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1.
Mol Biol Evol ; 38(5): 1995-2013, 2021 05 04.
Article in English | MEDLINE | ID: mdl-33432361

ABSTRACT

Evolutionary fates of duplicated genes have been widely investigated in many polyploid plants and animals, but research is scarce in recurrent polyploids. In this study, we focused on foxl2, a central player in ovary, and elaborated the functional divergence in gibel carp (Carassius gibelio), a recurrent auto-allo-hexaploid fish. First, we identified three divergent foxl2 homeologs (Cgfoxl2a-B, Cgfoxl2b-A, and Cgfoxl2b-B), each of them possessing three highly conserved alleles and revealed their biased retention/loss. Then, their abundant sexual dimorphism and biased expression were uncovered in hypothalamic-pituitary-gonadal axis. Significantly, granulosa cells and three subpopulations of thecal cells were distinguished by cellular localization of CgFoxl2a and CgFoxl2b, and the functional roles and the involved process were traced in folliculogenesis. Finally, we successfully edited multiple foxl2 homeologs and/or alleles by using CRISPR/Cas9. Cgfoxl2a-B deficiency led to ovary development arrest or complete sex reversal, whereas complete disruption of Cgfoxl2b-A and Cgfoxl2b-B resulted in the depletion of germ cells. Taken together, the detailed cellular localization and functional differences indicate that Cgfoxl2a and Cgfoxl2b have subfunctionalized and cooperated to regulate folliculogenesis and gonad differentiation, and Cgfoxl2b has evolved a new function in oogenesis. Therefore, the current study provides a typical case of homeolog/allele diversification, retention/loss, biased expression, and sub-/neofunctionalization in the evolution of duplicated genes driven by polyploidy and subsequent diploidization from the recurrent polyploid fish.


Subject(s)
Evolution, Molecular , Forkhead Box Protein L2/genetics , Gene Duplication , Goldfish/genetics , Polyploidy , Animals , Female , Forkhead Box Protein L2/metabolism , Goldfish/growth & development , Goldfish/metabolism , Male , Oocytes/growth & development , Oocytes/metabolism , Ovary/growth & development , Ovary/metabolism
2.
Int J Mol Sci ; 23(9)2022 Apr 29.
Article in English | MEDLINE | ID: mdl-35563356

ABSTRACT

Nitrate transporter 2 (NRT2) plays an essential role in Nitrogen (N) uptake, transport, utilization, and stress resistance. In this study, the NRT2 gene family in two sequenced Brassica napus ecotypes were identified, including 31 genes in 'Zhongshuang11' (BnaZSNRT2s) and 19 in 'Darmor-bzh' (BnaDarNRT2s). The candidate genes were divided into three groups (Group I-III) based on phylogenetic analyses, supported by a conserved intron-exon structure in each group. Collinearity analysis revealed that the large expansion of BnaZSNRT2s attributed to allopolyploidization of ancestors Brassica rapa and Brassica oleracea, and small-scale duplication events in B. napus. Transcription factor (TF) binding site prediction, cis-element analysis, and microRNA prediction suggested that the expressions of BnaZSNRT2s are regulated by multiple factors, and the regulatory pattern is relatively conserved in each group and is tightly connected between groups. Expression assay showed the diverse and differentiated spatial-temporal expression profiles of BnaZSNRT2s in Group I, but conserved patterns were observed in Group II/III; and the low nitrogen (LN) stress up-regulated expression profiles were presented in Group I-III, based on RNA-seq data. RT-qPCR analyses confirmed that BnaZSNRT2.5A-1 and BnaZSNRT2.5C-1 in Group II were highly up-regulated under LN stress in B. napus roots. Our results offer valid information and candidates for further functional BnaZSNRT2s studies.


Subject(s)
Brassica napus , Brassica napus/genetics , Brassica napus/metabolism , Gene Expression Regulation, Plant , Genes, Plant , Genome, Plant , Multigene Family , Nitrate Transporters , Nitrogen/metabolism , Phylogeny , Plant Proteins/genetics , Plant Proteins/metabolism
3.
FEBS Lett ; 594(19): 3108-3121, 2020 10.
Article in English | MEDLINE | ID: mdl-32671843

ABSTRACT

Apolipoprotein L1 (APOL1) participates in lipid metabolism. Here, we investigate the mechanisms regulating APOL1 gene expression in hepatoma cells. We demonstrate that the -80-nt to +31-nt region of the APOL1 promoter, which contains one SP transcription factor binding GT box and an interferon regulatory factor (IRF) binding ISRE element, maintains the maximum activity. Mutation of the GT box and ISRE element dramatically reduces APOL1 promoter activity. EMSA and chromatin immunoprecipitation assay reveal that the transcription factors Sp1, IRF1 and IRF2 could interact with their cognate binding sites on the APOL1 promoter. Overexpression of Sp1, IRF1 and IRF2 increases promoter activity, leading to increased APOL1 mRNA and protein levels, while knockdown of Sp1, IRF1 and IRF2 has the opposite effects. These results demonstrate that the APOL1 gene could be regulated by Sp1, IRF1 and IRF2 in hepatoma cells.


Subject(s)
Apolipoprotein L1/genetics , Carcinoma, Hepatocellular/genetics , Gene Expression Regulation, Neoplastic , Interferon Regulatory Factor-1/metabolism , Interferon Regulatory Factor-2/metabolism , Liver Neoplasms/genetics , Sp1 Transcription Factor/metabolism , Transcription, Genetic , Apolipoprotein L1/metabolism , Base Sequence , Cell Line, Tumor , HEK293 Cells , Humans , Promoter Regions, Genetic , Protein Binding , Response Elements/genetics
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