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1.西北大学 西部资源生物及现代生物技术教育部重点实验室,陕西 西安 710069
2.陕西省西安植物园 陕西省植物资源保护与利用工程技术研究中心,陕西 西安 710061
权佳馨,女,博士,讲师,从事克隆植物生态学和植物表观遗传学研究,jiaxinquan007@163.com。
岳明,男,博士,教授,博士生导师,从事植被生态学及植物生理生态学研究,yueming@nwu.edu.cn。
纸质出版日期:2024-10-25,
收稿日期:2024-08-01,
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权佳馨, 刘晓, 岳明. 克隆植物生境选择研究进展[J]. 西北大学学报(自然科学版), 2024,54(5):847-857.
QUAN Jiaxin, LIU Xiao, YUE Ming. Advances in clonal plant habitat selection research[J]. Journal of Northwest University (Natural Science Edition), 2024,54(5):847-857.
权佳馨, 刘晓, 岳明. 克隆植物生境选择研究进展[J]. 西北大学学报(自然科学版), 2024,54(5):847-857. DOI: 10.16152/j.cnki.xdxbzr.2024-05-007.
QUAN Jiaxin, LIU Xiao, YUE Ming. Advances in clonal plant habitat selection research[J]. Journal of Northwest University (Natural Science Edition), 2024,54(5):847-857. DOI: 10.16152/j.cnki.xdxbzr.2024-05-007.
自然环境中的资源通常呈现出异质性分布模式。克隆植物在应对不均匀分布的资源时,能够有选择地放置其新生分株来实现对新生境的占领,以此提高整个基株的适应能力和竞争力,从而有效地利用斑块状分布的资源。此外,克隆植物在维持群落生产力和稳定性方面也发挥着关键作用。近年来,对异质性资源环境中克隆植物的生境选择研究备受关注。在介绍生境选择和觅食行为的基础上,从克隆植物养分吸收结构的选择性放置、生长构型和生物量分配模式3方面阐述了克隆植物生境选择行为的表现和方式,并从克隆植物如何感知周围环境信息、克隆整合是否影响植物生境选择以及表观遗传记忆对生境选择行为的调控等方面,对相关领域主要的研究进行综述和探讨,并提出了克隆植物生境选择研究中值得关注的方向,希望能够为深入理解植物的生境选择行为提供一个新的视角。
In natural ecosystems
the essential resources usually exhibit heterogeneous distribution pattern. Clonal plants can effectively utilize the patchy distribution of resources by selectively placing their new offspring ramets to occupy new habitats
thereby enhancing the adaptability of the entire clone and consequently increasing its competitiveness. Additionally
clonal plants are crucial in maintaining community productivity and stability. Therefore
in recent years
researchers have paid a lot of attention to studies on habitat selection by clonal plants in heterogeneous resource environments. This review
building upon the fundamentals of habitat selection and foraging behavior
elaborates on the performance and patterns of clonal plant habitat selection from three perspectives: The selective placement of nutrient-absorbing structures
growth patterns
and biomass allocation. The review encompasses recent studies in the field
addressing how clonal plants perceive environmental information
the mechanisms through which clonal integration influences plant habitat selection
and the regulation of habitat selection behavior by epigenetic memory. Also
explores and suggests promising directions for further research in clonal plant habitat selection
aiming to provide a new perspective for a comprehensive understanding of plant habitat selection behavior.
觅食行为生境选择资源异质性表型可塑性
foraging behaviourhabitat selectionresource heterogeneityphenotypic plasticity
葛小芳, 孟凡露, 王朋, 等. 大兴安岭驯鹿(Rangifer tarandus)的春季生境选择[J]. 生态学报, 2015, 35(15): 5000-5008.
GE X F, MENG F L, WANG P, et al. The spring habitat selection of reindeer (Rangifer tarandus) in Great Xing’anling of China[J]. Acta Ecologica Sinica, 2015, 35(15): 5000-5008.
