植物生态学报 ›› 2007, Vol. 31 ›› Issue (4): 658-664.DOI: 10.17521/cjpe.2007.0085
朱雅娟1,2, 阿拉腾宝1,3,4, 董鸣1, 黄振英1,*()
收稿日期:
2006-07-29
接受日期:
2007-11-05
出版日期:
2007-07-29
发布日期:
2007-07-30
通讯作者:
黄振英
作者简介:
* E-mail: zhenying@ibeas.ac.cn基金资助:
ZHU Ya-Juan1,2, ALATEN Bao1,3,4, DONG Ming1, HUANG Zhen-Yin1,*()
Received:
2006-07-29
Accepted:
2007-11-05
Online:
2007-07-29
Published:
2007-07-30
Contact:
HUANG Zhen-Yin
摘要:
羊柴(Hedysarum laeve)是豆科多年生半灌木,在自然条件下可以同时进行有性繁殖和克隆繁殖。该文在野外条件下研究了不同水平的水分和养分处理对羊柴种群的繁殖权衡的影响。结果表明,与对照相比,增加一定量的水分处理显著减少了花和荚果的生物量;显著增加了克隆分株枝的生物量,显著减少了分株根茎的生物量, 但没有影响其它部分的生物量。增加一定量的水分会抑制有性繁殖,改变生物量对克隆繁殖分株各部分的分配比例。与对照相比,增加一定量的养分能够促进有性繁殖,抑制克隆繁殖。
朱雅娟, 阿拉腾宝, 董鸣, 黄振英. 增加水分与养分对克隆植物羊柴自然种群繁殖权衡的影响. 植物生态学报, 2007, 31(4): 658-664. DOI: 10.17521/cjpe.2007.0085
ZHU Ya-Juan, ALATEN Bao, DONG Ming, HUANG Zhen-Yin. EFFECTS OF INCREASING WATER OR NUTRIENT SUPPLIES ON REPRODUCTION TRADE-OFFS IN THE NATURAL POPULATIONS OF CLONAL PLANT, HEDYSARUM LAEVE. Chinese Journal of Plant Ecology, 2007, 31(4): 658-664. DOI: 10.17521/cjpe.2007.0085
总生物量 Total biomass | 繁殖 Reproduction | 有性繁殖 Sexual reproduction | 花 Flower 荚果 Fruit |
克隆繁殖 Clonal reproduction | 叶 Leaf 枝 Shoot 根茎 Rhizome | ||
生长 Growtd | 叶 Leaf 枝 Shoot 根茎 Rhizome |
表1 实验中测定的生物量指标(g)
Table 1 The index of biomass measured in the experiments (g)
总生物量 Total biomass | 繁殖 Reproduction | 有性繁殖 Sexual reproduction | 花 Flower 荚果 Fruit |
克隆繁殖 Clonal reproduction | 叶 Leaf 枝 Shoot 根茎 Rhizome | ||
生长 Growtd | 叶 Leaf 枝 Shoot 根茎 Rhizome |
图1 增加水分对羊柴种群生物量的影响(平均值±标准误差)
Fig.1 Effects of increasing water supply on biomass (mean±SE) A: 繁殖、生长和总生物量Reproduction, growth and total biomass B: 有性繁殖Sexual reproduction (SR) C: 克隆繁殖Clonal reproduction (CR) D: 生长部分Growth traits of the Hedysarum laeve populations 根据Tukey's检验,各组之内由不同小写字母标记的值之间的差异是显著的(p<0.05)。在样方中,开花和结果的分株为有性繁殖分株,其枝、叶和根茎为生长部分的生物量,花和果实为有性繁殖部分的生物量;未开花的分株为克隆分株,其枝叶和根茎为克隆繁殖的生物量 In each group, bars sharing the same letters are not significantly different (p<0.05) according to Tukey's tests. The ramets with flower or fruit are considered as sexual ramets; their flower and fruit are the biomass of sexual reproduction, and their shoot, leaf and rhizome are the biomass of growth. The ramets without flower or fruit are considered as clonal ramets; their shoot, leaf and rhizome are the biomass of clonal reproduction在生物量的分配比例方面,和对照相比,增加水分对羊柴种群的繁殖,包括有性繁殖和克隆繁殖都产生了显著影响(p<0.05) (表2)。经过增加32和64 mm的水分处理之后,生物量对有性繁殖的分配比例显著减少 (p<0.05);对克隆繁殖的分配比例显著增加(p<0.05);对繁殖部分的总分配(包括有性和克隆繁殖)比例也显著增加 (p<0.05) (表2)。增加32和64 mm水分之后,生物量对花和荚果的分配比例显著减少(p<0.05) (图 2A)。增加水分之后,生物量对克隆分株的叶的分配比例没有显著差异;但是,与对照相比,增加32和64 mm的水分之后,生物量对克隆分株枝的分配显著增加(p<0.05);生物量对克隆分株根茎的分配显著减少(p<0.05) (图2B)。经过不同水平的水分处理之后,生物量对生长部分的叶、枝和根茎的分配比例没有显著差异 (图 2C)。
