A novel active transposon creates allelic variation through altered translation rate to influence protein abundance

Author:

Chen Guo12,Wang Ruilin1,Jiang Yizhe1,Dong Xiaoxiao1,Xu Jing1,Xu Qiang1,Kan Qiuxin1,Luo Zhixiang1,Springer Nathan M3,Li Qing14ORCID

Affiliation:

1. National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University , Wuhan 430070, China

2. Institute of Nuclear and Biological Technology, Xinjiang Academy of Agricultural Sciences/Xinjiang Key Laboratory of Crop Biotechnology/Improvement and Germplasm Innovation of Crop Resistance in Arid Desert Regions (Preparation) , Urumqi 830091, China

3. Department of Plant and Microbial Biology, University of Minnesota , St. Paul, MN 55108, USA

4. Hubei Hongshan Laboratory , Wuhan 430070, China

Abstract

Abstract Protein translation is tightly and precisely controlled by multiple mechanisms including upstream open reading frames (uORFs), but the origins of uORFs and their role in maize are largely unexplored. In this study, an active transposition event was identified during the propagation of maize inbred line B73. The transposon, which was named BTA for ‘B73 active transposable element hAT’, creates a novel dosage-dependent hypomorphic allele of the hexose transporter gene ZmSWEET4c through insertion within the coding sequence in the first exon, and results in reduced kernel size. The BTA insertion does not affect transcript abundance but reduces protein abundance of ZmSWEET4c, probably through the introduction of a uORF. Furthermore, the introduction of BTA sequence in the exon of other genes can regulate translation efficiency without affecting their mRNA levels. A transposon capture assay revealed 79 novel insertions for BTA and BTA-like elements. These insertion sites have typical euchromatin features, including low levels of DNA methylation and high levels of H3K27ac. A putative autonomous element that mobilizes BTA and BTA-like elements was identified. Together, our results suggest a transposon-based origin of uORFs and document a new role for transposable elements to influence protein abundance and phenotypic diversity by affecting the translation rate.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

111 Project Crop Genomics and Molecular Breeding

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics

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