BRAY R H. A nutrient mobility concept of soil-plant relationships [J]. Soil Science, 1954, 78(1): 9-22.
SLADE A J, HUTCHINGS M J. The effects of light intensity on foraging in the clonal herb Glechoma hederacea[J]. The Journal of Ecology, 1987, 75(3): 639-650.
DE KROON H, HUTCHINGS M J. Morphological plasticity in clonal plants: The foraging concept reconsidered[J]. The Journal of Ecology, 1995, 83(1): 143-152.
HUTCHINGS M J, DE KROON H. Foraging in plants: The role of morphological plasticity in resource acquisition[J]. Advances in Ecological Research, 1994, 25: 159-238.
董鸣. 资源异质性环境中的植物克隆生长:觅食行为[J]. 植物学报, 1996, 38(10): 828-835.
DONG M. Clonal growth in plants in relation to resource heterogeneity: Foraging behavior[J]. Acta Botanica Sinica, 1996, 38(10): 828-835.
王艳红, 王珂, 邢福. 匍匐茎草本植物形态可塑性、整合作用与觅食行为研究进展[J]. 生态学杂志, 2005, 24(1): 70-74.
WANG Y H, WANG K, XING F. Advances of studies on the morphological plasticity, integration and foraging behavior of stoloniferous herbaceous plants[J]. Chinese Journal of Ecology, 2005, 24(1): 70-74.
HUTCHINGS M J, WIJESINGHE D K. Patchy habitats, division of labour and growth dividends in clonal plants[J]. Trends in Ecology and Evolution, 1997, 12: 390-394.
权佳馨. 亲本环境对克隆植物生境选择策略的影响及表观遗传记忆的调控效应[D]. 西安: 西北大学, 2021.
GARCÍA-PALACIOS P, MAESTRE FT, BARDGETT RD, et al. Plant responses to soil heterogeneity and global environmental change[J]. Journal of Ecology, 2012, 100(6): 1303-1314.
XUE W, HUANG L, YU F H, et al. Intraspecific aggregation and soil heterogeneity: Competitive interactions of two clonal plants with contrasting spatial architecture[J]. Plant and Soil, 2018, 425(1/2): 231-240.
OBORNY B, HUBAI G. Patch size and distance: Modelling habitat structure from the perspective of clonal growth[J]. Annals of Botany, 2014, 114(2): 389-398.
WANG Y J, SHI X P, MENG X F, et al. Effects of spatial patch arrangement and scale of covarying resources on growth and intraspecific competition of a clonal plant[J]. Frontiers in Plant Science, 2016, 7: 753.
WANG T, LI X, LIU C H, et al. The compromising foraging of a clonal submerged plant in variable environments of substrate type and light condition: A simulation study[J]. Journal of Plant Ecology, 2017, 10(3): 538-545.
GRIME J P. The role of plasticity in exploiting environmental heterogeneity [M]//Exploitation of Environmental Heterogeneity by Plants: Ecophysiological Processes Above and Belowground. San Diego CA: Academic Press, 1994: 1-19.
董鸣. 克隆植物生态学[M]. 北京: 科学出版社, 2011.
SALZMAN A G. Habitat selection in a clonal plant[J]. Science, 1985, 228(4699): 603-605.
宋姗姗. 异质性Pb污染环境中克隆植物生境选择的表观遗传学机制[D]. 西安: 西北大学, 2019.
陈劲松, 董鸣, 于丹, 等. 资源交互斑块性生境中两种不同分枝型匍匐茎植物的克隆内分工[J]. 生态学报, 2004, 24(5): 920-924.
CHEN J S, DONG M, YU D, et al. Intraclonal spatial division of labour in two stoloniferous plants with different branching type in response to reciprocal patchiness of resources[J]. Acta Ecologica Sinica, 2004, 24(5): 920-924.
BAZZAZ F A. Habitat selection in plants[J]. The American Naturalist, 1991, 137: 116-130.
