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本文引用的文献

1
Mechanisms of Autophagy Initiation.自噬起始机制。
Annu Rev Biochem. 2017 Jun 20;86:225-244. doi: 10.1146/annurev-biochem-061516-044820. Epub 2017 Mar 15.
2
Fine-tuning of ULK1 mRNA and protein levels is required for autophagy oscillation.自噬振荡需要对ULK1 mRNA和蛋白质水平进行微调。
J Cell Biol. 2016 Dec 19;215(6):841-856. doi: 10.1083/jcb.201605089. Epub 2016 Dec 8.
3
Enterovirus 71 infection of motor neuron-like NSC-34 cells undergoes a non-lytic exit pathway.肠道病毒 71 感染运动神经元样 NSC-34 细胞经历非裂解性退出途径。
Sci Rep. 2016 Nov 16;6:36983. doi: 10.1038/srep36983.
4
An siRNA screen for ATG protein depletion reveals the extent of the unconventional functions of the autophagy proteome in virus replication.一项针对自噬相关蛋白(ATG)缺失的小干扰RNA(siRNA)筛选揭示了自噬蛋白质组在病毒复制中非常规功能的程度。
J Cell Biol. 2016 Aug 29;214(5):619-35. doi: 10.1083/jcb.201602046.
5
AMPK regulates autophagy by phosphorylating BECN1 at threonine 388.AMPK 通过磷酸化 BECN1 的苏氨酸 388 来调节自噬。
Autophagy. 2016 Sep;12(9):1447-59. doi: 10.1080/15548627.2016.1185576. Epub 2016 Jun 15.
6
Nutrient-regulated Phosphorylation of ATG13 Inhibits Starvation-induced Autophagy.营养物质调节的ATG13磷酸化抑制饥饿诱导的自噬。
J Biol Chem. 2016 Mar 11;291(11):6026-6035. doi: 10.1074/jbc.M115.689646. Epub 2016 Jan 22.
7
Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition).自噬监测检测方法的使用与解读指南(第3版)
Autophagy. 2016;12(1):1-222. doi: 10.1080/15548627.2015.1100356.
8
Coxsackievirus B3 induces autophagy in HeLa cells via the AMPK/MEK/ERK and Ras/Raf/MEK/ERK signaling pathways.柯萨奇病毒B3通过AMPK/MEK/ERK和Ras/Raf/MEK/ERK信号通路诱导HeLa细胞发生自噬。
Infect Genet Evol. 2015 Dec;36:46-54. doi: 10.1016/j.meegid.2015.08.026. Epub 2015 Aug 22.
9
Activation of AMPK restricts coxsackievirus B3 replication by inhibiting lipid accumulation.AMPK的激活通过抑制脂质积累来限制柯萨奇病毒B3的复制。
J Mol Cell Cardiol. 2015 Aug;85:155-67. doi: 10.1016/j.yjmcc.2015.05.021. Epub 2015 Jun 6.
10
Phosphorylation of the exchange factor DENND3 by ULK in response to starvation activates Rab12 and induces autophagy.饥饿时,ULK对交换因子DENND3的磷酸化作用激活Rab12并诱导自噬。
EMBO Rep. 2015 Jun;16(6):709-18. doi: 10.15252/embr.201440006. Epub 2015 Apr 29.

脊髓灰质炎病毒诱导自噬信号传导不依赖于 ULK1 复合物。

Poliovirus induces autophagic signaling independent of the ULK1 complex.

机构信息

a Department of Microbiology and Immunology , University of Maryland School of Medicine , Baltimore , MD , USA.

b Department of Microbiology and Molecular Genetics , Medical College of Wisconsin , Milwaukee , WI , USA.

出版信息

Autophagy. 2018;14(7):1201-1213. doi: 10.1080/15548627.2018.1458805. Epub 2018 Jul 20.

DOI:10.1080/15548627.2018.1458805
PMID:29929428
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6103675/
Abstract

UNLABELLED

Poliovirus (PV), like many positive-strand RNA viruses, subverts the macroautophagy/autophagy pathway to promote its own replication. Here, we investigate whether the virus uses the canonical autophagic signaling complex, consisting of the ULK1/2 kinases, ATG13, RB1CC1, and ATG101, to activate autophagy. We find that the virus sends autophagic signals independent of the ULK1 complex, and that the members of the autophagic complex are not required for normal levels of viral replication. We also show that the SQSTM1/p62 receptor protein is not degraded in a conventional manner during infection, but is likely cleaved in a manner similar to that shown for coxsackievirus B3. This means that SQSTM1, normally used to monitor autophagic degradation, cannot be used to accurately monitor degradation during poliovirus infection. In fact, autophagic degradation may be affected by the loss of SQSTM1 at the same time as autophagic signals are being sent. Finally, we demonstrate that ULK1 and ULK2 protein levels are greatly reduced during PV infection, and ATG13, RB1CC1, and ATG101 protein levels are reduced as well. Surprisingly, autophagic signaling appears to increase as ULK1 levels decrease. Overexpression of wild-type or dominant-negative ULK1 constructs does not affect virus replication, indicating that ULK1 degradation may be a side effect of the ULK1-independent signaling mechanism used by PV, inducing complex instability. This demonstration of ULK1-independent autophagic signaling is novel and leads to a model by which the virus is signaling to generate autophagosomes downstream of ULK1, while at the same time, cleaving cargo receptors, which may affect cargo loading and autophagic degradative flux. Our data suggest that PV has a finely-tuned relationship with the autophagic machinery, generating autophagosomes without using the primary autophagy signaling pathway.

