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1MYB56 Encoding a R2R3 MYB Transcription Factor Regulates Seed Size in Arabidopsis thaliana显示文摘Plant seed size is tightly regulated by the development of seed coat,embryo,and endosperm;however,currently,its underlying mechanism remains unclear.In this study,we revealed a regulatory role of an R2R3 MYB transcription factor MYB56 in controlling seed size specifcally in Arabidopsis thaliana L.Loss-of-function or knock-down of MYB56 yielded smaller seeds as compared with the wild type.Conversely,overexpression of MYB56 produced larger seeds.Further observation using semi-thin sections showed that myb56 developed smaller contracted endothelial cells and reduced cell number in the outer integument layer of the seed coat during the seed development;by contrast,MYB56 overexpressing lines had expanded endothelial cells and increased cell number in the outer integument layer of the seed coat,suggesting the essential role of MYB56 in regulating seed development.In addition,reciprocal cross-analysis showed that MYB56 affected the seed development maternally.MYB56 was shown to be dominantly expressed in developing seeds,consistently with its function in seed development.Moreover,quantitative reverse transcription polymerase chain reaction analysis revealed that MYB56 regulates the expression of genes involved in cell wall metabolism such as cell division and expansion.Altogether,our results demonstrated that MYB56 represents an unknown pathway for positively controlling the seed size.Yanjie Zhang Wanqi Liang Jianxin Shi Jie Xu Dabing Zhang 2013Journal of Integrative Plant Biology2013,55,11:8
2Diversity of metabolite accumulation patterns in inner and outer seed coats of pomegranate:exploring their relationship with genetic mechanisms of seed coat development显示文摘The expanded outer seed coat and the rigid inner seed coat of pomegranate seeds,both affect the sensory qualities of the fruit and its acceptability to consumers.Pomegranate seeds are also an appealing model for the study of seed coat differentiation and development.We conducted nontarget metabolic profiling to detect metabolites that contribute to the morphological differentiation of the seed coats along with transcriptomic profiling to unravel the genetic mechanisms underlying this process.Comparisons of metabolites in the lignin biosynthetic pathway accumulating in seed coat layers at different developmental stages revealed that monolignols,including coniferyl alcohol and sinapyl alcohol,greatly accumulated in inner seed coats and monolignol glucosides greatly accumulated in outer seed coats.Strong expression of genes involved in monolignol biosynthesis and transport might explain the spatial patterns of biosynthesis and accumulation of these metabolites.Hemicellulose constituents and flavonoids in particular accumulated in the inner seed coat,and candidate genes that might be involved in their accumulation were also identified.Genes encoding transcription factors regulating monolignol,cellulose,and hemicellulose metabolism were chosen by coexpression analysis.These results provide insights into metabolic factors influencing seed coat differentiation and a reference for studying seed coat developmental biology and pomegranate genetic improvement.Gaihua Qin Chunyan Liu Jiyu Li Yongjie Qi Zhenghui Gao Xiaoling Zhang Xingkai Yi Haifa Pan Ray Ming Yiliu Xu 2020Horticulture Research2020,7,1:4
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