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http://dx.doi.org/10.7783/KJMCS.2020.28.3.183

Effect of Soil Properties and Soil Bacterial Community on Early Growth Characteristics of Wild-simulated Ginseng (Panax ginseng C. A. Meyer) in Coniferous and Mixed Forest  

Kim, Ki Yoon (Forest Medicinal Resources Research Center, NIFS)
Kim, Hyun Jun (Forest Medicinal Resources Research Center, NIFS)
Um, Yurry (Forest Medicinal Resources Research Center, NIFS)
Jeon, Kwon Seok (Forest Medicinal Resources Research Center, NIFS)
Publication Information
Korean Journal of Medicinal Crop Science / v.28, no.3, 2020 , pp. 183-194 More about this Journal
Abstract
Background: This study investigated the effect of soil properties and soil bacterial community on early growth characteristics of wild-simulated ginseng (Panax ginseng C. A. Meyer) in coniferous and mixed forest experimental fields. Methods and Results: The soil bacterial community was analyzed using a high throughput sequencing technique (Illumina MiSeq sequencing). The relationship between the soil bacterial community, soil properties, and growth characteristics of wild-simulated ginseng were analyzed using principal coordinate analysis (PCoA) and the Pearson's correlation analysis. Soil properties and soil bacterial community showed significant difference with forest physiognomy. Results of Pearson's correlation analysis and PCoA showed that the soil properties (soil pH, organic matter, total nitrogen, and cation exchange capacity) and soil bacterial community had significant correlation with tree species ratio and early growth characteristics of wild-simulated ginseng. Conclusions: This study clearly demonstrated the effect of soil properties and soil bacterial community on early growth characteristics of wild-simulated ginseng in coniferous and mixed forest. Moreover, these results will help in the selection of suitable cultivation sites for wild-simulated ginseng.
Keywords
Panax ginseng C. A. Meyer; Wild-simulated Ginseng; Soil Properties; Soil Bacterial Community; Coniferous and Mixed Forest;
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Times Cited By KSCI : 9  (Citation Analysis)
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1 An NH, Ok JH, Cho JL, Shin JH, Nam HS and Kim SC. (2015). Effects of organic matter application on soil microbial community in a newly reclaimed soil. Korean Journal of Organic Agriculture. 23:767-779.   DOI
2 Chamberlain JL, Prisley S and Mcguffin M. (2013). Understanding the relationship between american ginseng harvest and hardwood forests inventory and timber harvest to improve comanagement of the forest of Eastern United States. Journal of Sustainable Forest. 32:605-624.   DOI
3 Chung JM and Moon HS. (2011). Soil characteristics by the site types around Nari Basin in Ulleung island. Journal of Agricultural and Life Science. 44:45-50.
4 Dong L, Xu J, Li Y, Fang H, Niu W, Li X, Zhang Y, Ding W and Chen S. (2018). Manipulation of microbial community in the rhizosphere alleviates the replanting issues in Panax ginseng. Soil Biology and Biochemistry. 125:64-74.   DOI
5 Hackl E, Pfeffer M, Donat C, Bachmann G and Zechmeister Boltenstern S. (2005). Composition of the microbial communities in the mineral soil under different types of natural forest. Soil Biology and Biochemistry. 37:661-671.   DOI
6 Han D, Wang N, Sun X, Hu Y and Feng F. (2018). Biogeographical distribution of bacterial communities in Changbai Mountain, Northeast China. Microbiology Open. 7:e529. https://doi.org/10.1002/mbo3.529 (cited by 2020 March 31).
7 Han SI, Cho MH and Whang KS. (2008). Comparison of phylogenetic characteristics of bacterial populations in a quercus and pine humus forest soil. Korean Journal of Microbiology. 44:237-243.
8 Han SI, Kim YJ and Whang KS. (2006). Comparison of phylogenetic characteristics of viable but non-culturable(VBNC) bacterial populations in the pine and quercus forest soil by 16S rDNA-ARDRA. Korean Journal of Microbiology. 42:116-124.
9 Han SI. (2015). Phylogenetic characterization of bacterial populations in different layers of oak forest soil. Korean Journal of Microbiology. 51: 133-140.   DOI
10 Jeon KS, Um YR, Jung CR, Park HW and Kim MJ. (2018). Standard cultivation manual of wild-simulated ginseng. National Institute of Forest Science, Seoul, Korea. p.15-20.
