F-box protein EBF1 and transcription factor ABI5-like regulate banana fruit chilling-induced ripening disorder

Author:

Song Zunyang1,Lai Xiuhua1,Yao Yulin1,Qin Jiajia1,Ding Xiaochun1,Zheng Qiuli1,Pang Xuequn12ORCID,Chen Weixin1,Li Xueping1,Zhu Xiaoyang1ORCID

Affiliation:

1. Guangdong Provincial Key Laboratory of Postharvest Science of Fruits and Vegetables/Engineering Research Center for Postharvest Technology of Horticultural Crops in South China, Ministry of Education, College of Horticulture, South China Agricultural University, Guangzhou 510642, China

2. College of Life Sciences, South China Agricultural University, Guangzhou 510642, China

Abstract

Abstract Cold stress adversely affects plant production, both qualitatively and quantitatively. Banana (Musa acuminata) is sensitive to cold stress and suffers chilling injury (CI) when stored under 11°C, causing abnormal fruit softening. However, the mechanism underlying the abnormal fruit softening due to CI remains obscure. This study uncovered the coordinated transcriptional mechanism of ethylene F-box (EBF1) protein and abscisic acid-insensitive 5 (ABI5)-like protein in regulating chilling-induced softening disorders of Fenjiao banana. Cold stress severely inhibited the transcript and protein levels of EBF1, ABI5-like, and fruit softening-related genes. The ABI5-like protein bound to the promoters of key starch and cell wall degradation-related genes such as β-amylase 8 (BAM8), pectate lyase 8 (PL8), and β-D-xylosidase23-like (XYL23-like) and activated their activities. EBF1 physically interacted with ABI5-like and enhanced the transcriptional activity of the key starch and cell wall degradation-related genes but did not ubiquitinate or degrade ABI5-like protein. This promoted fruit ripening and ameliorated fruit CI in a manner similar to the effect of exogenous abscisic acid treatment. The ectopic and transient overexpression of EBF1 and ABI5-like genes in tomato (Solanum lycopersicum) and Fenjiao banana accelerated fruit ripening and softening by promoting ethylene production, starch and cell wall degradation, and decreasing fruit firmness. EBF1 interacted with EIL4 but did not ubiquitinate or degrade EIL4, which is inconsistent with the typical role of EBF1/2 in Arabidopsis (Arabidopsis thaliana). These results collectively highlight that the interaction of EBF1 and ABI5-like controls starch and cell wall metabolism in banana, which is strongly inhibited by chilling stress, leading to fruit softening and ripening disorder.

Funder

China Agriculture Research System of MOF and MARA

Guangdong Banana and Pineapple Industry Technology System Innovation Team

Pearl River Talent Program for Young Talent

International Science and Technology Cooperation Major Project Cultivation Special Fund of SCAU

National Key Research and Development Program

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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