Transplastomic plants for innovations in agriculture. A review

被引:25
|
作者
Wani, Shabir Hussain [1 ]
Sah, Saroj Kumar [2 ]
Sagi, Laszlo [3 ]
Solymosi, Katalin [4 ]
机构
[1] Sher E Kashmir Univ Agr Sci & Technol Kashmir, Div Genet & Plant Breeding, Srinagar 190025, Jammu & Kashmir, India
[2] Punjab Agr Univ, Sch Agr Biotechnol, Ludhiana 141004, Punjab, India
[3] Hungarian Acad Sci, Agr Res Ctr, Inst Agr, Plant Cell Biol Dept, H-2462 Martonvasar, Hungary
[4] Eotvos Lorand Univ, Inst Biol, Dept Plant Anat, H-1117 Budapest, Hungary
关键词
Biofortification; Biotic and abiotic stress tolerance; Chloroplast; Crop quality; Metabolic engineering; Transplastomic plants; RIBULOSE-1,5-BISPHOSPHATE CARBOXYLASE/OXYGENASE RUBISCO; ANTIBIOTIC-RESISTANCE GENES; STABLE CHLOROPLAST TRANSFORMATION; POLYUNSATURATED FATTY-ACIDS; GENETICALLY-MODIFIED CROPS; HIGH INSECTICIDAL EFFICACY; BROAD-SPECTRUM RESISTANCE; HIGH-LEVEL EXPRESSION; VAR. CAPITATA L; PLASTID TRANSFORMATION;
D O I
10.1007/s13593-015-0310-5
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Food production has to be significantly increased in order to feed the fast growing global population estimated to be 9.1 billion by 2050. The Green Revolution and the development of advanced plant breeding tools have led to a significant increase in agricultural production since the 1960s. However, hundreds of millions of humans are still undernourished, while the area of total arable land is close to its maximum utilization and may even decrease due to climate change, urbanization, and pollution. All these issues necessitate a second Green Revolution, in which biotechnological engineering of economically and nutritionally important traits should be critically and carefully considered. Since the early 1990s, possible applications of plastid transformation in higher plants have been constantly developed. These represent viable alternatives to existing nuclear transgenic technologies, especially due to the better transgene containment of transplastomic plants. Here, we present an overview of plastid engineering techniques and their applications to improve crop quality and productivity under adverse growth conditions. These applications include (1) transplastomic plants producing insecticidal, antibacterial, and antifungal compounds. These plants are therefore resistant to pests and require less pesticides. (2) Transplastomic plants resistant to cold, drought, salt, chemical, and oxidative stress. Some pollution tolerant plants could even be used for phytoremediation. (3) Transplastomic plants having higher productivity as a result of improved photosynthesis. (4) Transplastomic plants with enhanced mineral, micronutrient, and macronutrient contents. We also evaluate field trials, biosafety issues, and public concerns on transplastomic plants. Nevertheless, the transplastomic technology is still unavailable for most staple crops, including cereals. Transplastomic plants have not been commercialized so far, but if this crop limitation were overcome, they could contribute to sustainable development in agriculture.
引用
收藏
页码:1391 / 1430
页数:40
相关论文
共 50 条
  • [41] Transplastomic tobacco plants producing the hydrophilic domain of the sheep pox virus coat protein L1R
    Beisenov, D. K.
    Stanbekova, G. E.
    Iskakov, B. K.
    VAVILOVSKII ZHURNAL GENETIKI I SELEKTSII, 2020, 24 (08): : 905 - 912
  • [42] Transplastomic Nicotiana benthamiana plants expressing multiple defence genes encoding protease inhibitors and chitinase display broad-spectrum resistance against insects, pathogens and abiotic stresses
    Chen, Peng-Jen
    Senthilkumar, Rajendran
    Jane, Wann-Neng
    He, Yong
    Tian, Zhihong
    Yeh, Kai-Wun
    PLANT BIOTECHNOLOGY JOURNAL, 2014, 12 (04) : 503 - 515
  • [43] SIRONA: Sustainable Integration of Regenerative Outer-space Nature and Agriculture. Part 2-Design Development and Projected Performance
    Hava, Heather
    Zhou, H. Larissa
    Mehlenbeck, Chad
    King, Abby
    Lombardi, Elizabeth M.
    Baker, Kyri
    Kaufman, Andy
    Correll, Nikolaus
    ACTA ASTRONAUTICA, 2022, 196 : 350 - 368
  • [44] A review on algae and plants as potential source of arachidonic acid
    Shanab, Sanaa M. M.
    Hafez, Rehab M.
    Fouad, Ahmed S.
    JOURNAL OF ADVANCED RESEARCH, 2018, 11 : 3 - 13
  • [45] Wastewater Application in Agriculture-A Review
    Younas, Hajira
    Younas, Fatima
    WATER AIR AND SOIL POLLUTION, 2022, 233 (08):
  • [46] Chloroplast expression of His-tagged GUS-fusions: a general strategy to overproduce and purify foreign proteins using transplastomic plants as bioreactors
    Leelavathi, S
    Reddy, VS
    MOLECULAR BREEDING, 2003, 11 (01) : 49 - 58
  • [47] Molecular, biochemical, and proteomic analyses of transplastomic tobacco plants expressing an endoglucanase support chloroplast-based molecular farming for industrial scale production of enzymes
    M. Fumagalli
    D. Gerace
    M. Faè
    P. Iadarola
    S. Leelavathi
    V. S. Reddy
    Rino Cella
    Applied Microbiology and Biotechnology, 2019, 103 : 9479 - 9491
  • [48] Evaluation of biotransformation capacity of transplastomic plants and hairy roots of Nicotiana tabacum expressing human cytochrome P450 2D6
    Y. V. Sheludko
    I. M. Gerasymenko
    F. J. Herrmann
    H. Warzecha
    Transgenic Research, 2022, 31 : 351 - 368
  • [49] Molecular, biochemical, and proteomic analyses of transplastomic tobacco plants expressing an endoglucanase support chloroplast-based molecular farming for industrial scale production of enzymes
    Fumagalli, M.
    Gerace, D.
    Fae, M.
    Iadarola, P.
    Leelavathi, S.
    Reddy, V. S.
    Cella, Rino
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2019, 103 (23-24) : 9479 - 9491
  • [50] High-level expression of thermostable cellulolytic enzymes in tobacco transplastomic plants and their use in hydrolysis of an industrially pretreated Arundo donax L. biomass
    Daniela Castiglia
    Lorenza Sannino
    Loredana Marcolongo
    Elena Ionata
    Rachele Tamburino
    Angelo De Stradis
    Beatrice Cobucci-Ponzano
    Marco Moracci
    Francesco La Cara
    Nunzia Scotti
    Biotechnology for Biofuels, 9