메뉴 건너뛰기




Volumn 129, Issue 19, 2016, Pages 3562-3573

TRIM17 contributes to autophagy of midbodies while actively sparing other targets from degradation

Author keywords

HIV; Mcl 1; Midbody; Selective autophagy; Tripartite motif

Indexed keywords

BECLIN 1; PROTEIN; PROTEIN MCL 1; TRIM17 PROTEIN; TRIM21 PROTEIN; TRIM47 PROTEIN; TRIM76 PROTEIN; UNCLASSIFIED DRUG; BECN1 PROTEIN, HUMAN; CARRIER PROTEIN; DNA BINDING PROTEIN; MCL1 PROTEIN, HUMAN; SMALL INTERFERING RNA; TRIM17 PROTEIN, HUMAN; TRIPARTITE MOTIF-CONTAINING PROTEIN 15, HUMAN;

EID: 84995538137     PISSN: 00219533     EISSN: 14779137     Source Type: Journal    
DOI: 10.1242/jcs.190017     Document Type: Article
Times cited : (37)

References (64)
  • 2
    • 84883414890 scopus 로고    scopus 로고
    • The LIR motif-crucial for selective autophagy
    • Birgisdottir, A. B., Lamark, T. and Johansen, T. (2013). The LIR motif-crucial for selective autophagy. J. Cell Sci. 126, 3237-3247.
    • (2013) J. Cell Sci , vol.126 , pp. 3237-3247
    • Birgisdottir, A.B.1    Lamark, T.2    Johansen, T.3
  • 3
    • 27944504351 scopus 로고    scopus 로고
    • p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death
    • Bjørkøy, G., Lamark, T., Brech, A., Outzen, H., Perander, M., Øvervatn, A., Stenmark, H. and Johansen, T. (2005). p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death. J. Cell Biol. 171, 603-614.
    • (2005) J. Cell Biol , vol.171 , pp. 603-614
    • Bjørkøy, G.1    Lamark, T.2    Brech, A.3    Outzen, H.4    Perander, M.5    Øvervatn, A.6    Stenmark, H.7    Johansen, T.8
  • 5
    • 76349114046 scopus 로고    scopus 로고
    • Antagonism of Beclin 1-dependent autophagy by BCL-2 at the endoplasmic reticulum requires NAF-1
    • Chang, N. C., Nguyen, M., Germain, M. and Shore, G. C. (2010). Antagonism of Beclin 1-dependent autophagy by BCL-2 at the endoplasmic reticulum requires NAF-1. EMBO J. 29, 606-618.
    • (2010) EMBO J , vol.29 , pp. 606-618
    • Chang, N.C.1    Nguyen, M.2    Germain, M.3    Shore, G.C.4
  • 8
    • 84938710018 scopus 로고    scopus 로고
    • Midbody: from cellular junk to regulator of cell polarity and cell fate
    • Dionne, L. K., Wang, X.-J. and Prekeris, R. (2015). Midbody: from cellular junk to regulator of cell polarity and cell fate. Curr. Opin. Cell Biol. 35, 51-58.
    • (2015) Curr. Opin. Cell Biol , vol.35 , pp. 51-58
    • Dionne, L.K.1    Wang, X.-J.2    Prekeris, R.3
  • 9
    • 84904575441 scopus 로고    scopus 로고
    • WIPI2 links LC3 conjugation with PI3P, autophagosome formation, and pathogen clearance by recruiting Atg12-5-16L1
    • Dooley, H. C., Razi, M., Polson, H. E., Girardin, S. E., Wilson, M. I. and Tooze, S. A. (2014). WIPI2 links LC3 conjugation with PI3P, autophagosome formation, and pathogen clearance by recruiting Atg12-5-16L1. Mol. Cell 55, 238-252.
    • (2014) Mol. Cell , vol.55 , pp. 238-252
    • Dooley, H.C.1    Razi, M.2    Polson, H.E.3    Girardin, S.E.4    Wilson, M.I.5    Tooze, S.A.6
  • 11
    • 84856420883 scopus 로고    scopus 로고
    • Terf/TRIM17 stimulates degradation of kinetochore protein ZWINT and regulates cell proliferation
    • Endo, H., Ikeda, K., Urano, T., Horie-Inoue, K. and Inoue, S. (2012). Terf/TRIM17 stimulates degradation of kinetochore protein ZWINT and regulates cell proliferation. J. Biochem. 151, 139-144.
