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Published on: May 28, 2019
Multilayer Host Engineering of Saccharomyces cerevisiae to Enhance Cricket Paralysis Virus (CrPV) Internal Ribosome
Zeyu Cao1, Xiaotong Zou1, Koichi Ito1
1Department of Computational Biology and Medical Science, Graduate school of Frontier Sciences, The University of Tokyo, Kashiwa-shi, Chiba 277-8562, Japan.
Abstract:
Internal ribosome entry sites (IRESs) provide compact RNA elements for noncanonical translation and hold promise as building blocks for RNA-based regulation in synthetic biology. However, the cricket paralysis virus (CrPV) IRES shows very low activity in Saccharomyces cerevisiae, limiting its broader utility despite extensive structural and biochemical studies. Here we report a yeast engineering strategy that enhances CrPV IRES-mediated translation by combining host modifications at three mechanistically distinct levels: translation initiation, tRNA modification, and mRNA stability. A reporter-based screen revealed host factors that influence IRES activity and uncovered a trade-off between IRES stimulation and maintenance of cap-dependent translation required for growth. Stepwise integration of nonsense-mediated decay deficiency, a tad3 temperature-sensitive allele, and wild-type eIF4E overexpression yielded a strain with up to an order-of-magnitude increase in reporter output compared with that of the parental strain. These results establish a proof-of-principle framework for host engineering of noncanonical translation.
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