PDF
Abstract
Nutrient retranslocation in trees is important in nutrient budgets and energy flows in forest ecosystems. We investigated nutrient retranslocation in the fine roots of a Manchurian Ash (Fraxinus mandshurica) and a Larch (Larix olgensis) plantation in northeastern China. Nutrient retranslocation in the fine roots was investigated using three methods, specifically, nutrient concentration, the ratio of Ca to other elements (Ca/other elements ratio) and nutrient content. The method based on nutrient content proved most suitable when investigating nutrient retranslocation from fine roots of the two species. The nutrient-content-based method showed that there were retranslocations of N, P, K and Mg from the fine roots of Manchurian Ash, with retranslocation efficiencies of 13, 25, 65, and 38 %, respectively, whereas there were no Ca retranslocations. There were retranslocations of N, P, K, Ca and Mg from the fine roots of Larch, with retranslocation efficiencies of 31, 40, 52, 23 and 25 %, respectively.
Keywords
Fine roots
/
Fraxinus mandshurica
/
Larix olgensis
/
Nutrient retranslocation
/
Temperate plantation
Cite this article
Download citation ▾
Shizhu Huang, Xiaoxin Sun, Yandong Zhang, Hailong Sun, Zhengquan Wang.
Nutrient retranslocation from the fine roots of Fraxinus mandshurica and Larix olgensis in northeastern China.
Journal of Forestry Research, 2016, 27(6): 1305-1312 DOI:10.1007/s11676-016-0258-6
| [1] |
Aerts R. Nutrient use efficiency in evergreen and deciduous species from heathlands. Oecologia, 1990, 84: 391-397.
|
| [2] |
Aerts R, Chapin FS. The mineral nutrition of wild plants revisited: a re-evaluation of processes and patterns. Adv Ecol Res, 2000, 30: 1-67.
|
| [3] |
Baddeley JA, Watson CA. Influences of root diameter, tree age, soil depth and season on fine root survivorship in Prunus avium. Plant Soil, 2005, 276: 15-22.
|
| [4] |
Black KE, Harbron CG, Franklin M, Atkinson D, Hooker JE. Differences in root longevity of some tree species. Tree Physiol, 1998, 18: 259-264.
|
| [5] |
Chapin FS III. The mineral nutrition of wild plants. Ann Rev Ecol Evol S, 1980, 11: 233-260.
|
| [6] |
Chen S, Chen SL, Guo ZW. Effects of mulching management on the internal cycling of nutrients in the rhizomatous roots of Phyllostachys violascens. Acta. Ecol. Sinica, 2015, 35(17): 5788-5796.
|
| [7] |
Drenovsky RE, Richards JH. Low leaf N and P resorption contributes to nutrient limitation in two desert shrubs. Plant Ecol, 2006, 183: 305-314.
|
| [8] |
Erley GSA, Dewi ER, Nikus O, Horst WJ. Genotypic differences in nitrogen efficiency of white cabbage (Brassica oleracea L.). Plant Soil, 2010, 328: 313-325.
|
| [9] |
Freschet GT, Cornelissen JHC, van Logtestijn RSP, Aerts R. Substantial nutrient resorption from leaves, stems and roots in a subarctic flora: what is the link with other resource economics traits?. New Phytol, 2010, 186: 879-889.
|
| [10] |
Gordon WS, Jackson RB. Nutrient concentrations in fine roots. Ecology, 2000, 81: 275-280.
|
| [11] |
Guo D, Mitchell RJ, Withington JM, Fan PP, Hendricks JJ. Endogenous and exogenous controls of root life span, mortality and nitrogen flux in a longleaf pine forest: root branch order predominates. J Ecol, 2008, 96: 737-745.
|
| [12] |
Kunkle JM, Walters MB, Kobe RK. Senescence-related changes in nitrogen in fine roots: mass loss affects estimation. Tree Physiol, 2009, 29: 715-723.
|
| [13] |
Liao LP, Gao H, Yu XJ, Han SJ. Nutrient retranslocation in fine roots of Cunninghamia lanceolata, Alnus cremastogyne and Kalopanax septemlobum in the mixed plantations—a pilot study. Chin J Appl Ecol, 2000, 11: 161-164. (In Chinese)
|
| [14] |
Lü X, Freschet GT, Flynn DFB, Han XG. Plasticity in leaf and stem nutrient resorption proficiency potentially reinforces plant-soil feedbacks and microscale heterogeneity in a semi-arid grassland. J Ecol, 2012, 100: 144-150.