11 Jeon SW, Kim JU and Jung HC. (2013). A Study on the Forest classification for ecosystem services valuation. Journal of the Korean Society of Environmental Restoration Technology. 16:31-39.   DOI
12 Kim C, Choo GC, Cho HS and Lim JT. (2015). Soil properties of cultivation sites for mountain-cultivated ginseng at local level. Journal of Ginseng Research. 39:76-80.   DOI
13 Kim KY, Han KM, Kim HJ, Jeon KS, Kim CW and Jung CR. (2020). The study of soil chemical properties and soil bacterial communities on the cultivation systems of Cnidium officinale Makino. Korean Journal of Environmental Agriculture. 39:1-9.   DOI
14 Kim KY, Um YR, Jeong DH, Kim HJ, Kim MJ and Jeon KS. (2019a). The correlation between growth characteristics and location environment of wild-simulated ginseng(Panax ginseng C. A. Meyer). Korean Journal of Plant Resources. 32:463-470.
15 Lee DS. (2010). Weather characteristic and growth of a forest ginseng cultivation site. Journal of Korean Forest Society. 99: 863-870.
16 Kim KY, Um YR, Jeong DH, Kim HJ, Kim MJ and Jeon KS. (2019b). Study on the correlation between the soil bacterial community and growth characteristics of wild-simulated ginseng (Panax ginseng C. A. Meyer). Korean Journal of Environmental Biology. 37:380-388.   DOI
17 Korea Forest Service(KFS). (2016). 2016 Statistical yearbook of forest. Korea Forest Service, Daejeon, Korea. p.414.
18 Korea Forestry Promotion Institute(KOFPI). (2013). The cultivation of wild-simulated ginseng: In wild-simulated ginseng and cultural environments. Korea Forestry Promotion Institute. Seoul, Korea. p. 14-34.
19 Kozlowski TT and Pallardy SG. (1999). Physiology of Woody Plants(2nd Eds.) Academic Press. London, England. p.411.
20 Kwon SD, Kang JH, Yoon JH and Moon HS. (2011). An analysis on site, soil and cultivation characteristics of korean mountain cultivated ginseng(Panax ginseng) field. Journal of Agricultural and Life Science. 45:81-88.
21 Lee HS and Shim JK. (1994). Studies on the microbial population and the amylase activity of the forest soil. Korean Journal of Ecology. 17:171-183.
22 Lee YM, Ahn JH, Choi YM, Weon HY, Yoon JH and Song JK. (2015). Bacterial core community in soybean rhizosphere. Korean Journal of Microbiology. 51:347-354.   DOI
23 Nacke H, Thurmer A, Wollherr A, Will C, Hodac L, Herold N, Schöning I, Schrumpf M and Daniel R. (2011). Pyrosequencing-based assessment of bacterial community structure along different management types in german forest and grassland soils. PLoS ONE. 6:e17000. https://doi.org/10.1371/journal.pone.0017000 (cited by 2020 Feb 21).   DOI
24 Li H, Ye D, Wang X, Settles ML, Wang J, Hao Z, Zhou L, Dong P, Jiang Y and Ma Z. (2014a). Soil bacterial communities of different natural forest types in Northeast China. Plant and Soil. 383:203-216.   DOI
25 Li Y, Ying YX and Ding WL. (2014b). Dynamics of Panax ginseng rhizospheric soil microbial community and their metabolic function. Evidence-Based Complementary and Alternative Medicine. 160373. https://doi.org/10.1155/2014/160373 (cited by 2020 March 31).
26 Lim SU. (2005). Plant growth and nutrients: In fertilizer. Ilsin. Seoul, Korea. p.38-45.
27 Liu WW, Liu MC, Li WH, Zeng FS and Qu Y. (2016). Influence of ginseng cultivation under larch plantations on plant diversity and soil properties in Liaoning Province, Northeast China. Journal of Mountain Science. 13:1598-1608.   DOI
28 Mechri B, Mariem FB, Baham M, Elhadj SB and Hammami M. (2008). Change in soil properties and the soil microbial community following land spreading of olive mill wastewater affects olive trees key physiological parameters and the abundance of arbuscular mycorrhizal fungi. Soil Biology and Biochemistry. 40:152-161.   DOI
29 Nguyen NL, Kim YJ, Hoang VA, Subramaniyam S, Kang JP, Kang CH and Yang DC. (2016). Bacterial diversity and community structure in Korean ginseng field soil are shifted by cultivation time. PLoS ONE 11:e0155055. https://doi.org/10.1371/journal.pone.0155055 (cited by 2020 Jan 8).   DOI
30 Park YD, Kwon TH and Eo SH. (2016). Analysis of soil bacterial community in Ihwaryeong and Yuksimnyeong restoration project sites linking the Ridgeline of Baekdudaegan. Journal of Agriculture and Life Science. 50:117-124.   DOI
31 Pettersson M. (2004). Factors affecting rates of change in soil bacterial communities. University of Lund. Lund, Sweden. p.17-27.