ROILOA S R, RETUERTO R. Development, photosynthetic activity and habitat selection of the clonal plant Fragaria vesca growing in copper-polluted soil[J]. Functional Plant Biology, 2006, 33: 961-971.
ROILOA S R, RETUERTO R. Small-scale heterogeneity in soil quality influences photosynthetic efficiency and habitat selection in a clonal plant[J]. Annals of Botany, 2006, 98(5): 1043-1052.
XIAO K Y, YU D, WANG J W, et al. Habitat selection in spatially heterogeneous environments: A test of foraging behaviour in the clonal submerged macrophyte Vallisneria spiralis[J]. Freshwater Biology, 2006, 51(8): 1552-1559.
彭一可, 罗芳丽, 李红丽, 等. 根状茎型植物扁秆荆三棱对土壤养分异质性尺度和对比度的生长响应[J]. 植物生态学报, 2013, 37(4): 335-343.
PENG Y K, LUO F L, LI H L, et al. Growth responses of a rhizomatous herb Bolboschoenus planiculmis to scale and contrast of soil nutrient heterogeneity[J]. Journal of Plant Ecology, 2013, 37(4): 335-343.
LI Y, CHEN J S, XUE G, et al. Effect of clonal integration on nitrogen cycling in rhizosphere of rhizomatous clonal plant, Phyllostachys bissetii, under heterogeneous light[J]. Science of the Total Environment, 2018, 628: 594-602.
SUTHERLAND W J, STILLMAN R A. The foraging tactics of plants[J]. Oikos, 1988, 52(3): 239-244.
张盟, 李磊, 柳佳莹, 等. 不同林冠环境下竹类植物表型可塑性研究进展[J]. 世界林业研究, 2022, 35(1): 21-25.
ZHANG M, LI L, LIU J Y, et al. Research progress on phenotypic plasticity of bamboo in different forest canopy conditions[J]. World Forestry Research, 2022, 35(1): 21-25.
EVANS J P, CAIN M L. A spatially explicit test of foraging behavior in a clonal plant[J]. Ecology, 1996, 76: 1147-1155.
YE X H, GAO S Q, LIU Z L, et al. Multiple adaptations to light and nutrient heterogeneity in the clonal plant Leymus secalinus with a combined growth form[J]. Flora, 2015, 213: 49-56.
WIJESINGHE D K, HUTCHINGS M J. The effects of environmental heterogeneity on the performance of Glechoma hederacea: The interactions between patch contrast and patch scale[J]. Journal of Ecology, 1999, 87(5): 860-872.
QU L H, LIU J, YANG J Y, et al. Soil saline-alkali heterogeneity is an important factor driving the spatial expansion of clonal plant in grassland[J]. Frontiers in Environmental Science, 2023, 10: 1106825.
QUAN J X, ZHANG X Y, SONG S S, et al. Clonal plant Duchesnea indica focke forms an effective survival strategy in different degrees of Pb-contaminated environments[J]. Plant Ecology, 2018, 219(11): 1315-1327.
MARTÍNKOVÁ J, KLIMEŠ A, KLIMEŠOVÁ J. No evidence for nutrient foraging in root-sprouting clonal plants[J]. Basic & Applied Ecology, 2018, 28: 27-36.
YAN X, WANG H W, WANG Q F, et al. Risk spreading, habitat selection and division of biomass in a submerged clonal plant: Responses to heterogeneous copper pollution[J]. Environmental Pollution, 2013, 174: 114-120.
ROBINSON D. Variation, co-ordination and compensation in root systems in relation to soil variability[J]. Plant and Soil, 1996, 187(1): 57-66.
HENRY H A L, AARSSEN L W. Inter-and intraspecific relationships between shade tolerance and shade avoidance in temperate trees[J]. Oikos, 2001, 93: 477-487.
陈劲松, 董鸣, 于丹, 等. 不同光照条件下聚花过路黄的克隆构型和分株种群特征[J]. 应用生态学报, 2004, 15(8): 1383-1388.