水分Water (mm) | 0 | 16 | 32 | 64 |
---|---|---|---|---|
有性繁殖Sexual reproduction | 3.40±0.52b | 2.50±0.66b | 1.00±0.32a | 1.20±0.20a |
克隆繁殖Clonal reproduction | 32.8±1.44a | 33.5±3.66ab | 36.8±2.12b | 39±2.62b |
总繁殖Total reproduction | 34.6±1.87a | 31.75±6.14a | 40±2.11b | 39.8±2.89b |
表2 增加水分对羊柴种群繁殖生物量分配(%±SE)的影响
Table 2 Effects of increasing water supply on biomass allocation (%±SE) to reproduction of the Hedysarum laeve populations
水分Water (mm) | 0 | 16 | 32 | 64 |
---|---|---|---|---|
有性繁殖Sexual reproduction | 3.40±0.52b | 2.50±0.66b | 1.00±0.32a | 1.20±0.20a |
克隆繁殖Clonal reproduction | 32.8±1.44a | 33.5±3.66ab | 36.8±2.12b | 39±2.62b |
总繁殖Total reproduction | 34.6±1.87a | 31.75±6.14a | 40±2.11b | 39.8±2.89b |
图2 增加水分对羊柴种群生物量分配的影响(平均值±标准误差)
Fig.2 Effects of increasing water supply on biomass allocation (mean±SE) A: 有性繁殖Sexual reproduction B: 克隆繁殖Clonal reproduction C: 生长部分Growth traits of the Hedysarum laeve populations 图注同图1 Notes see Fig. 1
图3 增加养分对羊柴种群生物量的影响(平均值±标准误差)
Fig.3 Effects of increasing nutrient supply on the biomass (mean±SE) A: 繁殖、生长和总生物量Reproduction, growth and total biomass B: 有性繁殖Sexual reproduction (SR) C: 克隆繁殖Clonal reproduction (CR) D: 生长部分的生物量Growth of the Hedysarum laeve populations 图注同图1 Notes see Fig. 1
养分Nutrient (g) | 0 | 30 | 60 | 90 | 120 |
---|---|---|---|---|---|
有性繁殖Sexual reproduction | 3.4±1.0a | 3.6±0.8a | 3.6±0.8a | 3.2±0.8a | 5.0±1.1b |
克隆繁殖Clonal reproduction | 32.8±2.9b | 28.8±2.6b | 27.4±3.2b | 26.6±2.6b | 21.2±1.5a |
总繁殖Total reproduction | 36.2±1.9b | 34.2±2.5b | 30.8±2.9b | 31.6±2.6b | 26.2±2.0a |
表3 增加养分对羊柴种群繁殖生物量分配(%±SE)的影响
Table 3 Effects of increasing nutrient supply on biomass allocation (%±SE) to reproduction of the Hedysarum laeve populations
养分Nutrient (g) | 0 | 30 | 60 | 90 | 120 |
---|---|---|---|---|---|
有性繁殖Sexual reproduction | 3.4±1.0a | 3.6±0.8a | 3.6±0.8a | 3.2±0.8a | 5.0±1.1b |
克隆繁殖Clonal reproduction | 32.8±2.9b | 28.8±2.6b | 27.4±3.2b | 26.6±2.6b | 21.2±1.5a |
总繁殖Total reproduction | 36.2±1.9b | 34.2±2.5b | 30.8±2.9b | 31.6±2.6b | 26.2±2.0a |
图4 增加养分对羊柴种群生物量分配的影响(平均值±标准误差)
Fig.4 Effects of increasing nutrient supply on biomass allocation (mean±SE) A: 有性繁殖Sexual reproduction B: 克隆繁殖Clonal reproduction C: 生长部分 Growth of the Hedysarum laeve populations 图注同图1 Notes see Fig. 1
[1] |
Arizaga SA, Ezcurrra E (2002). Propagation mechanism in Agave macroacantha (Agavaceae), a tropical arid-land succulent rosette. American Journal of Botany, 89, 632-641.
