Development of nicotiana-specific molecular markers and their application in a loop-mediated isothermal amplification assay
DOI:
https://doi.org/10.14393/BJ-v40n0a2024-69258Keywords:
LAMP, Molecular marker, Nicotine, Tobacco monopoly.Abstract
An effective identification method for detecting illegal goods involving raw tobacco material is crucial for tobacco monopolies to conduct surveillance. We developed Nicotiana-specific molecular markers to determine whether seized goods contain raw tobacco material. The sequence data for genes related to the nicotine metabolism pathway and genomic data from the public Solanaceae database were used to establish Nicotiana-specific molecular markers. These markers were determined by experimentally verifying 17 types of nontobacco plant material and 91 types of tobacco material belonging to 11 sections of 3 subgenera. Two reliable Nicotiana-specific markers, Ntsp027 and Ntsp151, were selected from among the 209 newly developed markers. The results indicated that the primers corresponding to these two markers can amplify the target fragments in the 91 types of Nicotiana material without amplification of any PCR products in the 17 types of non-Nicotiana material. Furthermore, utilizing the marker Ntsp151, we verified the efficacy of the loop-mediated isothermal amplification (LAMP) assay in authenticating tobacco material. The identification of 21 tea-cigarette products via the combination of GC‒MS, a Nicotiana-specific molecular marker and LAMP methods underscores the utility of Nicotiana-specific DNA markers in determining whether illegal goods contain raw tobacco material. Our results indicate an impressive accuracy rate of 100%, which is consistent with the reliability assessment, underscoring the accuracy of these markers in effectively identifying tobacco material. Our findings can significantly augment the capacity for surveillance and anticounterfeiting efforts by aiding the fight against illicit trade and ensuring the integrity of all tobacco-related products in the market.
Downloads
References
CAI, L., et al. Analysis of genetic diversity of tobacco germplasm resources based on SNP markers via genotyping-by-sequencing technology. China Tob Sciences. 2018, 10.
CHAUDHARY, A.A., et al. Application of loop-mediated isothermal amplification (LAMP)-based technology for authentication of Catharanthus roseus (L.) G. Don. Protoplasma. 2012, 249, 417–422. https://doi.org/10.1007/s00709-011-0293-2
CHEN, L., et al. Development of the visual loop-mediated isothermal amplification assays for seven genetically modified maize events and their application in practical samples analysis. Journal of Agricultural and Food Chemistry. 2011, 59, 5914–5918. https://doi.org/10.1021/jf200459s
DENDUANGBORIPANT, J., et al. Determination of local tobacco cultivars using ISSR molecular marker. Chiang Mai Journal of Science. 2012, 37, 293–303.
EDRISI MARYAN, K., SAMIZADEH LAHIJI, H. and SHOAEI DEYLAMI, M. Assessing the genetic diversity of tobacco (Nicotiana tabacum L.) varieties. Crop Breeding Journal 2012, 2, 125–132. https://doi.org/10.22092/cbj.2012.100431
FU, S., et al. Applications of loop-mediated isothermal DNA amplification. Applied Biochemistry and Biotechnology 2011, 163, 845–850. https://doi.org/10.1007/s12010-010-9088-8
General Administration of Quality Supervision, Inspection, and Quarantine of the people's Republic of China and Standardization Administration of the People's Republic of China (AQSIQ) Cigarettes-Part 5: Mainstream smoke: GB 5606.5-2005. China standard press, Beijing, pp. 1–2, 2005.General Administration of Quality Supervision, Inspection, and Quarantine of the People's Republic of China and Standardization Administration of the People's Republic of China (AQSIQ) Tobacco vocabulary-Part 2: Tobacco products and tobacco processing: GB/T 18771.2-2015. China standard press, Beijing, p. 1, 2015.
GHOLIZADEH, S., et al. Molecular characterization and similarity relationships among flue-cured tobacco (Nicotiana tabacum L.) genotypes using simple sequence repeat markers. Notulae Botanicae Horti Agrobotanici Cluj-Napoca. 2012, 40, 247–253. https://doi.org/10.15835/nbha4027169
HUANG, L., et al. A fast silver staining protocol enabling simple and efficient detection of SSR markers using a non-denaturing polyacrylamide gel. Journal of Visualized Experiments. 2018, 134, 57192. https://doi.org/10.3791/57192
JINGXIA, L., JIANMIN, Q. and PINGPING, F. Genetic diversity and genetic relatives analysis of tobacco germplasm based on inter-simple sequence repeat (ISSR). Scientia Agricultura Sinica. 2008, 41, 286–294.
