Seasonal pigment fluctuation in diploid and polyploid Arabidopsis revealed by machine learning-based phenotyping method PlantServation

Author:

Akiyama ReikoORCID,Goto Takao,Tameshige ToshiakiORCID,Sugisaka Jiro,Kuroki KenORCID,Sun JianqiangORCID,Akita Junichi,Hatakeyama Masaomi,Kudoh HiroshiORCID,Kenta Tanaka,Tonouchi Aya,Shimahara Yuki,Sese JunORCID,Kutsuna Natsumaro,Shimizu-Inatsugi RieORCID,Shimizu Kentaro K.ORCID

Abstract

AbstractLong-term field monitoring of leaf pigment content is informative for understanding plant responses to environments distinct from regulated chambers but is impractical by conventional destructive measurements. We developed PlantServation, a method incorporating robust image-acquisition hardware and deep learning-based software that extracts leaf color by detecting plant individuals automatically. As a case study, we applied PlantServation to examine environmental and genotypic effects on the pigment anthocyanin content estimated from leaf color. We processed >4 million images of small individuals of four Arabidopsis species in the field, where the plant shape, color, and background vary over months. Past radiation, coldness, and precipitation significantly affected the anthocyanin content. The synthetic allopolyploid A. kamchatica recapitulated the fluctuations of natural polyploids by integrating diploid responses. The data support a long-standing hypothesis stating that allopolyploids can inherit and combine the traits of progenitors. PlantServation facilitates the study of plant responses to complex environments termed “in natura”.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

MEXT | Japan Society for the Promotion of Science

Universität Zürich

MEXT | Japan Science and Technology Agency

Kyoto University

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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