Influence of genotypes and environmental factors on leaf triterpenoid content and growth of Cyclocarya paliurus

Bo Deng , Shengzuo Fang , Xulan Shang , Xiangxiang Fu , Wanxia Yang

Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (3) : 789 -798.

PDF
Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (3) : 789 -798. DOI: 10.1007/s11676-018-0680-z
Original Paper

Influence of genotypes and environmental factors on leaf triterpenoid content and growth of Cyclocarya paliurus

Author information +
History +
PDF

Abstract

Cyclocarya paliurus, an economically valuable tree species, has traditionally been used as a nutraceutical food or medicine in China. However, limited information is available on its genotype selection and cultivation under a wide range of environmental conditions for growth and targeted health-promoting substances. We studied the effects of genotype and environment, and their interaction on leaf triterpenoid content and tree growth for 12 genotypes of C. paliurus grown at four sites. We quantified the correlation between leaf triterpenoid accumulation and tree growth. The contents of cyclocaric acid B, cyclocarioside I, and arjunolic acid ranged from 0.06 to 3.89, 0 to 3.71, and 0.65 to 8.86 mg g−1, respectively. Three individual triterpenoids were primarily influenced by genotype (variation ranged from 53.7 to 68.0%), while environment accounted for most of the variation in total triterpenoid content and tree growth (71.3–89.5%). Most tested environmental parameters were significantly correlated to total triterpenoid content, but not to the contents of the individual triterpenoids measured. Growth in tree height and diameter at breast height were significantly negatively correlated with total triterpenoid content but were non-significantly correlated with individual triterpenoid contents. We conclude that genotypic selection, manipulation of environmental conditions, and implementation of appropriate silvicultural operations would be important strategies for increasing the accumulation of health-promoting phytochemicals.

Keywords

Cyclocarya paliurus / Genotypic selection / Interaction / Phytochemicals / Tree growth

Cite this article

Download citation ▾
Bo Deng, Shengzuo Fang, Xulan Shang, Xiangxiang Fu, Wanxia Yang. Influence of genotypes and environmental factors on leaf triterpenoid content and growth of Cyclocarya paliurus. Journal of Forestry Research, 2019, 30(3): 789-798 DOI:10.1007/s11676-018-0680-z

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Cai ZQ, Wang WH, Yang J, Cai CT. Growth, photosynthesis and root reserpine concentrations of two Rauvolfia species in response to a light gradient. Ind Crops Prod, 2009, 30: 220-226.

[2]

Cipollini ML, Paulk E, Cipollini DF. Effect of nitrogen and water treatment on leaf chemistry in horsenettle (Solanum carolinense), and relationship to herbivory by flea beetles (Epitrix spp.) and tobacco hornworm (Manduca sexta). J Chem Ecol, 2002, 28: 2377-2398.

[3]

Deng B, Cao YN, Fang SZ, Shang XL, Yang WX, Qian CY. Variation and stability of growth and leaf flavonoid content in Cyclocarya paliurus across environments. Ind Crops Prod, 2015, 76: 386-393.

[4]

Deng B, Fang SZ, Shang XL, Fu XX, Li Y. Influence of provenance and shade on biomass production and triterpenoid accumualtion in Cyclocarya paliurus. Agrofor Syst, 2017

[5]

Eberhart SA, Russell WA. Stability parameters for comparing varieties. Crop Sci, 1966, 6: 36-40.

[6]

Fan JP, He CH. Simultaneous quantification of three major bioactive triterpene acids in the leaves of Diospyros kaki by high-performance liquid chromatography method. J Pharm Biomed Anal, 2006, 41: 950-956.

[7]

Fang SZ, Wang JY, Wei ZY, Zhu ZX. Methods to break seed dormancy in Cyclocarya paliurus (Batal) Iljinskaja. Sci Hortic, 2006, 110: 305-309.

[8]

He Y, Yin ZQ, Zhang YW, Fang SZ. Chemical constituents from the aerial parts of Cyclocarya paliurus. Pharm Clin Res, 2012, 20: 187-189. (in Chinese)

[9]

Herms DA, Mattson WJ. The dilemma of plants: to grow or defend. Q Rev Biol, 1992, 67: 283-335.

[10]

Huang W, Xue A, Niu H, Jia Z, Wang JW. Optimised ultrasonic-assisted extraction of flavonoids from Folium eucommiae and evaluation of antioxidant activity in multi-test systems in vitro. Food Chem, 2009, 114: 1147-1154.

[11]

Ibrahim MH, Jaafar HZE. The relationship of nitrogen and C/N ratio with secondary metabolites levels and antioxidant activities in three varieties of Malaysian kacip fatimah (Labisia pumila Blume). Molecules, 2011, 16: 5514-5526.

[12]

Lee MH, Jeong JH, Seo JW, Shin CG, Kim YS, In JG, Yang DC, Yi JS, Choi YE. Enhanced triterpene and phytosterol biosynthesis in Panax ginseng overexpressing squalene synthase gene. Plant Cell Physiol, 2004, 45: 976-984.

[13]

Lv JL, Lu YJ, Niu YG, Whent M, Ramadan MF, Costa J, Yu LL. Effects of genotype, enxironment, and their interation on phytochemical compositions and antioxidant properties of soft winter wheat flour. Food Chem, 2013, 138: 454-462.

[14]

Nelson DW, Sommers LE. Page AL, Miller RH, Keeney DR. Total carbon, organic carbon, and organic matter. Methods of soil analysis, part 2, chemical and microbial properties, 1982, Madison: Agronomy Society of America. Agronomy Monograph 9 539 552

[15]

Nguyen PM, Niemeyer ED. Effects of nitrogen fertilization on the phenolic composition and antioxidant properties of basil (Ocimum basilicum L.). J Agric Food Chem, 2008, 56: 8685-8691.

