Literature DB >> 21997369

Autophagy stimulation by rapamycin suppresses lung inflammation and infection by Burkholderia cenocepacia in a model of cystic fibrosis.

Basant A Abdulrahman1, Arwa Abu Khweek, Anwari Akhter, Kyle Caution, Sheetal Kotrange, Dalia H A Abdelaziz, Christie Newland, Roberto Rosales-Reyes, Benjamin Kopp, Karen McCoy, Richard Montione, Larry S Schlesinger, Mikhail A Gavrilin, Mark D Wewers, Miguel A Valvano, Amal O Amer.   

Abstract

Cystic fibrosis (CF) is the most common inherited lethal disease of Caucasians which results in multi organ dysfunction. However, 85% of the deaths are due to pulmonary infections. Infection by Burkholderia cenocepacia (B. cepacia) is a particularly lethal threat to CF patients because it causes severe and persistent lung inflammation and is resistant to nearly all available antibiotics. In CFTR ΔF508 mouse macrophages, B. cepacia persists in vacuoles that do not fuse with the lysosomes and mediates increased production of IL-1β. It is believed that intracellular bacterial survival contributes to the persistence of the bacterium. Here we show for the first time that in wild-type macrophages but not in ΔF508 macrophages, many B. cepacia reside in autophagosomes that fuse with lysosomes at later stages of infection. Accordingly, association and intracellular survival of B. cepacia are higher in CFTR-ΔF508 (ΔF508) macrophages than in WT macrophages. An autophagosome is a compartment that engulfs non-functional organelles and parts of the cytoplasm then delivers them to the lysosome for degradation to produce nutrients during periods of starvation or stress. Furthermore, we show that B. cepacia downregulates autophagy genes in WT and ΔF508 macrophages. However, autophagy dysfunction is more pronounced in ΔF508 macrophages since they already have compromised autophagy activity. We demonstrate that the autophagy-stimulating agent, rapamycin markedly decreases B. cepacia infection in vitro by enhancing the clearance of B. cepacia via induced autophagy. In vivo, Rapamycin decreases bacterial burden in the lungs of CF mice and drastically reduces signs of lung inflammation. Together, our studies reveal that if efficiently activated, autophagy can control B. cepacia infection and ameliorate the associated inflammation. Therefore, autophagy is a novel target for new drug development for CF patients to control B. cepacia infection and accompanying inflammation.

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Year:  2011        PMID: 21997369      PMCID: PMC3359483          DOI: 10.4161/auto.7.11.17660

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  85 in total

Review 1.  Autophagy and human disease.

Authors:  Ju Huang; Daniel J Klionsky
Journal:  Cell Cycle       Date:  2007-05-25       Impact factor: 4.534

2.  Early pulmonary infection, inflammation, and clinical outcomes in infants with cystic fibrosis.

Authors:  M Rosenfeld; R L Gibson; S McNamara; J Emerson; J L Burns; R Castile; P Hiatt; K McCoy; C B Wilson; A Inglis; A Smith; T R Martin; B W Ramsey
Journal:  Pediatr Pulmonol       Date:  2001-11

3.  Intracellular survival of Burkholderia cenocepacia in macrophages is associated with a delay in the maturation of bacteria-containing vacuoles.

Authors:  Julie Lamothe; Kassidy K Huynh; Sergio Grinstein; Miguel A Valvano
Journal:  Cell Microbiol       Date:  2006-07-26       Impact factor: 3.715

Review 4.  Infection control in cystic fibrosis: cohorting, cross-contamination, and the respiratory therapist.

Authors:  Catherine A O'Malley
Journal:  Respir Care       Date:  2009-05       Impact factor: 2.258

5.  Variation of the antimicrobial susceptibility profiles of Burkholderia cepacia complex clonal isolates obtained from chronically infected cystic fibrosis patients: a five-year survey in the major Portuguese treatment center.

Authors:  J H Leitão; S A Sousa; M V Cunha; M J Salgado; J Melo-Cristino; M C Barreto; I Sá-Correia
Journal:  Eur J Clin Microbiol Infect Dis       Date:  2008-07-04       Impact factor: 3.267

6.  Burkholderia cenocepacia ET12 strain activates TNFR1 signalling in cystic fibrosis airway epithelial cells.

Authors:  Umadevi S Sajjan; Marc B Hershenson; Janet F Forstner; John J LiPuma
Journal:  Cell Microbiol       Date:  2007-08-14       Impact factor: 3.715

7.  Identification of Burkholderia cenocepacia genes required for bacterial survival in vivo.

Authors:  Tracey A Hunt; Cora Kooi; Pamela A Sokol; Miguel A Valvano
Journal:  Infect Immun       Date:  2004-07       Impact factor: 3.441

8.  Delayed association of the NADPH oxidase complex with macrophage vacuoles containing the opportunistic pathogen Burkholderia cenocepacia.

