Literature DB >> 21460622

Characterization of macroautophagic flux in vivo using a leupeptin-based assay.

Jeffrey Haspel1, Rahamthulla S Shaik, Emeka Ifedigbo, Kiichi Nakahira, Tamas Dolinay, Joshua A Englert, Augustine M K Choi.   

Abstract

Macroautophagy is a highly conserved catabolic process that is crucial for organ homeostasis in mammals. However, methods to directly measure macroautophagic activity (or flux) in vivo are limited. In this study we developed a quantitative macroautophagic flux assay based on measuring LC3b protein turnover in vivo after administering the protease inhibitor leupeptin. Using this assay we then characterized basal macroautophagic flux in different mouse organs. We found that the rate of LC3b accumulation after leupeptin treatment was greatest in the liver and lowest in spleen. Interestingly we found that LC3a, an ATG8/LC3b homologue and the LC3b-interacting protein p62 were degraded with similar kinetics to LC3b. However, the LC3b-related proteins GABARAP and GATE-16 were not rapidly turned over in mouse liver, implying that different LC3b homologues may contribute to macroautophagy via distinct mechanisms. Nutrient starvation augmented macroautophagic flux as measured by our assay, while refeeding the animals after a period of starvation significantly suppressed flux. We also confirmed that beclin 1 heterozygous mice had reduced basal macroautophagic flux compared to wild-type littermates. These results illustrate the usefulness of our leupeptin-based assay for studying the dynamics of macroautophagy in mice.

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Year:  2011        PMID: 21460622      PMCID: PMC3127049          DOI: 10.4161/auto.7.6.15100

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


  74 in total

1.  Lysosomal turnover, but not a cellular level, of endogenous LC3 is a marker for autophagy.

Authors:  Isei Tanida; Naoko Minematsu-Ikeguchi; Takashi Ueno; Eiki Kominami
Journal:  Autophagy       Date:  2005-07-31       Impact factor: 16.016

2.  Permeases recycle amino acids resulting from autophagy.

Authors:  Zhifen Yang; Daniel J Klionsky
Journal:  Autophagy       Date:  2007-03-28       Impact factor: 16.016

3.  Microtubules support production of starvation-induced autophagosomes but not their targeting and fusion with lysosomes.

Authors:  Ephraim Fass; Elena Shvets; Ilan Degani; Koret Hirschberg; Zvulun Elazar
Journal:  J Biol Chem       Date:  2006-09-08       Impact factor: 5.157

4.  Dissection of the autophagosome maturation process by a novel reporter protein, tandem fluorescent-tagged LC3.

Authors:  Shunsuke Kimura; Takeshi Noda; Tamotsu Yoshimori
Journal:  Autophagy       Date:  2007-05-21       Impact factor: 16.016

5.  Atg8, a ubiquitin-like protein required for autophagosome formation, mediates membrane tethering and hemifusion.

Authors:  Hitoshi Nakatogawa; Yoshinobu Ichimura; Yoshinori Ohsumi
Journal:  Cell       Date:  2007-07-13       Impact factor: 41.582

Review 6.  How to interpret LC3 immunoblotting.

Authors:  Noboru Mizushima; Tamotsu Yoshimori
Journal:  Autophagy       Date:  2007-06-19       Impact factor: 16.016

7.  Cytosolic LC3 ratio as a sensitive index of macroautophagy in isolated rat hepatocytes and H4-II-E cells.

Authors:  Md Razaul Karim; Takumi Kanazawa; Yasuhiro Daigaku; Shinobu Fujimura; Giovanni Miotto; Motoni Kadowaki
Journal:  Autophagy       Date:  2007-06-21       Impact factor: 16.016

8.  Hierarchy of Atg proteins in pre-autophagosomal structure organization.

Authors:  Kuninori Suzuki; Yuka Kubota; Takayuki Sekito; Yoshinori Ohsumi
Journal:  Genes Cells       Date:  2007-02       Impact factor: 1.891

9.  p62/SQSTM1 binds directly to Atg8/LC3 to facilitate degradation of ubiquitinated protein aggregates by autophagy.

