Related Content
Search Google Scholar for:
More Information
Related Jobs from ScienceCareers
|
|
Science 5 November 2004: Vol. 306. no. 5698, pp. 1037 - 1040 DOI: 10.1126/science.1103966
|
|
Reports
Autophagy Defends Cells Against Invading Group A Streptococcus
Ichiro Nakagawa,1,3*
Atsuo Amano,2,4
Noboru Mizushima,3,5
Akitsugu Yamamoto,6
Hitomi Yamaguchi,7
Takahiro Kamimoto,7
Atsuki Nara,6,7
Junko Funao,1
Masanobu Nakata,1
Kayoko Tsuda,7
Shigeyuki Hamada,1
Tamotsu Yoshimori4,7*
We found that the autophagic machinery could effectively eliminate pathogenic group A Streptococcus (GAS) within nonphagocytic cells. After escaping from endosomes into the cytoplasm, GAS became enveloped by autophagosome-like compartments and were killed upon fusion of these compartments with lysosomes. In autophagy-deficient Atg5/ cells, GAS survived, multiplied, and were released from the cells. Thus, the autophagic machinery can act as an innate defense system against invading pathogens.
1 Department of Oral and Molecular Microbiology, Osaka University Graduate School of Dentistry, 1-8 Yamadaoka, Suita-Osaka 565-0871, Japan.
2 Department of Oral Frontier Biology, Osaka University Graduate School of Dentistry, 1-8 Yamadaoka, Suita-Osaka 565-0871, Japan.
3 PRESTO, Japan Science and Technology Agency, Kawaguchi-Saitama 332-0012, Japan.
4 CREST, Japan Science and Technology Agency, Kawaguchi-Saitama 332-0012, Japan.
5 Department of Bioregulation and Metabolism, The Tokyo Metropolitan Institute of Medical Science, 3-18-22 Honkomagome, Bunkyo-ku, Tokyo 113-8613, Japan.
6 Department of Cell Biology, Faculty of Bio-Science, Nagahama Institute of Bio-Science and Technology, 1266 Tamura-cho, Nagahama-Shiga 526-0829, Japan.
7 Department of Cell Genetics, National Institute of Genetics/SOKENDAI, Yata 1111, Mishima-Shizuoka 411-8540, Japan.
* To whom correspondence should be addressed. E-mail: ichiro{at}dent.osaka-u.ac.jp and tamyoshi{at}lab.nig.ac.jp
Read the Full Text
THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
- Autophagy during Proliferation and Encystation in the Protozoan Parasite Entamoeba invadens.
- K. Picazarri, K. Nakada-Tsukui, and T. Nozaki (2008)
Infect. Immun.
76, 278-288
| Abstract »
| Full Text »
| PDF »
- Modification of Cellular Autophagy Protein LC3 by Poliovirus.
- M. P. Taylor and K. Kirkegaard (2007)
J. Virol.
81, 12543-12553
| Abstract »
| Full Text »
| PDF »
- Analysis of the Role of Autophagy in Replication of Herpes Simplex Virus in Cell Culture.
- D. E. Alexander, S. L. Ward, N. Mizushima, B. Levine, and D. A. Leib (2007)
J. Virol.
81, 12128-12134
| Abstract »
| Full Text »
| PDF »
- Autophagy: process and function.
- N. Mizushima (2007)
Genes & Dev.
21, 2861-2873
| Abstract »
| Full Text »
| PDF »
- SalY of the Streptococcus pyogenes Lantibiotic Locus Is Required for Full Virulence and Intracellular Survival in Macrophages.
- H. A. Phelps and M. N. Neely (2007)
Infect. Immun.
75, 4541-4551
| Abstract »
| Full Text »
| PDF »
- The Atg5 Atg12 conjugate associates with innate antiviral immune responses.
- N. Jounai, F. Takeshita, K. Kobiyama, A. Sawano, A. Miyawaki, K.-Q. Xin, K. J. Ishii, T. Kawai, S. Akira, K. Suzuki, et al. (2007)
PNAS
104, 14050-14055
| Abstract »
| Full Text »
| PDF »
- Role for Gingipains in Porphyromonas gingivalis Traffic to Phagolysosomes and Survival in Human Aortic Endothelial Cells.
- K. Yamatake, M. Maeda, T. Kadowaki, R. Takii, T. Tsukuba, T. Ueno, E. Kominami, S. Yokota, and K. Yamamoto (2007)
Infect. Immun.
75, 2090-2100
| Abstract »
| Full Text »
| PDF »
- Lysosomal killing of Mycobacterium mediated by ubiquitin-derived peptides is enhanced by autophagy.
- S. Alonso, K. Pethe, D. G. Russell, and G. E. Purdy (2007)
PNAS
104, 6031-6036
| Abstract »
| Full Text »
| PDF »
- The Crystal Structure of Atg3, an Autophagy-related Ubiquitin Carrier Protein (E2) Enzyme that Mediates Atg8 Lipidation.
