A robust biotechnology induces artificial genomic duplication via transient RNAi‐mediated suppression of OSD1 in rice

ABSTRACT Ploidy manipulation is a crucial strategy for generating germplasm in crop breeding. However, artificial genomic duplication, often induced by colchicine treatment, is associated with toxicity and unpredictability. Although mutations in OSD1 have shown promise for inducing genomic duplication, the instability of ploidy across generations limits their practical application. In this study, we developed a Plant Polyploidization via Gene Interference (PPGI) system that utilizes transient RNAi‐mediated suppression of OSD1 to efficiently induce artificial genomic duplication, demonstrating obvious potential for producing autotetraploids. We first validated this system by successfully generating PPGI‐induced autotetraploid plants from the Taichung65 cultivar. These PPGI‐induced plants exhibited notable differences from Taichung65 but resembled the existing Taichung65‐4x line obtained through colchicine treatment. Haplotype analysis indicated that the OSD1 RNAi fragment is conserved across 2,908 rice cultivars. Consequently, we employed the same PPGI vector to develop autotetraploid lines from various germplasms, including another japonica cultivar, seven indica cultivars, and one Oryza rufipogon line. The probability of genomic duplication achieved by our PPGI method was higher than that obtained by colchicine treatment. Typically, autotetraploid lines exhibit severe sterility in the first generation following polyploidization. Leveraging fertile neo‐tetraploid rice and the PPGI system, we designed and verified two strategies to directly induce fertile autotetraploid germplasms in the first generation, thereby substantially shortening the breeding cycle. Our method provides a universal, efficient, and non‐toxic approach for inducing autotetraploid rice germplasms and contributes to enriching fertile autotetraploid rice germplasm resources.

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Publication Details

Journal
Journal of Integrative Plant Biology
Published
2026-09-16
DOI
https://doi.org/10.1111/jipb.70393
Primary Topic
Chromosomal and Genetic Variations
Type
article
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article

A robust biotechnology induces artificial genomic duplication via transient RNAi‐mediated suppression of OSD1 in rice

Xiangdong Liu, Rou Chen, Liang Fu, Guobin Liang et al.
Journal of Integrative Plant Biology
Chromosomal and Genetic Variations
article

A robust biotechnology induces artificial genomic duplication via transient RNAi‐mediated suppression of OSD1 in rice

Xiangdong Liu, Rou Chen, Liang Fu, Guobin Liang, Jia Yang, Lianjun Zhu, Zijun Lu, 趙祥星, Runze Wu, Yu Huang
article en

Abstract

ABSTRACT Ploidy manipulation is a crucial strategy for generating germplasm in crop breeding. However, artificial genomic duplication, often induced by colchicine treatment, is associated with toxicity and unpredictability. Although mutations in OSD1 have shown promise for inducing genomic duplication, the instability of ploidy across generations limits their practical application. In this study, we developed a Plant Polyploidization via Gene Interference (PPGI) system that utilizes transient RNAi‐mediated suppression of OSD1 to efficiently induce artificial genomic duplication, demonstrating obvious potential for producing autotetraploids. We first validated this system by successfully generating PPGI‐induced autotetraploid plants from the Taichung65 cultivar. These PPGI‐induced plants exhibited notable differences from Taichung65 but resembled the existing Taichung65‐4x line obtained through colchicine treatment. Haplotype analysis indicated that the OSD1 RNAi fragment is conserved across 2,908 rice cultivars. Consequently, we employed the same PPGI vector to develop autotetraploid lines from various germplasms, including another japonica cultivar, seven indica cultivars, and one Oryza rufipogon line. The probability of genomic duplication achieved by our PPGI method was higher than that obtained by colchicine treatment. Typically, autotetraploid lines exhibit severe sterility in the first generation following polyploidization. Leveraging fertile neo‐tetraploid rice and the PPGI system, we designed and verified two strategies to directly induce fertile autotetraploid germplasms in the first generation, thereby substantially shortening the breeding cycle. Our method provides a universal, efficient, and non‐toxic approach for inducing autotetraploid rice germplasms and contributes to enriching fertile autotetraploid rice germplasm resources.

Journal of Integrative Plant Biology
South China Agricultural University (CN), Ministry of Agriculture (ID), Ministry of Agriculture and Rural Affairs (CN)
Zero hunger
Openalex Percentile: Top 13%
Chromosomal and Genetic Variations
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