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Using Phenolic Compounds and Some Morphological Characters as Distinguishing Factors to Evaluate the Diversity of Perilla Genetic Resources

  • Assefa, Awraris Derbie (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Jeong, Yi Jin (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Rhee, Ju-hee (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Lee, Ho-Sun (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Hur, On-Sook (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Noh, Jae-Jong (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Ro, Na-Young (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Hwang, Ae-Jin (National Agrobiodiversity Center, National Institute of Agricultural Sciences) ;
  • Sung, Jung-Sook (Upland Crop Breeding Division, National Institute of Crop Science, Rural Development Administration) ;
  • Lee, Jae-Eun (National Agrobiodiversity Center, National Institute of Agricultural Sciences)
  • Received : 2019.11.13
  • Accepted : 2019.12.24
  • Published : 2020.02.01

Abstract

The objectives of this study were to evaluate total phenolic content (TPC) and individual phenolic compounds in leaves of perilla genetic resources, assess whether they could be used as distinguishing factor among germplasms, and evaluate their relationship with some quantitative and qualitative morphological characters. TPC and individual phenolic compounds were determined using Folin-Ciocalteu method and UPLC-PDA system, respectively. Wide variations in TPC (7.99 to 133.70 mgGAE/g DE), rosmarinic acid (ND to 21.05 mg/g DE), caffeic acid (ND to 1.17 mg/g DE), apigenin-7-O-diglucuronide (ND to 2.21 mg luteolin equivalent (mgLUE)/g DE), scutellarein-7-O-glucuronide (ND to 5.25 mg LUE/g DE), and apigenin-7-O-glucuronide (ND to 2.81 mg LUE/g DE) were observed. Intensities of green pigment at abaxial and adaxial leaf surfaces were positively correlated with phenolic compounds whereas leaf length and width had negative correlation. Purple pigmented accessions were shorter in leaf length and width but exhibited higher amount of phenolic compounds compared to green pigmented accessions in most cases. Leaf shape was not related with content of phenolic compounds, color of leaves, and length/width of leaves. TPC and individual phenolic compounds along with morphological characters could be useful distinguishing factors for perilla genetic resources.

