Identification of natural allelic variation in TTL1 controlling thermotolerance and grain size by a rice super pan‐genome

Author:

Lin Yarong1ORCID,Zhu Yiwang12ORCID,Cui Yuchao3ORCID,Qian Hongge24ORCID,Yuan Qiaoling2ORCID,Chen Rui1ORCID,Lin Yan1ORCID,Chen Jianmin1ORCID,Zhou Xishi2ORCID,Shi Chuanlin2ORCID,He Huiying2ORCID,Hu Taijiao1ORCID,Gu Chenbo1ORCID,Yu Xiaoman2ORCID,Zhu Xiying2ORCID,Wang Yuexing5ORCID,Qian Qian256ORCID,Zhang Cuijun2ORCID,Wang Feng1ORCID,Shang Lianguang26ORCID

Affiliation:

1. Institute of Biotechnology Fujian Academy of Agricultural Sciences/Fujian Provincial Key Laboratory of Genetic Engineering for Agriculture Fuzhou 350003 China

2. Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen 518124 China

3. Xiamen Key Laboratory for Plant Genetics, School of Life Sciences Xiamen University Xiamen 361102 China

4. College of Bioscience and Biotechnology Hunan Agricultural University Changsha 410128 China

5. State Key Laboratory of Rice Biology China National Rice Research Institute Hangzhou 311401 China

6. Yazhouwan National Laboratory Sanya City 572024 China

Abstract

ABSTRACTContinuously increasing global temperatures present great challenges to food security. Grain size, one of the critical components determining grain yield in rice (Oryza sativa L.), is a prime target for genetic breeding. Thus, there is an immediate need for genetic improvement in rice to maintain grain yield under heat stress. However, quantitative trait loci (QTLs) endowing heat stress tolerance and grain size in rice are extremely rare. Here, we identified a novel negative regulator with pleiotropic effects, Thermo‐Tolerance and grain Length 1 (TTL1), from the super pan‐genomic and transcriptomic data. Loss‐of‐function mutations in TTL1 enhanced heat tolerance, and caused an increase in grain size by coordinating cell expansion and proliferation. TTL1 was shown to function as a transcriptional regulator and localized to the nucleus and cell membrane. Furthermore, haplotype analysis showed that hapL and hapS of TTL1 were obviously correlated with variations of thermotolerance and grain size in a core collection of cultivars. Genome evolution analysis of available rice germplasms suggested that TTL1 was selected during domestication of the indica and japonica rice subspecies, but still had much breeding potential for increasing grain length and thermotolerance. These findings provide insights into TTL1 as a novel potential target for the development of high‐yield and thermotolerant rice varieties.

Publisher

Wiley

Subject

Plant Science,General Biochemistry, Genetics and Molecular Biology,Biochemistry

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