Literature DB >> 32367649

High-throughput phenotyping accelerates the dissection of the dynamic genetic architecture of plant growth and yield improvement in rapeseed.

Haitao Li1,2, Hui Feng1, Chaocheng Guo1, Shanjing Yang1, Wan Huang1, Xiong Xiong3, Jianxiao Liu1, Guoxing Chen1, Qian Liu3, Lizhong Xiong1, Kede Liu1, Wanneng Yang1.   

Abstract

Rapeseed is the second most important oil crop species and is widely cultivated worldwide. However, overcoming the "phenotyping bottleneck" has remained a significant challenge. A clear goal of high-throughput phenotyping is to bridge the gap between genomics and phenomics. In addition, it is important to explore the dynamic genetic architecture underlying rapeseed plant growth and its contribution to final yield. In this work, a high-throughput phenotyping facility was used to dynamically screen a rapeseed intervarietal substitution line population during two growing seasons. We developed an automatic image analysis pipeline to quantify 43 dynamic traits across multiple developmental stages, with 12 time points. The time-resolved i-traits could be extracted to reflect shoot growth and predict the final yield of rapeseed. Broad phenotypic variation and high heritability were observed for these i-traits across all developmental stages. A total of 337 and 599 QTLs were identified, with 33.5% and 36.1% consistent QTLs for each trait across all 12 time points in the two growing seasons, respectively. Moreover, the QTLs responsible for yield indicators colocalized with those of final yield, potentially providing a new mechanism of yield regulation. Our results indicate that high-throughput phenotyping can provide novel insights into the dynamic genetic architecture of rapeseed growth and final yield, which would be useful for future genetic improvements in rapeseed. This article is protected by copyright. All rights reserved.

Entities:  

Keywords:  High-throughput phenotyping; dynamic genetic architecture; i-trait; quantitative trait loci; rapeseed; yield

Year:  2020        PMID: 32367649     DOI: 10.1111/pbi.13396

Source DB:  PubMed          Journal:  Plant Biotechnol J        ISSN: 1467-7644            Impact factor:   9.803


  6 in total

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  6 in total

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