Unverified paper record
Optical topometry and machine learning to rapidly phenotype stomatal patterning traits for QTL mapping in maize
bioRxiv · 12 Oct 2020 · 10.1101/2020.10.09.333880
Abstract
Stomata are adjustable pores on leaf surfaces that regulate the trade-off of CO2 uptake with water vapor loss, thus having critical roles in controlling photosynthetic carbon gain and plant water use. The lack of easy, rapid methods for phenotyping epidermal cell traits have limited the use of quantitative, forward and reverse genetics to discover the genetic basis of stomatal patterning. A new high-throughput epidermal cell phenotyping pipeline is presented here and used for quantitative trait loci (QTL) mapping in field-grown maize. The locations and sizes of stomatal complexes and pavement cells on images acquired by an optical topometer from mature leaves were automatically determined. Computer estimated stomatal complex density (SCD; R2 = 0.97) and stomatal complex area (SCA; R2 = 0.71) were strongly correlated with human measurements. Leaf gas exchange traits correlated with the dimensions and proportion of stomatal complexes but, unexpectedly, did not correlate with SCD. Genetic variation in epidermal traits were consistent across two field seasons. Out of 143 QTLs in total, 36 QTLs were consistently identified for a given trait in both years. 24 hotspots of overlapping QTLs for multiple traits were identified. Orthologs of genes known to regulate stomatal patterning in Arabidopsis were located within some, but not all, of these regions. This study demonstrates how discovery of the genetic basis for stomatal patterning can be accelerated in maize, a model for C4 species where these processes are poorly understood. One sentence summaryOptical topometry and machine learning tools were developed to assess epidermal cell patterning, and applied to analyze its genetic architecture alongside leaf photosynthetic gas exchange in maize.
Plant phenotyping relevance
光学トポメトリーと機械学習による葉表皮細胞形質の高速・高スループット取得法を開発し、ヒト測定との検証およびQTL解析への実質的応用を行っているため、植物フェノタイピング手法が中心である。
abstractA new high-throughput epidermal cell phenotyping pipeline is presented here and used for quantitative trait loci (QTL) mapping in field-grown maize.
abstractThe locations and sizes of stomatal complexes and pavement cells on images acquired by an optical topometer from mature leaves were automatically determined.
abstractComputer estimated stomatal complex density (SCD; R2 = 0.97) and stomatal complex area (SCA; R2 = 0.71) were strongly correlated with human measurements.
Code and data availability
The supplied blocks describe the OT imaging and Mask R-CNN phenotyping pipeline and QTL analysis, but contain no availability statement, deposit, or public URL for the paper's phenotype datasets, OT images, trained Mask R-CNN model, or analysis code. The only DOI mentioned (10.13012/J8MW2F2Q) is the Illinois Climate_Ne
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