Literature DB >> 21997374

"Autophagic flux" in normal mouse tissues: focus on endogenous LC3A processing.

Christos E Zois1, Alexandra Giatromanolaki, Efthimios Sivridis, Marina Papaiakovou, Heikki Kainulainen, Michael I Koukourakis.   

Abstract

Autophagy is a major intracellular pathway for the degradation and recycling of long-lived proteins, mature ribosomes and even entire organelles. The best studied autophagic marker is the LC3B and it is believed that only the amount of the LC3B-II correlates with the amount of the autophagic membranes. Whether the LC3A processing, aside to LC3B, is a valuable endogenous 'autophagic flux' marker is far less clear. The specificity of rabbit polyclonal antibodies to the LC3A and the LC3B was tested against the commercial available human recombinant proteins LC3A and LC3B. In order to measure 'autophagic flux' in mouse liver, lung, kidney and heart we used: (1) a lysosomotropic reagent chloroquine, which inhibit the intra-lysosomal acidification or their fusion with autophagosome, (2) nutrient starvation as an autophagic stimulus and (3) ionizing radiation, which is known to destabilize lysosomes. According to the immunoblotting work the LC3A protein follows discrete patterns of LC3A-I and LC3A-II changes in liver, lung, kidney and heart tissues of mice, whereas the LC3B protein didn't follow the same pattern under stressor conditions. We conclude that the endogenous LC3A processing is a major marker of autophagy flux in mouse model. Fractionated samples (soluble vs. membrane fractions) should be used in immunoblotting to allow discrimination between the LC3-I soluble and the LC3-II membrane protein and kinetics. Further, when dealing with in vivo models it is necessary to check the specificity of the antibodies used against the LC3A and LC3B proteins as their expression and responsiveness is not overlapping.

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Year:  2011        PMID: 21997374     DOI: 10.4161/auto.7.11.16664

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


  33 in total

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Authors:  Juliette Gafni; Theodora Papanikolaou; Francesco Degiacomo; Jennifer Holcomb; Sylvia Chen; Liliana Menalled; Andrea Kudwa; Jon Fitzpatrick; Sam Miller; Sylvie Ramboz; Pasi I Tuunanen; Kimmo K Lehtimäki; X William Yang; Larry Park; Seung Kwak; David Howland; Hyunsun Park; Lisa M Ellerby
Journal:  J Neurosci       Date:  2012-05-30       Impact factor: 6.167

2.  AU4S: a novel synthetic peptide to measure the activity of ATG4 in living cells.

Authors:  Zhenhong Ni; Yi Gong; Xufang Dai; Wen Ding; Bin Wang; Haiyan Gong; Liyan Qin; Panke Cheng; Song Li; Jiqin Lian; Fengtian He
Journal:  Autophagy       Date:  2015       Impact factor: 16.016

3.  PGRN induces impaired insulin sensitivity and defective autophagy in hepatic insulin resistance.

Authors:  Jiali Liu; Huixia Li; Bo Zhou; Lin Xu; Xiaomin Kang; Wei Yang; Shufang Wu; Hongzhi Sun
Journal:  Mol Endocrinol       Date:  2015-02-09

4.  Cross-talk between apoptosis and autophagy in lung epithelial cell death.

Authors:  Jincheng Yang; Hyung-Geun Moon; Sukrutha Chettimada; Yang Jin
Journal:  J Biochem Pharmacol Res       Date:  2014-04-05

5.  Galantamine inhibits β-amyloid-induced cytostatic autophagy in PC12 cells through decreasing ROS production.

Authors:  Sheng Jiang; Ye Zhao; Tao Zhang; Jingbin Lan; Jing Yang; Longhui Yuan; Qiyu Zhang; Kejian Pan; Kun Zhang
Journal:  Cell Prolif       Date:  2018-01-01       Impact factor: 6.831

6.  On the relevance of precision autophagy flux control in vivo - Points of departure for clinical translation.

Authors:  Ben Loos; Daniel J Klionsky; Andre Du Toit; Jan-Hendrik S Hofmeyr
Journal:  Autophagy       Date:  2019-11-11       Impact factor: 16.016

7.  Time-dependent dysregulation of autophagy: Implications in aging and mitochondrial homeostasis in the kidney proximal tubule.

Authors:  Takeshi Yamamoto; Yoshitsugu Takabatake; Tomonori Kimura; Atsushi Takahashi; Tomoko Namba; Jun Matsuda; Satoshi Minami; Jun-Ya Kaimori; Isao Matsui; Harumi Kitamura; Taiji Matsusaka; Fumio Niimura; Motoko Yanagita; Yoshitaka Isaka; Hiromi Rakugi
Journal:  Autophagy       Date:  2016-03-17       Impact factor: 16.016

8.  CD47 deficiency confers cell and tissue radioprotection by activation of autophagy.

Authors:  David R Soto-Pantoja; Thomas W Miller; Michael L Pendrak; William G DeGraff; Camille Sullivan; Lisa A Ridnour; Mones Abu-Asab; David A Wink; Maria Tsokos; David D Roberts
Journal:  Autophagy       Date:  2012-08-09       Impact factor: 16.016

9.  Immunohistochemical analysis of macroautophagy: recommendations and limitations.

Authors:  Wim Martinet; Dorien M Schrijvers; Jean-Pierre Timmermans; Hidde Bult; Guido R Y De Meyer
Journal:  Autophagy       Date:  2012-12-14       Impact factor: 16.016

10.  Lysosomal alkalinization, lipid oxidation, and reduced phagosome clearance triggered by activation of the P2X7 receptor.

Authors:  Sonia Guha; Gabriel C Baltazar; Erin E Coffey; Leigh-Anne Tu; Jason C Lim; Jonathan M Beckel; Shaun Patel; Thor Eysteinsson; Wennan Lu; Ann O'Brien-Jenkins; Alan M Laties; Claire H Mitchell
Journal:  FASEB J       Date:  2013-08-20       Impact factor: 5.191

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