Integration of GC-MS Based Non-Targeted Metabolic Profiling with Headspace Solid Phase Microextraction Enhances the Understanding of Volatile Differentiation in Tobacco Leaves from North Carolina, India and Brazil
- 1 Department of Plant Biology, North Carolina State University, Raleigh, USA
- 2 ITC R & D Centre, ITC Limited, Peenya, Industrial Area, Bangalore, India
- 3 ITC R & D Centre, ITC Limited, Peenya, Industrial Area, Bangalore, India
- 4 Department of Plant Biology, North Carolina State University, Raleigh, USA
Abstract
In this report, gas chromatography-mass spectrometry (GC-MS) based non-targeted metabolomics is used to develop appropriate headspace solid phase microextractions (HS-SPME) to enhance the understanding of volatile complexity of flue-cured tobacco leaves. Non-targeted metabolic profiling of GC-MS shows that the extraction condition of HS-SPME at 100?C for 30 min provides a better metabolite profile than other extraction conditions tested. GC-MS and principal component analyses (PCA) show that among five types of fibers tested, 100 μm polydimethylsiloxane (PMDS), 65 μm polydimethylsiloxane/divinylbenzene (PMDS/DVB) and 75 μm carboxen/polydimethylsiloxane (CAR/ PMS) provide a better reproducible metabolite profile. Based on an appropriate PDMS extraction condition optimized, we use GC-MS analysis and PCA to compare metabolite profiles in flue-cured leaves of tobacco plants grown in North Carolina, India and Brazil, respectively. The resulting data of PCA show that the global metabolic profiles in North Carolina samples are separated from those in Brazil and India samples, two groups of which are characterized by a partially overlapped pattern. Several peaks that were differentially accumulated in samples were annotated to known metabolites by deconvolution analysis, such as norsolanadione, solavetivone and rishtin. Norsolanadione is detected only in Brazil samples. Solavetivone is detected in samples of India and Brazil but not in those of North Carolina. Rishtin is detected in samples of North Carolina and India but not in Brazil samples. These data indicate that not only can a non-targeted metabolic profiling approach enhance the understanding of volatile complexity, but also can identify marker volatile metabolites in tobacco leaves produced in different growth regions.
- J. C. Leffingwell, “CAROTENOIDS AS FLAVOR AND fragrance precursors,” Leffingwell Reports, Vol. 2, No. 6, 2002, pp. 1-5.
- J. Cai, B. Liu, P. Ling and Q. Su, “ Analysis of Free and Bound Volatiles by Gas Chromatography and Gas Chromatography-Mass Spectrometry in Uncased and Cased Tobacco,” Journal of Chromatography A, Vol. 947, No. 2, 2002, pp. 267-275. doi:10.1016/S0021-9673(02)00015-8
- B. Rodu, “The Scientific Foundation for Tobacco Harm Reduction, 2006-2011,” Harm Reduction Journal, Vol. 8, No. 1, 2011, p. 19. doi:10.1186/1477-7517-8-19
- L. F. Huang, K. J. Zhong, X. J. Sun, M. J. Wu, K. L. Huang, Y. Z. Liang, F. Q. Guo and Y. W. Li, “Comparative Analysis of the Volatile Components in Cut Tobacco from Different Locations with Gas Chromatography-Mass Spectrometry (GC-MS) and Combined Chemometric Methods,” Analytica Chimica Acta, Vol. 575, No. 2, 2006, pp. 236-245. doi:10.1016/j.aca.2006.05.079
- Y. Li, T. Pang, Z. Guo, X. Wang, J. Deng, K. Zhong, X. Lu and G. Xu, “Accelerated Solvent Extraction for GC-Based Tobacco Fingerprinting and Its Comparison with Simultaneous Distillation and Extraction,” Talanta, Vol. 81, No. 1-2, 2010, pp. 650-656. doi:10.1016/j.talanta.2009.12.054
- X. Zhu, Y. Gao, Z. Chen and Q. Su, “Development of a Chromatographic Fingerprint of Tobacco Flavor by Use of GC and GC-MS,” Chromatographia, Vol. 69, No. 7-8, 2009, pp. 735-742. doi:10.1365/s10337-009-0968-4
- S. Risticevic, H. Lord, T. Gorecki, C. L. Arthur and J. Pawliszyn, “Protocol for Solid-Phase Microextraction Method Development,” Nature Protocols, Vol. 5, No. 1, 2010, pp. 122-139. doi:10.1038/nprot.2009.179
- E. Aprea, H. Gika, S. Carlin, G. Theodoridis, U. Vrhovsek and F. Mattivi, “Metabolite Profiling on Apple Volatile Content Based on Solid Phase Microextraction and Gas-Chromatography Time of Flight Mass Spectrometry,” Journal of Chromatography A, Vol. 1218, No. 28, 2011, pp. 4517-4524. doi:10.1016/j.chroma.2011.05.019
- G. Weingart, B. Kluger, A. Forneck, R. Krska and R. Schuhmacher, “Establishment and Application of a Metabolomics Workflow for Identification and Profiling of Volatiles from Leaves of Vitis vinifera by HS-SPME-GC-MS,” Phytochemical Analysis, Vol. 23, No. 4, 2011, pp. 345-358. doi:10.1002/pca.1364
- N. Li, Y. Mao, C. Deng and X. Zhang, “Separation and Identification of Volatile Constituents in Artemisia Argyi Flowers by GC-MS with SPME and Steam Distillation,” Journal of Chromatographic Science, Vol. 46, No. 5, 2008, pp. 401-405.