- Y. Yamada, N. N. Suzuki, T. Hanada, Y. Ichimura, H. Kumeta, Y. Fujioka, Y. Ohsumi, and F. Inagaki (2007)
J. Biol. Chem.
282, 8036-8043
| Abstract »
| Full Text »
| PDF »
- Structure of Atg5{middle dot}Atg16, a Complex Essential for Autophagy.
- M. Matsushita, N. N. Suzuki, K. Obara, Y. Fujioka, Y. Ohsumi, and F. Inagaki (2007)
J. Biol. Chem.
282, 6763-6772
| Abstract »
| Full Text »
| PDF »
- Atg19 Mediates a Dual Interaction Cargo Sorting Mechanism in Selective Autophagy.
- C.-Y. Chang and W.-P. Huang (2007)
Mol. Biol. Cell
18, 919-929
| Abstract »
| Full Text »
| PDF »
- Trehalose, a Novel mTOR-independent Autophagy Enhancer, Accelerates the Clearance of Mutant Huntingtin and {alpha}-Synuclein.
- S. Sarkar, J. E. Davies, Z. Huang, A. Tunnacliffe, and D. C. Rubinsztein (2007)
J. Biol. Chem.
282, 5641-5652
| Abstract »
| Full Text »
| PDF »
- Protective role of autophagy against Vibrio cholerae cytolysin, a pore-forming toxin from V. cholerae.
- M. G. Gutierrez, H. A. Saka, I. Chinen, F. C. M. Zoppino, T. Yoshimori, J. L. Bocco, and M. I. Colombo (2007)
PNAS
104, 1829-1834
| Abstract »
| Full Text »
| PDF »
- Intraspecific Communication Through Chemical Signals in Female Mice: Reinforcing Properties of Involatile Male Sexual Pheromones.
- J. Martinez-Ricos, C. Agustin-Pavon, E. Lanuza, and F. Martinez-Garcia (2007)
Chem Senses
32, 139-148
| Abstract »
| Full Text »
| PDF »
- Staphylococcus aureus Subvert Autophagy for Induction of Caspase-independent Host Cell Death.
- A. Schnaith, H. Kashkar, S. A. Leggio, K. Addicks, M. Kronke, and O. Krut (2007)
J. Biol. Chem.
282, 2695-2706
| Abstract »
| Full Text »
| PDF »
- A critical role for the autophagy gene Atg5 in T cell survival and proliferation.
- H. H. Pua, I. Dzhagalov, M. Chuck, N. Mizushima, and Y.-W. He (2007)
J. Exp. Med.
204, 25-31
| Abstract »
| Full Text »
| PDF »
- The Vacuolar Transporter Chaperone (VTC) Complex Is Required for Microautophagy.
- A. Uttenweiler, H. Schwarz, H. Neumann, and A. Mayer (2007)
Mol. Biol. Cell
18, 166-175
| Abstract »
| Full Text »
| PDF »
- Autophagy Is Activated for Cell Survival after Endoplasmic Reticulum Stress.
- M. Ogata, S.-i. Hino, A. Saito, K. Morikawa, S. Kondo, S. Kanemoto, T. Murakami, M. Taniguchi, I. Tanii, K. Yoshinaga, et al. (2006)
Mol. Cell. Biol.
26, 9220-9231
| Abstract »
| Full Text »
| PDF »
- Autophagy: Eating for Good Health.
- M. S. Swanson (2006)
J. Immunol.
177, 4945-4951
| Abstract »
| Full Text »
| PDF »
- Autophagy Is Induced in CD4+ T Cells and Important for the Growth Factor-Withdrawal Cell Death.
- C. Li, E. Capan, Y. Zhao, J. Zhao, D. Stolz, S. C. Watkins, S. Jin, and B. Lu (2006)
J. Immunol.
177, 5163-5168
| Abstract »
| Full Text »
| PDF »
- From the Cover: Autophagy-mediated reentry of Francisella tularensis into the endocytic compartment after cytoplasmic replication.
- C. Checroun, T. D. Wehrly, E. R. Fischer, S. F. Hayes, and J. Celli (2006)
PNAS
103, 14578-14583
| Abstract »
| Full Text »
| PDF »
- Human IRGM Induces Autophagy to Eliminate Intracellular Mycobacteria.
- S. B. Singh, A. S. Davis, G. A. Taylor, and V. Deretic (2006)
Science
313, 1438-1441
| Abstract »
| Full Text »
| PDF »
- Vacuolar and plasma membrane stripping and autophagic elimination of Toxoplasma gondii in primed effector macrophages.
- Y. M. Ling, M. H. Shaw, C. Ayala, I. Coppens, G. A. Taylor, D. J.P. Ferguson, and G. S. Yap (2006)
J. Exp. Med.
203, 2063-2071
| Abstract »
| Full Text »
| PDF »
- Functional Analysis of the ATG8 Homologue Aoatg8 and Role of Autophagy in Differentiation and Germination in Aspergillus oryzae..