CHEN J S, DONG M, YU D, et al. Clonal architecture and ramet population characteristics of Lysimachia congestiflora growing under different light conditions[J]. Chinese Journal of Applied Ecology, 2004, 15(8): 1383-1388.
冯图, 黎云祥, 杨子松, 等. 不同生境中淫羊藿克隆构型和分株种群特征[J]. 生态科学, 2005, 24(4): 298-303.
FENG T, LI Y X, YANG Z S, et al. Clonal architecture and ramet population characteristics of Epimedium brevicornum in different habitats[J]. Ecologic Science, 2005, 24(4): 298-303.
陈鑫春. 土壤营养斑块对鹅绒委陵菜种群的生境选择与分布格局的影响[D]. 长春: 东北师范大学, 2017.
罗学刚, 董鸣. 蛇莓克隆构型对光照强度的可塑性反应[J]. 植物生态学报, 2001, 25(4): 494-497.
LUO X G, DONG M. Architectural plasticity in response to light intensity in the stoloniferous herb Duchesnea indica Focke[J]. Acta Phytoecology Sinica, 2001, 25(4): 494-497.
廖明隽, 王其兵, 宋明华, 等. 内蒙古锡林河流域不同生境中羊草的克隆构型和分株种群特征[J]. 植物生态学报, 2002, 26(1): 33-38.
LIAO M J, WANG Q B, SONG M H, et al. Clonal architecture and ramet population characteristics of Leymusc hinensis from different habitats in the Xilin river watershed[J]. Acta Phytoecology Sinica, 2002, 26(1): 33-38.
GEREMEW A, STIERS I, SIERENS T, et al. Clonal growth strategy, diversity and structure: A spatiotemporal response to sedimentation in tropical Cyperus papyrus swamps[J]. PLoS One, 2018, 13(1): e0190810.
STOLL P, EGLI P, SCHMID B. Plant foraging and rhizome growth patterns of Solidago altissima in response to mowing and fertilizer application[J]. Journal of Ecology, 1998, 86(2): 341-354.
DE KROON H, SCHIEVING F. Resource allocation patterns as a function of clonal morphology: A general model applied to a foraging clonal plant[J]. The Journal of Ecology, 1991, 79: 519-530.
ALPERT P, MOONEY H A. Resource heterogeneity generated by shrubs and topography on coastal sand dunes[J]. Vegetatio, 1996, 122(1): 83-93.
CAIN M L. Consequences of foraging in clonal plant species[J]. Ecology, 1994, 75(4): 933-944
YU F H, CHEN Y F, DONG M. Clonal integration enhances survival and performance of Potentilla anserina, suffering from partial sand burial on Ordos Plateau, China[J]. Evolutionary Ecology, 2001, 15(4): 303-318.
于飞海, 董鸣, 张称意. 资源异质性环境中三种匍匐茎草本植物克隆内资源共享和分株功能特化(英文)[J]. 植物学报, 2002, 44(4): 468-473.
YU F H, DONG M, ZHANG C Y. Intraclonal resource sharing and functional specialization of ramets in response to resource heterogeneity in three stoloniferous herbs[J]. Acta Botanica Sinica, 2002, 44(4): 468-473.
叶学华, 胡宇坤, 刘志兰, 等. 水分异质性影响两种根茎型克隆植物赖草和假苇拂子茅的水分存储能力[J]. 植物生态学报, 2013, 37(5): 427-435.
YE X H, HU Y K, LIU Z L, et al. Water heterogeneous affects water storage in two rhizomatous clonal plants Leymus secalinus and Calamagrostis pseudophragmites[J]. Journal of Plant Ecology, 2013, 37(5): 427-435.
廖咏梅, 刘富俊, 黎云祥, 等. 异质性生境中匍匐茎草本野草莓(Fragaria vesca)的克隆内资源共享[J]. 生态学杂志, 2010, 29(12): 2390-2394.
