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Corn360:一种玉米粒定量方法。

Corn360: a method for quantification of corn kernels.

作者信息

Gillette Samantha, Yin Lu, Kianian Penny M A, Pawlowski Wojciech P, Chen Changbin

机构信息

School of Life Sciences, Arizona State University, Tempe, AZ, 85287, USA.

PepsiCo Inc., 210 Borlaug Hall, 1991 Upper Buford Circle, St. Paul, MN, 55108, USA.

出版信息

Plant Methods. 2023 Mar 9;19(1):23. doi: 10.1186/s13007-023-00995-2.

Abstract

BACKGROUND

The rapidly advancing corn breeding field calls for high-throughput methods to phenotype corn kernel traits to estimate yield and to study their genetic inheritance. Most of the existing methods are reliant on sophisticated setup, expertise in statistical models and programming skills for image capturing and analysis.

RESULTS

We demonstrated a portable, easily accessible, affordable, panoramic imaging capturing system called Corn360, followed by image analysis using freely available software, to characterize total kernel count and different patterned kernel counts of a corn ear. The software we used did not require programming skills and utilized Artificial Intelligence to train a model and to segment the images of mixed patterned corn ears. For homogeneously patterned corn ears, our results showed accuracies of 93.7% of total kernel count compared to manual counting. Our method allowed to save an average of 3 min 40 s per image. For mixed patterned corn ears, our results showed accuracies of 84.8% or 61.8% of segmented kernel counts. Our method has the potential to greatly decrease counting time per image as the number of images increases. We also demonstrated a case of using Corn360 to count different categories of kernels on a mixed patterned corn ear resulting from a cross of sweet corn and sticky corn and showed that starch:sweet:sticky segregated in a 9:4:3 ratio in its F2 population.

CONCLUSIONS

The panoramic Corn360 approach enables for a portable low-cost high-throughput kernel quantification. This includes total kernel quantification and quantification of different patterned kernels. This can allow for quick estimate of yield component and for categorization of different patterned kernels to study the inheritance of genes controlling color and texture. We demonstrated that using the samples resulting from a sweet × sticky cross, the starchiness, sweetness and stickiness in this case were controlled by two genes with epistatic effects. Our achieved results indicate Corn360 can be used to effectively quantify corn kernels in a portable and cost-efficient way that is easily accessible with or without programming skills.

摘要

背景

玉米育种领域的快速发展需要高通量方法来对玉米籽粒性状进行表型分析,以估计产量并研究其遗传遗传。现有的大多数方法都依赖于复杂的设置、统计模型方面的专业知识以及图像采集和分析的编程技能。

结果

我们展示了一种名为Corn360的便携式、易于使用、价格实惠的全景成像采集系统,随后使用免费软件进行图像分析,以表征玉米穗的总籽粒数和不同图案的籽粒数。我们使用的软件不需要编程技能,并利用人工智能训练模型并分割混合图案玉米穗的图像。对于图案均匀的玉米穗,我们的结果表明,与人工计数相比,总籽粒数的准确率为93.7%。我们的方法平均每张图像可节省3分40秒。对于混合图案的玉米穗,我们的结果表明,分割后的籽粒数准确率为84.8%或61.8%。随着图像数量的增加,我们的方法有可能大大减少每张图像的计数时间。我们还展示了一个使用Corn360对甜玉米和糯玉米杂交产生的混合图案玉米穗上不同类别的籽粒进行计数的案例,并表明淀粉:甜:糯在其F2群体中的分离比例为9:4:3。

结论

全景Corn360方法能够实现便携式低成本高通量籽粒定量。这包括总籽粒定量和不同图案籽粒的定量。这可以快速估计产量构成要素,并对不同图案的籽粒进行分类,以研究控制颜色和质地的基因的遗传。我们证明,使用甜×糯杂交产生的样本,在这种情况下,淀粉性、甜味和粘性由两个具有上位效应的基因控制。我们取得的结果表明,Corn360可以以便携式且经济高效的方式有效地对玉米粒进行定量,无论有无编程技能都易于使用。

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