Within population genetic differentiation in traits affecting clonal growth: Festuca rubra in a mountain grassland

被引:0
|
作者
Skalova, H
Pechackova, S
Suzuki, J
Herben, T
Hara, T
Hadincova, V
Krahulec, F
机构
[1] ACAD SCI CZECH REPUBL, INST BOT, CZ-25243 PRAGUE, CZECH REPUBLIC
[2] TOKYO METROPOLITAN UNIV, DEPT BIOL, TOKYO 19203, JAPAN
关键词
foraging; plasticity; reaction norms; red far red ratio; rhizome architecture; spatial spreading; tussock architecture; tillering;
D O I
10.1046/j.1420-9101.1997.10030383.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Festuca rubra, a clonal grass of mountain grasslands, possesses a considerable variability in traits related to spatial spreading (rhizome production, length and branching; tussock architecture). Since these traits highly influence the success of the species in a spatially heterogeneous system of grasslands, a combined field and growth chamber approach was adopted to determine the within-population variation in these parameters. Clones were sampled in a mountain grassland (The Krkonose Mts., Czech Republic); the environment (mean neighbour density) of individual clones varied highly. Before the clones were collected, shoot demography and tussock architecture within these clones were recorded in the field for four seasons. Their clone identity was determined using DNA RAPD. Vegetatively propagated plants from these clones were cultivated in a common garden experiment to demonstrate variation in tussock growth and architecture. Their response to change in red/far red light ratio was determined in the growth chamber. Highly significant variation among clones was found in almost all parameters. In the common garden, the clones differed in tussock growth (mean tillering rate), architecture (mean shoot angle, mean tussock density) and proportion of flowering shoots. In the growth chamber, both the aboveground parameters and parameters of the rhizome system were strongly affected by red/far red ratio; among-clone variation was also almost always significant. The genotype x environment interaction was significant for tillering rate and rhizome architecture. The structure of the rhizome system (which is the major component of clonal spread in space) is a complex result of several components whose inter-clone variations differ: (i) genetically determined mean rhizome system sizer (ii) overall plasticity in rhizome system size (with no significant genetic variation in plasticity), and (iii) genetically determined plasticity in rhizome architecture. Because of the variation in plasticity in rhizome architecture, some clones seemed to possess the ability to exploit a favourable habitat patch by producing short branches when there; whereas the remaining clones appeared to possess only a simple escape mechanism from unfavourable patches. Environmental variation in the light levels in the studied grassland is fine grained; horizontal growth rates of F. rubra are sufficient to make genets experience different patches in their lifetime. The high variation in both, genotype means and plasticities is likely to be due to selection early in genet life in an environment which is heterogeneous at a fine scale.
引用
收藏
页码:383 / 406
页数:24
相关论文
共 50 条
  • [21] Genetic variation for growth, morphological, and physiological traits in a wild population of the Neotropical shadeAtolerant rainforest tree Sextonia rubra (Mez) van der Werff (Lauraceae)
    Scotti, Ivan
    Calvo-Vialettes, Leticia
    Scotti-Saintagne, Caroline
    Citterio, Maurizio
    Degen, Bernd
    Bonal, Damien
    TREE GENETICS & GENOMES, 2010, 6 (02) : 319 - 329
  • [22] Genetic Diversity Analysis and Identification of Candidate Genes for Growth Traits in Chengkou Mountain Chicken
    Liu, Lingbin
    Wang, Yi
    Huang, Yu
    Wang, Zhen
    Wang, Qigui
    Wang, Haiwei
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2024, 25 (23)
  • [23] Genetic dissection of agronomic traits within a segregating population of breeding table grapes
    Viana, A. P.
    Riaz, S.
    Walker, M. A.
    GENETICS AND MOLECULAR RESEARCH, 2013, 12 (02) : 951 - 964
  • [24] Clonal Diversity and Genetic Differentiation in Rhizomatous Herb, Iris japonica (Iridaceae) Populations on Jinyun Mountain, Southwest China
    Wang, Yong-Jian
    Shi, Xue-Ping
    Zhong, Zhang-Cheng
    SAINS MALAYSIANA, 2012, 41 (02): : 149 - 154
  • [25] Genetic parameters and clonal variation in growth and nutritional traits of containerized white spruce somatic seedlings
    Wahid, Nadya
    Lamhamedi, Mohammed S.
    Beaulieu, Jean
    Margolis, Hank A.
    Deblois, Josianne
    ACTA BOTANICA GALLICA, 2012, 159 (03) : 373 - 384
  • [27] Genetic variation and clonal differentiation in the Daphnia population of the Greifensee, a pre-alpine Swiss lake
    Spaak, Piet
    Eggenschwiler, Lisa
    Buergi, Hans Rudolf
    INTERNATIONAL ASSOCIATION OF THEORETICAL AND APPLIED LIMNOLOGY, PROCEEDINGS, VOL 27, PT 4, 2001, 27 : 1919 - 1923
  • [28] Genetic differentiation within multiple common grassland plants supports seed transfer zones for ecological restoration
    Durka, Walter
    Michalski, Stefan G.
    Berendzen, Kenneth W.
    Bossdorf, Oliver
    Bucharova, Anna
    Hermann, Julia-Maria
    Hoelzel, Norbert
    Kollmann, Johannes
    JOURNAL OF APPLIED ECOLOGY, 2017, 54 (01) : 116 - 126
  • [29] Genetic correlations among milk yield and growth traits in a multibreed population
    Roman-Ponce, Sergio I.
    Ruiz-Lopez, Felipe J.
    Luis Romano-Munoz, Jose
    Vasquez-Pelaez, Carlos G.
    Vega-Murillo, Vicente E.
    Roman-Ponce, Heriberto
    REVISTA MEXICANA DE CIENCIAS PECUARIAS, 2018, 9 (02) : 316 - 327
  • [30] Estimates of genetic parameters for growth traits in dorper crossbred sheep population
    Besufkad, Shanbel
    Goshme, Shenkute
    Abebe, Aschalew
    Bisrat, Asfaw
    Abebe, Ayele
    Getachew, Tesfaye
    Zewdie, Tesfaye
    Lemma, Sisay
    Areaya, Alemnew
    Gizaw, Solomon
    TROPICAL ANIMAL HEALTH AND PRODUCTION, 2024, 56 (08)