Genome-Wide Analysis of Auxin Response Factors in Lettuce (<i>Lactuca sativa</i> L.) Reveals the Positive Roles of LsARF8a in Thermally Induced Bolting

Warm temperatures induce plant bolting accompanied by flower initiation, where endogenous auxin is dynamically associated with accelerated growth. Auxin signaling is primarily regulated by a family of plant-specific transcription factors, AUXIN RESPONSE FACTORS (ARFs), which either activate or repre...

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Bibliographic Details
Main Authors: Manman Hu, Zhengyang Qi, Zheng Ren, Jing Tong, Baoju Wang, Zhanhui Wu, Jinghong Hao, Ning Liu
Format: Article
Language:English
Published: MDPI AG 2022-11-01
Series:International Journal of Molecular Sciences
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Online Access:https://www.mdpi.com/1422-0067/23/21/13509
Description
Summary:Warm temperatures induce plant bolting accompanied by flower initiation, where endogenous auxin is dynamically associated with accelerated growth. Auxin signaling is primarily regulated by a family of plant-specific transcription factors, AUXIN RESPONSE FACTORS (ARFs), which either activate or repress the expression of downstream genes in response to developmental and environmental cues. However, the relationship between ARFs and bolting has not been completely understood in lettuce yet. Here, we identified 24 <i>LsARF</i>s (<i>Lactuca sativa</i> ARFs) in the lettuce genome. The phylogenetic tree indicated that LsARFs could be classified into three clusters, which was well supported by the analysis of exon–intron structure, consensus motifs, and domain compositions. RNA-Seq analysis revealed that more than half of the <i>LsARF</i>s were ubiquitously expressed in all tissues examined, whereas a small number of LsARFs responded to UV or cadmium stresses. qRT-PCR analysis indicated that the expression of most <i>LsARF</i>s could be activated by more than one phytohormone, underling their key roles as integrative hubs of different phytohormone signaling pathways. Importantly, the majority of <i>LsARF</i>s displayed altered expression profiles under warm temperatures, implying that their functions were tightly associated with thermally accelerated bolting in lettuce. Importantly, we demonstrated that silencing of <i>LsARF8a,</i> expression of which was significantly increased by elevated temperatures, resulted in delayed bolting under warm temperatures, suggesting that <i>LsARF8a</i> might conduce to the thermally induced bolting. Together, our results provide molecular insights into the <i>LsARF</i> gene family in lettuce, which will facilitate the genetic improvement of the lettuce in an era of global warming.
ISSN:1661-6596
1422-0067