Research Article | Open Access
Volume 2025 |Article ID 100102 | https://doi.org/10.1016/j.plaphe.2025.100102

Development of an automated phenotyping platform and identification of a novel QTL for drought tolerance in soybean

Hakyung Kwon,1,2 Suk-Ha Lee,1,2 Moon Young Kim,1,2 Jungmin Ha 1,2

1Department of Agriculture, Forestry Andre Bioresources and Research Institute of Agriculture and Life Sciences, Seoul National University, Seoul, 08826, Republic of Korea
2Plant Genomics and Breeding Institute, Seoul National University, Seoul, 08826, Republic of Korea

Received 
29 Dec 2024
Accepted 
06 Sep 2025
Published
07 Sep 2025

Abstract

Deep understanding of slow-wilting is essential for developing drought-tolerant crops. Existing approaches to measure transpiration rates are difficult to apply to large populations due to their high cost and low throughput. To overcome these challenges, we developed a high-throughput phenotyping system that integrates a load cell sensor and an Arduino-based microcontroller device. The system tracked the transpiration rate in real time by measuring changes in the pot weight in 224 recombinant inbred lines of Taekwangkong (fast-wilting) x SS2-2 (slow-wilting) under water-restricted conditions. Among five transpiration features we determined, stress recognition time point (SRTP) and decrease in transpiration rate by stress (DTrs) are informative parameters, that are interconnected and independently affect slow-wilting as well. Quantitative trait loci (QTL) for SRTP and DTrs were identified at the same location as the major QTL for slow wilting, qSW_Gm10, identified in the previous study. Notably, we found a novel major QTL for DTrs, qDTrs_Gm04, with a LOD value of 42 and PVE of 47 %. As a candidate gene for qDTrs_Gm04GmWRKY58 was selected with differential expression between the parental lines under drought conditions as well as upstream sequence variation. Our high-throughput system is of help not only to biological research but breeding programs of drought-tolerant lines.

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