LIU, X.Z., et al. Genetic diversity among flue-cured tobacco cultivars on the basis of AFLP markers. Czech Journal of Genetics and Plant Breeding. 2009, 45, 155–159. https://doi.org/10.17221/15/2009-CJGPB
LU, X., et al. Development of DArT markers for a linkage map of flue-cured tobacco. Chinese Science Bulletin. 2013, 58, 641–648. https://doi.org/10.1007/s11434-012-5453-z
MOON, H.S., NICHOLSON, J.S. and LEWIS, R.S. Use of transferable Nicotiana tabacum L. microsatellite markers for investigating genetic diversity in the genus Nicotiana. Genome. 2008, 51, 547–559. https://doi.org/10.1139/G08-039
NOTOMI, T., et al. Loop-mediated isothermal amplification of DNA. Nucleic Acids Research 2000, 28, E63. https://doi.org/10.1093/nar/28.12.e63
QI, J., et al. Genetic diversity and evolutionary analysis of tobacco (Nicotiana tabacum L.) germplasm resources based on ISSR and SRAP markers. Acta Agronomica Sinica (China). 2012, 38(1), 1425–1434.
REN, N. and TIMKO, M.P. AFLP analysis of genetic polymorphism and evolutionary relationships among cultivated and wild Nicotiana species. Genome. 2001, 44, 559–571. https://doi.org/10.1139/g01-060
SARCEVIC, H., et al. Long-term genetic improvement and genetic diversity of Croatian flue-cured tobacco (Nicotiana tabacum L.) cultivars. Crop Science. 2013, 53, 112–120. https://doi.org/10.2135/cropsci2012.03.0173
State Bureau of Quality and Technical Supervision (SBQTS) Flue-cured tobacco: GB2635-92. China standard press, Beijing, pp. 1–10, 1992.
STATE BUREAU OF QUALITY AND TECHNICAL SUPERVISION (SBQTS). Aromatic tobacco-grading technical requirement: GB 5991.1-2000. China standard press, Beijing, pp. 1–5, 2000.
STATE TOBACCO MONOPOLY ADMINISTRATION (STMA). Tobacco and tobacco products-Determination of total alkaloids-Continuous flow method: YC/T 160-2002. China standard press, Beijing, pp. 1–3, 2002.
STATE TOBACCO MONOPOLY ADMINISTRATION (STMA). Characteristic components of tobacco-Determination of alkaloids-gas chromatography-mass spectrometry method and gas chromatography-tandem mass spectrometry method: YC/T 559-2018. China standard press, Beijing, pp. 1–14, 2018a.
STATE TOBACCO MONOPOLY ADMINISTRATION (STMA). Characteristic components of tobacco-Determination of enantiomer ratio of nicotine-High performance liquid chromatography method and ultra-performance convergence chromatography-tandem mass spectrometry method: YC/T 561-2018. China standard press, Beijing, pp. 1–9, 2018b.
STATE TOBACCO MONOPOLY ADMINISTRATION (STMA). Characteristic components of tobacco-Determination of stable hydrogen isotope ratio of nicotine-Gas chromatography-isotope ratio mass spectrometry method: YC/T 560-2018. China standard press, Beijing, pp. 1–7, 2018c.
SUN, J., et al. Discrimination of tobacco cultivars using SCAR and RAPD markers. Czech J Genet Plant Breed. 2020, 56, 170–173. Czech Journal of Genetics and Plant Breeding. https://doi.org/10.17221/120/2019-CJGPB
WANG, X. and BENNETZEN, J.L. Current status and prospects for the study of Nicotiana genomics, genetics, and nicotine biosynthesis genes. Molecular Genetics and Genomics. 2015, 290, 11–21. https://doi.org/10.1007/s00438-015-0989-7
XU, S., et al. Wild tobacco genomes reveal the evolution of nicotine biosynthesis. Proceedings of National Academy of Sci U S A. 2017, 114, 6133–6138. https://doi.org/10.1073/pnas.1700073114
XUETING, Z.H., ZHIJUN, T.O. and FANGCHAN, J.I. Genetic relationship analysis of thirty-eight Sun/Air-Cured tobacco germplasms based on Simple Sequence Repeat (SSR) markers. Journal of Plant Genetic Resources. 2013, 14, 653–658.
YE, X., et al. Research progress in the pharmacological effects and synthesis of nicotine. ChemistrySelect. 2022, 7, e202104425. https://doi.org/10.1002/slct.202104425
ZHANG, H.Y., et al. Random amplified DNA polymorphism of Nicotiana tabacum L. cultivars. Biologia Plantarum. 2005, 49, 605–607. https://doi.org/10.1007/s10535-005-0056-z
ZHANG, J.F., et al. Genetic diversities of 24 tobacco cultivars analyzed by SNP. Tobacco Sci Technol. 2017, 50, 1–8.
ZHIJUN, T.O., FANGCHAN, J.I. and BINGGUANG, X.I. Analysis of SSR loci in Nicotina tabacum genome and its two ancestral species genome. Scientia Agricultura Sinica. 2015, 48, 2108–2117. https://doi.org/10.3864/j.issn.0578-1752.2015.11.003
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2024 Ke Zhang, Chunqiong Wang, Haiyan Li, Shichun Qin, Haowei Sun, Xiaowei Zhang, Jie Long, Jieyun Cai, Zhijun Tong, Dan Chen
This work is licensed under a Creative Commons Attribution 4.0 International License.