Switchgrass Germplasm Resources

被引:36
|
作者
Casler, Michael D. [1 ]
Vogel, Kenneth P. [2 ]
Harrison, Melanie [3 ]
机构
[1] USDA ARS, US Dairy Forage Res Ctr, Madison, WI 53706 USA
[2] Univ Nebraska, USDA ARS, Dept Agron & Hort, Grain Forage & Bioenergy Res Unit, Lincoln, NE 68583 USA
[3] USDA ARS, Plant Genet Resources Conservat Unit, Griffin, GA 30223 USA
关键词
X ENVIRONMENT INTERACTIONS; PLANT ADAPTATION REGIONS; GENETIC DIVERSITY; BIOMASS YIELD; ECOTYPIC VARIATION; CHLOROPLAST DNA; POPULATIONS; LOWLAND; UPLAND; SEED;
D O I
10.2135/cropsci2015.02.0076
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Switchgrass (Panicum virgatum L.) is an important native grass and dominant member of the tallgrass prairie ecosystem. It is used for conservation, restoration, livestock feed production, and bioenergy feedstock production. The purpose of this review is to describe the biological and geographical basis for switchgrass germplasm diversity and to provide a resource for scientists and outreach personnel to find switchgrass germplasm to meet their needs. Upland and lowland ecotypes represent the most important polymorphism in switchgrass, with distinct but overlapping geographic distributions. Variation in ploidy exists within both ecotypes, with 2n = 4x = 36 the dominant ploidy in the lowland ecotype and 2n = 8x = 72 the dominant ploidy in the upland ecotype. Ploidy is a strong barrier to gene flow, but ecotype is a weak barrier, with up to 10% of random individuals demonstrating some evidence for upland-lowland hybridization in their ancestry. Latitudinal and, to a lesser extent, longitudinal differentiation exists within each ecotype, such that most wild populations and cultivars are not well adapted more than one hardiness zone from their place of origin. Plant breeding can alter this relationship by creating populations with improved cold tolerance, for example, increasing the adaptation range of an individual cultivar. The USDA National Plant Germplasm System maintains the national switchgrass collection, which is available for research and breeding purposes.
引用
收藏
页码:2463 / 2478
页数:16
相关论文
共 50 条
  • [21] Status of the Global Cotton Germplasm Resources
    Campbell, B. T.
    Saha, S.
    Percy, R.
    Frelichowski, J.
    Jenkins, J. N.
    Park, W.
    Mayee, C. D.
    Gotmare, V.
    Dessauw, D.
    Giband, M.
    Du, X.
    Jia, Y.
    Constable, G.
    Dillon, S.
    Abdurakhmonov, I. Y.
    Abdukarimov, A.
    Rizaeva, S. M.
    Adullaev, A.
    Barroso, P. A. V.
    Padua, J. G.
    Hoffmann, L. V.
    Podolnaya, L.
    CROP SCIENCE, 2010, 50 (04) : 1161 - 1179
  • [22] Cotton Germplasm: Resources and Tools for Characterization
    A.Ed.PERCIVAL
    Russell J.KOHEL
    John Z.YU
    棉花学报, 2002, (S1) : 82 - 82
  • [23] Germplasm Resources and Production of Jujube in China
    Liu, M. J.
    Zhao, Z. H.
    I INTERNATIONAL JUJUBE SYMPOSIUM, 2009, 840 : 25 - 31
  • [24] EVALUATION OF CULTIVATED TOMATO GERMPLASM RESOURCES
    Wang, Yuting
    Li, Wenzhen
    Lu, Chen
    Fan, Shaozhu
    Fu, Chaobin
    Chen, Mingsuo
    Zhao, Lingxia
    PAKISTAN JOURNAL OF BOTANY, 2017, 49 (05) : 1857 - 1865
  • [25] RAPD analysis on the germplasm resources of sunflower
    Liu, J
    Mo, JS
    Liu, GS
    Qi, DM
    Li, FF
    ACTA BOTANICA SINICA, 2001, 43 (02): : 151 - 157
  • [26] The Germplasm Resources and Utilization of Longan in Quanzhou
    Lin, W. Z.
    Zheng, J. S.
    Zhuang, W. D.
    III INTERNATIONAL SYMPOSIUM ON LONGAN, LYCHEE, AND OTHER FRUIT TREES IN SAPINDACEAE FAMILY, 2010, 863 : 207 - 212
  • [27] Chinese persimmon germplasm resources.
    Wang, RZ
    Yang, Y
    Li, GC
    FIRST INTERNATIONAL PERSIMMON SYMPOSIUM, 1997, (436): : 43 - 50
  • [29] Informational resources on potato germplasm collections
    Afonnikov, D. A.
    Totsky, I., V
    Stasevski, Z.
    VAVILOVSKII ZHURNAL GENETIKI I SELEKTSII, 2018, 22 (01): : 115 - 121
  • [30] Evaluation of Germplasm Resources of HERBA TAXILLI
    Hehuan PEI
    Minghui ZHAO
    Kaixin ZHU
    Benwei SU
    Jing LI
    Yonghua LI
    Medicinal Plant, 2015, (Z2) : 38 - 40