LIAO Y M, LIU J F, LI Y X, et al. Intraclonal resources sharing of stolon herb Fragaria vesca in response to heterogeneous habitat[J]. Chinese Journal of Ecology, 2010, 29(12): 2390-2394.
WIJESINGHE D K. Performance of a clonal species in patchy environments: Effects of environmental context on yield at local and whole-plant scales[J]. Ecology and Evolution, 2008, 22: 313-324.
HUTCHINGS M J. The effects of spatial scale of environmental heterogeneity on the growth of a clonal plant: An experimental study with Glechoma hederacea[J]. The Journal of Ecology, 1995, 23(5): 478-480.
权佳馨. 异质性铅污染环境中克隆植物的生境选择策略[D]. 西安: 西北大学, 2018.
ZHANG J, YOU W H, LI N N, et al. Invasive clonal plants possess greater capacity for division of labor than natives in high patch contrast environments[J]. Frontiers in Plant Science, 2023, 14: 1210070.
WANG M Z, BU X Q, LI L, et al. Constraints on the evolution of phenotypic plasticity in the clonal plant Hydrocotyle vulgaris[J]. Journal of Evolutionary Biology, 2018, 31(7): 1006-1007.
FRANSEN B, DE KROON H, BERENDSE F. Soil nutrient heterogeneity alters competition between two perennial grass species[J]. Ecology, 2001, 82(9): 2534-2546.
PENG Y H, NIKLAS K J, SUN S C. Do plants explore habitats before exploiting them? An explicit test using two stoloniferous herbs[J]. Chinese Science Bulletin, 2012, 57(19): 2425-2432.
陈施. 生境异质性对克隆植物白车轴草生长的影响[D]. 南昌: 南昌大学, 2021.
SCHELLNER R A, NEWELL S J, SOLBRIG O T. Studies on the population biology of the genus viola IV. Spatial pattern of ramets and seedlings in three stoloniferous species[J]. The Journal of Ecology, 1982, 70: 273-290.
WATERS E M, SOINI H A, NOVOTNY M V, et al. Volatile organic compounds (VOCs) drive nutrient foraging in the clonal woodland strawberry Fragaria vesca[J]. Plant and Soil, 2016, 407(1/2): 261-274.
ALPERT P. Clonal integration in Fragaria chiloensis, differs between populations: Ramets from grassland are selfish[J]. Oecologia, 1999, 120(1): 69-76.
SAITOH T, SEIWA K, NISHIWAKI A. Importance of physiological integration of dwarf bamboo to persistence in forest understorey: A field experiment[J]. Journal of Ecology, 2002, 90(1): 78-85.
GUERRERO-MOLINA M F, WINIK B C, PEDRAZA R O. More than rhizosphere colonization of strawberry plants by Azospirillum brasilense[J]. Applied Soil Ecology, 2012, 61(5): 205-212.
HARTNETT D C, BAZZAZ F A. Physiological integration among intra clonal ramets in Solidago Canadensis[J]. Ecology, 1983, 64(4): 779-788.
LOUǍPRE P, BITTEBIÈRE A K, CLÉMENT B, et al. How past and present influence the foraging of clonal plants? [J]. PLoS One, 2012, 7(6): e38288.
XIAO Y, TANG J B, QING H, et al. Clonal integration enhances flood tolerance of Spartina alterniflora daughter ramets[J]. Aquatic Botany, 2010, 92: 9-13.
LUO F L, CHEN Y, HUANG L, et al. Shifting effects of physiological integration on performance of a clonal plant during submergence and desubmergence[J]. Annals of Botany, 2014, 113: 1265-1274.
LIN H F, ALPERT P, ZHANG Q, et al. Facilitation of amphibious habit by physiological integration in the clonal, perennial, climbing herb Ipomoea aquatica[J]. Science of the Total Environment, 2018, 618: 262-268.
ZHANG J, LI N N, SONG A, et al. Clonal integration can promote the growth and spread of Alternanthera philoxeroides in cadmium-contaminated environments[J]. Plant Physiology and Biochemistry, 2023, 202: 107966.
