Literature DB >> 28005421

Is Chronic Obstructive Pulmonary Disease an Accelerated Aging Disease?

William MacNee1.   

Abstract

Aging is one of the most important risk factors for most chronic diseases. The worldwide increase in life expectancy has been accompanied by an increase in the prevalence of age-related diseases that result in significant morbidity and mortality and place an enormous burden on healthcare and resources. Aging is a progressive degeneration of the tissues that has a negative impact on the structure and function of vital organs. The lung ages, resulting in decreased function and reduced capacity to respond to environmental stresses and injury. Many of the changes that occur in the lungs with normal aging, such as decline in lung function, increased gas trapping, loss of lung elastic recoil, and enlargement of the distal air spaces, also are present in chronic obstructive pulmonary disease (COPD). The prevalence of COPD is two to three times higher in people over the age of 60 years than in younger age groups. Indeed, COPD has been considered a condition of accelerated lung aging. Several mechanisms associated with aging are present in the lungs of patients with COPD. Cell senescence is present in emphysematous lungs and is associated with shortened telomeres and decreased antiaging molecules, suggesting accelerated aging in the lungs of patients with COPD. Increasing age leads to elevated basal levels of inflammation and oxidative stress (inflammaging) and to increased immunosenescence associated with changes in both the innate and adaptive immune responses. These changes are similar to those that occur in COPD and may enhance the activity of the disease as well as increase susceptibility to exacerbations in patients with COPD. Understanding the mechanism of age-related changes in COPD may identify novel therapies for this condition.

Entities:  

Keywords:  aging; chronic obstructive pulmonary disease; chronic obstructive pulmonary disease pathogenesis; immunosenescence

Mesh:

Year:  2016        PMID: 28005421     DOI: 10.1513/AnnalsATS.201602-124AW

Source DB:  PubMed          Journal:  Ann Am Thorac Soc        ISSN: 2325-6621


  27 in total

1.  CRELD1 modulates homeostasis of the immune system in mice and humans.

Authors:  Lorenzo Bonaguro; Maren Köhne; Lisa Schmidleithner; Jonas Schulte-Schrepping; Stefanie Warnat-Herresthal; Arik Horne; Paul Kern; Patrick Günther; Rob Ter Horst; Martin Jaeger; Souad Rahmouni; Michel Georges; Christine S Falk; Yang Li; Elvira Mass; Marc Beyer; Leo A B Joosten; Mihai G Netea; Thomas Ulas; Joachim L Schultze; Anna C Aschenbrenner
Journal:  Nat Immunol       Date:  2020-11-09       Impact factor: 25.606

Review 2.  Long Noncoding Transcriptome in Chronic Obstructive Pulmonary Disease.

Authors:  Dinesh Devadoss; Christopher Long; Raymond J Langley; Marko Manevski; Madhavan Nair; Michael A Campos; Glen Borchert; Irfan Rahman; Hitendra S Chand
Journal:  Am J Respir Cell Mol Biol       Date:  2019-12       Impact factor: 6.914

3.  A murine model of elastase- and cigarette smoke-induced emphysema: is it an opportunity to understand CT emphysema in humans?

Authors:  Alfredo Nicodemos Cruz Santana
Journal:  J Bras Pneumol       Date:  2017 Mar-Apr       Impact factor: 2.624

4.  Lnc-IL7R alleviates PM2.5-mediated cellular senescence and apoptosis through EZH2 recruitment in chronic obstructive pulmonary disease.

Authors:  Kang-Yun Lee; Shu-Chuan Ho; Wei-Lun Sun; Po-Hao Feng; Cheng-Wei Lin; Kuan-Yuan Chen; Hsiao-Chi Chuang; Chien-Hua Tseng; Tzu-Tao Chen; Sheng-Ming Wu
Journal:  Cell Biol Toxicol       Date:  2022-03-18       Impact factor: 6.691

5.  K63 Ubiquitination of P21 Can Facilitate Pellino-1 in the Context of Chronic Obstructive Pulmonary Disease and Lung Cellular Senescence.

Authors:  Jia-Hui Ma; Yi-Ting Zhang; Lu-Ping Wang; Qing-Yu Sun; Hao Zhang; Jian-Jiang Li; Ning-Ning Han; Yao-Yao Zhu; Xiao-Yu Xie; Xia Li
Journal:  Cells       Date:  2022-10-03       Impact factor: 7.666

Review 6.  Senescence: Pathogenic Driver in Chronic Obstructive Pulmonary Disease.

Authors:  Melissa Rivas; Gayatri Gupta; Louis Costanzo; Huma Ahmed; Anne E Wyman; Patrick Geraghty
Journal:  Medicina (Kaunas)       Date:  2022-06-17       Impact factor: 2.948

Review 7.  Circadian molecular clock disruption in chronic pulmonary diseases.

Authors:  Allan Giri; Qixin Wang; Irfan Rahman; Isaac Kirubakaran Sundar
Journal:  Trends Mol Med       Date:  2022-05-01       Impact factor: 15.272

8.  Chronic Obstructive Pulmonary Disease Is Associated with Epigenome-Wide Differential Methylation in BAL Lung Cells.

Authors:  Jonas Eriksson Ström; Simon Kebede Merid; Jamshid Pourazar; Anders Blomberg; Anne Lindberg; Mikael V Ringh; Michael Hagemann-Jensen; Tomas J Ekström; Annelie F Behndig; Erik Melén
Journal:  Am J Respir Cell Mol Biol       Date:  2022-06       Impact factor: 7.748

9.  Frailty and patient-reported outcomes in subjects with chronic obstructive pulmonary disease: are they independent entities?

Authors:  Masaaki Kusunose; Toru Oga; Saya Nakamura; Yoshinori Hasegawa; Koichi Nishimura
Journal:  BMJ Open Respir Res       Date:  2017-07-03

10.  Metformin use and health care utilization in patients with coexisting chronic obstructive pulmonary disease and diabetes mellitus.

Authors:  Raju Bishwakarma; Wei Zhang; Yu-Li Lin; Yong-Fang Kuo; Victor J Cardenas; Gulshan Sharma
Journal:  Int J Chron Obstruct Pulmon Dis       Date:  2018-03-05
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