DOI URL PMID |
[2] |
Bates JD, Svejcar T, Miller RF, Angell RA (2006). The effects of precipitation timing on sagebrush steppe vegetation. Journal of Arid Environments, 64, 670-697.
DOI URL |
[3] | Charpentier A, Stuefer JF (1999). Functional specialization of ramets in Scirpus maritimus: splitting the tasks of sexual reproduction, vegetative growth, and resource storage. Plant Ecology, 141, 129-136. |
[4] | Chen YF (陈玉福), Dong M (董鸣) (2000). Genet characters of Hedysarum leave and the character of its ramet population in different habitats in Mu Us sandland. Acta Phytoecologica Sinica (植物生态学报), 24, 40-45. (in Chinese with English abstract) |
[5] | Deng HY (邓红英) (2002). Plant functional types based on the response of dominant plants in Maowusu sand land to the change of simulated precipitation. Journal of Yunnan University (云南大学学报), 24, 75-80. (in Chinese with English abstract) |
[6] | Ericsson O 1997. Clonal life histories and the evolution of seed recruitment. In: Kroon H, Groenendael J eds. The Ecology and Evolution of Clonal Plants. Backbuys Publishers, Leiden, 211-216. |
[7] | Ge S (葛颂), Wang KQ (王可青), Dong M (董鸣) (1999). Genetic diversity and clonal structure in Hedysarum laeve in Mo Us sandland. Acta Botanica Sinica (植物学报), 41, 301-306. (in Chinese with English abstract) |
[8] |
Gillespie IG, Michael ME, Loik E (2004). Pulse events in Great Basin Desert shrublands: physiological responses of Artemisia tridentata and Purshia tridentata seedlings to increased summer precipitation. Journal of Arid Environments, 59, 41-57.
DOI URL |
[9] | He WM (何维明) (2002). Why does asexual generation in Sabina vulgaris population dominate in nature? Acta Phytoecologica Sinica (植物生态学报), 26, 235-238. (in Chinese with English abstract) |
[10] |
Kleumen M, Fischer M, Schmid B (2001). Effects of intraspecific competition on size variation and reproductive allocation in a clonal plant. Oikos, 94, 515-524.
DOI URL |
[11] |
Li RF, Zhang AS, Duan SS, Kang LF (2005). Patterns of reproductive allocation in Artemisia halodendron inhabiting two contrasting habitats. Acta Oecologia, 28, 57-64.
DOI URL |
[12] | Liu FH (刘凤红), Liu J (刘建), Dong M (董鸣) (2004). Spatial pattern of sandy vegetation and two dominant clonal semi-shrubs in the Ordos Plateau. Acta Ecologica Sinica (生态学报), 24, 2374-2381. (in Chinese with English abstract) |
[13] | Liu FH (刘凤红), Liu J (刘建), Dong M (董鸣) (2005). Response of biomass allocation to small-scale variation of vegetation coverage in dominant clonal semi-shrubs in the Mu Us Sandland. Acta Ecologica Sinica (生态学报), 24, 3415-3419. (in Chinese with English abstract) |
[14] | Liu ZH (刘智慧), Zhang MZ (张明珍) (1999). The ultrastructure orientation of ATP enzyme viability in Hedysarum laeve root nodule. Journal of Sichuan University (Natural Science Edition) (四川大学学报(自然科学版)), 36, 747-751. (in Chinese with English abstract) |
[15] | Ma YQ (马毓泉) (1989). Flora Intramongolica (内蒙古植物志). Tomus 3. Inner Mongolia People Press, Huhhot, 339. (in Chinese) |
[16] |
Mendoza A, Franco M (1998). Sexual reproduction and clonal growth in Reinhardtia gracilis (Palmae), an understory tropical palm. American Journal of Botany, 85, 521-527.
