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Zhang, H.-M.

Publications and source records attributed to Zhang, H.-M..

2 recordsLinked to original sources

Plant-on-Chip: core morphogenesis processes in the tiny plant Wolffia australiana

A plant can be thought of as a colony comprising numerous growth buds, each developing to its own rhythm. Such lack of synchrony impedes efforts to describe core principles of plant morphogenesis, dissect the underlying mechanisms, and identify regulators. Here, we use the tiniest known angiosperm to overcome this challenge and provide an ideal model system for plant morphogenesis. We present a detailed morphological description of the monocot Wolffia australiana, as well as high-quality genome information. Further, we developed the Plant-on-Chip culture system and demonstrate the application of advanced technologies such as snRNA-seq, protein structure prediction, and gene editing. We provide proof-of-concept examples that illustrate how W. australiana can open a new horizon for deciphering the core regulatory mechanisms of plant morphogenesis. SignificanceWhat is the core morphogenetic process in angiosperms, a plant like a tree indeterminately growing, or a bud sequentially generating limited types of organs? Wolffia australiana, one of the smallest angiosperms in the world may help to make a distinction. Wolffia plantlet constitutes of only three organs that are indispensable to complete life cycle: one leaf, one stamen and one gynoecium. Before the growth tip is induced to flower, it keeps branching from the leaf axil and the branches separate from the main plantlet. Here we present a high-quality genome of W. australiana, detailed morphological description, a Plant-on-Chip cultural system, and some principle-proof experiments, demonstrating that W. australiana is a promising model system for deciphering core developmental program in angiosperms.

plant biology↗

A new demethylase gene OsDML4 involved in high temperature induced floury endosperm formation in rice

High temperature (HT) can affect the accumulation of seed storage materials and cause adverse effects on the yield and quality in rice. DNA methylation plays an important role in plant growth and development. However, the temperature and DNA methylation interaction on rice seed development has not been studied yet. Here, we identified a new demethylase gene OsDML4 and discovered its function on cytosine demethylation to affect the endosperm formation during the grain filling. Knockout of OsDML4 induced floury endosperm only under HT, which resulted from dramatically reduced the transcription and accumulation of glutelins and 16-kDa prolamin. The expression of two important transcription factors RISBZ1 and RPBF was significantly declined in the osdml4 mutants. The absence of OsDML4 also caused adverse effects on the formation of protein bodies (PBs), the number of PB-II was greatly decreased and incomplete PB-II with empty space and abnormally shaped PB-II were observed in the osdml4 mutants. Whole-genome bisulfite sequencing analysis of seeds at 15 days after pollination revealed much higher global methylation levels of CG, CHG and CHH contexts in the osdml4 mutants compared to wild type (WT). Moreover, the methylation status of RISBZ1 promoter was hypermethylated but RPBF promoter was nearly unchanged. No significant difference was detected between WT and the osdml4 mutants under room temperature. In conclusion, our study demonstrates a novel OsDML4-mediated epigenetic regulatory mechanism involving in the formation of floury endosperm, which will provide a new perspective in regulating endosperm development and the accumulation of SSPs in rice.

plant biology↗