The oaks of western Eurasia: Traditional classifications and evidence from two nuclear markers

被引:151
作者
Denk, Thomas [1 ]
Grimm, Guido W. [1 ]
机构
[1] Swedish Museum Nat Hist, Dept Palaeobot, S-10405 Stockholm, Sweden
基金
瑞典研究理事会;
关键词
Darwinian classification; intrageneric evolution; intraindividual variability; phylogenetic networks; Quercus; rDNA spacers; PHYLOGENETIC-RELATIONSHIPS; EVOLUTIONARY HISTORY; AGGLOMERATIVE METHOD; MOLECULAR EVOLUTION; POLLEN MORPHOLOGY; FAGACEAE; BIOGEOGRAPHY; GENES; GENUS; TAXA;
D O I
10.1002/tax.592002
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Phylogenetic relationships among species of Quercus (oaks) from western Eurasia including the western part of the Himalayas are examined for the first time. Based on ITS and 5S-IGS data three major infrageneric groups are recognized for western Eurasia: the cerroid, iliciod, and roburoid oaks. While individuals of the cerroid and ilicoid groups cluster according to their species, particularly in the 5S-IGS analyses, individuals of species of roburoid oaks do not cluster with exception of Quercus pontica. The Cypriot endemic Quercus alnifolia belongs to the ilicoid oaks, in contrast to traditional views placing it within the cerroid oaks. Based on all ITS data available, the groups identified for western Eurasia can be integrated into a global in frageneric framework for Quercus. The Ilex group is resurrected as a well-defined group that comprises taxa traditionally placed into six subsections of Q. sects. Cerris and Lepidobalanus (white oaks) sensu Camus. Phylogenetic reconstructions suggest two major lineages within Quercus, each consisting of three infrageneric groups. Within the first lineage, the Quercus group (roburoid oaks in western Eurasia) and the Lobatae group evolved by "budding" as is reflected by incomplete lineage sorting, high variability within groups, and low differentiation among groups. The groups of the second lineage, including the Cyclobalanopsis, Cerris (cerroid oaks in western Eurasia), and Ilex (ilicoid oaks in western Eurasia) groups, evolved in a more tree-like fashion.
引用
收藏
页码:351 / 366
页数:16
相关论文
共 66 条
[11]  
Comes HP, 2001, EVOLUTION, V55, P1943, DOI 10.1111/j.0014-3820.2001.tb01312.x
[12]   Evolution and alignment of the hypervariable arm 1 of Aeschynanthus (Gesneriaceae) ITS2 nuclear ribosomal DNA [J].
Denduangboripant, J ;
Cronk, QCB .
MOLECULAR PHYLOGENETICS AND EVOLUTION, 2001, 20 (02) :163-172
[13]   Phylogeny and biogeography of Zelkova (Ulmaceae sensu stricto) as inferred from leaf morphology, ITS sequence data and the fossil record [J].
Denk, T ;
Grimm, GW .
BOTANICAL JOURNAL OF THE LINNEAN SOCIETY, 2005, 147 (02) :129-157
[14]   The evolutionary history of Fagus in western Eurasia:: Evidence from genes, morphology and the fossil record [J].
Denk, T ;
Grimm, G ;
Stögerer, K ;
Langer, M ;
Hemleben, V .
PLANT SYSTEMATICS AND EVOLUTION, 2002, 232 (3-4) :213-236
[15]  
DENK T, 2009, INT J PLANT SCI, V170
[16]   RFLP ANALYSIS AND LINKAGE MAPPING IN SOLANUM-TUBEROSUM [J].
GEBHARDT, C ;
RITTER, E ;
DEBENER, T ;
SCHACHTSCHABEL, U ;
WALKEMEIER, B ;
UHRIG, H ;
SALAMINI, F .
THEORETICAL AND APPLIED GENETICS, 1989, 78 (01) :65-75
[17]   Molecular Taxonomy of Phytopathogenic Fungi: A Case Study in Peronospora [J].
Goeker, Markus ;
Garcia-Blazquez, Gema ;
Voglmayr, Hermann ;
Telleria, M. Teresa ;
Martin, Maria P. .
PLOS ONE, 2009, 4 (07)
[18]   General functions to transform associate data to host data, and their use in phylogenetic inference from sequences with intra-individual variability [J].
Goeker, Markus ;
Grimm, Guido W. .
BMC EVOLUTIONARY BIOLOGY, 2008, 8 (1)
[19]   Molecular phylogenetic relationships in Aveneae (Poaceae) species and other grasses as inferred from ITS1 and ITS2 rDNA sequences [J].
Grebenstein, B ;
Röser, M ;
Sauer, W ;
Hemleben, V .
PLANT SYSTEMATICS AND EVOLUTION, 1998, 213 (3-4) :233-250
[20]   Evolutionary history and systematics of Acer section Acer -: a case study of low-level phylogenetics [J].
Grimm, G. W. ;
Denk, T. ;
Hemleben, V. .
PLANT SYSTEMATICS AND EVOLUTION, 2007, 267 (1-4) :215-253