通过过表达 MIM396 来阻断 miR396 的活性,可提高开关草的分蘖数量和生物量产量。

IF 6.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Biotechnology for Biofuels Pub Date : 2024-05-27 DOI:10.1186/s13068-024-02514-4
Mingzhi Xu, Lin Li, Jianping Yan, Dayong Li, Yaling Liu, Wanjun Zhang, Yanrong Liu
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引用次数: 0

摘要

背景:微RNA396(miR396)通过抑制其靶生长调节因子(GRF)家族基因的表达水平,在植物生长发育调控中发挥着重要作用。在之前的研究中,我们发现 miR396 的过表达对开关草(Panicum virgatum L.)的分蘖和生物量产量都有负向调节作用。因此,我们推测阻断 miR396 的表达可以提高开关草的分蘖能力和生物量产量。在此,我们在野生型(WT)和 Os-MIR319b 过表达的开关草植株(酶水解效率更高,但分蘖能力降低)中生产了过表达 miR396 目标模拟形式(MIM396)的转基因开关草植株,其中 miR396 的表达被阻断。对这些植物的表型和生物产量进行了分析:结果:阻断 miR396 以改善其在开关草中的目标 PvGRFs 表达,提高了转基因植株的分蘖数和干重。进一步的形态分析表明,与野生型植株相比,MIM396植株的气生分枝和基部分蘖数量有所增加。MIM396 植株的酶效率有所降低,但由于生物量增加,每株植株的总糖产量仍显著高于野生型植株。此外,在过表达 Os-MIR319b 的转基因开关草植株(TG21-Ms)中阻断 miR396 能显著提高 PvGRF1/3/5 的表达水平、分蘖数量和生物量产量。这些结果表明,miR396-PvGRFs 通过干扰 PvSPL4 的表达,至少部分参与了 miR319-PvPCFs 对分蘖数量的调控:结论:MIM396 可作为一种分子工具,用于提高开关草野生型和 miR319b 转基因植株的分蘖数和生物量产量。这一发现可应用于其他禾本科植物,以调节植物的生物产量。
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Blocking miR396 activity by overexpression MIM396 improved switchgrass tiller number and biomass yield

Background

MicroRNA396 (miR396) plays an important role in the regulation of plant growth and development by repressing the expression level of its target growth-regulating factor (GRF) family genes. In our previous study, we found that overexpression of miR396 negatively regulated both tillering and biomass yield in switchgrass (Panicum virgatum L.). We, therefore, speculated that blocking the expression of miR396 could enhance switchgrass tillering and biomass yield. Here, we produced transgenic switchgrass plants overexpressing a target mimicry form of miR396 (MIM396) in wild type (WT) and Os-MIR319b overexpressing switchgrass plant (with higher enzymatic hydrolysis efficiency, but reduced tillering), in which the expression of miR396 was blocked. The phenotype and biological yields of these plants were analyzed.

Results

Blocking miR396 to improve its target PvGRFs expression in switchgrass improved the tiller number and dry weight of transgenic plants. Further morphological analysis revealed that MIM396 plants increased the number of aerial branches and basal tillers compared to those of wild-type plants. The enzymatic efficiency of MIM396 plants was reduced; however, the total sugar production per plant was still significantly higher than that of wild-type plants due to the increase in biomass. In addition, blocking miR396 in a transgenic switchgrass plant overexpressing Os-MIR319b (TG21-Ms) significantly increased the PvGRF1/3/5 expression level and tiller number and biomass yield. The miR156-target gene PvSPL4, playing a negative role in aerial and basal buds outgrowth, showed significant downregulated in MIM396 and TG21-Ms. Those results indicate that miR396-PvGRFs, through disrupting the PvSPL4 expression, are involved in miR319-PvPCFs in regulating tiller number, at least partly.

Conclusions

MIM396 could be used as a molecular tool to improving tiller number and biomass yield in switchgrass wild type and miR319b transgenic plants. This finding may be applied to other graminaceous plants to regulate plant biological yield.

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来源期刊
Biotechnology for Biofuels
Biotechnology for Biofuels 工程技术-生物工程与应用微生物
自引率
0.00%
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0
审稿时长
2.7 months
期刊介绍: Biotechnology for Biofuels is an open access peer-reviewed journal featuring high-quality studies describing technological and operational advances in the production of biofuels, chemicals and other bioproducts. The journal emphasizes understanding and advancing the application of biotechnology and synergistic operations to improve plants and biological conversion systems for the biological production of these products from biomass, intermediates derived from biomass, or CO2, as well as upstream or downstream operations that are integral to biological conversion of biomass. Biotechnology for Biofuels focuses on the following areas: • Development of terrestrial plant feedstocks • Development of algal feedstocks • Biomass pretreatment, fractionation and extraction for biological conversion • Enzyme engineering, production and analysis • Bacterial genetics, physiology and metabolic engineering • Fungal/yeast genetics, physiology and metabolic engineering • Fermentation, biocatalytic conversion and reaction dynamics • Biological production of chemicals and bioproducts from biomass • Anaerobic digestion, biohydrogen and bioelectricity • Bioprocess integration, techno-economic analysis, modelling and policy • Life cycle assessment and environmental impact analysis
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