URL PMID |
[17] |
Ogle K, Reynolds JF (2004). Plant responses to precipitation in desert ecosystems: integrating functional types, pulses, thresholds, and delays. Oecologia, 141, 282-294.
DOI URL |
[18] |
Perkins SR, Owens MK (2003). Growth and biomass allocation of shrub and grass seedlings in response to predicted changes in precipitation seasonality. Plant Ecology, 168, 107-120.
DOI URL |
[19] |
Pino J, Sans FX, Masalles RM (2002). Size-dependent reproductive pattern and short-term reproductive cost in Rumex obtusifolius L. Acta Oecologica, 23, 321-328.
DOI URL |
[20] |
Prati D, Schmid B (2000). Genetic differentiation of life-history traits within populations of the clonal plant Ranunculus reptans. Oikos, 90, 442-456.
DOI URL |
[21] |
Reekie E (1998). An explanation for size-dependent reproductive allocation in Plantago major. Canadian Journal of Botany, 76, 43-50.
DOI URL |
[22] | Roels B, Donders S, Werger M, Dong M (2001). Relation of wind-induced sand displacement to plant biomass and plant sand-binding capacity. Acta Botanica Sinica (植物学报), 43, 979-982. |
[23] |
Ronsheim M, Bever J (2000). Genetic variation and evolutionary trade-offs for sexual and asexual reproductive modes in Allium vineale. American Journal of Botany, 87, 1769-1777.
URL PMID |
[24] |
Sakai S (1995). Optimal resource allocation to vegetative and sexual reproduction of a plant growing in a spatially varying environment. Journal of Theory Biology, 175, 271-282.
DOI URL |
[25] |
Sato T (2002). Size-dependent resource allocation among vegetative propagules and male and female functions in the forest herb Laportea bulbifera. Oikos, 96, 453-462.
DOI URL |
[26] |
Schwinning S, Starr BI, Ehleringer JR (2003). Dominant cold desert plants do not partition warm season precipitation by event size. Oecologia, 136, 252-260.
DOI URL PMID |
[27] |
Schwinning S, Starr BI, Ehleringer JR (2005). Summer and winter drought in a cold desert ecosystem (Colorado Plateau) part Ⅱ. effects on plant carbon assimilation and growth. Journal of Arid Environments, 61, 61-78.
DOI URL |
[28] | Shen WS (沈渭寿) (1998). Distribution patterns of three main air-seedling plant populations in Mu Us sandy land. Journal of Desert Research (中国沙漠), 18, 372-378. (in Chinese with English abstract) |
[29] | Sokal RR, Rohlf EJ (1995). Biometry. Freeman, San Francisco, CA. 887. |
[30] |
Takada T, Nakajima H (1996). The optimal allocation for seed reproduction and vegetative reproduction in perennial plants: an application to the density-dependent transition matrix model. Journal of Theory Biology, 182, 179-191.
DOI URL |
[31] |
Winkler E, Støcklin J (2002). Sexual and vegetative reproduction of Hieracium pilosella L. under competition and disturbance: a grid-based simulation model. Annals of Botany, 89, 525-536.
