Protoplast Regeneration and Its Use in New Plant Breeding Technologies

被引:57
|
作者
Reed, Kelsey M. M. [1 ]
Bargmann, Bastiaan O. R. [1 ]
机构
[1] Virginia Tech, Coll Agr & Life Sci, Sch Plant & Environm Sci, Blacksburg, VA 24061 USA
来源
基金
美国食品与农业研究所;
关键词
protoplast; regeneration; gene editing; crop improvement; tissue culture; BETA-VULGARIS L; MESOPHYLL PROTOPLASTS; SOMATIC EMBRYOGENESIS; PHYTOSULFOKINE-ALPHA; SUSPENSION-CULTURES; CELL-SUSPENSIONS; COCOS-NUCIFERA; LEAF EXPLANTS; GROWTH; CALLUS;
D O I
10.3389/fgeed.2021.734951
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The development of gene-editing technology holds tremendous potential for accelerating crop trait improvement to help us address the need to feed a growing global population. However, the delivery and access of gene-editing tools to the host genome and subsequent recovery of successfully edited plants form significant bottlenecks in the application of new plant breeding technologies. Moreover, the methods most suited to achieve a desired outcome vary substantially, depending on species' genotype and the targeted genetic changes. Hence, it is of importance to develop and improve multiple strategies for delivery and regeneration in order to be able to approach each application from various angles. The use of transient transformation and regeneration of plant protoplasts is one such strategy that carries unique advantages and challenges. Here, we will discuss the use of protoplast regeneration in the application of new plant breeding technologies and review pertinent literature on successful protoplast regeneration.
引用
收藏
页数:26
相关论文
共 50 条
  • [31] Protoplast isolation and plant regeneration of different genotypes of Petunia and Calibrachoa
    Meyer, L.
    Serek, M.
    Winkelmann, T.
    PLANT CELL TISSUE AND ORGAN CULTURE, 2009, 99 (01) : 27 - 34
  • [32] Effect of β-lactam antibiotics on plant regeneration in carrot protoplast cultures
    Ewa Grzebelus
    Lukasz Skop
    In Vitro Cellular & Developmental Biology - Plant, 2014, 50 : 568 - 575
  • [33] PLANT-REGENERATION FROM PROTOPLAST FUSION IN PASSIFLORA SPP
    DORNELAS, MC
    TAVARES, FCA
    DEOLIVIERA, JC
    VIEIRA, MLC
    PLANT CELL REPORTS, 1995, 15 (1-2) : 106 - 110
  • [34] Consumer acceptance of new plant-breeding technologies: An application to the use of gene editing in fresh table grapes
    Uddin, Azhar
    Gallardo, R. Karina
    Rickard, Bradley
    Alston, Julian
    Sambucci, Olena
    PLOS ONE, 2022, 17 (12):
  • [35] Regulatory Issues with Plant Breeding Technologies
    Cordts, John
    HORTSCIENCE, 2017, 52 (09) : S97 - S97
  • [36] AN IMPROVED METHOD OF PROTOPLAST REGENERATION FOR BACILLUS SPECIES AND ITS APPLICATION TO PROTOPLAST FUSION AND TRANSFORMATION
    AKAMATSU, T
    SEKIGUCHI, J
    AGRICULTURAL AND BIOLOGICAL CHEMISTRY, 1984, 48 (03): : 651 - 655
  • [37] PROTOPLAST CULTURE AND FEMALE PLANT-REGENERATION IN THE DIOECIOUS PLANT MELANDRIUM-ALBUM
    WU, Y
    INSTALLE, P
    HINNISDAELS, S
    JACOBS, M
    NEGRUTIU, I
    PLANT CELL REPORTS, 1993, 12 (04) : 211 - 215
  • [38] Perceptions of plant breeding methods-from 'phenotypic selection' to 'genetic modification' and 'new breeding technologies'
    Caradus, John R.
    NEW ZEALAND JOURNAL OF AGRICULTURAL RESEARCH, 2023,
  • [39] PLANT-BREEDING AND BIOTECHNOLOGY - NEW TECHNOLOGIES RAISE IMPORTANT SOCIAL QUESTIONS
    HANSEN, M
    BUSCH, L
    BURKHARDT, J
    LACY, WB
    LACY, LR
    BIOSCIENCE, 1986, 36 (01) : 29 - 39
  • [40] Role of New Plant Breeding Technologies for Food Security and Sustainable Agricultural Development
    Qaim, Matin
    APPLIED ECONOMIC PERSPECTIVES AND POLICY, 2020, 42 (02) : 129 - 150