Characterization of a plant-transformation-ready large-insert BIBAC library ofArabidopsisand bombardment transformation of a large-insert BIBAC of the library into tobacco

Author:

Chang Yueh-Long1,Chuang Huey-Wen1,Meksem Khalid2,Wu Fang-Chun1,Chang Chang-Yee1,Zhang Meiping34,Zhang Hong-Bin3

Affiliation:

1. Institute of Agricultural Biotechnology, National Chiayi University, Chiayi 600, Taiwan.

2. Department of Plant Soil and Agricultural Systems, MC-4415, Southern Illinois University at Carbondale, Carbondale, IL 62901-4415, USA.

3. Department of Soil and Crop Sciences, TAMU 2474, Texas A&M University, College Station, TX 77843-2474, USA.

4. College of Life Science, Jilin Agricultural University, Changchun, Jilin 130118, China.

Abstract

Plant-transformation-ready, large-insert binary bacterial artificial chromosome (BIBAC) libraries are of significance for functional and network analysis of large genomic regions, gene clusters, large-spanning genes, and complex loci in the post-genome era. Here, we report the characterization of a plant-transformation-ready BIBAC library of the sequenced Arabidopsis genome for which such a library is not available to the public, the transformation of a large-insert BIBAC of the library into tobacco by biolistic bombardment, and the expression analysis of its containing genes in transgenic plants. The BIBAC library was constructed from nuclear DNA partially digested with BamHI in the BIBAC vector pCLD04541. It contains 6144 clones and has a mean insert size of 108 kb, representing 5.2× equivalents of the Arabidopsis genome or a probability of greater than 99% of obtaining at least one positive clone from the library using a single-copy sequence as a probe. The transformation of the large-insert BIBAC and analyses of the transgenic plants showed that not only did transgenic plants have intact BIBAC DNA, but also could the BIBAC be transmitted stably into progenies and its containing genes be expressed actively. These results suggest that the large-insert BIBAC library, combined with the biolistic bombardment transformation method, could provide a useful tool for large-scale functional analysis of the Arabidopsis genome sequence and applications in plant-molecular breeding.

Publisher

Canadian Science Publishing

Subject

Genetics,Molecular Biology,General Medicine,Biotechnology

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