Genome-Wide Identification and Molecular Evolutionary History of the Whirly Family Genes in Brassica napus

Author:

Wang Long1234,Zhao Zhi1234,Li Huaxin1234,Pei Damei1234,Ma Qianru1234,Huang Zhen5ORCID,Wang Hongyan6,Xiao Lu1234

Affiliation:

1. Academy of Agricultural and Forestry Sciences, Qinghai University, Xining 810016, China

2. Laboratory for Research and Utilization of Qinghai Tibet Plateau Germplasm Resources, Xining 810016, China

3. Key Laboratory of Spring Rapeseed Genetic Improvement of Qinghai Province, Xining 810016, China

4. Qinghai Spring Rape Engineering Research Center, Xining 810016, China

5. State Key Laboratory of Crop Stress Biology for Arid Areas, College of Agronomy, Northwest A&F University, Yangling 712100, China

6. Laboratory of Plant Epigenetics and Evolution, School of Life Science, Liaoning University, Shenyang 110036, China

Abstract

Whirly transcription factors are unique to plants, playing pivotal roles in managing leaf senescence and DNA repair. While present in various species, their identification in Brassica napus L. (B. napus) and their differences during hybridization and polyploidy has been elusive. Addressing this, our study delves into the functional and evolutionary aspects of the Whirly gene family during the emergence of B. napus, applying bioinformatics and comparative genomics. We identified six Whirly genes in B. napus. In Brassica rapa L. (B. rapa), three Whirly genes were identified, while four were found in Brassica oleracea L. (B. oleracea). The results show that the identified Whirly genes not only have homology but also share the same chromosomal positions. Phylogenetic analysis indicates that Whirly genes in monocots and dicots exhibit high conservation. In the evolutionary process, the Whirly gene family in B. napus experienced events of intron/exon loss. Collinearity insights point to intense purifying selection post-duplication. Promoter regions housed diverse cis-acting elements linked to photoresponse, anaerobic initiation, and methyl jasmonate responsiveness. Notably, elements tied to abscisic acid signaling and meristem expression were prominent in diploid ancestors but subdued in tetraploid B. napus. Tissue-specific expression unveiled analogous patterns within subfamily genes. Subsequent qRT-PCR analysis spotlighted BnAWHY1b’s potential significance in abiotic stress response, particularly drought. These findings can be used as theoretical foundations to understand the functions and effects of the Whirly gene family in B. napus, providing references for the molecular mechanism of gene evolution between this species and its diploid ancestors.

Funder

Qinghai Province “Handsome Scientist Responsibility System” Project

National Key Research and Development Program

China Agriculture Research System

Publisher

MDPI AG

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