    • (2012) J. Biochem , vol.151 , pp. 139-144
    • Endo, H.1    Ikeda, K.2    Urano, T.3    Horie-Inoue, K.4    Inoue, S.5
  • 13
    • 84876476422 scopus 로고    scopus 로고
    • Beclin-1 is required for chromosome congression and proper outer kinetochore assembly
    • Frémont, S., Gérard, A., Galloux, M., Janvier, K., Karess, R. E. and Berlioz-Torrent, C. (2013). Beclin-1 is required for chromosome congression and proper outer kinetochore assembly. EMBO Rep. 14, 364-372.
    • (2013) EMBO Rep , vol.14 , pp. 364-372
    • Frémont, S.1    Gérard, A.2    Galloux, M.3    Janvier, K.4    Karess, R.E.5    Berlioz-Torrent, C.6
  • 14
    • 84943199868 scopus 로고    scopus 로고
    • Cell death by autophagy: emerging molecular mechanisms and implications for cancer therapy
    • Fulda, S. and Kö gel, D. (2015). Cell death by autophagy: emerging molecular mechanisms and implications for cancer therapy. Oncogene 34, 5105-5113.
    • (2015) Oncogene , vol.34 , pp. 5105-5113
    • Fulda, S.1    Kögel, D.2
  • 16
    • 84899131967 scopus 로고    scopus 로고
    • Autophagy in antimicrobial immunity
    • Gomes, L. C. and Dikic, I. (2014). Autophagy in antimicrobial immunity. Mol. Cell 54, 224-233.
    • (2014) Mol. Cell , vol.54 , pp. 224-233
    • Gomes, L.C.1    Dikic, I.2
  • 17
    • 84960968603 scopus 로고    scopus 로고
    • TRIM5alpha degradation via autophagy is not required for retroviral restriction
    • Imam, S., Talley, S., Nelson, R. S., Dharan, A., O'connor, C., Hope, T. J. and Campbell, E. M. (2016). TRIM5alpha degradation via autophagy is not required for retroviral restriction. J. Virol. 90, 3400-3410.
    • (2016) J. Virol , vol.90 , pp. 3400-3410
    • Imam, S.1    Talley, S.2    Nelson, R.S.3    Dharan, A.4    O'connor, C.5    Hope, T.J.6    Campbell, E.M.7
  • 18
    • 84890828812 scopus 로고    scopus 로고
    • TRAF6 mediates ubiquitination of KIF23/MKLP1 and is required for midbody ring degradation by selective autophagy
    • Isakson, P., Lystad, A. H., Breen, K., Koster, G., Stenmark, H. and Simonsen, A. (2013). TRAF6 mediates ubiquitination of KIF23/MKLP1 and is required for midbody ring degradation by selective autophagy. Autophagy 9, 1955-1964.
    • (2013) Autophagy , vol.9 , pp. 1955-1964
    • Isakson, P.1    Lystad, A.H.2    Breen, K.3    Koster, G.4    Stenmark, H.5    Simonsen, A.6
  • 19
    • 79952355107 scopus 로고    scopus 로고
    • Selective autophagy mediated by autophagic adapter proteins
    • Johansen, T. and Lamark, T. (2011). Selective autophagy mediated by autophagic adapter proteins. Autophagy 7, 279-296.
    • (2011) Autophagy , vol.7 , pp. 279-296
    • Johansen, T.1    Lamark, T.2
  • 20
    • 84954129051 scopus 로고    scopus 로고
    • p62/SQSTM1 functions as a signaling hub and an autophagy adaptor
    • Katsuragi, Y., Ichimura, Y. and Komatsu, M. (2015). p62/SQSTM1 functions as a signaling hub and an autophagy adaptor. FEBS J. 282, 4672-4678.
    • (2015) FEBS J , vol.282 , pp. 4672-4678
    • Katsuragi, Y.1    Ichimura, Y.2    Komatsu, M.3
  • 22
    • 0035809160 scopus 로고    scopus 로고
    • Two distinct Vps34 phosphatidylinositol 3-kinase complexes function in autophagy and carboxypeptidase Y sorting in Saccharomyces cerevisiae
