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A Large Transposon Insertion in the stiff1 Promoter Increases Stalk Strength in Maize
Z. Zhang, X. Zhang, Z. Lin, J. Wang, H. Liu, L. Zhou, S. Zhong, Y. Li, C. Zhu, J. Lai, X. Li, J. Yu, Z. Lin,
Language English Country United States
Document type Journal Article, Research Support, Non-U.S. Gov't
NLK
Free Medical Journals
from 1989 to 1 year ago
Freely Accessible Science Journals
from 1989 to 12 months ago
Open Access Digital Library
from 1989-01-01
PubMed
31690654
DOI
10.1105/tpc.19.00486
Knihovny.cz E-resources
- MeSH
- Alleles MeSH
- Cell Wall metabolism MeSH
- CRISPR-Cas Systems MeSH
- Phenotype MeSH
- Zea mays genetics MeSH
- Lignin metabolism MeSH
- Quantitative Trait Loci MeSH
- Chromosome Mapping MeSH
- Promoter Regions, Genetic * MeSH
- Genes, Plant MeSH
- Plant Proteins genetics metabolism MeSH
- Sequence Analysis MeSH
- Transformation, Genetic MeSH
- DNA Transposable Elements genetics MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
Stalk lodging, which is generally determined by stalk strength, results in considerable yield loss and has become a primary threat to maize (Zea mays) yield under high-density planting. However, the molecular genetic basis of maize stalk strength remains unclear, and improvement methods remain inefficient. Here, we combined map-based cloning and association mapping and identified the gene stiff1 underlying a major quantitative trait locus for stalk strength in maize. A 27.2-kb transposable element insertion was present in the promoter of the stiff1 gene, which encodes an F-box domain protein. This transposable element insertion repressed the transcription of stiff1, leading to the increased cellulose and lignin contents in the cell wall and consequently greater stalk strength. Furthermore, a precisely edited allele of stiff1 generated through the CRISPR/Cas9 system resulted in plants with a stronger stalk than the unedited control. Nucleotide diversity analysis revealed that the promoter of stiff1 was under strong selection in the maize stiff-stalk group. Our cloning of stiff1 reveals a case in which a transposable element played an important role in maize improvement. The identification of stiff1 and our edited stiff1 allele pave the way for efficient improvement of maize stalk strength.
Center for Crop Functional Genomics and Molecular Breeding
Department of Agronomy Iowa State University Ames Iowa 50011
Joint Laboratory for International Cooperation in Crop Molecular Breeding Ministry of Education
References provided by Crossref.org
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