Authors:  Karen E Keith; Daniel W Hynes; Judith E Sholdice; Miguel A Valvano
Journal:  Microbiology       Date:  2009-04       Impact factor: 2.777

Review 9.  Guidelines for the use and interpretation of assays for monitoring autophagy in higher eukaryotes.

Authors:  Daniel J Klionsky; Hagai Abeliovich; Patrizia Agostinis; Devendra K Agrawal; Gjumrakch Aliev; David S Askew; Misuzu Baba; Eric H Baehrecke; Ben A Bahr; Andrea Ballabio; Bruce A Bamber; Diane C Bassham; Ettore Bergamini; Xiaoning Bi; Martine Biard-Piechaczyk; Janice S Blum; Dale E Bredesen; Jeffrey L Brodsky; John H Brumell; Ulf T Brunk; Wilfried Bursch; Nadine Camougrand; Eduardo Cebollero; Francesco Cecconi; Yingyu Chen; Lih-Shen Chin; Augustine Choi; Charleen T Chu; Jongkyeong Chung; Peter G H Clarke; Robert S B Clark; Steven G Clarke; Corinne Clavé; John L Cleveland; Patrice Codogno; María I Colombo; Ana Coto-Montes; James M Cregg; Ana Maria Cuervo; Jayanta Debnath; Francesca Demarchi; Patrick B Dennis; Phillip A Dennis; Vojo Deretic; Rodney J Devenish; Federica Di Sano; J Fred Dice; Marian Difiglia; Savithramma Dinesh-Kumar; Clark W Distelhorst; Mojgan Djavaheri-Mergny; Frank C Dorsey; Wulf Dröge; Michel Dron; William A Dunn; Michael Duszenko; N Tony Eissa; Zvulun Elazar; Audrey Esclatine; Eeva-Liisa Eskelinen; László Fésüs; Kim D Finley; José M Fuentes; Juan Fueyo; Kozo Fujisaki; Brigitte Galliot; Fen-Biao Gao; David A Gewirtz; Spencer B Gibson; Antje Gohla; Alfred L Goldberg; Ramon Gonzalez; Cristina González-Estévez; Sharon Gorski; Roberta A Gottlieb; Dieter Häussinger; You-Wen He; Kim Heidenreich; Joseph A Hill; Maria Høyer-Hansen; Xun Hu; Wei-Pang Huang; Akiko Iwasaki; Marja Jäättelä; William T Jackson; Xuejun Jiang; Shengkan Jin; Terje Johansen; Jae U Jung; Motoni Kadowaki; Chanhee Kang; Ameeta Kelekar; David H Kessel; Jan A K W Kiel; Hong Pyo Kim; Adi Kimchi; Timothy J Kinsella; Kirill Kiselyov; Katsuhiko Kitamoto; Erwin Knecht; Masaaki Komatsu; Eiki Kominami; Seiji Kondo; Attila L Kovács; Guido Kroemer; Chia-Yi Kuan; Rakesh Kumar; Mondira Kundu; Jacques Landry; Marianne Laporte; Weidong Le; Huan-Yao Lei; Michael J Lenardo; Beth Levine; Andrew Lieberman; Kah-Leong Lim; Fu-Cheng Lin; Willisa Liou; Leroy F Liu; Gabriel Lopez-Berestein; Carlos López-Otín; Bo Lu; Kay F Macleod; Walter Malorni; Wim Martinet; Ken Matsuoka; Josef Mautner; Alfred J Meijer; Alicia Meléndez; Paul Michels; Giovanni Miotto; Wilhelm P Mistiaen; Noboru Mizushima; Baharia Mograbi; Iryna Monastyrska; Michael N Moore; Paula I Moreira; Yuji Moriyasu; Tomasz Motyl; Christian Münz; Leon O Murphy; Naweed I Naqvi; Thomas P Neufeld; Ichizo Nishino; Ralph A Nixon; Takeshi Noda; Bernd Nürnberg; Michinaga Ogawa; Nancy L Oleinick; Laura J Olsen; Bulent Ozpolat; Shoshana Paglin; Glen E Palmer; Issidora Papassideri; Miles Parkes; David H Perlmutter; George Perry; Mauro Piacentini; Ronit Pinkas-Kramarski; Mark Prescott; Tassula Proikas-Cezanne; Nina Raben; Abdelhaq Rami; Fulvio Reggiori; Bärbel Rohrer; David C Rubinsztein; Kevin M Ryan; Junichi Sadoshima; Hiroshi Sakagami; Yasuyoshi Sakai; Marco Sandri; Chihiro Sasakawa; Miklós Sass; Claudio Schneider; Per O Seglen; Oleksandr Seleverstov; Jeffrey Settleman; John J Shacka; Irving M Shapiro; Andrei Sibirny; Elaine C M Silva-Zacarin; Hans-Uwe Simon; Cristiano Simone; Anne Simonsen; Mark A Smith; Katharina Spanel-Borowski; Vickram Srinivas; Meredith Steeves; Harald Stenmark; Per E Stromhaug; Carlos S Subauste; Seiichiro Sugimoto; David Sulzer; Toshihiko Suzuki; Michele S Swanson; Ira Tabas; Fumihiko Takeshita; Nicholas J Talbot; Zsolt Tallóczy; Keiji Tanaka; Kozo Tanaka; Isei Tanida; Graham S Taylor; J Paul Taylor; Alexei Terman; Gianluca Tettamanti; Craig B Thompson; Michael Thumm; Aviva M Tolkovsky; Sharon A Tooze; Ray Truant; Lesya V Tumanovska; Yasuo Uchiyama; Takashi Ueno; Néstor L Uzcátegui; Ida van der Klei; Eva C Vaquero; Tibor Vellai; Michael W Vogel; Hong-Gang Wang; Paul Webster; John W Wiley; Zhijun Xi; Gutian Xiao; Joachim Yahalom; Jin-Ming Yang; George Yap; Xiao-Ming Yin; Tamotsu Yoshimori; Li Yu; Zhenyu Yue; Michisuke Yuzaki; Olga Zabirnyk; Xiaoxiang Zheng; Xiongwei Zhu; Russell L Deter
Journal:  Autophagy       Date:  2007-11-21       Impact factor: 16.016