[16]

Park JD, Rhee DK, Lee YH. Biological activities and chemistry of saponins from Panax ginseng C. A. Meyer. Phytochem Rev, 2005, 4: 159-175.

[17]

Pu JX, Yang LM, Xiao WL, Li RT, Lei C, Gao XM, Huang SX, Li SH, Zheng YT, Huang H, Sun HD. Compounds from Kadsura heteroclita and related anti-HIV activity. Phytochemistry, 2008, 69: 1266-1272.

[18]

Radušienė J, Karpavičienė B, Stanius Ž. Effect of external and internal factors on secondary metabolites accumulation in St. John’s worth. Bot Lith, 2012, 18: 101-108.

[19]

Rouhani S, Alizadeh N, Salimi S, Ghasemi TH. Ultrasonic assisted extraction of natural pigments from rhizomes of Curcuma Longa L. Prog Color Color Coat, 2009, 2: 103-113.

[20]

Ruan WM, Popovich DG. Ganoderma lucidum triterpenoid extract induces apoptosis in human colon carcinoma cells (Caco-2). Biomed Prev Nutr, 2012, 2: 203-209.

[21]

Scapim CA, Oliveira VR, Braccini AL, Cruz CD. Yield stability in maize (Zea mays L.) and correlations among the parameters of the Eberhart and Russell, Lin and Binns and Huehn models. Genet Mol Biol, 2000, 23: 387-393.

[22]

Schlag EM, McIntosh MS. Ginsenoside content and variation among and within American ginseng (Panax quinquefolius L.) populations. Phytochemistry, 2006, 67: 1510-1519.

[23]

Schmidt S, Zietz M, Schreiner M, Rohn S, Kroh LW, Krumbein A. Genotypic and climatic influence on the concentration and composition of flavonoids in kales (Brassica oleracea var. sabellica). Food Chem, 2010, 119: 1293-1299.

[24]

Shu RG. Research on chemical compositions in Cyclocarya paliurus. J Jiangxi Coll Tradit Chin Med, 1996, 8: 34. (in Chinese)

[25]

Sparg SG, Light ME, van Staden J. Biological activities and distribution of plant saponins. J Ethnopharm, 2004, 94: 219-243.

[26]

Stamp N. Out of the quagmire of plant defense hypotheses. Q Rev Biol, 2003, 78: 23-55.

[27]

Stewart AJ, Chapman W, Jenkins GI, Graham I, Martin T, Crozier A. Theeffect of nitrogen and phosphorous deficiency on flavonol accumulation inplant tissues. Plant Cell Environ, 2001, 24: 1189-1197.

[28]

Szakiel A, Paczkowski C, Henry M. Influence of environmental abiotic factors on the content of saponins in plants. Phytochem Rev, 2011, 10: 471-491.

[29]

Tansakul P, Shibuya M, Kushiro T, Ebizuka Y. Dammarenediol-II synthase, the first dedicated enzyme for ginsenoside biosynthesis, in Panax ginseng. FEBS Lett, 2006, 580: 5143-5149.

[30]

Tava A, Odoardi M, Oleszek W. Seasonal changes of saponin content in five alfalfa (Medicago sativa) cultivars. Agric Med, 1999, 129: 111-116.

[31]

Xie MY, Li L, Nie SP, Wang XR, Lee FS. Determination of speciation of elements related to blood sugar in bioactive extracts from Cyclocarya paliurus leaves by FIA-ICP-MS. Eur Food Res Technol, 2006, 223: 202-209.

[32]

Xie JH, Xie MY, Nie SP, Shen MY, Wang YX, Li C. Isolation, chemical composition and antioxidant activities of a water-soluble polysaccharide from Cyclocarya paliurus (Batal.) Iljinskaja. Food Chem, 2010, 119(4): 1626-1632.

[33]

Yan YF, Fang SZ, Tian Y, Deng SP, Tang LZ, Chuong DN. Influence of tree spacing on soil nitrogen mineralization and availability in hybrid poplar plantations. Forests, 2015, 6: 639-649.

[34]

Yang WX, Liu Y, Fang SZ, Ding HF, Zhou MM, Shang XL. Variation in growth, photosynthesis and water-soluble polysaccharide of Cyclocarya paliurus under different light regimes. iForest, 2017, 10: 468-474.

[35]

Zhang J, Shen Q, Lu JC, Li JY, Liu WY, Yang JJ, Li J, Xiao K. Phenolic compounds from the leaves of Cyclocarya paliurus (Batal.) Ijinskaja and their inhibitory activity against PTP1B. Food Chem, 2010, 119: 1491-1496.

[36]

Zhong RJ, Gao YH, Xu CR, Li LN. The reseach of pentacyclic triterpene in Cyclocarya paliurus (Batal.) Ijinskaja. Chin Tradit Herb Drugs, 1996, 27: 387-388. (in Chinese)

[37]

Zhu KN, Jiang CH, Tian YS, Xiao N, Wu ZF, Ma YL, Lin Z, Fang SZ, Shang XL, Liu K, Zhang J, Liu BL, Yin ZQ. Two triterpeniods from Cyclocarya paliurus (Batal.) Iljinsk (Juglandaceae) promote glucose uptake in 3T3-L1 adipocytes: the relationship to AMPK activation. Phytomedicine, 2015, 22: 837-846.

AI Summary AI Mindmap
PDF

201

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/