    • Kihara, A., Noda, T., Ishihara, N. and Ohsumi, Y. (2001). Two distinct Vps34 phosphatidylinositol 3-kinase complexes function in autophagy and carboxypeptidase Y sorting in Saccharomyces cerevisiae. J. Cell Biol. 152, 519-530.
    • (2001) J. Cell Biol , vol.152 , pp. 519-530
    • Kihara, A.1    Noda, T.2    Ishihara, N.3    Ohsumi, Y.4
  • 23
    • 79551598347 scopus 로고    scopus 로고
    • AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1
    • Kim, J., Kundu, M., Viollet, B. and Guan, K.-L. (2011). AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1. Nat. Cell Biol. 13, 132-141.
    • (2011) Nat. Cell Biol , vol.13 , pp. 132-141
    • Kim, J.1    Kundu, M.2    Viollet, B.3    Guan, K.-L.4
  • 24
    • 84872586081 scopus 로고    scopus 로고
    • Differential regulation of distinct Vps34 complexes by AMPK in nutrient stress and autophagy
    • Kim, J., Kim, Y. C., Fang, C., Russell, R. C., Kim, J. H., Fan, W., Liu, R., Zhong, Q. and Guan, K.-L. (2013). Differential regulation of distinct Vps34 complexes by AMPK in nutrient stress and autophagy. Cell 152, 290-303.
    • (2013) Cell , vol.152 , pp. 290-303
    • Kim, J.1    Kim, Y.C.2    Fang, C.3    Russell, R.C.4    Kim, J.H.5    Fan, W.6    Liu, R.7    Zhong, Q.8    Guan, K.-L.9
  • 26
    • 84960354182 scopus 로고    scopus 로고
    • Precision autophagy directed by receptor regulators-emerging examples within the TRIM family
    • Kimura, T., Mandell, M. and Deretic, V. (2016). Precision autophagy directed by receptor regulators-emerging examples within the TRIM family. J. Cell Sci. 129, 881-891.
    • (2016) J. Cell Sci , vol.129 , pp. 881-891
    • Kimura, T.1    Mandell, M.2    Deretic, V.3
  • 32
    • 84902125387 scopus 로고    scopus 로고
    • Prosurvival Bcl-2 family members affect autophagy only indirectly, by inhibiting Bax and Bak
    • Lindqvist, L. M., Heinlein, M., Huang, D. C. S. and Vaux, D. L. (2014). Prosurvival Bcl-2 family members affect autophagy only indirectly, by inhibiting Bax and Bak. Proc. Natl. Acad. Sci. USA 111, 8512-8517.
    • (2014) Proc. Natl. Acad. Sci. USA , vol.111 , pp. 8512-8517
    • Lindqvist, L.M.1    Heinlein, M.2    Huang, D.C.S.3    Vaux, D.L.4
  • 33
    • 84872288551 scopus 로고    scopus 로고
    • Trim17-mediated ubiquitination and degradation of Mcl-1 initiate apoptosis in neurons
    • Magiera, M. M., Mora, S., Mojsa, B., Robbins, I., Lassot, I. and Desagher, S. (2013). Trim17-mediated ubiquitination and degradation of Mcl-1 initiate apoptosis in neurons. Cell Death Differ. 20, 281-292.
    • (2013) Cell Death Differ , vol.20 , pp. 281-292
    • Magiera, M.M.1    Mora, S.2    Mojsa, B.3    Robbins, I.4    Lassot, I.5    Desagher, S.6
  • 36
    • 81055144784 scopus 로고    scopus 로고
    • Autophagy: renovation of cells and tissues
    • Mizushima, N. and Komatsu, M. (2011). Autophagy: renovation of cells and tissues. Cell 147, 728-741.
    • (2011) Cell , vol.147 , pp. 728-741
    • Mizushima, N.1    Komatsu, M.2
  • 38
    • 77955427514 scopus 로고    scopus 로고
    • Downregulation of active IKK beta by Ro52-mediated autophagy
    • Niida, M., Tanaka, M. and Kamitani, T. (2010). Downregulation of active IKK beta by Ro52-mediated autophagy. Mol. Immunol. 47, 2378-2387.
    • (2010) Mol. Immunol , vol.47 , pp. 2378-2387
    • Niida, M.1    Tanaka, M.2    Kamitani, T.3
  • 39
