Expression of the native cholera toxin B subunit gene and assembly as functional oligomers in transgenic tobacco chloroplasts

被引:296
作者
Daniell, H
Lee, SB
Panchal, T
Wiebe, PO
机构
[1] Univ Cent Florida, Dept Mol Biol & Microbiol, Orlando, FL 32826 USA
[2] Univ Cent Florida, Ctr Discovery Drugs & Diagnost, Orlando, FL 32826 USA
关键词
plastid transformation; edible vaccine; pharmaceutical protein; oligomer assembly; genetically modified crops;
D O I
10.1006/jmbi.2001.4921
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The B subunits of enterotoxigenic Escherichia coli (LTB) and cholera toxin of Vibrio cholerae (CTB) are candidate vaccine antigens. Integration of an unmodified CTB-coding sequence into chloroplast genomes (up to 10,000 copies per cell), resulted in the accumulation of up to 4.1% of total soluble tobacco leaf protein as functional oligomers (410-fold higher expression levels than that of the unmodified LTB gene expressed via the nuclear genome). However, expresssion levels reported are an underestimation of actual accumulation of CTB in transgenic chloroplasts, due to aggregation of the oligomeric forms in unboiled samples similar to the aggregation observed for purified bacterial antigen. PCR and Southern blot analyses confirmed stable integration of the CTB gene into the chloroplast genome. Western blot analysis showed that the chloroplast-synthesized CTB assembled into oligomers and were antigenically identical with purified native CTB. Also, binding assays confirmed that chloroplast-synthesized CTB binds to the intestinal membrane GM1-ganglioside receptor, indicating correct folding and disulfide bond formation of CTB pentamers within transgenic chloroplasts. In contrast to stunted nuclear transgenic plants, chloroplast transgenic plants were morphologically indistinguishable from untransformed plants, when CTB was constitutively expressed in chloroplasts. Introduced genes were inherited stably in subsequent generations, as confirmed by PCR and Southern blot analyses. Increased production of an efficient transmucosal carrier molecule and delivery system, like CTB, in transgenic chloroplasts makes plant-based oral vaccines and fusion proteins with CTB needing oral administration commercially feasible. Successful expression of foreign genes in transgenic chromoplasts and availability of marker-free chloroplast transformation techniques augurs well for development of vaccines in edible parts of transgenic plants. Furthermore, since the quaternary structure of many proteins is essential for their function, this investigation demonstrates the potential for other foreign multimeric proteins to be properly expressed and assembled in transgenic chloroplasts. (C) 2001 Academic Press.
引用
收藏
页码:1001 / 1009
页数:9
相关论文
共 44 条
[1]   Expression of cholera toxin B subunit oligomers in transgenic potato plants [J].
Arakawa, T ;
Chong, DKX ;
Merritt, JL ;
Langridge, WHR .
TRANSGENIC RESEARCH, 1997, 6 (06) :403-413
[2]  
ARAKAWA T, 1998, NAT BIOTECHNOL, V15, P248
[3]  
Austin S., 1997, V17, P409
[4]   WHY DO CHLOROPLASTS AND MITOCHONDRIA CONTAIN SO MANY COPIES OF THEIR GENOME [J].
BENDICH, AJ .
BIOESSAYS, 1987, 6 (06) :279-282
[5]  
BOCK R, 1999, PROG BOT, V61, P76
[6]   Engineering chloroplasts: an alternative site for foreign genes, proteins, reactions and products [J].
Bogorad, L .
TRENDS IN BIOTECHNOLOGY, 2000, 18 (06) :257-263
[7]   The chloroplast psbA promoter is more efficient in Escherichia coli than the T7 promoter for hyperexpression of a foreign protein [J].
Brixey, PJ ;
Guda, C ;
Daniell, H .
BIOTECHNOLOGY LETTERS, 1997, 19 (04) :395-399
[8]   Antibiotic-free chloroplast genetic engineering - an environmentally friendly approach [J].
Daniell, H ;
Wiebe, PO ;
Millan, AFS .
TRENDS IN PLANT SCIENCE, 2001, 6 (06) :237-239
[9]   Marker tree transgenic plants: engineering the chloroplast genome without the use of antibiotic selection [J].
Daniell, H ;
Muthukumar, B ;
Lee, SB .
CURRENT GENETICS, 2001, 39 (02) :109-116
[10]   Containment of herbicide resistance through genetic engineering of the chloroplast genome [J].
Daniell, H ;
Datta, R ;
Varma, S ;
Gray, S ;
Lee, SB .
NATURE BIOTECHNOLOGY, 1998, 16 (04) :345-348