WANG J V, XU T T, WANG Y, et al. A meta-analysis of effects of physiological integration in clonal plants under homogeneous vs. heterogeneous environments[J]. Functional Ecology, 2021, 35(3): 578-589.
DONG M, DURING H J, WERGER M J A. Root and shoot plasticity of the stoloniferous herb Ajuga reptans L. planted in a heterogeneous environment[J]. Flora, 2002, 197(1): 37-46.
WANG J Y, ABDULLAH I, XU T T, et al. Effects of mowing disturbance and competition on spatial expansion of the clonal plant Leymus chinensis into saline-alkali soil patches[J]. Environmental and Experimental Botany, 2019, 168: 103890.
ALPERT P, MOONEY H A. Resource sharing among ramets in the clonal herb Fragaria chiloensis[J]. Oecologia, 1986, 70(2): 227-233.
WANG N, YU F H, LI P X, et al. Clonal integration affects growth, photosynthetic efficiency and biomass allocation, but not the competitive ability, of the alien invasive Alternanthera philoxeroides under severe stress[J]. Annals of Botany, 2008, 101(5): 671-678.
ROILOA S R, RETUERTO R. Small-scale heterogeneity insoil quality influences photosynthetic efficiency and habitat selection in a clonal plant[J]. Annals of Botany, 2006, 98(5): 1043-1052.
CAO X X, XUE W, LEI N F, et al. Effects of clonal integration on foraging behavior of three clonal plants in heterogeneous soil environments[J]. Forests, 2022, 13(5): 696.
LEI N F, LI J, NI S J, et al. Effects of clonal integration on microbial community composition and processes in the rhizosphere of the stoloniferous herb Glechoma longituba (Nakai) Kuprian[J]. PLoS One, 2014, 9(9): e108259.
CHEN J S, LI J, ZHANG Y, et al. Clonal integration ameliorates the carbon accumulation capacity of a stoloniferous herb, Glechoma longituba, growing in heterogenous light conditions by facilitating nitrogen assimilation in the rhizosphere[J]. Annals of Botany, 2015, 115(1): 127-136.
MA X W, YU W C, TAO M, et al. Clonal integration in Vallisneria natans alters growth and the rhizosphere microbial community of neighboring plants under heterogeneous conditions[J]. Plant and Soil, 2023, 482(1/2), 297-311.
袁庆叶, 安菁, 高俊琴, 等. 芦苇克隆整合对石油污染湿地土壤微生物群落结构和生物量的影响[J]. 生态学报, 2018, 38(1): 215-225.
YUAN Q Y, AN J, GAO J Q, et al. Effects of clonal integration of Phragmites australis on the composition and biomass of soil microbial communities in a wetland contaminated by crude oil[J]. Acta Ecologica Sinica, 2018, 38(1): 215-225.
赵金莉, 贺学礼. 毛乌素沙地克隆植物生长对AM真菌多样性和菌根形成的影响[J]. 生态学报, 2010, 30(5): 1349-1355.
ZHAO J L, HE X L. Effects of the growth of clonal plants on the diversity of AM fungiand mycorrhizal formation in Mu Us sandland[J]. Acta Ecologica Sinica, 2010, 30(5): 1349-1355.
DONG B C, KLEUNEN M V, YU F H. Context-dependent parental effects on clonal offspring performance[J]. Frontiers in Plant Science, 2018, 9: 1824.
HODGE A. The plastic plant: Root responses to heterogeneous supplies of nutrients[J]. New Phytologist, 2004, 162: 9-24.
LATZEL V, GONZÁLEZ A P, ROSENTHAL J. Epigenetic memory as a basis for intelligent behavior in clonal plants[J]. Frontiers in Plant Science, 2016, 7: 1354.
GALLOWAY L F, ETTERSON J R. Transgenerational plasticity is adaptive in the wild[J]. Science, 2007, 318(5853): 1134-1136.