    • 53049102656 scopus 로고    scopus 로고
    • The Atg18-Atg2 complex is recruited to autophagic membranes via phosphatidylinositol 3-phosphate and exerts an essential function
    • Obara, K., Sekito, T., Niimi, K. and Ohsumi, Y. (2008). The Atg18-Atg2 complex is recruited to autophagic membranes via phosphatidylinositol 3-phosphate and exerts an essential function. J. Biol. Chem. 283, 23972-23980.
    • (2008) J. Biol. Chem , vol.283 , pp. 23972-23980
    • Obara, K.1    Sekito, T.2    Niimi, K.3    Ohsumi, Y.4
  • 46
    • 58149344946 scopus 로고    scopus 로고
    • Midbody ring disposal by autophagy is a postabscission event of cytokinesis
    • Pohl, C. and Jentsch, S. (2009). Midbody ring disposal by autophagy is a postabscission event of cytokinesis. Nat. Cell Biol. 11, 65-70.
    • (2009) Nat. Cell Biol , vol.11 , pp. 65-70
    • Pohl, C.1    Jentsch, S.2
  • 47
    • 84941941753 scopus 로고    scopus 로고
    • Post-translationally-modified structures in the autophagy machinery: an integrative perspective
    • Popelka, H. and Klionsky, D. J. (2015). Post-translationally-modified structures in the autophagy machinery: an integrative perspective. FEBS J. 282, 3474-3488.
    • (2015) FEBS J , vol.282 , pp. 3474-3488
    • Popelka, H.1    Klionsky, D.J.2
  • 48
    • 84898624312 scopus 로고    scopus 로고
    • Self and nonself: how autophagy targets mitochondria and bacteria
    • Randow, F. and Youle, R. J. (2014). Self and nonself: how autophagy targets mitochondria and bacteria. Cell Host Microbe 15, 403-411.
    • (2014) Cell Host Microbe , vol.15 , pp. 403-411
    • Randow, F.1    Youle, R.J.2
  • 50
    • 84892859905 scopus 로고    scopus 로고
    • Interactions between autophagy receptors and ubiquitin-like proteins form the molecular basis for selective autophagy
    • Rogov, V., Dö tsch, V., Johansen, T. and Kirkin, V. (2014). Interactions between autophagy receptors and ubiquitin-like proteins form the molecular basis for selective autophagy. Mol. Cell 53, 167-178.
    • (2014) Mol. Cell , vol.53 , pp. 167-178
    • Rogov, V.1    Dötsch, V.2    Johansen, T.3    Kirkin, V.4
  • 54
    • 77953858790 scopus 로고    scopus 로고
    • TRAF6 and A20 regulate lysine 63-linked ubiquitination of Beclin-1 to control TLR4-induced autophagy
    • Shi, C. S. and Kehrl, J. H. (2010). TRAF6 and A20 regulate lysine 63-linked ubiquitination of Beclin-1 to control TLR4-induced autophagy. Sci. Signal 3, ra42.
    • (2010) Sci. Signal , vol.3
    • Shi, C.S.1    Kehrl, J.H.2
  • 55
    • 84901815187 scopus 로고    scopus 로고
    • Cargo recognition and trafficking in selective autophagy
    • Stolz, A., Ernst, A. and Dikic, I. (2014). Cargo recognition and trafficking in selective autophagy. Nat. Cell Biol. 16, 495-501.
    • (2014) Nat. Cell Biol , vol.16 , pp. 495-501
    • Stolz, A.1    Ernst, A.2    Dikic, I.3
  • 56
    • 1542288934 scopus 로고    scopus 로고
    • The cytoplasmic body component TRIM5alpha restricts HIV-1 infection in Old World monkeys
    • Stremlau, M., Owens, C. M., Perron, M. J., Kiessling, M., Autissier, P. and Sodroski, J. (2004). The cytoplasmic body component TRIM5alpha restricts HIV-1 infection in Old World monkeys. Nature 427, 848-853.
    • (2004) Nature , vol.427 , pp. 848-853
    • Stremlau, M.1    Owens, C.M.2    Perron, M.J.3    Kiessling, M.4    Autissier, P.5    Sodroski, J.6
