Modular Assembly of an Infectious Clone of the Akata strain of EBV using Synthetic Genomics Methods in Yeast
Raviv, A.;Smith, K.;Prasad, S.;Grzesik, P.;Gohreishi, S.;Paun, B.;Oldfield, L.;Contreras, A.;Petr, J.;Ghiaur, G.;Vashee, S.;Ambinder, R.;Desai, P.
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We have used synthetic biology recombination methods in yeast to build herpes simplex virus type-1 (HSV-1) and human cytomegalovirus (HCMV) genomes from multiple fragments. The genomes were built using transformation-associated recombination (TAR) in yeast, by virtue of overlapping sequences between the different fragments. This study demonstrates the successful assembly of the Epstein-Barr virus (EBV) genome. We used as the model genome, the Akata Burkitts lymphoma genome, specifically the BX1 genome which encodes a neomycin selectable marker and a GFP expression cassette in the BXLF1 region. The 171.3 kb genome was first deconstructed into 11 fragments in silico, each having 80 bp overlapping sequence between the fragments. The 11 fragments (TAR 1 to TAR 11) were cloned using TAR in yeast, analyzed by restriction enzyme analyses and Nanopore sequencing to validate the cloned fragment. The EBV genome was built in two stages: TAR fragments 1 to 6 and TAR fragments 7 to 11 were assembled to generate two half-genomes. The whole genome (TAR 1-11) was then assembled by joining TAR 1-6 with TAR 7-11. Complete EBV genomes were examined by PCR assays and restriction enzyme analyses and then transfected into HEK-293 cells to generate virus producer cell lines. The HEK-293 cell clones were tested for virus production following lytic induction using baculovirus transduction of Zta, Rta and glycoprotein B (BALF4). The supernatants from these induced cells were harvested and used to infect Raji cells. This analysis revealed a significant number of cells displaying strong GFP fluorescence indicative of infectious virus. We used this supernatant virus to infect primary B cells and were able to derive lymphoblastoid cell lines (LCL) indicative of the ability of this virus to transform B cells. We tested this method for engineering different mutations. Two mutations were made, one in Zta and the other in the small capsid protein (BFRF3). Mutations were engineered in the TAR plasmid in which the genes reside and after sequence validation, assembled into the TAR 1-6 half genome and then the TAR 1-11 genome, which was used to generate HEK-293 cell clones. For the {Delta}Zta cell lines, we could detect virus in the supernatants only if baculovirus expressing Zta in trans was included, this {Delta}Zta EBV virus could transform B cells. The small capsid protein (BFRF3) decorates the capsid shell and is required for capsid assembly in a self-assembly system. When the HEK-293 cell clones were induced using co-expression of Zta, Rta and gB, no virus was detected in the culture supernatants. However, if we provided BFRF3 in trans using baculovirus expressing this protein, virus was detected in the supernatants. This provides the first report of the essential role of the small capsid protein in EBV-infected cells.
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