SULTAN S E, BARTON K, WILCZEK A M. Contrasting patterns of transgenerational plasticity in ecologically distinct congeners[J]. Ecology, 2009, 90(7): 1831-1839.
WHITTLE C A, OTTO S P, JOHNSTON M O, et al. Adaptive epigenetic memory of ancestral temperature regime in Arabidopsis thaliana[J]. Botany, 2009, 87(6): 650-657.
LATZEL V, JANECEK Š, DOLEŽAL J, et al. Adaptive transgenerational plasticity in the perennial Plantago lanceolata[J]. Oikos, 2014, 123(1): 41-46.
LATZEL V, KLIMEŠOVŽ J. Transgenerational plasticity in clonal plants[J]. Ecology and Evolution, 2010, 24: 1537-1543.
江静, 钱前, 马伯军, 等. 表观遗传变异及其在作物改良中的应用[J]. 遗传, 2014, 36(5): 469-475.
JIANG J, QIAN Q, MA B J, et al. Epigenetic variation and its application in crop improvement[J]. Hereditas, 2014, 36: 469-475.
GONZÁLEZ A P R, CHRTEK J, DOBREV P I, et al. Stress-induced memory alters growth of clonal offspring of white clover (Trifolium repens) [J]. American Journal of Botany, 2016, 103(9): 1567-1574.
DOUHOVNIKOFF V, DODD R S. Epigenetics: A potential mechanism for clonal plant success[J]. Plant Ecology, 2015, 216(2): 227-282.
BIAN R J, NIE D D, XING F, et al. Adaptational significance of variations in DNA methylation in clonal plant Hierochloe glabra (Poaceae) in heterogeneous habitats[J]. Australian Journal of Botany, 2013, 61(4): 274-282.
GONZÁLEZ A P R, DUMALASOVÁ V, ROSENTHAL J, et al. The role of transgenerational effects in adaptation of clonal offspring of white clover (Trifolium repens) to drought and herbivory[J]. Evolutionary Ecology, 2016, 31(3): 345-361.
GONZÁLEZ A P, PREITE V, VERHOEVEN K J F, et al. Transgenerational effects and epigenetic memory in the clonal plant Trifolium repens[J]. Frontiers in Plant Science, 2018, 9: 1677.
LATZEL V, MÜNZBERGOVÁ Z. Anticipatory behavior of the clonal plant Fragaria vesca[J]. Frontiers in Plant Science, 2018, 9: 1847.
DONG B C, MENG J, YU F H. Effects of parental light environment on growth and morphological responses of clonal offspring[J]. Plant Biology, 2019, 21(6): 1083-1089.
QUAN J X, LATZEL V, TIE D, et al. Ultraviolet B radiation triggers DNA methylation change and affects foraging behavior of the clonal plant Glechoma longituba[J]. Frontiers in Plant Science, 2021, 12: 633982.
铁丹. 母株UV-B环境影响克隆植物的光选择策略[D]. 西安: 西北大学, 2021.
张潇尹. UV-B辐射对克隆植物活血丹生长的影响及其表观遗传学机制[D]. 西安: 西北大学, 2021.
CROFT S A, HODGE A, PITCHFORD J W. Optimal root proliferation strategies: The roles of nutrient heterogeneity, competition and mycorrhizal networks[J]. Plant and Soil, 2012, 351(1): 191-206.
MOMMER L, VISSER E J W, VAN RUIJVEN J, et al. Contrasting root behavior in two grass species: A test of functionality in dynamic heterogeneous conditions[J]. Plant and Soil, 2011, 344(1): 347-360.
LIU X, LI Q, YUE M, et al. Nitric oxide is involved in integration of UV-B absorbing compounds among parts of clonal plants under a heterogeneous UV-B environment[J]. Physiologia Plantarum, 2015, 155(2): 180-191.
CRISP P A, GANGULY D, EICHTEN S R, et al. Reconsidering plant memory: Intersections between stress recovery, RNA turnover, and epigenetics[J]. Science Advances, 2016, 2(2): e1501340.
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