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Biology subjects

Ojima-Kato, T.

Publications and source records attributed to Ojima-Kato, T..

2 recordsLinked to original sources

Rapid and cost-effective epitope mapping using PURE ribosome display coupled with next-generation sequencing and bioinformatics

A novel, efficient and cost-effective approach for epitope identification of an antibody has been developed using a ribosome display platform. This platform, known as PURE ribosome display, utilizes an Escherichia coli-based reconstituted cell-free protein synthesis system (PURE system). It stabilizes the mRNA-ribosome-peptide complex via a ribosome-arrest peptide sequence. This system was complemented by next-generation sequencing (NGS) and an algorithm for analyzing binding epitopes. To showcase the effectiveness of this method, selection conditions were refined using the anti-PA tag monoclonal antibody with the PA tag peptide as a model. Subsequently, a random peptide library was constructed using 10 NNK triplet oligonucleotides via the PURE ribosome display. The resulting random peptide library-ribosome-mRNA complex was selected using a commercially available anti-HA (YPYDVPDYA) tag monoclonal antibody, followed by NGS and bioinformatic analysis. Our approach successfully identified the "DVPDY" sequence as an epitope within the hemagglutinin amino acid sequence, which was then experimentally validated. This platform provided a valuable tool for investigating continuous epitopes in antibodies.

bioengineering↗

Nascent MSKIK peptide prevents or releases translation arrest in Escherichia coli

The insertion of the sequence encoding SKIK peptide adjacent to the M start codon of a difficult-to-express protein enhances protein production in Escherichia coli. In this report, we show that the increased production of the SKIK-tagged protein is not due to codon usage of the SKIK sequence. In addition, insertion of SKX, KKX, and AKX (X = G, L, H, Y, E, and F) at the N-terminus increased protein production. Furthermore, insertion of MSKIK just before the SecM arrest peptide (FSTPVWISQAQGIRAGP), which causes translational stalling on mRNA, greatly increased the production of the protein containing the SecM arrest peptide in the E. coli reconstituted cell-free protein synthesis system (PURE system). A similar phenomenon was observed for CmlA leader whose arrest is induced by chloramphenicol. These results suggest that the nascent MSKIK peptide prevents or releases translational stalling immediately following its generation during the translation process.

biochemistry↗