Plant biopharming of monoclonal antibodies

被引:69
作者
Ko, K [1 ]
Koprowski, H [1 ]
机构
[1] Thomas Jefferson Univ, Biotechnol Fdn Labs, Philadelphia, PA 19107 USA
关键词
rabies; monoclonal antibody; biopharming; glycosylation;
D O I
10.1016/j.virusres.2005.03.016
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Recent advances in molecular biology and plant biotechnology have shifted the concept of growing crops as a food source to serving as a bioreactor for the production of therapeutic recombinant proteins. Plants are potential biopharming factories because they are capable of producing unlimited numbers and amounts of recombinant proteins safely and inexpensively. In the last two decades, plant production systems have been developed for monoclonal antibody production, which has been useful in passive immunization of viral or bacterial diseases. Recently, a recombinant monoclonal antibody for rabies prophylaxis was produced in transgenic plants. Rabies virus epidemics remain still problematic throughout the world, and adequate treatment has been hampered by the worldwide shortage and high cost of prophylactic antibodies such as HR1G. Successful mass production of this monoclonal antibody in plants might help to overcome these problems. An effective plant production system for recombinant biologicals requires the appropriate heterologous plant expression system, the optimal combination of gene expression regulatory elements, control of post-translational processing of recombinant products, and efficient purification methods for product recovery. This review discusses recent biotechnology developments for plant-derived monoclonal antibodies and discusses these products as a promising approach to rabies prophylaxis and the consequence for global health benefits. (c) 2005 Published by Elsevier B.V.
引用
收藏
页码:93 / 100
页数:8
相关论文
共 69 条
[11]  
Cramer CL, 1999, CURR TOP MICROBIOL, V240, P95
[12]  
Daniell H, 2003, PLANT BIOTECHNOLOGY 2002 AND BEYOND, P371
[13]   Molecular strategies for gene containment in transgenic crops [J].
Daniell, H .
NATURE BIOTECHNOLOGY, 2002, 20 (06) :581-586
[14]   Multigene engineering: dawn of an exciting new era in biotechnology [J].
Daniell, H ;
Dhingra, A .
CURRENT OPINION IN BIOTECHNOLOGY, 2002, 13 (02) :136-141
[15]   Medical molecular farming: production of antibodies, biopharmaceuticals and edible vaccines in plants [J].
Daniell, H ;
Streatfield, SJ ;
Wycoff, K .
TRENDS IN PLANT SCIENCE, 2001, 6 (05) :219-226
[16]   IMPROVED HIGH-LEVEL CONSTITUTIVE FOREIGN GENE-EXPRESSION IN PLANTS USING AN AMV RNA4 UNTRANSLATED LEADER SEQUENCE [J].
DATLA, RSS ;
BEKKAOUI, F ;
HAMMERLINDL, JK ;
PILATE, G ;
DUNSTAN, DI ;
CROSBY, WL .
PLANT SCIENCE, 1993, 94 (1-2) :139-149
[17]   Gene silencing results in instability of antibody production in transgenic plants [J].
De Neve M. ;
De Buck S. ;
De Wilde C. ;
Van Houdt H. ;
Strobbe I. ;
Jacobs A. ;
Van Montagu M. ;
Depicker A. .
Molecular and General Genetics MGG, 1999, 260 (6) :582-592
[18]   Plants as bioreactors for protein production: avoiding the problem of transgene silencing [J].
De Wilde, C ;
Van Houdt, H ;
De Buck, S ;
Angenon, G ;
De Jaeger, G ;
Depicker, A .
PLANT MOLECULAR BIOLOGY, 2000, 43 (2-3) :347-359
[19]   Rhizosecretion of a monoclonal antibody protein complex from transgenic tobacco roots [J].
Drake, PMW ;
Chargelegue, DM ;
Vine, ND ;
van Dolleweerd, CJ ;
Obregon, P ;
Ma, JKC .
PLANT MOLECULAR BIOLOGY, 2003, 52 (01) :233-241
[20]   Process and economic evaluation of the extraction and purification of recombinant β-glucuronidase from transgenic corn [J].
Evangelista, RL ;
Kusnadi, AR ;
Howard, JA ;
Nikolov, ZL .
BIOTECHNOLOGY PROGRESS, 1998, 14 (04) :607-614