Cannabis sativa: From Therapeutic Uses to Micropropagation and Beyond

被引:10
作者
Adams, Tristan K. [1 ]
Masondo, Nqobile A. [1 ]
Malatsi, Pholoso [2 ]
Makunga, Nokwanda P. [1 ]
机构
[1] Stellenbosch Univ, Dept Bot & Zool, Private Bag X1, ZA-7600 Matieland, South Africa
[2] Cannsun Med Pty Ltd, Cape Farms, ZA-7349 Cape Town, South Africa
来源
PLANTS-BASEL | 2021年 / 10卷 / 10期
基金
新加坡国家研究基金会;
关键词
cannabinoids; in vitro organogenesis; medical marijuana; plant growth regulators; plant tissue culture; tetrahydrocannabinol; CALLUS INDUCTION; TISSUE-CULTURE; PLANT-REGENERATION; L; GROWTH; PROTOCOL; TRANSFORMATION; PROPAGATION; ANANDAMIDE; SYSTEM;
D O I
10.3390/plants10102078
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The development of a protocol for the large-scale production of Cannabis and its variants with little to no somaclonal variation or disease for pharmaceutical and for other industrial use has been an emerging area of research. A limited number of protocols have been developed around the world, obtained through a detailed literature search using web-based database searches, e.g., Scopus, Web of Science (WoS) and Google Scholar. This article reviews the advances made in relation to Cannabis tissue culture and micropropagation, such as explant choice and decontamination of explants, direct and indirect organogenesis, rooting, acclimatisation and a few aspects of genetic engineering. Since Cannabis micropropagation systems are fairly new fields, combinations of plant growth regulator experiments are needed to gain insight into the development of direct and indirect organogenesis protocols that are able to undergo the acclimation stage and maintain healthy plants desirable to the Cannabis industry. A post-culture analysis of Cannabis phytochemistry after the acclimatisation stage is lacking in a majority of the reviewed studies, and for in vitro propagation protocols to be accepted by the pharmaceutical industries, phytochemical and possibly pharmacological research need to be undertaken in order to ascertain the integrity of the generated plant material. It is rather difficult to obtain industrially acceptable micropropagation regimes as recalcitrance to the regeneration of in vitro cultured plants remains a major concern and this impedes progress in the application of genetic modification technologies and gene editing tools to be used routinely for the improvement of Cannabis genotypes that are used in various industries globally. In the future, with more reliable plant tissue culture-based propagation that generates true-to-type plants that have known genetic and metabolomic integrity, the use of genetic engineering systems including "omics " technologies such as next-generation sequencing and fast-evolving gene editing tools could be implemented to speed up the identification of novel genes and mechanisms involved in the biosynthesis of Cannabis phytochemicals for large-scale production.</p>
引用
收藏
页数:34
相关论文
共 103 条
[1]   Medical Cannabis and Industrial Hemp Tissue Culture: Present Status and Future Potential [J].
Adhikary, Dinesh ;
Kulkarni, Manoj ;
El-Mezawy, Aliaa ;
Mobini, Saied ;
Elhiti, Mohamed ;
Gjuric, Rale ;
Ray, Anamika ;
Polowick, Patricia ;
Slaski, Jan J. ;
Jones, Maxwell P. ;
Bhowmik, Pankaj .
FRONTIERS IN PLANT SCIENCE, 2021, 12
[2]   Minor oxygenated cannabinoids from high potency Cannabis sativa L. [J].
Ahmed, Safwat A. ;
Ross, Samir A. ;
Slade, Desmond ;
Radwan, Mohamed M. ;
Khan, Ikhlas A. ;
ElSohly, Mahmoud A. .
PHYTOCHEMISTRY, 2015, 117 :194-199
[3]   Nanoparticle-based genetic transformation of Cannabis sativa [J].
Ahmed, Sajjad ;
Gao, Xuefei ;
Jahan, Md. Asraful ;
Adams, Maxwell ;
Wu, Nianqiang ;
Kovinich, Nik .
JOURNAL OF BIOTECHNOLOGY, 2021, 326 :48-51
[4]   Topolins: A panacea to plant tissue culture challenges? [J].
Aremu, Adeyemi O. ;
Bairu, Michael W. ;
Dolezal, Karel ;
Finnie, Jeffrey F. ;
Van Staden, Johannes .
PLANT CELL TISSUE AND ORGAN CULTURE, 2012, 108 (01) :1-16
[5]   Closing the Yield Gap for Cannabis: A Meta-Analysis of Factors Determining Cannabis Yield [J].
Backer, Rachel ;
Schwinghamer, Timothy ;
Rosenbaum, Phillip ;
McCarty, Vincent ;
Bilodeau, Samuel Eichhorn ;
Lyu, Dongmei ;
Ahmed, Md Bulbul ;
Robinson, George ;
Lefsrud, Mark ;
Wilkins, Olivia ;
Smith, Donald L. .
FRONTIERS IN PLANT SCIENCE, 2019, 10
[6]   Suitability assessment of different hemp (Cannabis sativa L.) varieties to the cultivation environment [J].
Baldini, Mario ;
Ferfuia, Claudio ;
Zuliani, Fabio ;
Danuso, Francesco .
INDUSTRIAL CROPS AND PRODUCTS, 2020, 143
[7]   Protoplast isolation, transient transformation, and flow-cytometric analysis of reporter-gene activation in Cannabis sativa L. [J].
Beard, Keely M. ;
Boling, Audrey W. H. ;
Bargmann, Bastiaan O. R. .
INDUSTRIAL CROPS AND PRODUCTS, 2021, 164
[8]  
Berahmand F., 2016, Pharm Biomedical Res, V2, P13, DOI DOI 10.18869/ACADPUB.PBR.2.3.13
[9]   Interplay between chemistry and morphology in medical cannabis (Cannabis sativa L.) [J].
Bernstein, Nirit ;
Gorelick, Jonathan ;
Koch, Sraya .
INDUSTRIAL CROPS AND PRODUCTS, 2019, 129 :185-194
[10]   Control by the endogenous cannabinoid system of ras oncogene-dependent tumor growth [J].
Bifulco, M ;
Laezza, C ;
Portella, G ;
Vitale, M ;
Orlando, P ;
De Petrocellis, L ;
Di Marzo, V .
FASEB JOURNAL, 2001, 15 (12) :2745-+