Genetic variation in growth traits and stem–branch characteristics and their relationships to Eucalyptus clones

Shijun Wu , Zhaohua Lu , Jianmin Xu , Guangchao Chen , Yingan Zhu , Guangyou Li

Journal of Forestry Research ›› 2015, Vol. 26 ›› Issue (4) : 957 -962.

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Journal of Forestry Research ›› 2015, Vol. 26 ›› Issue (4) : 957 -962. DOI: 10.1007/s11676-015-0092-2
Original Paper

Genetic variation in growth traits and stem–branch characteristics and their relationships to Eucalyptus clones

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Abstract

Eucalyptus has become an important genus in China because it displays adaptability to a wide range of site conditions and produces pulp wood and veneer on short rotations. The aim of this study was to estimate genetic parameters and relationships and consider implications for development of clonal forestry. We assessed growth traits, stem–branch characteristics, crown diameter and height of fresh branch for 20 Eucalyptus hybrid clones in China measured at the age of 44 months. Analysis of variance showed that there were significant differences in growth traits, height of fresh branch and stem straightness among clones. Significant differences in height, volume, crown diameter, height of fresh branch and branch size among replicates were also recorded. Coefficients of variation ranged from 9.84 to 28.54 % for growth traits, 12.03 to 17.25 % for stem–branch characteristics, 18.26 % for crown diameter and 11.73 % for height of fresh branch. Estimates of repeatabilities for height, diameter at breast height over bark, volume, crown diameter, height of fresh branch, stem straightness and branch size at clone mean level were 0.86, 0.80, 0.80, 0.54, 0.85, 0.77 and 0.44 respectively. Diameter at breast height over bark and height had strongly positive phenotypic and genotypic correlations with volume, ranging from 0.96 to 1.00. The positive genotypic and phenotypic correlations between growth traits and other studied traits suggested that fast growing clones always had bigger crown diameter, higher height of fresh branch, straighter stems and relatively smaller branches.

Keywords

Multiple comparison / Clonal variation / Genotypic and phenotypic correlations / Eucalyptus clones

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Shijun Wu, Zhaohua Lu, Jianmin Xu, Guangchao Chen, Yingan Zhu, Guangyou Li. Genetic variation in growth traits and stem–branch characteristics and their relationships to Eucalyptus clones. Journal of Forestry Research, 2015, 26(4): 957-962 DOI:10.1007/s11676-015-0092-2

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References

[1]

Bull GQ, Bazett M, Schwab O, Nilsson S, White A, Magninnis S. Industrial forest plantation subsidies: impacts and implications. For Policy Econ, 2006, 9: 13-31.

[2]

Greaves BL, Borralho NMG, Raymond CA, Evans R, Whiteman PH. Age-age correlations in, and relationships between basic density and growth in Eucalyptus nitens. Silv Genet, 1997, 46(5): 264-270.

[3]

Hai PH, Jansson G, Harwood C, Hannrup B, Thinh HH. Genetic variation in growth, stem straightness and branch thickness in clonal trials of Acacia auriculiformis at three contrasting sites in Vietnam. For Ecol Manag, 2008, 255: 156-167.

[4]

Hansen JK, Roulund H. Genetic parameters for spiral grain, stem form, pilodyn and growth in 13 year old clones of Sitka Spruce (Picea sitchensis (Bong.) Carr.). Silva Genet, 1996, 46(2–3): 107-113.

[5]

Huang L-B, Dell B. Wei RP, Xu DP. Database system approach for integrated plantation nutrition management. Eucalyptus plantation research, management and development. 2002, Singapore: World Scientific Publishing Co. Pte. Ltd., 290 300

[6]

Kien ND, Jansson G, Harwood C, Almqvist C, Ha HT. Genetic variation in wood basic density and Pilodyn penetration and their relationships with growth, stem straightness and branch size for Eucalyptus urophylla S.T. Blake in Northern Vietnam. N Z J For Sci, 2008, 38(1): 160-175.

[7]

Kien ND, Jansson G, Harwood C, Thinh HH. Genetic control of growth and form in Eucalyptus urophylla in northern Vietnam. J Trop For Sci, 2009, 21(1): 50-65.

