impact factor: 5.682

4.  Anti-inflammatory action of β-hydroxybutyrate via modulation of PGC-1α and FoxO1, mimicking calorie restriction.

Authors:  Dae Hyun Kim; Min Hi Park; Sugyeong Ha; Eun Jin Bang; Yujeong Lee; A Kyoung Lee; Jaewon Lee; Byung Pal Yu; Hae Young Chung
Journal:  Aging (Albany NY)       Date:  2019-02-27       Impact factor: 5.682

5.  A comparison of oncogene-induced senescence and replicative senescence: implications for tumor suppression and aging.

Authors:  David M Nelson; Tony McBryan; Jessie C Jeyapalan; John M Sedivy; Peter D Adams
Journal:  Age (Dordr)       Date:  2014-03-20

6.  Luminescence-based in vivo monitoring of NF-κB activity through a gene delivery approach.

Authors:  Fernando G Osorio; Jorge de la Rosa; José Mp Freije
Journal:  Cell Commun Signal       Date:  2013-03-21       Impact factor: 5.712

7.  Ageing gender-specific "Biomarkers of Homeostasis", to protect ourselves against the diseases of the old age.

Authors:  Anna Maria Berghella; Ida Contasta; Giuseppe Marulli; Carlo D'Innocenzo; Ferdinando Garofalo; Francesca Gizzi; Marco Bartolomucci; Giacomo Laglia; Marisa Valeri; Mario Gizzi; Mauro Friscioni; Mario Barone; Tiziana Del Beato; Enzo Secinaro; Patrizia Pellegrini
Journal:  Immun Ageing       Date:  2014-02-06       Impact factor: 6.400

Review 8.  Lamina-associated polypeptide (LAP)2α and nucleoplasmic lamins in adult stem cell regulation and disease.

Authors:  Kevin Gesson; Sandra Vidak; Roland Foisner
Journal:  Semin Cell Dev Biol       Date:  2013-12-25       Impact factor: 7.727

Review 9.  Molecular insights into the premature aging disease progeria.

Authors:  Sandra Vidak; Roland Foisner
Journal:  Histochem Cell Biol       Date:  2016-02-04       Impact factor: 4.304

10.  Suppression of FoxO6 by lipopolysaccharide in aged rat liver.

Authors:  Dae Hyun Kim; Min Hi Park; Ki Wung Chung; Min Jo Kim; Daeui Park; Bonggi Lee; Eun Kyeong Lee; Yeon Ja Choi; Nam Deuk Kim; Byung Pal Yu; Hae Young Chung
Journal:  Oncotarget       Date:  2015-10-27
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