Review 10.  Inflammation and CFTR: might neutrophils be the key in cystic fibrosis?

Authors:  V Witko-Sarsat; I Sermet-Gaudelus; G Lenoir; B Descamps-Latscha
Journal:  Mediators Inflamm       Date:  1999       Impact factor: 4.711

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  100 in total

1.  Exaggerated inflammatory responses mediated by Burkholderia cenocepacia in human macrophages derived from Cystic fibrosis patients.

Authors:  Benjamin T Kopp; Basant A Abdulrahman; Arwa A Khweek; Surender B Kumar; Anwari Akhter; Richard Montione; Mia F Tazi; Kyle Caution; Karen McCoy; Amal O Amer
Journal:  Biochem Biophys Res Commun       Date:  2012-06-20       Impact factor: 3.575

Review 2.  The cooperation between the autophagy machinery and the inflammasome to implement an appropriate innate immune response: do they regulate each other?

Authors:  Dalia H A Abdelaziz; Hany Khalil; Estelle Cormet-Boyaka; Amal O Amer
Journal:  Immunol Rev       Date:  2015-05       Impact factor: 12.988

Review 3.  Autophagy: a potential therapeutic target in lung diseases.

Authors:  Kiichi Nakahira; Augustine M K Choi
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2013-05-24       Impact factor: 5.464

4.  Aging is associated with hypermethylation of autophagy genes in macrophages.

Authors:  Hany Khalil; Mia Tazi; Kyle Caution; Amr Ahmed; Apurva Kanneganti; Kaivon Assani; Benjamin Kopp; Clay Marsh; Duaa Dakhlallah; Amal O Amer
Journal:  Epigenetics       Date:  2016-02-24       Impact factor: 4.528

5.  Autophagy Activation Improves Lung Injury and Inflammation in Sepsis.

Authors:  Hongying Zhao; Hongguang Chen; Meng Xiaoyin; Guotao Yang; Ying Hu; Keliang Xie; Yonghao Yu
Journal:  Inflammation       Date:  2019-04       Impact factor: 4.092

Review 6.  mTOR is a key modulator of ageing and age-related disease.

Authors:  Simon C Johnson; Peter S Rabinovitch; Matt Kaeberlein
Journal:  Nature       Date:  2013-01-17       Impact factor: 49.962

7.  Selective autophagy: xenophagy.

Authors:  Kyle A Bauckman; Nana Owusu-Boaitey; Indira U Mysorekar
Journal:  Methods       Date:  2014-12-11       Impact factor: 3.608

8.  The lung is protected from spontaneous inflammation by autophagy in myeloid cells.

Authors:  Masashi Kanayama; You-Wen He; Mari L Shinohara
Journal:  J Immunol       Date:  2015-04-24       Impact factor: 5.422

Review 9.  Autophagy in Pulmonary Diseases.

Authors:  Kiichi Nakahira; Maria Angelica Pabon Porras; Augustine M K Choi
Journal:  Am J Respir Crit Care Med       Date:  2016-11-15       Impact factor: 21.405

10.  A bacterial protein promotes the recognition of the Legionella pneumophila vacuole by autophagy.

Authors:  Arwa A Khweek; Kyle Caution; Anwari Akhter; Basant A Abdulrahman; Mia Tazi; Hoda Hassan; Neal Majumdar; Andrew Doran; Evelyn Guirado; Larry S Schlesinger; Howard Shuman; Amal O Amer
Journal:  Eur J Immunol       Date:  2013-04-08       Impact factor: 5.532

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