| Literature DB >> 24762043 |
Rinki Minakshi, Kartika Padhan1.
Abstract
BACKGROUND: The SARS coronavirus (SARS-CoV) 3a protein functions as an ion channel, induces apoptosis and is important for viral pathogenesis. It is expressed on the cell surface and contains a tyrosine-based sorting motif and a di-acidic motif, which may be crucial for its intracellular trafficking. However the role of these motifs is not fully understood in the case of 3a protein.Entities:
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Year: 2014 PMID: 24762043 PMCID: PMC4004515 DOI: 10.1186/1743-422X-11-75
Source DB: PubMed Journal: Virol J ISSN: 1743-422X Impact factor: 4.099
Figure 1The 3a protein domains and mutants. The 3a protein has three transmembrane regions (grey boxes) between amino-acid 34–56, 77–99, 103–125, and YXXΦ and EXD motifs in the 150 amino-acids long cytoplasmic domain. The Cyto3a mutant lacks the three trans membrane regions. The amino acid changes in the ∆YXXΦ and ∆EXD mutants are indicated. An N terminal c-Myc epitope tag (red box) is attached to all the constructs.
Comparison of amino acid sequences in the cytoplasmic tail of different SARS-CoV isolates from human and bat
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aAmino acid sequences were obtained from National Center for Biotechnology Information (NCBI). The YXXΦ (where X is any amino acid and Φ is an amino acid with a bulky hydrophobic side chain) and EXD motifs are shown in italics whereas mutated motifs are highlighted in bold letters.
Figure 2Mutation of the tyrosine based sorting motif abrogates surface expression of the 3a protein. (A) Distribution of 3a protein in different cell lines - COS-7, HT29, MDCK and Huh7. The pSGI-3A-HA construct was transfected into these cell lines and stained with rabbit anti-3a antibody and Alexa-594 conjugated anti-rabbit IgG. (B) Surface expression of 3a and its mutants - Huh7 cells were transfected with expression constructs for wild type or mutant 3a proteins. Protein expression on the cell surface was detected using an anti-Myc antibody without permeabilizing the cells; the total levels were detected with anti-3a antibody after permeabilizing the cells with methanol. Arrow indicates surface distribution. Data shown are representative of three different experiments.
Figure 3The ∆YXXΦ mutant localizes to the Golgi compartment. (A) Expression constructs for wild type 3a or its mutants were cotransfected with DsRed-ER or YFP-Golgi markers in Huh7 cells, followed by staining with anti-3a antibodies. (B) Quantitative estimates of subcellular distribution patterns of the 3a and its mutants. Golgi saturated and plasma membrane distribution pattern was quantified by looking at colocalisation with Golgi marker and surface staining respectively. A total of at least 50 different expressing cells were analyzed for each condition. Data shown are representative of three different experiments.
Figure 4The ∆YXXΦ mutant is targeted to lipid droplets. (A) Huh7 cells were transfected with the indicated expression constructs. After 48 hr cells were treated with 1 mM fatty acids for 6 hr and then lipid droplets were stained with Nile Red. The 3a was stained with anti-3a antibodies. (B) Percent of the indicated 3a proteins in lipid droplets were quantified by determining colocalization coefficient in at least 50 different expressing cells as described. Data shown are representative of three different experiments.
Figure 5Increased lipid droplet targeting is associated with increased lysosomal degradation. (A) Expression levels of the wild type and mutant 3a proteins were evaluated 48 hrs post-transfection into Huh7 cells by western blotting with anti-3a antibodies and semi-quantitative RT-PCR with gene-specific primers. (B)In vitro transcription-translation analysis of the wild type and mutant 3a proteins in a rabbit reticulocyte lysate system. (C) Colocalization of the ∆YXXΦ mutant protein and the late endosome/lysosomal marker Rab7. (D) Transfected Huh7 cells expressing the ∆YXXΦ mutant protein were treated with Brefeldin-A or Aprotinin for 12 hr before harvest. Western blotting was done with anti-3a and ERK (loading control) antibodies. Quantitation was done using Image-J software. Data shown are representative of two different experiments.
Figure 6A model of intracellular trafficking of the 3a protein. The wild type 3a protein or the ∆EXD mutant are sorted from Golgi to plasma membrane whereas the ∆YXXΦ mutant protein is retained in the Golgi and is targeted to lysosomal compartment for degradation via lipid droplets.