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Australian Journal of Botany Australian Journal of Botany Society
Southern hemisphere botanical ecosystems
RESEARCH ARTICLE

Environmental heterogeneity decides bio-heterogeneity of the Spiraea japonica complex (Rosaceae) in China

Zhaoyang Zhang A , Ning Du A , Chunxia Pu A , Zhijian Gu A and Zhekun Zhou A B
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- Author Affiliations

A Kunming Institute of Botany, Chinese Academy of Sciences, Kunming 650204, China.

B Corresponding author. Email: zhouzk@mail.kib.ac.cn

Australian Journal of Botany 56(1) 91-95 https://doi.org/10.1071/BT07111
Submitted: 14 June 2007  Accepted: 1 October 2007   Published: 7 February 2008

Abstract

Amplified fragment length polymorphism (AFLP) fingerprint was the measure used to reveal the patterns of genetic variation within the Spiraea japonica L. f. complex, in the context of physical environment differentiation stemming from the Himalaya–Tibet plateau uplift, the most significant geological event in eastern Asia since the late Paleocene. The complex displays obvious genetic heterogeneity among geographic populations, which was greater in south-western China than in eastern China. The uplift of the Himalaya–Tibet plateau, and consequent increase in environmental complexity in south-western China, is presumed to be responsible for this genetic structure. The obvious genetic heterogeneity among populations or varieties of the S. japonica complex indicates that the rich biodiversity in south-western China is possibly based on genetic variation, suggesting that the biodiversity centre of south-western China represents a tremendous gene pool. It also supports the idea that the protected area and conservation investment made in south-western China should be further augmented. In addition, the greater genetic heterogeneity displayed by plants in south-western China suggests that conservation plans in this region should be more inclusive than those in eastern China.


Acknowledgements

We are grateful to Professor Gong Xun for generously providing conditions to keep the cultivated plants, and to two anonymous reviewers for making great improvements on the manuscript. This study was financially supported by Xibuzhiguang Project of CAS, National Basic Research Program of China 2007CB411601, the Natural Science Foundation Project of Yunnan 2004C0021G and National Natural Science Foundation Project of China 30270120.


References


Axelrod DI , Al-Shehbaz I , Raven PH (1998) History of the modern flora of China. In ‘Floristic characteristics and diversity of east Asian plants’. (Eds AL Zhang, SG Wu) pp. 43–55. (China Higher Education Press: Beijing)

Bassam BJ, Caetano-Anolle SG, Greshoff PM (1991) Fast and sensitive silver staining of DNA in polyacrylamide gels. Analytical Biochemistry 196, 80–83.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Chang DHS (1983) The Tibetan Plateau in relation to the vegetation of China. Annals of the Missouri Botanical Garden 70, 564–570.
Crossref | GoogleScholarGoogle Scholar | open url image1

Committee of the CAS for Physical Geography of China (1985) ‘Physical geography of China: pandect.’ (Science Press: Beijing)

Doyle JJ, Doyle JL (1987) A rapid DNA isolation procedure for small quantities of fresh leaf material. Phytochemistry Bulletin 19, 11–15. open url image1

Excoffier L, Smouse PE, Quattro JM (1992) Analysis of molecular variance inferred from metric distance among DNA haplotypes, application to human mitochondrial DNA restriction data. Genetics 131, 479–491.
PubMed |
open url image1

Organisation for Economic Co-operation and Development (2006) ‘Environmental performance review of China-conclusions and recommendations.’ (Organisation for Economic Co-operation and Development: Paris)

Rehder A (1913) Rosaceae. In ‘Plantae Wilsonianae’. (Ed. CS Sargent) pp. 451–453. (Arnold Arboretum: Boston)

Schneider S , Roessli D , Excoffier L (2000) ‘Arlequin: a software for population genetics data analysis. Ver 2.000.’ (Genetics and Biometry Laboratory, Department of Anthropology, University of Geneva: Geneva)

State Environment Protection Administration of China (2000) ‘State project for natural reserve development.’ (Xueyuan Press: Beijing)

Tanai T (1992) Tertiary vegetation history of east Asia. Mizunami Fossil Museum Bulletin 19, 125–163. open url image1

Vos P, Hogers R, Bleeker M, Reijans M, Lee TVD, Hornes M, Frijters A, Pot J, Peleman J, Kuiper M, Zabeau M (1995) AFLP: a new technique for DNA fingerprinting. Nucleic Acids Research 23, 4407–4414.
Crossref | GoogleScholarGoogle Scholar | PubMed | open url image1

Wang CW (1961) ‘The forests of China with a survey of grassland and desert vegetation.’ (Harvard University: Boston)

Wang WM (1994) Paleofloristic and paleoclimatic implications of Neogene palynofloras in China. Review of Palaeobotany and Palynology 82, 239–250.
Crossref | GoogleScholarGoogle Scholar | open url image1

Wu CY (1979) The regionalization of Chinese flora. Acta Botanica Yunnanica 1, 1–22. open url image1

Wu ZY (1980) ‘China’s vegetation.’ (Science Press: Beijing)

Wu ZY (1984) ‘Index florae Yunnannensis, tomus I.’ (The People’s Publishing House of Yunnan: Kunming)

Wu ZY , Wu SG (1998) A proposal for a new floristic kingdom (realm): the E. Asiatic kingdom, its delimitation and characteristics. In ‘Floristic characteristics and diversity of east Asian plants’. (Eds AL Zhang, SG Wu) pp. 3–42. (China Higher Education Press: Beijing)

Wu ZY , Raven PH (2003) ‘Flora of China.’ (Science Press: Beijing)

Yu TT (1974) Rosaceae. In ‘Flora reipublicae popularis sinicae, vol. 36’. (Ed. TT Yu) pp. 1–20. (Science Press: Beijing)

Zhang ZY (2003) Biogeographical study of the Spiraea japonica complex and its alliance. Dissertation, Kunming Institute of Botany, CAS, Kunming.