- T. Kikuma, M. Ohneda, M. Arioka, and K. Kitamoto (2006)
Eukaryot. Cell
5, 1328-1336
| Abstract »
| Full Text »
| PDF »
- Autophagy in Innate Immunity against Intracellular Bacteria.
- A. Amano, I. Nakagawa, and T. Yoshimori (2006)
J. Biochem.
140, 161-166
| Abstract »
| Full Text »
| PDF »
- PI4P-signaling pathway for the synthesis of a nascent membrane structure in selective autophagy.
- S.-i. Yamashita, M. Oku, Y. Wasada, Y. Ano, and Y. Sakai (2006)
J. Cell Biol.
173, 709-717
| Abstract »
| Full Text »
| PDF »
- The Oral Microbiology Research of Shigeyuki Hamada in the Pre-genomic Era..
- A. Amano (2006)
J. Dent. Res.
85, 501-504
| Full Text »
| PDF »
- Autophagic cell death of malignant glioma cells induced by a conditionally replicating adenovirus..
- H. Ito, H. Aoki, F. Kuhnel, Y. Kondo, S. Kubicka, T. Wirth, E. Iwado, A. Iwamaru, K. Fujiwara, K. R. Hess, et al. (2006)
J Natl Cancer Inst
98, 625-636
| Abstract »
| Full Text »
| PDF »
- Autophagy Controls Salmonella Infection in Response to Damage to the Salmonella-containing Vacuole.
- C. L. Birmingham, A. C. Smith, M. A. Bakowski, T. Yoshimori, and J. H. Brumell (2006)
J. Biol. Chem.
281, 11374-11383
| Abstract »
| Full Text »
| PDF »
- Autophagy-mediated clearance of huntingtin aggregates triggered by the insulin-signaling pathway.
- A. Yamamoto, M. L. Cremona, and J. E. Rothman (2006)
J. Cell Biol.
172, 719-731
| Abstract »
| Full Text »
| PDF »
- Excess Peroxisomes Are Degraded by Autophagic Machinery in Mammals.
- J.-i. Iwata, J. Ezaki, M. Komatsu, S. Yokota, T. Ueno, I. Tanida, T. Chiba, K. Tanaka, and E. Kominami (2006)
J. Biol. Chem.
281, 4035-4041
| Abstract »
| Full Text »
| PDF »
- Intracellular Inclusions Containing Mutant {alpha}1-Antitrypsin Z Are Propagated in the Absence of Autophagic Activity.
- T. Kamimoto, S. Shoji, T. Hidvegi, N. Mizushima, K. Umebayashi, D. H. Perlmutter, and T. Yoshimori (2006)
J. Biol. Chem.
281, 4467-4476
| Abstract »
| Full Text »
| PDF »
- The Actin Cytoskeleton Is Required for Selective Types of Autophagy, but Not Nonspecific Autophagy, in the Yeast Saccharomyces cerevisiae.
- F. Reggiori, I. Monastyrska, T. Shintani, and D. J. Klionsky (2005)
Mol. Biol. Cell
16, 5843-5856
| Abstract »
| Full Text »
| PDF »
- Keratinocyte Production of Cathelicidin Provides Direct Activity against Bacterial Skin Pathogens.
- M. H. Braff, M. Zaiou, J. Fierer, V. Nizet, and R. L. Gallo (2005)
Infect. Immun.
73, 6771-6781
| Abstract »
| Full Text »
| PDF »
- The apoptosis/autophagy paradox: autophagic vacuolization before apoptotic death.
- R.-A. Gonzalez-Polo, P. Boya, A.-L. Pauleau, A. Jalil, N. Larochette, S. Souquere, E.-L. Eskelinen, G. Pierron, P. Saftig, and G. Kroemer (2005)
J. Cell Sci.
118, 3091-3102
| Abstract »
| Full Text »
| PDF »
- Impairment of starvation-induced and constitutive autophagy in Atg7-deficient mice.
- M. Komatsu, S. Waguri, T. Ueno, J. Iwata, S. Murata, I. Tanida, J. Ezaki, N. Mizushima, Y. Ohsumi, Y. Uchiyama, et al. (2005)
J. Cell Biol.
169, 425-434
| Abstract »
| Full Text »
| PDF »
- Endothelial Nitric-oxide Synthase Antisense (NOS3AS) Gene Encodes an Autophagy-related Protein (APG9-like2) Highly Expressed in Trophoblast.
- T. Yamada, A. R. Carson, I. Caniggia, K. Umebayashi, T. Yoshimori, K. Nakabayashi, and S. W. Scherer (2005)
J. Biol. Chem.
280, 18283-18290
| Abstract »
| Full Text »
| PDF »
- Cytolysin-dependent evasion of lysosomal killing.
- A. Hakansson, C. C. Bentley, E. A. Shakhnovic, and M. R. Wessels (2005)
PNAS
102, 5192-5197
| Abstract »
| Full Text »
| PDF »
- Autophagy in Health and Disease: A Double-Edged Sword.
- T. Shintani and D. J. Klionsky (2004)
Science
306, 990-995
| Abstract »
| Full Text »
| PDF »
|
|