ABBREVIATIONS

ACTB - actin beta; ATG13 - autophagy related 13; ATG14 - autophagy related 14; ATG101 - autophagy related 101; BECN1 - beclin 1; CVB3 - coxsackievirus B3; DMV - double-membraned vesicles; EM - electron microscopy; EMCV - encephalomyocarditis virus; EV-71 - enterovirus 71; FMDV - foot and mouth disease virus; GFP - green fluorescent protein; MAP1LC3B/LC3B - microtubule associated protein 1 light chain 3 beta; MOI - multiplicity of infection; MTOR - mechanistic target of rapamycin kinase; PIK3C3 - phosphatidylinositol 3-kinase catalytic subunit type 3; PRKAA2 - protein kinase AMP-activated catalytic subunit alpha 2; PSMG1 - proteasome assembly chaperone 1; PSMG2 - proteasome assembly chaperone 2PV - poliovirus; RB1CC1 - RB1 inducible coiled-coil 1; SQSTM1 - sequestosome 1; ULK1 - unc-51 like autophagy activating kinase 1; ULK2 - unc-51 like autophagy activating kinase 2; WIPI1 - WD repeat domain, phosphoinositide interacting 1.

摘要

未加标签

脊髓灰质炎病毒(PV)与许多正链 RNA 病毒一样,颠覆了巨自噬/自噬途径以促进自身复制。在这里,我们研究了病毒是否利用由 ULK1/2 激酶、ATG13、RB1CC1 和 ATG101 组成的典型自噬信号复合物来激活自噬。我们发现病毒发出的自噬信号不依赖于 ULK1 复合物,自噬复合物的成员对于病毒正常复制水平不是必需的。我们还表明,在感染过程中,SQSTM1/p62 受体蛋白不会以常规方式降解,而是可能以类似于柯萨奇病毒 B3 所示的方式被切割。这意味着 SQSTM1,通常用于监测自噬降解,不能用于准确监测脊髓灰质炎病毒感染期间的降解。事实上,自噬降解可能会受到 SQSTM1 丢失的影响,同时自噬信号也在发出。最后,我们证明在 PV 感染过程中 ULK1 和 ULK2 蛋白水平大大降低,ATG13、RB1CC1 和 ATG101 蛋白水平也降低。令人惊讶的是,自噬信号似乎随着 ULK1 水平的降低而增加。野生型或显性负 ULK1 构建体的过表达并不影响病毒复制,表明 ULK1 降解可能是 PV 所使用的 ULK1 非依赖性信号机制的副作用,诱导复合物不稳定。这种 ULK1 非依赖性自噬信号的证明是新颖的,并导致一种模型,即病毒在下游 ULK1 处发出信号以产生自噬体,同时切割货物受体,这可能影响货物加载和自噬降解通量。我们的数据表明,PV 与自噬机制之间存在着精细的关系,在不使用主要自噬信号通路的情况下产生自噬体。

缩写词

ACTB-肌动蛋白 beta;ATG13-自噬相关 13;ATG14-自噬相关 14;ATG101-自噬相关 101;BECN1-自噬相关 101;CVB3-柯萨奇病毒 B3;DMV-双膜囊泡;EM-电子显微镜;EMCV-脑炎心肌炎病毒;EV-71-肠道病毒 71;FMDV-口蹄疫病毒;GFP-绿色荧光蛋白;MAP1LC3B/LC3B-微管相关蛋白 1 轻链 3 型;MOI-多重感染;MTOR-雷帕霉素靶蛋白激酶;PIK3C3-磷酸肌醇 3-激酶催化亚单位 3;PRKAA2-蛋白激酶 AMP 激活的催化亚单位 alpha 2;PSMG1-蛋白酶体组装伴侣 1;PSMG2-蛋白酶体组装伴侣 2;PV-脊髓灰质炎病毒;RB1CC1-RB1 诱导卷曲螺旋 1;SQSTM1-自噬相关蛋白 1;ULK1-非典型卷曲螺旋激酶 1;ULK2-非典型卷曲螺旋激酶 2;WIPI1-WD 重复域,磷酸肌醇相互作用 1。