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Updated: Aug 5, 2026

A Simple Method for Isolation of Soybean Protoplasts and Application to Transient Gene Expression Analyses
Published on: January 25, 2018
The first telomere-to-telomere genome assembly of the soybean male-sterile germplasm 88-428BY by massive parallel
Yuhua Yang1, Zhiyuan Bai1, Yan Chen1
1Center for Agricultural Genetic Resources Research, Shanxi Agricultural University, Taiyuan 030031, China.
Abstract:
Soybean (Glycine max) is a key source of plant protein and oil, yet genomic resources for male-sterile germplasms remain scarce. This study addresses this gap by presenting the first telomere-to-telomere (T2T) genome assembly of the landrace soybean 88-428BY, a Chinese photoperiod-sensitive genic male sterility (PGMS) germplasm with photoperiod-dependent fertility. Using a hybrid strategy combining PacBio HiFi, Oxford Nanopore ultra-long reads, and Hi-C scaffolding, we generated a high-quality reference genome of 1.01 Gb (N50 = 52.05 Mb), achieving 99.88% BUSCO completeness and assembling telomeres at both ends of 80% of the chromosomes. Annotation revealed 55,292 protein-coding genes and a high repetitive content (63.03%), which was dominated by LTR retrotransposons. Comparative genomics identified 35,236 structural variations (SVs), with hotspot regions harboring genes showing suppressed expression. Transcriptomic analysis under long-day and short-day conditions uncovered co-expression modules enriched in flavonoid biosynthesis and protease inhibitors, alongside key transcription factors (e.g., NAC25, ERF113) potentially associated with fertility regulation. This T2T genome provides a critical resource for elucidating the molecular basis of photoperiod-sensitive male sterility and advancing functional genomics and molecular breeding in soybean.
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