DOI URL PMID |
[32] | Xiao S (肖洒), Wang G (王刚), Li L (李良) (2003). Adjustment of Artemisia ordosica and Hedysarum laeve's allometric pattern and individual size to the intra-specific competition in Mu us sandland. Journal of Desert Research (中国沙漠), 23, 67-72. (in Chinese with English abstract) |
[33] | Zhang CY (张称意), Yang C (杨持), Dong M (董鸣) (2001). The clonal integration of photosynthates in the rhizomatous half shrub Hedysarum laeve. Acta Ecologica Sinica (生态学报), 21, 1986-1993. (in Chinese with English abstract) |
[34] | Zhang CY (张称意), Yu FH (于飞海), Dong M (董鸣) (2002). Effects of sand burial on the survival, growth and biomass allocation in semi-shrub Hedysarum laeve seedlings. Acta Botanica Sinica (植物学报), 44, 337-343. |
[35] | Zhang XS (张新时) (1994). Principles and optimal models for development of Maowusu Sandy Grassland. Acta Phytoecologica Sinica (植物生态学报). 18, 1-16. (in Chinese with English abstract) |
[36] | Zhong ZC (钟章成) (1995). The reproductive strategy of plant population. Chinese Journal of Ecology (生态学杂志), 14, 37-42. (in Chinese with English abstract) |
[1] | 许泽海 赵燕东. 生长季五角枫茎干水分含量序列特征及其影响因素解译[J]. 植物生态学报, 2024, 48(预发表): 0-0. |
[2] | 张文瑾 佘维维 秦树高 乔艳桂 张宇清. 氮和水分添加对黑沙蒿群落优势植物叶片氮磷化学计量特征的影响[J]. 植物生态学报, 2024, 48(5): 590-600. |
[3] | 梁逸娴, 王传宽, 臧妙涵, 上官虹玉, 刘逸潇, 全先奎. 落叶松径向生长和生物量分配对气候变暖的响应[J]. 植物生态学报, 2024, 48(4): 459-468. |
[4] | 韩大勇, 李海燕, 张维, 杨允菲. 松嫩草地全叶马兰种群分株养分的季节运转及衰老过程[J]. 植物生态学报, 2024, 48(2): 192-200. |
[5] | 耿雪琪, 唐亚坤, 王丽娜, 邓旭, 张泽凌, 周莹. 氮添加增加中国陆生植物生物量并降低其氮利用效率[J]. 植物生态学报, 2024, 48(2): 147-157. |
[6] | 祖姆热提•于苏甫江, 董正武, 成鹏, 叶茂, 刘隋赟昊, 李生宇, 赵晓英. 多枝柽柳水分利用策略对沙堆堆积过程的响应[J]. 植物生态学报, 2024, 48(1): 113-126. |
[7] | 李伟斌, 张红霞, 张玉书, 陈妮娜. 昼夜不对称增温对长白山阔叶红松林碳汇能力的影响[J]. 植物生态学报, 2023, 47(9): 1225-1233. |
[8] | 苏炜, 陈平, 吴婷, 刘岳, 宋雨婷, 刘旭军, 刘菊秀. 氮添加与干季延长对降香黄檀幼苗非结构性碳水化合物、养分与生物量的影响[J]. 植物生态学报, 2023, 47(8): 1094-1104. |
[9] | 张慧玲, 张耀艺, 彭清清, 杨静, 倪祥银, 吴福忠. 中亚热带同质园不同生活型树种微量元素重吸收效率的差异[J]. 植物生态学报, 2023, 47(7): 978-987. |
[10] | 张敏, 桑英, 宋金凤. 水培富贵竹的根压及其影响因素[J]. 植物生态学报, 2023, 47(7): 1010-1019. |
[11] | 冉松松, 余再鹏, 万晓华, 傅彦榕, 邹秉章, 王思荣, 黄志群. 邻域树种多样性对杉木叶片氮磷生态化学计量比的影响[J]. 植物生态学报, 2023, 47(7): 932-942. |
[12] | 胡昭佚, 陈天松, 赵丽, 许培轩, 吴正江, 董李勤, 张昆. 水位下降对若尔盖高寒草本沼泽木里薹草氮磷重吸收的影响[J]. 植物生态学报, 2023, 47(6): 847-855. |
[13] | 仲琦, 李曾燕, 马炜, 况雨潇, 邱岭军, 黎蕴洁, 涂利华. 氮添加和凋落物处理对华西雨屏区常绿阔叶林凋落叶分解的影响[J]. 植物生态学报, 2023, 47(5): 629-643. |
[14] | 赵小宁, 田晓楠, 李新, 李广德, 郭有正, 贾黎明, 段劼, 席本野. Granier原始公式计算树干液流速率的适用性分析——以毛白杨为例[J]. 植物生态学报, 2023, 47(3): 404-417. |
[15] | 何茜, 冯秋红, 张佩佩, 杨涵, 邓少军, 孙小平, 尹华军. 基于叶片和土壤酶化学计量的川西亚高山岷江冷杉林养分限制海拔变化规律[J]. 植物生态学报, 2023, 47(12): 1646-1657. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||
Copyright © 2022 版权所有 《植物生态学报》编辑部
地址: 北京香山南辛村20号, 邮编: 100093
Tel.: 010-62836134, 62836138; Fax: 010-82599431; E-mail: apes@ibcas.ac.cn, cjpe@ibcas.ac.cn
备案号: 京ICP备16067583号-19