Blocking miR528 function promotes tillering and regrowth in switchgrass

Author:

Han Xiangyan12,Tang Shanjie23,Ma Xuan4,Liu Wenwen567,Yang Ruijuan567,Zhang Shuaibin2,Wang Ningning1ORCID,Song Xianwei2,Fu Chunxiang567ORCID,Yang Rongxin28,Cao Xiaofeng23ORCID

Affiliation:

1. Department of Plant Biology and Ecology, Tianjin Key Laboratory of Protein Sciences, College of Life Sciences Nankai University Tianjin China

2. Institute of Genetics and Developmental Biology Chinese Academy of Sciences Beijing China

3. College of Life Sciences University of the Chinese Academy of Sciences Beijing China

4. College of Life Sciences, Tianjin Key Laboratory of Animal and Plant Resistance Tianjin Normal University Tianjin China

5. CAS Key Laboratory of Biofuels, Shandong Provincial Key Laboratory of Synthetic Biology, Qingdao Institute of Bioenergy and Bioprocess Technology Chinese Academy of Sciences Qingdao China

6. Shandong Energy Institute Qingdao China

7. Qingdao New Energy Shandong Laboratory Qingdao China

8. Key Laboratory of Molecular Biology and Gene Engineering in Jiangxi Province, College of Life Science Nanchang University Jiangxi China

Abstract

SummaryMiRNAs have been reported to be the key regulators involving a wide range of biological processes in diverse plant species, but their functions in switchgrass, an important biofuel and forage crop, are largely unknown. Here, we reported the novel function of miR528, which has expanded to four copies in switchgrass, in controlling biomass trait of tillering number and regrowth rate after mowing. Blocking miR528 activity by expressing short tandem target mimic (STTM) increased tiller number and regrowth rate after mowing. The quadruple pvmir528 mutant lines derived from genome editing also showed such improved traits. Degradome and RNA‐seq analysis, combined with in situ hybridization assay revealed that up‐regulation of two miR528 targets coding for Cu/Zn‐SOD enzymes, might be responsible for the improved traits of tillering and regrowth in pvmir528 mutant. Additionally, natural variations in the miR528‐SOD interaction exist in C3 and C4 monocot species, implying the distinct regulatory strength of the miR528‐SOD module during monocot evolution. Overall, our data illuminated a novel role of miR528 in controlling biomass traits and provided a new target for genetic manipulation‐mediated crop improvement.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

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