Keywords

References

  1. Assefa, A.D., Y.J. Jeong, D.J. Kim, Y.A. Jeon, H.C. Ok, H.J. Baek and J.S. Sung. 2018. Characterization, identification, and quantification of phenolic compounds using UPLC-QTOF-MS and evaluation of antioxidant activity of 73 Perilla frutescens accessions. Food. Res. Int. 111:153-67. https://doi.org/10.1016/j.foodres.2018.05.017
  2. Gai, F., P.G. Peiretti, M. Karama and R. Amarowicz. 2017. Changes in the total polyphenolic content and antioxidant capacities of perilla (Perilla frutescens L.) plant extracts during the growth cycle. J. Food. Qual. 2017: Article ID 7214747.
  3. Ghimire, B.K., J.H. Yoo, C.Y. Yu, S. Kim and I. Chung. 2019. Profiling volatile and phenolic compound composition and characterization of the morphological and biological activities of Perilla frutescence Britton var. Japonica accessions. Acta. Physiol. Plant. 41:108. https://doi.org/10.1007/s11738-019-2890-1
  4. Guan, Z., S. Li, Z. Lin, R. Yang, Y. Zhao, J. Liu, S. Yang and A. Chen. 2014. Identification and quantitation of phenolic compounds from the seed and pomace of Perilla frutescens using HPLC/PDA and HPLC-ESI/QTOF/MS/MS. Phytochem. Analysis 25:508-13. https://doi.org/10.1002/pca.2521
  5. Ha, T.J., M.H. Lee, C.H. Park, J.I. Kim, E. Oh, S.B. Pae, J.E. Park, S.U. Kim and D.Y. Kwak. 2018. rvH1N1 neuraminidase inhibitory activities of phenolics from Perilla frutescens (L.) and their contents in cultivars and germplasm. Plant Breed. Biotech. 6:404-12. https://doi.org/10.9787/PBB.2018.6.4.404
  6. Hammer, O., D.A.T. Harper and P.D. Ryan. 2001. PAST: paleontological statistics software package for education and data analysis. Palaeontol. Electron. 4:1-9.
  7. Hasanuzzaman, A.T.M., M.N. Islam, Y. Zhang, C.Y. Zhang and T.X. Liu. 2016. Leaf morphological characters can be a factor for intra-varietal preference of whitefly Bemisia tabaci (Hemiptera: Aleyrodidae) among eggplant varieties. PLoS ONE 11: e0153880. https://doi.org/10.1371/journal.pone.0153880
  8. Hong, E. and G. Kim. 2010. Comparison of extraction conditions for phenolic, flavonoid content and determination of rosmarinic acid from Perilla frutescens var. acuta. Int. J. Food. Sci. Tech. 45:1353-1359. https://doi.org/10.1111/j.1365-2621.2010.02250.x
  9. Hu, Y., L.W. Sun, N.C. Mokgolodi, Y.X. Zhang, C.X. Wen, X.L. Xie and Y.J. Liu. 2010. Primary identifications and palynological observations of perilla in China. J. Syst. and Evol. 48:133-145. https://doi.org/10.1111/j.1759-6831.2010.00067.x
  10. Jun, H.I., B.T. Kim, G.S. Song and Y.S. Kim. 2014. Structural characterization of phenolic antioxidants from purple perilla (Perilla frutescens var. acuta) leaves. Food Chem. 148: 367-372. https://doi.org/10.1016/j.foodchem.2013.10.028
  11. Klepacka, J., E. Gujska and J. Michalak. 2011. Phenolic compounds as cultivar- and variety-distinguishing factors in some plant products. Plant Food Hum. Nutr. 66:64-69. https://doi.org/10.1007/s11130-010-0205-1
  12. Kongkeaw, S., S. Riebroy and M. Chaijan. 2015. Comparative studies on chemical composition, phenolic compounds and antioxidant activities of brown and white perilla (Perilla frutescens) seeds. Chiang Mai J. Sci. 42: 896-906.
  13. Kwon, S.H., Z. Wang, S.H. Hwang, Y.H. Kang, J.Y. Lee and S.S. Lim. 2017. Comprehensive evaluation of the antioxidant capacity of Perilla frutescens leaves extract and isolation of free radical scavengers using step-wise HSCCC guided by DPPH-HPLC. Int. J. Food Prop. 20:921-934. https://doi.org/10.1080/10942912.2017.1318289
  14. Kyong, J. and O. Ohnishi. 2001. Geographic differentiation of morphological characters among perilla crops and their weedy types in East Asia. Breeding Sci. 51:247-255. https://doi.org/10.1270/jsbbs.51.247
  15. Lee, J.H., K.H. Park, M.H. Lee, H.T. Kim, W.D. Seo, J.Y. Kim, I.Y. Baek, D.S. Jang and T.J. Ha. 2013. Identification, characterization, and quantification of phenolic compounds in the antioxidant activity-containing fraction from the seeds of Korean perilla (Perilla frutescens) cultivars. Food Chem. 136:843-852. https://doi.org/10.1016/j.foodchem.2012.08.057
  16. Li, H., Z. Zhang, J. Xue, L. Cui, T. Hou, X. Li and T. Chen. 2016. Optimization of ultrasound-assisted extraction of phenolic compounds, antioxidants and rosmarinic acid from perilla leaves using response surface methodology. Food Sci. Tech. Brazil, 36:686-693. https://doi.org/10.1590/1678-457x.13516
  17. Luitel, B.P., H.C. Ko, O.S. Hur, J.H. Rhee, H.J. Baek, K.Y. Ryu and J.S. Sung. 2017. Variation for morphological characters in cultivated and weedy types of Perilla frutescens Britt. germplasm. Korean J. Plant Res. 30:298-310. https://doi.org/10.7732/kjpr.2017.30.3.298
  18. Meng, L., Y. Lozano, I. Bombarda, E.M. Gaydou and B. Li. 2009. Polyphenol extraction from eight Perilla frutescens cultivars. C.R. Chim. 12:602-611. https://doi.org/10.1016/j.crci.2008.04.011
  19. Radacsi, P., S. Sarosi, L.A. Szomor and E. Nemeth-Zambori. 2017. Comparison of the production and chemical constituents of five Perilla frutescens (L.) Britt. accessions. Acta. Biol. Hung. 68:453-465. https://doi.org/10.1556/018.68.2017.4.10
  20. Waterhouse, A.L. 2002. Determination of total phenolics: In Wrolstad, R.E. (ed.), Current Protocols in Food Analytical Chemistry. John Wiley and Sons, New York, USA. pp. 11.1.1-11.1.8.
  21. Yu, H., J. Qiu, L. Ma, Y. Hu, P. Li and J. Wan. 2017. Phytochemical and phytopharmacological review of Perilla frutescens L. (Labiatae), a traditional edible-medicinal herb in China. Food Chem. Toxicol. 108:375-391. https://doi.org/10.1016/j.fct.2016.11.023

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