  • 57
    • 84983718691 scopus 로고    scopus 로고
    • Mcl-1-dependent activation of Beclin 1 mediates autophagic cell death induced by sorafenib and SC-59 in hepatocellular carcinoma cells
    • Tai, W.-T., Shiau, C.-W., Chen, H.-L., Liu, C.-Y., Lin, C.-S., Cheng, A.-L., Chen, P.-J. and Chen, K.-F. (2013). Mcl-1-dependent activation of Beclin 1 mediates autophagic cell death induced by sorafenib and SC-59 in hepatocellular carcinoma cells. Cell Death Dis. 4, e485.
    • (2013) Cell Death Dis , vol.4
    • Tai, W.-T.1    Shiau, C.-W.2    Chen, H.-L.3    Liu, C.-Y.4    Lin, C.-S.5    Cheng, A.-L.6    Chen, P.-J.7    Chen, K.-F.8
  • 58
    • 84863012159 scopus 로고    scopus 로고
    • TGFbeta-activated kinase 1 (TAK1)-binding proteins (TAB) 2 and 3 negatively regulate autophagy
    • Takaesu, G., Kobayashi, T. and Yoshimura, A. (2012). TGFbeta-activated kinase 1 (TAK1)-binding proteins (TAB) 2 and 3 negatively regulate autophagy. J. Biochem. 151, 157-166.
    • (2012) J. Biochem , vol.151 , pp. 157-166
    • Takaesu, G.1    Kobayashi, T.2    Yoshimura, A.3
  • 59
    • 84885638436 scopus 로고    scopus 로고
    • Autophagy promotes primary ciliogenesis by removing OFD1 from centriolar satellites
    • Tang, Z., Lin, M. G., Stowe, T. R., Chen, S., Zhu, M., Stearns, T., Franco, B. and Zhong, Q. (2013). Autophagy promotes primary ciliogenesis by removing OFD1 from centriolar satellites. Nature 502, 254-257.
    • (2013) Nature , vol.502 , pp. 254-257
    • Tang, Z.1    Lin, M.G.2    Stowe, T.R.3    Chen, S.4    Zhu, M.5    Stearns, T.6    Franco, B.7    Zhong, Q.8
  • 61
    • 44949237240 scopus 로고    scopus 로고
    • JNK1-mediated phosphorylation of Bcl-2 regulates starvation-induced autophagy
    • Wei, Y., Pattingre, S., Sinha, S., Bassik, M. and Levine, B. (2008). JNK1-mediated phosphorylation of Bcl-2 regulates starvation-induced autophagy. Mol. Cell 30, 678-688.
    • (2008) Mol. Cell , vol.30 , pp. 678-688
    • Wei, Y.1    Pattingre, S.2    Sinha, S.3    Bassik, M.4    Levine, B.5
  • 62
    • 85003048223 scopus 로고    scopus 로고
    • The stress-responsive kinases MAPKAPK2/MAPKAPK3 activate starvation-induced autophagy through Beclin 1 phosphorylation
    • Wei, Y., An, Z., Zou, Z., Sumpter, R., Su, M., Zang, X., Sinha, S., Gaestel, M. and Levine, B. (2015). The stress-responsive kinases MAPKAPK2/MAPKAPK3 activate starvation-induced autophagy through Beclin 1 phosphorylation. Elife 4, e05289.
    • (2015) Elife , vol.4
    • Wei, Y.1    An, Z.2    Zou, Z.3    Sumpter, R.4    Su, M.5    Zang, X.6    Sinha, S.7    Gaestel, M.8    Levine, B.9
  • 64
    • 64049113909 scopus 로고    scopus 로고
    • Distinct regulation of autophagic activity by Atg14L and Rubicon associated with Beclin 1-phosphatidylinositol-3-kinase complex
    • Zhong, Y., Wang, Q. J., Li, X., Yan, Y., Backer, J. M., Chait, B. T., Heintz, N. and Yue, Z. (2009). Distinct regulation of autophagic activity by Atg14L and Rubicon associated with Beclin 1-phosphatidylinositol-3-kinase complex. Nat. Cell Biol. 11, 468-476.
    • (2009) Nat. Cell Biol , vol.11 , pp. 468-476
    • Zhong, Y.1    Wang, Q.J.2    Li, X.3    Yan, Y.4    Backer, J.M.5    Chait, B.T.6    Heintz, N.7    Yue, Z.8


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.