Thi Chi Tran, Karoline Mähl, Christian Kappel, Yuri Dakhiya, Arun Sampathkumar, Adrien Sicard, Michael Lenhard
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引用次数: 0
摘要
重复基因被认为遵循三种进化轨迹之一来解决其冗余问题:新功能化、亚功能化或假基因化。许多重复基因对表达模式的差异已被记录在案,并被解释为亚功能化和冗余丧失的证据。然而,人们对这种差异的功能影响及其分子基础知之甚少。在这里,我们研究了与拟南芥(Arabidopsis thaliana)相比,红牧羊犬(Capsella rubella)的两个BLADE-ON-PETIOLE基因BOP1和BOP2部分丧失冗余性的遗传和分子基础。虽然这两个基因在拟南芥中几乎是完全冗余的,但由于隐性苞片初生区的表达模式发生了改变,红泽兰中的 BOP1 不再能确保野生型花器官的数量,也不能抑制苞片的形成。我们使用了两种互补的方法,即转基因拯救 A. thaliana atbop1 atbop2 双突变体和删除内源 AtBOP1 启动子,证明含有保守非编码序列的几个 BOP1 启动子区域以非加成方式相互作用,控制 BOP1 在苞片初生期的表达,这些相互作用的变化是 C. rubella 和 A. thaliana BOP1 表达和活性进化分化的基础。同样,顺式调节区之间相互作用的改变也是 BOP1 控制花器官脱落的功能启动子结构出现差异的原因。这些发现凸显了植物启动子结构的复杂性,并表明顺式调节元件之间相互作用的改变是基因表达进化分化和冗余丧失的关键驱动因素。
Altered interactions between cis-regulatory elements partially resolve BLADE-ON-PETIOLE genetic redundancy in Capsella rubella.
Duplicated genes are thought to follow one of three evolutionary trajectories that resolve their redundancy: neofunctionalization, subfunctionalization, or pseudogenization. Differences in expression patterns have been documented for many duplicated gene pairs and interpreted as evidence of subfunctionalization and a loss of redundancy. However, little is known about the functional impact of such differences and about their molecular basis. Here, we investigate the genetic and molecular basis for the partial loss of redundancy between the two BLADE-ON-PETIOLE genes BOP1 and BOP2 in red shepherd's purse (Capsella rubella) compared to Arabidopsis (Arabidopsis thaliana). While both genes remain almost fully redundant in A. thaliana, BOP1 in C. rubella can no longer ensure wild-type floral organ numbers and suppress bract formation, due to an altered expression pattern in the region of the cryptic bract primordium. We use two complementary approaches, transgenic rescue of A. thaliana atbop1 atbop2 double mutants and deletions in the endogenous AtBOP1 promoter, to demonstrate that several BOP1 promoter regions containing conserved noncoding sequences interact in a nonadditive manner to control BOP1 expression in the bract primordium and that changes in these interactions underlie the evolutionary divergence between C. rubella and A. thaliana BOP1 expression and activity. Similarly, altered interactions between cis-regulatory regions underlie the divergence in functional promoter architecture related to the control of floral organ abscission by BOP1. These findings highlight the complexity of promoter architecture in plants and suggest that changes in the interactions between cis-regulatory elements are key drivers for evolutionary divergence in gene expression and the loss of redundancy.
期刊介绍:
Title: Plant Cell
Publisher:
Published monthly by the American Society of Plant Biologists (ASPB)
Produced by Sheridan Journal Services, Waterbury, VT
History and Impact:
Established in 1989
Within three years of publication, ranked first in impact among journals in plant sciences
Maintains high standard of excellence
Scope:
Publishes novel research of special significance in plant biology
Focus areas include cellular biology, molecular biology, biochemistry, genetics, development, and evolution
Primary criteria: articles provide new insight of broad interest to plant biologists and are suitable for a wide audience
Tenets:
Publish the most exciting, cutting-edge research in plant cellular and molecular biology
Provide rapid turnaround time for reviewing and publishing research papers
Ensure highest quality reproduction of data
Feature interactive format for commentaries, opinion pieces, and exchange of information in review articles, meeting reports, and insightful overviews.