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Cannabis Chemovar Nomenclature Misrepresents Chemical and Genetic Diversity; Survey of Variations in Chemical Profiles and Genetic Markers in Nevada Medical Cannabis Samples.大麻化学变种命名法歪曲了化学和遗传多样性;内华达州医用大麻样本的化学特征和遗传标记变异调查。
Cannabis Cannabinoid Res. 2020 Sep 2;5(3):215-230. doi: 10.1089/can.2018.0063. eCollection 2020.
2
RNA-Bloom enables reference-free and reference-guided sequence assembly for single-cell transcriptomes.RNA-Bloom 能够实现无参考和有参考的单细胞转录组序列组装。
Genome Res. 2020 Aug;30(8):1191-1200. doi: 10.1101/gr.260174.119. Epub 2020 Aug 17.
3
Generation of a Comprehensive Transcriptome Atlas and Transcriptome Dynamics in Medicinal Cannabis.药用大麻全转录组图谱的生成和转录组动态变化。
Sci Rep. 2019 Nov 12;9(1):16583. doi: 10.1038/s41598-019-53023-6.
4
Combinatorial Evolution of a Terpene Synthase Gene Cluster Explains Terpene Variations in .萜烯合酶基因簇的组合进化解释了. 中的萜烯变异
Plant Physiol. 2020 Jan;182(1):480-492. doi: 10.1104/pp.19.00948. Epub 2019 Nov 11.
5
Genomic characterization of the complete terpene synthase gene family from Cannabis sativa.大麻萜烯合酶基因家族的全基因组特征分析。
PLoS One. 2019 Sep 12;14(9):e0222363. doi: 10.1371/journal.pone.0222363. eCollection 2019.
6
Cannabis glandular trichomes alter morphology and metabolite content during flower maturation.大麻腺毛在花成熟过程中改变形态和代谢物含量。
Plant J. 2020 Jan;101(1):37-56. doi: 10.1111/tpj.14516. Epub 2019 Oct 12.
7
Biosynthesis of cannflavins A and B from Cannabis sativa L.大麻中 cannflavins A 和 B 的生物合成
Phytochemistry. 2019 Aug;164:162-171. doi: 10.1016/j.phytochem.2019.05.009. Epub 2019 May 28.
8
Gene Networks Underlying Cannabinoid and Terpenoid Accumulation in Cannabis.大麻中大麻素和萜烯积累的基因网络。
Plant Physiol. 2019 Aug;180(4):1877-1897. doi: 10.1104/pp.18.01506. Epub 2019 May 28.
9
Terpenes in Cannabis sativa - From plant genome to humans.大麻中的萜烯——从植物基因组到人类。
Plant Sci. 2019 Jul;284:67-72. doi: 10.1016/j.plantsci.2019.03.022. Epub 2019 Apr 4.
10
Interactive Tree Of Life (iTOL) v4: recent updates and new developments.交互式生命树 (iTOL) v4:最新更新和新发展。
Nucleic Acids Res. 2019 Jul 2;47(W1):W256-W259. doi: 10.1093/nar/gkz239.

萜烯合酶与 中的萜烯变异

Terpene Synthases and Terpene Variation in .

机构信息

Michael Smith Laboratories, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z4.

Department of Botany, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z4.

出版信息

Plant Physiol. 2020 Sep;184(1):130-147. doi: 10.1104/pp.20.00593. Epub 2020 Jun 26.

DOI:10.1104/pp.20.00593
PMID:32591428
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7479917/
Abstract

Cannabis () resin is the foundation of a multibillion dollar medicinal and recreational plant bioproducts industry. Major components of the cannabis resin are the cannabinoids and terpenes. Variations of cannabis terpene profiles contribute much to the different flavor and fragrance phenotypes that affect consumer preferences. A major problem in the cannabis industry is the lack of proper metabolic characterization of many of the existing cultivars, combined with sometimes incorrect cultivar labeling. We characterized foliar terpene profiles of plants grown from 32 seed sources and found large variation both within and between sets of plants labeled as the same cultivar. We selected five plants representing different cultivars with contrasting terpene profiles for clonal propagation, floral metabolite profiling, and trichome-specific transcriptome sequencing. Sequence analysis of these five cultivars and the reference genome of cv Purple Kush revealed a total of 33 different cannabis terpene synthase () genes, as well as variations of the gene family and differential expression of terpenoid and cannabinoid pathway genes between cultivars. Our annotation of the cv Purple Kush reference genome identified 19 complete gene models, and tandem arrays of isoprenoid and cannabinoid biosynthetic genes. An updated phylogeny of the gene family showed three cannabis-specific clades, including a clade of sesquiterpene synthases within the TPS-b subfamily that typically contains mostly monoterpene synthases. The CsTPSs described and functionally characterized here include 13 that had not been previously characterized and that collectively explain a diverse range of cannabis terpenes.

摘要

大麻树脂是价值数十亿美元的药用和娱乐性植物生物制品产业的基础。大麻树脂的主要成分是大麻素和萜烯。大麻萜烯谱的变化对影响消费者偏好的不同风味和香气表型有很大贡献。大麻产业的一个主要问题是,许多现有品种缺乏适当的代谢特征描述,再加上有时品种标签不正确。我们对 32 个种子来源种植的植物的叶部萜烯谱进行了特征描述,发现即使是标记为同一品种的植物,其内部和之间都存在很大的差异。我们选择了五个具有不同萜烯谱的代表不同品种的植物进行克隆繁殖、花代谢物分析和毛状体特异性转录组测序。对这五个品种和 cv Purple Kush 的参考基因组进行序列分析,共发现了 33 种不同的大麻萜烯合酶()基因,以及基因家族的变异和萜类化合物和大麻素途径基因在品种之间的差异表达。我们对 cv Purple Kush 参考基因组的注释确定了 19 个完整的 基因模型,以及异戊二烯和大麻素生物合成基因的串联阵列。对 基因家族的最新系统发育分析显示,有三个大麻特异性分支,包括 TPS-b 亚家族内的倍半萜合酶分支,该分支通常包含大多数单萜合酶。这里描述和功能表征的 CsTPSs 包括 13 个以前没有被描述过的,它们共同解释了大麻萜烯的广泛多样性。