32 Philippot L, Raaijmakers JM, Lemanceau P and van der Putten WH. (2013). Going back to the roots: The microbial ecology of the rhizosphere. Nature Reviews Microbiology. 11:789-799.   DOI
33 Prasad R, Kumar M and Varma A. (2015). Role of PGPR in soil fertility and plant health. In Egamberdieva et al., (eds.)., Plant growth promoting rhizobacteria(PGPR) and medicinal plant. Springer Nature Switzerland AG. Basel, Switzerland. p.247-260.
34 Shade A and Handelsman J. (2012). Beyond the venn diagram: The hunt for a core microbiome. Environmental Microbiology. 14:4-12.   DOI
35 Preem JK, Truu J, Truu M, Mander U, Oopkaup K, Lõhmus K, Helmisaari HS, Uri V and Zobel M. (2012). Bacterial community structure and its relationship to soil physico-chemical characteristics in alder stands with different management histories. Ecological Engineering. 49:10-17.   DOI
36 Rural Development Administration(RDA). (2013). Analysis manual of comprehensive examination laboratory(soil, plant, water and liquid manure). Rural Development Administration. Suwon, Korea. p.31-53.
37 Russell AE, Raich JW, Valverde-Barrantes OJ and Fisher RF. (2007). Tree species effects on soil properties in experimental plantation in tropical moist forest. Soil Science Society of America Journal. 71:1389-1397.   DOI
38 Schloss PD, Westcott SL, Ryabin T, Hall JR, Hartmann M, Hollister EB, Lesniewski RA, Oakley BB, Parks DH, Robinson CJ, Sahl JW, Stres B, Thallinger GG, van Horn DJV and Weber CF. (2009). Introducing mothur: open-source, platform-independent, community-supported software for describing and comparing microbial communities. Applied and Environmental Microbiology. 75:7537-7541.   DOI
39 Schloss PD. (2009). A high-throughput DNA sequence aligner for microbial ecology studies. PLoS ONE. 4:e8230. https://doi.org/10.1371/journal.pone.0008230 (cited by 2020 March 31).   DOI
40 Son JG and Cho JY. (2009). Effect of organic material treatments on soil aggregate formation in reclaimed tidelands. Korean Journal of Soil Science and Fertilizer. 42:201-206.
41 Song X, Tao B, Guo J, Li J and Chen G. (2018). Changes in the Microbial community structure and soil chemical properties of vertisols under different cropping systems in Northern China. Frontiers in Environmental Science. 6:132. https://doi.org/10.3389/fenvs.2018.00132 (cited by 2020 Jan 10).   DOI
42 Woo SY and Lee DS. (2002). A study on the growth and environment of Panax ginseng in the different forest strands(I). Korean Journal of Agricultural and Forest Meteorology. 4:65-71.
43 Suh HM, Seo SM, Woo SY and Lee DS. (2011). Forest cultivated ginseng in Korea: All cure medicinal plants. Journal of Medicinal Plants Research. 5:5331-5336.
44 Suleiman AKA, Manoeli L, Boldo JT, Pereira MG and Roesch LFW. (2013). Shifts in soil bacterial community after eight years of land-use change. Systematic and Applied Microbiology. 36:137-144.   DOI
45 Sun H, Wang Q, Liu N, Li L, Zhang C, Liu Z and Zhang Y. (2017). Effects of different leaf litters on the physicochemical properties and bacterial communities in Panax ginseng-growing soil. Applied Soil Ecology. 111:17-24.   DOI
46 Tsai SH, Selvam A, Chang YP and Yang SS. (2009). Soil bacterial community composition across different topographic sites characterized by 16S rRNA gene clones in the fushan forest of Taiwan. Botanical Studies. 50:57-68.
47 Wang Q, Sun H, Xu C, Ma L, Li M, Shao C, Guan Y, Liu N, Liu Z, Zhang S, Zhang L and Zhang Y. (2019). Analysis of rhizosphere bacterial and fungal communities associated with rusty root disease of Panax ginseng. Applied Soil Ecology. 138:245-252.   DOI
48 Wu Z, Liu Q, Li Z, Cheng W, Sun J, Guo Z, Li Y, Zhou J, Meng D, Li H, Lei P and Yin H. (2018). Environmental factors shaping the diversity of bacterial communities that promote rice production. BMC Microbiology. 18:51. https://doi.org/10.1186/s12866-018-1174-z (cited by 2020 Feb 11).   DOI
49 Xia Z, Bai E, Wang Q, Gao D, Zhou J, Jiang P and Wu J. (2016). Biogeographic distribution patterns of bacteria in typical chinese forest soils. Frontiers in Microbiology. 7:1106. https://ncbi.nlm.nih.gov/pmc/articles/PMC4942481 (cited by 2020 Feb 8).
50 Yun CW and Moon HS. (2009). Classification of forest vegetation type and environmental properties in Limestone area of Korea. Journal of Agricultural and Life Science. 43:1-8.