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Uncovering the Transcriptional Regulatory Network Involved in Boosting Wheat Regeneration and Transformation
Xuemei Liu, Xiao Min Bie, Xuelei Lin, Menglu Li, Hongzhe Wang, Xiaoyu Zhang, Yiman Yang, Chunyan Zhang, Xian Sheng Zhang, Jun Xiao
Nature Plants
Abstract
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论文编号: |
DOI:10.1038/s41477-023-01406-z |
论文题目: |
Uncovering the Transcriptional Regulatory Network Involved in Boosting Wheat Regeneration and Transformation |
英文论文题目: |
Uncovering the Transcriptional Regulatory Network Involved in Boosting Wheat Regeneration and Transformation |
第一作者: |
Xuemei Liu, Xiao Min Bie, Xuelei Lin, Menglu Li, Hongzhe Wang, Xiaoyu Zhang, Yiman Yang, Chunyan Zhang, Xian Sheng Zhang, Jun Xiao |
英文第一作者: |
Xuemei Liu, Xiao Min Bie, Xuelei Lin, Menglu Li, Hongzhe Wang, Xiaoyu Zhang, Yiman Yang, Chunyan Zhang, Xian Sheng Zhang, Jun Xiao |
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2023-05-05 |
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Genetic transformation is important for gene functional study and crops improvement. However, it is less effective in wheat. Here, we employed a multi-omic analysis strategy to uncover the transcriptional regulatory network (TRN) responsible for wheat regeneration. RNA-seq, ATAC-seq and CUT&Tag techniques were utilized to profile the transcriptional and chromatin dynamics during early regeneration from the scutellum of immature embryos in wheat variety Fielder. Our results demonstrate that the sequential expression of gene mediating cell fate transition during regeneration is induced by auxin, in coordination with changes in chromatin accessibility, H3K27me3 and H3K4me3 status. The built-up TRN driving wheat regeneration was found to be dominated by 446 key transcription factors (TFs). Further comparisons between wheat and Arabidopsis revealed distinct patterns of DNA binding with one finger (DOF) TFs in the two species. Experimental validations highlighted TaDOF5.6 (TraesCS6A02G274000) and TaDOF3.4 (TraesCS2B02G592600) as potential enhancers for the transformation efficiency in different wheat varieties. |
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Nature Plants |
英文刊物名称: |
Nature Plants |
论文全文: |
Genetic transformation is important for gene functional study and crops improvement. However, it is less effective in wheat. Here, we employed a multi-omic analysis strategy to uncover the transcriptional regulatory network (TRN) responsible for wheat regeneration. RNA-seq, ATAC-seq and CUT&Tag techniques were utilized to profile the transcriptional and chromatin dynamics during early regeneration from the scutellum of immature embryos in wheat variety Fielder. Our results demonstrate that the sequential expression of gene mediating cell fate transition during regeneration is induced by auxin, in coordination with changes in chromatin accessibility, H3K27me3 and H3K4me3 status. The built-up TRN driving wheat regeneration was found to be dominated by 446 key transcription factors (TFs). Further comparisons between wheat and Arabidopsis revealed distinct patterns of DNA binding with one finger (DOF) TFs in the two species. Experimental validations highlighted TaDOF5.6 (TraesCS6A02G274000) and TaDOF3.4 (TraesCS2B02G592600) as potential enhancers for the transformation efficiency in different wheat varieties. |
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