Genetic engineering of the chloroplast

被引:57
|
作者
Heifetz, PB [1 ]
机构
[1] Novartis Agribusiness Biotechnol Res Inc, Res Triangle Pk, NC 27709 USA
关键词
chloroplasts; genetic engineering; transgene expression; genetic modification; plastids; plastid transformation; herbicide tolerance;
D O I
10.1016/S0300-9084(00)00608-8
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
Transformation of the plastid genome has a number of inherent advantages for the engineering of gene expression in plants. These advantages include: 10-50 times higher transgene expression levels; the absence of gene silencing and position effect variation; the ability to express polycistronic messages from a single promoter; uniparental plastid gene inheritance in most crop plants that prevents pollen transmission of foreign DNA; integration via a homologous recombination process that facilitates targeted gene replacement and precise transgene control; and sequestration of foreign proteins in the organelle which prevents adverse interactions with the cytoplasmic environment. It is now 12 years since the first conclusive demonstration of stable introduction of cloned DNA into the Chlamydomonas chloroplast by the Boynton and Gillham laboratory, and 10 years since the laboratory of Pal Maliga successfully extended these approaches to tobacco. Since then, technical developments in plastid transformation and advances in our understanding of the rules of plastid gene expression have facilitated tremendous progress towards the goal of establishing the chloroplast as a feasible platform for genetic modification of plants. (C) 2000 Societe francaise de biochimie et biologie moleculaire / Editions scientifiques et medicales Elsevier SAS.
引用
收藏
页码:655 / 666
页数:12
相关论文
共 50 条
  • [31] Emerging Trends in Genetic Engineering of Microalgae for Commercial Applications
    Grama, Samir B.
    Liu, Zhiyuan
    Li, Jian
    MARINE DRUGS, 2022, 20 (05)
  • [32] Multigenic engineering of the chloroplast genome in the green alga Chlamydomonas reinhardtii
    Larrea-Alvarez, Marco
    Purton, Saul
    MICROBIOLOGY-SGM, 2020, 166 (06): : 510 - 515
  • [33] Engineering the Chloroplast Genome of Oleaginous Marine Microalga Nannochloropsis oceanica
    Gan, Qinhua
    Jiang, Jiaoyun
    Han, Xiao
    Wang, Shifan
    Lu, Yandu
    FRONTIERS IN PLANT SCIENCE, 2018, 9
  • [34] Genetic engineering applied to agriculture has a long row to hoe
    Miller, Henry I.
    GM CROPS & FOOD-BIOTECHNOLOGY IN AGRICULTURE AND THE FOOD CHAIN, 2018, 9 (01): : 45 - 48
  • [35] Chloroplast Engineering: Fundamental Insights and Its Application in Amelioration of Environmental Stress
    Singhal, Rajneesh
    Pal, Ranjana
    Dutta, Siddhartha
    APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2023, 195 (04) : 2463 - 2482
  • [36] Plastid genetic engineering in Solanaceae
    Venkatesh, Jelli
    Park, Se Won
    PROTOPLASMA, 2012, 249 (04) : 981 - 999
  • [37] Genetic engineering at the heart of agroecology
    Lotz, Lambertus A. P.
    van de Wiel, Clemens C. M.
    Smulders, Marinus J. M.
    OUTLOOK ON AGRICULTURE, 2020, 49 (01) : 21 - 28
  • [38] Environmental risks of genetic engineering
    Clark, E. Ann
    EUPHYTICA, 2006, 148 (1-2) : 47 - 60
  • [39] Genetic engineering and the dignity of creatures
    Robert Heeger
    Journal of Agricultural and Environmental Ethics, 2000, 13 (1-2) : 43 - 51
  • [40] BIOCENTRISM AND GENETIC-ENGINEERING
    DOBSON, A
    ENVIRONMENTAL VALUES, 1995, 4 (03) : 227 - 239