Authors:  Serhiy Pankiv; Terje Høyvarde Clausen; Trond Lamark; Andreas Brech; Jack-Ansgar Bruun; Heidi Outzen; Aud Øvervatn; Geir Bjørkøy; Terje Johansen
Journal:  J Biol Chem       Date:  2007-06-19       Impact factor: 5.157

10.  Cardiac autophagy is a maladaptive response to hemodynamic stress.

Authors:  Hongxin Zhu; Paul Tannous; Janet L Johnstone; Yongli Kong; John M Shelton; James A Richardson; Vien Le; Beth Levine; Beverly A Rothermel; Joseph A Hill
Journal:  J Clin Invest       Date:  2007-07       Impact factor: 14.808

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  77 in total

1.  TPT1 (tumor protein, translationally-controlled 1) negatively regulates autophagy through the BECN1 interactome and an MTORC1-mediated pathway.

Authors:  Seong-Yeon Bae; Sanguine Byun; Soo Han Bae; Do Sik Min; Hyun Ae Woo; Kyunglim Lee
Journal:  Autophagy       Date:  2017-02-15       Impact factor: 16.016

Review 2.  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

3.  Autophagy regulates TGF-β expression and suppresses kidney fibrosis induced by unilateral ureteral obstruction.

Authors:  Yan Ding; Sung ll Kim; So-Young Lee; Ja Kun Koo; Zhibo Wang; Mary E Choi
Journal:  J Am Soc Nephrol       Date:  2014-05-22       Impact factor: 10.121

4.  Histone deacetylase 6-mediated selective autophagy regulates COPD-associated cilia dysfunction.

Authors:  Hilaire C Lam; Suzanne M Cloonan; Abhiram R Bhashyam; Jeffery A Haspel; Anju Singh; J Fah Sathirapongsasuti; Morgan Cervo; Hongwei Yao; Anna L Chung; Kenji Mizumura; Chang Hyeok An; Bin Shan; Jonathan M Franks; Kathleen J Haley; Caroline A Owen; Yohannes Tesfaigzi; George R Washko; John Quackenbush; Edwin K Silverman; Irfan Rahman; Hong Pyo Kim; Ashfaq Mahmood; Shyam S Biswal; Stefan W Ryter; Augustine M K Choi
Journal:  J Clin Invest       Date:  2013-11-08       Impact factor: 14.808

Review 5.  Cecal ligation and puncture-induced sepsis as a model to study autophagy in mice.

Authors:  Ilias I Siempos; Hilaire C Lam; Yan Ding; Mary E Choi; Augustine M K Choi; Stefan W Ryter
Journal:  J Vis Exp       Date:  2014-02-09       Impact factor: 1.355

6.  Beclin-1 regulates cigarette smoke-induced kidney injury in a murine model of chronic obstructive pulmonary disease.

Authors:  Maria A Pabón; Edwin Patino; Divya Bhatia; Joselyn Rojas-Quintero; Kevin C Ma; Eli J Finkelsztein; Juan C Osorio; Faryal Malick; Francesca Polverino; Caroline A Owen; Stefan W Ryter; Augustine Mk Choi; Suzanne M Cloonan; Mary E Choi
Journal:  JCI Insight       Date:  2018-09-20

7.  Low-density lipoprotein receptor-related protein-1 dysfunction synergizes with dietary cholesterol to accelerate steatohepatitis progression.

Authors:  Allyson N Hamlin; Sivaprakasam Chinnarasu; Yinyuan Ding; Xunde Xian; Joachim Herz; Anja Jaeschke; David Y Hui
Journal:  J Biol Chem       Date:  2018-05-11       Impact factor: 5.157

8.  Metformin alleviates hepatosteatosis by restoring SIRT1-mediated autophagy induction via an AMP-activated protein kinase-independent pathway.

Authors:  Young Mi Song; Yong-ho Lee; Ji-Won Kim; Dong-Sik Ham; Eun-Seok Kang; Bong Soo Cha; Hyun Chul Lee; Byung-Wan Lee
Journal:  Autophagy       Date:  2015       Impact factor: 16.016

9.  Autophagosome immunoisolation from GFP-LC3B mouse tissue.

Authors:  Jingyu Yao; Yaoyan Qiu; Lin Jia; David N Zacks
Journal:  Autophagy       Date:  2018-10-30       Impact factor: 16.016

10.  Measuring autophagosome flux.

Authors:  Andre du Toit; Jan-Hendrik S Hofmeyr; Thomas J Gniadek; Ben Loos
Journal:  Autophagy       Date:  2018-07-20       Impact factor: 16.016

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