|
| [15] |
Mao R, Zeng DH, Zhang XH, Song CC. Responses of plant nutrient resorption to phosphorus addition in freshwater marsh of Northeast China. Sci. Rep., 2015, 5 8097
|
| [16] |
McClaugherty CA, Aber JD, Melillo JM. The role of fine roots in the organic matter and nitrogen budgets of two forested ecosystems. Ecology, 1982, 63: 1481-1490.
|
| [17] |
Nadelhoffer KJ, Aber JD, Melillo JM. Fine roots, net primary production, and soil nitrogen availability: a new hypothesis. Ecology, 1985, 66(4): 1377-1390.
|
| [18] |
Nambiar EKS. Do nutrients retranslocate from fine roots?. Can J For Res, 1987, 17: 913-918.
|
| [19] |
Nambiar EKS, Fife DN. Nutrient retranslocation in temperate conifers. Tree Physiol, 1991, 9: 185-207.
|
| [20] |
Norris MD, Reich PB. Modest enhancement of nitrogen conservation via retranslocation in response to gradients in N supply and leaf N status. Plant Soil, 2009, 316: 193-204.
|
| [21] |
Ruess RW, Van Cleve K, Yarie J, Viereck LA. Contributions of fine root production and turnover to the carbon and nitrogen cycling in taiga forests of the Alaskan interior. Can J For Res, 1996, 26: 1326-1336.
|
| [22] |
Salifu KF, Timmer VR. Nutrient retranslocation response of Picea mariana seedlings to nitrogen supply. Soil Sci Soc Am J, 2001, 65: 905-913.
|
| [23] |
Son Y, Gower ST. Aboveground nitrogen and phosphorus use by five plantation-grown trees with different leaf longevities. Biogeochemistry, 1991, 14: 167-191.
|
| [24] |
Tierney GL, Fahey TJ. Fine root turnover in a northern hardwood forest: a direct comparison of the radiocarbon and minirhizotron methods. Can J For Res, 2002, 32: 1692-1697.
|
| [25] |
Tully KL, Wood TE, Schwantes AM, Lawrence D. Soil nutrient availability and reproductive effort drive patterns in nutrient resorption in Pentaclethra macroloba. Ecology, 2013, 94(4): 930-940.
|
| [26] |
van Heerwaarden LM, Toet S, Aerts R. Current measures of nutrient resorption efficiency lead to a substantial underestimation of real resorption efficiency: facts and solutions. Oikos, 2003, 101: 664-669.
|
| [27] |
van Heerwaarden LM, Toet S, Aerts R. Nitrogen and phosphorus resorption efficiency and proficiency in six sub-arctic bog species after 4 years of nitrogen fertilization. J Ecol, 2003, 91: 1060-1070.
|
| [28] |
Vogt KA, Vogt DJ, Asbjomsen H, Dahlgren RA. Roots, nutrients and their relationship to spatial patterns. Plant Soil, 1995, 168–169: 113-123.
|
| [29] |
Wang Z. Plant physiology. 2000, Beijing: China Agriculture Press, 85 106 (in Chinese)
|
| [30] |
Wang WQ, You SY, Wang YB, Huang L, Wang M. Influence of frost on nutrient resorption during leaf senescence in a mangrove at its latitudinal limit of distribution. Plant Soil, 2011, 342: 105-115.
|
| [31] |
Wang ZN, Lu JY, Yang HM, Zhang X, Luo CL, Zhao YX. Resorption of nitrogen, phosphorus and potassium from leaves of lucerne stands of different ages. Plant Soil, 2014, 383: 301-312.
|
| [32] |
Wells CE, Eissenstat DM. Marked differences in survivorship among apple roots of different diameters. Ecology, 2001, 82: 882-892.
|
| [33] |
Wu Y, Li XW, Rong L, Liu YX, Luo YL. Nutrient internal cycling in Cryptameria fortunei fine root with senescence. Sci Silvae Sin, 2010, 46(2): 1-5. (in Chinese)
|
| [34] |
Xu FY, Wang LH, Li PZ, Xu SM, Zhang SY. Internal and external nutrient transfers in foliage of some north deciduous trees I. Changes of nutrient concentrations and contents. Chin J Appl Ecol, 1997, 8(1): 1-6. (in Chinese)
|
| [35] |
Zeng DH, Chen GS, Chen FS, Zhao Q, Ji XY. Foliar nutrients and their resorption efficiencies in four Pinus sylvestris var. mongolica plantations of different ages on sandy soil. Sci Silvea Sin, 2005, 41(5): 21-27. (in Chinese)
|