Genome-wide binding analysis of the tomato transcription factor SlDof1 reveals its regulatory impacts on fruit ripening

被引:0
作者
Yuying Wang
Peiwen Wang
Weihao Wang
Lingxi Kong
Shiping Tian
Guozheng Qin
机构
[1] Chinese Academy of Sciences,Key Laboratory of Plant Resources, Institute of Botany, Innovation Academy for Seed Design
[2] University of Chinese Academy of Sciences,undefined
来源
Molecular Horticulture | / 1卷
关键词
Tomato; Fruit ripening; Transcriptional regulation; DNA binding with one finger (Dof), chromatin immunoprecipitation followed by sequencing (ChIP-seq); RNA sequencing (RNA-seq);
D O I
暂无
中图分类号
学科分类号
摘要
The DNA binding with one finger (Dof) proteins are plant-specific transcription factors involved in a variety of biological processes. However, little is known about their functions in fruit ripening, a flowering-plant-specific process that is required for seed maturation and dispersal. Here, we found that the tomato Dof transcription factor SlDof1, is necessary for normal fruit ripening. Knockdown of SlDof1 expression by RNA interference delayed ripening-related processes, including lycopene synthesis and ethylene production. Transcriptome profiling indicated that SlDof1 influences the expression of hundreds of genes, and a chromatin immunoprecipitation sequencing revealed a large number of SlDof1 binding sites. A total of 312 genes were identified as direct targets of SlDof1, among which 162 were negatively regulated by SlDof1 and 150 were positively regulated. The SlDof1 target genes were involved in a variety of metabolic pathways, and follow-up analyses verified that SlDof1 directly regulates some well-known ripening-related genes including ACS2 and PG2A as well as transcriptional repressor genes such as SlIAA27. Our findings provide insights into the transcriptional regulatory networks underlying fruit ripening and highlight a gene potentially useful for genetic engineering to control ripening.
引用
收藏
相关论文
共 423 条
  • [51] Han YC(2017)AtMYB32 is required for normal pollen development in Genome Biol 18 47-1045
  • [52] Xiao YY(2014)Coupling virus-induced gene silencing to exogenous Genome Biol 15 548-1809
  • [53] Kuang JF(2010) expression provides a highly efficient system for functional genomics in Arabidopsis and across all stages of tomato fruit development Plant Physiol 153 1031-560
  • [54] Fan ZQ(1995)SlARF4, an auxin response factor involved in the control of sugar metabolism during tomato fruit development Science 270 1807-214
  • [55] Chen JY(2016)The RIN-regulated small auxin-up RNA SAUR69 is involved in the unripe-to-ripe phase transition of tomato fruit via enhancement of the sensitivity to ethylene Sci Rep 6 27705-2170
  • [56] Lu WJ(2002)High-resolution spatiotemporal transcriptome mapping of tomato fruit development and ripening Trends Plant Sci 7 555-159
  • [57] Fillatti JJ(1999)Melatonin promotes ripening and improves quality of tomato fruit during postharvest life Plant J 17 209-undefined
  • [58] Kiser J(2010)MEGA6: molecular evolutionary genetics analysis version 6.0 Plant Cell 22 2156-undefined
  • [59] Rose R(2013)Aux/IAA Proteins contain a potent transcriptional repression domain PLoS Genet 9 153-undefined
  • [60] Comai L(2013)The involvement of auxin in the ripening of climacteric fruits comes of age: the hormone plays a role of its own and has an intense interplay with ethylene in ripening peaches Nat Biotechnol 31 undefined-undefined