Gene knockdown by large circular antisense for high-throughput functional genomics

Yun Han Lee, Ik Jae Moon, Bin Hur, Jeong Hoh Park, Kil Hwan Han, Seok Yong Uhm, Yong Joo Kim, Koo Jeong Kang, Jong Wook Park, Young Bae Seu, Young Ho Kim, Jong Gu Park

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

Single-stranded genomic DNA of recombinant M13 phages was tested as an antisense molecule and examined for its usefulness in high-throughput functional genomics. cDNA fragments of various genes (TNF-α, c-myc, c-myb, cdk2 and cdk4) were independently cloned into phagemid vectors. Using the life cycle of M13 bacteriophages, large circular (LC)-molecules, antisense to their respective genes, were prepared from the culture supernatant of bacterial transformants. LC-antisense molecules exhibited enhanced stability, target specificity and no need for target-site searches. High-throughput functional genomics was then attempted with an LC-antisense library, which was generated by using a phagemid vector that incorporated a unidirectional subtracted cDNA library derived from liver cancer tissue. We identified 56 genes involved in the growth of these cells. These results indicate that an antisense sequence as a part of single-stranded LC-genomic DNA of recombinant M13 phages exhibits effective antisense activity, and may have potential for high-throughput functional genomics.

Original languageEnglish
Pages (from-to)591-599
Number of pages9
JournalNature Biotechnology
Volume23
Issue number5
DOIs
StatePublished - 2005

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