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Isolation of Labile Multi-protein Complexes by in vivo Controlled Cellular Cross-Linking and Immuno-magnetic Affinity Chromatography
Published on: March 9, 2010
The 3A protein from multiple picornaviruses utilizes the golgi adaptor protein ACBD3 to recruit PI4KIIIβ
Alexander L Greninger1, Giselle M Knudsen, Miguel Betegon
1Howard Hughes Medical Institute and the Department of Biochemistry & Biophysics, University of California at San Francisco, San Francisco, California, USA.
Abstract:
The activity of phosphatidylinositol 4-kinase class III beta (PI4KIIIβ) has been shown to be required for the replication of multiple picornaviruses; however, it is unclear whether a physical association between PI4KIIIβ and the viral replication machinery exists and, if it does, whether association is necessary. We examined the ability of the 3A protein from 18 different picornaviruses to form a complex with PI4KIIIβ by affinity purification of Strep-Tagged transiently transfected constructs followed by mass spectrometry and Western blotting for putative interacting targets. We found that the 3A proteins of Aichi virus, bovine kobuvirus, poliovirus, coxsackievirus B3, and human rhinovirus 14 all copurify with PI4KIIIβ. Furthermore, we found that multiple picornavirus 3A proteins copurify with the Golgi adaptor protein acyl coenzyme A (acyl-CoA) binding domain protein 3 (ACBD3/GPC60), including those from Aichi virus, bovine kobuvirus, human rhinovirus 14, poliovirus, and coxsackievirus B2, B3, and B5. Affinity purification of ACBD3 confirmed interaction with multiple picornaviral 3A proteins and revealed the ability to bind PI4KIIIβ in the absence of 3A. Mass-spectrometric analysis of transiently expressed Aichi virus, bovine kobuvirus, and human klassevirus 3A proteins demonstrated that the N-terminal glycines of these 3A proteins are myristoylated. Alanine-scanning mutagenesis along the entire length of Aichi virus 3A followed by transient expression and affinity purification revealed that copurification of PI4KIIIβ could be eliminated by mutation of specific residues, with little or no effect on recruitment of ACBD3. One mutation at the N terminus, I5A, significantly reduced copurification of both ACBD3 and PI4KIIIβ. The dependence of Aichi virus replication on the activity of PI4KIIIβ was confirmed by both chemical and genetic inhibition. Knockdown of ACBD3 by small interfering RNA (siRNA) also prevented replication of both Aichi virus and poliovirus. Point mutations in 3A that eliminate PI4KIIIβ association sensitized Aichi virus to PIK93, suggesting that disruption of the 3A/ACBD3/PI4KIIIβ complex may represent a novel target for therapeutic intervention that would be complementary to the inhibition of the kinase activity itself.
Insights
Picornavirus replication requires phosphatidylinositol 4-kinase class III beta (PI4KIIIβ). This study reveals that viral 3A proteins bind PI4KIIIβ via ACBD3, and disrupting this complex offers a novel therapeutic target.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Picornavirus replication depends on phosphatidylinositol 4-kinase class III beta (PI4KIIIβ) activity.
- The precise mechanism of PI4KIIIβ involvement and its interaction with viral replication machinery remains unclear.
Purpose of the Study:
- To investigate the physical association between picornavirus 3A proteins and PI4KIIIβ.
- To determine if this association is essential for viral replication and to explore potential therapeutic targets.
Main Methods:
- Affinity purification coupled with mass spectrometry and Western blotting were used to identify interacting proteins.
- Alanine-scanning mutagenesis and siRNA-mediated knockdown were employed to assess the functional significance of identified interactions.
- Viral replication assays were performed under chemical and genetic inhibition.
Main Results:
- Multiple picornavirus 3A proteins were found to complex with PI4KIIIβ, often mediated by ACBD3.
- Myristoylation of 3A N-terminal glycines was observed in several viruses.
- Specific mutations in Aichi virus 3A disrupted PI4KIIIβ association and sensitized the virus to PIK93, while ACBD3 knockdown inhibited viral replication.
Conclusions:
- The 3A/ACBD3/PI4KIIIβ complex is crucial for picornavirus replication.
- Disrupting this complex represents a potential therapeutic strategy complementary to direct PI4KIIIβ inhibition.
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