globalchange  > 过去全球变化的重建
DOI: 10.1016/j.plantsci.2018.06.017
WOS记录号: WOS:000466829900006
论文题名:
Review: High-throughput phenotyping to enhance the use of crop genetic resources
作者: Rebetzke, G. J.1; Jimenez-Berni, J.2,4; Fischer, R. A.1; Deery, D. M.1; Smith, D. J.3
通讯作者: Rebetzke, G. J.
刊名: PLANT SCIENCE
ISSN: 0168-9452
出版年: 2019
卷: 282, 页码:40-48
语种: 英语
英文关键词: LiDAR ; Genomic selection ; Breeding ; Selection ; Canopy temperature ; Biomass
WOS关键词: QUANTITATIVE TRAIT LOCI ; WHEAT YIELD PROGRESS ; WILD RELATIVES ; GRAIN-YIELD ; BREAD WHEAT ; CANOPY TEMPERATURE ; STOMATAL CONDUCTANCE ; VEGETATION INDEXES ; WATER-USE ; RESISTANCE
WOS学科分类: Biochemistry & Molecular Biology ; Plant Sciences
WOS研究方向: Biochemistry & Molecular Biology ; Plant Sciences
英文摘要:

Improved genetic, genomic and statistical technologies have increased the capacity to enrich breeding populations for key alleles underpinning adaptation and continued genetic gain. In turn, directed genomic selection together with increased heritability will reduce genetic variance to narrow the genetic base in many crop breeding programs. Diverse genetic resources (GR), including wild and weedy relatives, landraces and reconstituted synthetics, have potential to contribute novel alleles for key traits. Targeted trait identification may also identify genetic diversity in addressing new challenges including the need for modified root architecture, greater nutrient-use efficiency, and adaptation to warmer air and soil temperatures forecast with climate change. Yet while core collections and other GR sources have historically been invaluable for major gene control of disease and subsoil constraints, the mining of genetically (and phenotypically) complex traits in GR remains a significant challenge owing to reduced fertility, limited seed quantities and poor adaptation through linkage drag with undesirable alleles. High-throughput field phenomics (HTFP) offers the opportunity to capture phenotypically complex variation underpinning adaptation in traditional phenotypic selection or statistics-based breeding programs. Targeted HTFP will permit the reliable phenotyping of greater numbers of GR-derived breeding lines using smaller plot sizes and at earlier stages of population development to reduce the duration of breeding cycles and the loss of potentially important alleles with linkage drag. Two key opportunities are highlighted for use of HTFP in selection among GR-derived wheat breeding lines for greater biomass and stomatal conductance through canopy temperature.


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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/137165
Appears in Collections:过去全球变化的重建

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作者单位: 1.CSIRO Agr & Food, POB 1700, Canberra, ACT 2601, Australia
2.CSIRO Agr & Food, High Resolut Plant Phen Ctr, POB 1700, Canberra, ACT 2601, Australia
3.CSIRO Agr & Food, Yanco, NSW 2073, Australia
4.CSIC, IAS, Cordoba, Spain

Recommended Citation:
Rebetzke, G. J.,Jimenez-Berni, J.,Fischer, R. A.,et al. Review: High-throughput phenotyping to enhance the use of crop genetic resources[J]. PLANT SCIENCE,2019-01-01,282:40-48
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