[8]

Kien ND, Jansson G, Harwood C, Almqvist C. Clonal variation and genotype by environment interactions in growth and wood density in Eucalyptus camaldulensis at three contrasting sites in Vietnam. Silv Genet, 2010, 59(1): 17-28.

[9]

Kumar D, Singh NB. Age-age correlation for early selection of clones of Populus in India. Silv Genet, 2001, 50(3–4): 103-108.

[10]

Lu Z-H, Xu J-M, Li G-Y, Bai J-Y, Qi S-X. Integrated selection of clones from Eucalyptus species. J Nanjing For Univ, 2005, 29(5): 61-64. (in Chinese)

[11]

Martin B (2002) Eucalyptus: a strategic forest tree. In: Wei RP, Xu DP (eds), Eucalyptus plantation research, management and development. Proceedings of the international symposium held in Guangzhou, People’s Republic of China, World Scientific Publishing Co. Pte. Ltd, 1–6 Sep 2002, pp 3–18

[12]

McKenney DW, Davis JS, Turnbull JW (1991) The impact of Australian tree species research in China. ACIAR Economic Assessment Series, Canberra 12:6–7

[13]

Mo XY, Peng SY, Long T, Chen W, Yang X (2002) Important traits and combined evaluation of eucalypt clones. In: Wei R-P, Xu D-P Eucalyptus plantation research, management and development. Proceedings of the international symposium held in Guangzhou, People’s Republic of China, World Scientific Publishing Co. Pte. Ltd, 1–6 Sep 2002, pp 102–108

[14]

Pliura A, Zhang S-Y, Mackay J, Bousquet J. Genotypic variation in wood density and growth traits of poplar hybrids at four clonal trials. For Ecol Manag, 2007, 238: 92-106.

[15]

Qi S-X. Applied Eucalypt cultivation in China. 2007, Beijing: China Forestry Publishing House (in Chinese)

[16]

Stackpole DJ, Vaillancourt RE, Aguigar MD, Potts BM. Age trends in genetic parameters for growth and wood density in Eucalyptus globulus. Tree Genet Genomes, 2010, 6: 179-193.

[17]

Toit BD, Smith CW, Little KM, Boreham G, Pallett RN. Intensive, site-specific silviculture: manipulating resource availability at establishment for improved stand productivity. A review of Southern African research. For Ecol Manag, 2010, 259: 1836-1845.

[18]

Varghese M, Harwood CE, Hegde R, Ravi N. Evaluation of provenances of Eucalyptus camaldulensis and clones of E. camaldulensis and E. tereticorni at contrasting sites in southern India. Silv Genet, 2008, 57(3): 136-141.

[19]

Warren E, Smith RGB, Apiolaza LA, Walker JCF. Effect of stocking on juvenile wood stiffness for three Eucaluptus species. New For, 2009, 37: 241-250.

[20]

Wu SJ, Xu JM, Li GY, Lu Z-H, Han C, Hu Y, Hu XX. Genetic variation and genetic gain in growth traits, stem–branch characteristics and wood properties and their relationships of Eucalyptus urophylla clones. Silv Genet, 2014, 62(4–5): 218-231.

[21]

Xu D-P, Dell B (2002) Nutrient management of eucalypt plantations in south China. In: Wei R-P and Xu D-P (eds) Eucalyptus plantation research, management and development. World Scientific Publishing Co. Pte. Ltd, pp 269–288

[22]

Xu J-M, Lu Z-H, Li G-Y, Bai J-Y. Study on integrated selection of provenances-families of Eucalyptus tereticornis. For Res, 2003, 16(1): 1-7. (in Chinese)

[23]

Xu J-M, Lu Z-H, Li G-Y, Wu S-J, Wang W, Huang H-J, Tan P-T, Ye T. Study on the selection from clones of Eucalyptus hybrids. Eucalypt Sci Technol, 2009, 26(2): 1-8.

[24]

Yang M-S (2003) Present situation and prospects for eucalypt plantations in China. In: Turnbull JW Eucalypts in Asia proceedings of an international conference held in Zhanjiang, Guangdong, People’s Republic of China. Australian Centre for International Agricultural Research Proceedings No. 111, Canberra, 7–11 Apr 2003, pp 9–15

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