A SlCLV3-SlWUS module regulates auxin and ethylene homeostasis in low light-induced tomato flower abscission

Author:

Cheng Lina12ORCID,Li Ruizhen12ORCID,Wang Xiaoyang12ORCID,Ge Siqi12ORCID,Wang Sai12ORCID,Liu Xianfeng12ORCID,He Jing12ORCID,Jiang Cai-Zhong34ORCID,Qi Mingfang12ORCID,Xu Tao12ORCID,Li Tianlai12ORCID

Affiliation:

1. College of Horticulture, Shenyang Agricultural University , Shenyang, 110866, China

2. Key Laboratory of Protected Horticulture of Ministry of Education , Shenyang, China

3. Crops Pathology and Genetic Research Unit, United States Department of Agriculture Agricultural Research Service , Albany, California 95616, USA

4. Department of Plant Sciences, University of California , Los Angeles, California 95616, USA

Abstract

Abstract Premature abscission of flowers and fruits triggered by low light stress can severely reduce crop yields. However, the underlying molecular mechanism of this organ abscission is not fully understood. Here, we show that a gene (SlCLV3) encoding CLAVATA3 (CLV3), a peptide hormone that regulates stem cell fate in meristems, is highly expressed in the pedicel abscission zone (AZ) in response to low light in tomato (Solanum lycopersicum). SlCLV3 knockdown and knockout lines exhibit delayed low light-induced flower drop. The receptor kinases SlCLV1 and BARELY ANY MERISTEM1 function in the SlCLV3 peptide-induced low light response in the AZ to decrease expression of the transcription factor gene WUSCHEL (SlWUS). DNA affinity purification sequencing identified the transcription factor genes KNOX-LIKE HOMEDOMAIN PROTEIN1 (SlKD1) and FRUITFULL2 (SlFUL2) as SlWUS target genes. Our data reveal that low light reduces SlWUS expression, resulting in higher SlKD1 and SlFUL2 expression in the AZ, thereby perturbing the auxin response gradient and causing increased ethylene production, eventually leading to the initiation of abscission. These results demonstrate that the SlCLV3-SlWUS signaling pathway plays a central role in low light-induced abscission by affecting auxin and ethylene homeostasis.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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