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MADS 盒二聚化的进化变异影响玉米的花发育和蛋白丰度。

Evolutionary Variation in MADS Box Dimerization Affects Floral Development and Protein Abundance in Maize.

机构信息

Biology Department, University of Massachusetts, Amherst, 01003 Massachusetts.

CONACYT-Instituto Potosino de Investigación Científica y Tecnológica A.C., 78216 San Luis Potosi, Mexico.

出版信息

Plant Cell. 2020 Nov;32(11):3408-3424. doi: 10.1105/tpc.20.00300. Epub 2020 Sep 1.

DOI:10.1105/tpc.20.00300
PMID:32873631
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7610293/
Abstract

Interactions between MADS box transcription factors are critical in the regulation of floral development, and shifting MADS box protein-protein interactions are predicted to have influenced floral evolution. However, precisely how evolutionary variation in protein-protein interactions affects MADS box protein function remains unknown. To assess the impact of changing MADS box protein-protein interactions on transcription factor function, we turned to the grasses, where interactions between B-class MADS box proteins vary. We tested the functional consequences of this evolutionary variability using maize () as an experimental system. We found that differential B-class dimerization was associated with subtle, quantitative differences in stamen shape. In contrast, differential dimerization resulted in large-scale changes to downstream gene expression. Differential dimerization also affected B-class complex composition and abundance, independent of transcript levels. This indicates that differential B-class dimerization affects protein degradation, revealing an important consequence for evolutionary variability in MADS box interactions. Our results highlight complexity in the evolution of developmental gene networks: changing protein-protein interactions could affect not only the composition of transcription factor complexes but also their degradation and persistence in developing flowers. Our results also show how coding change in a pleiotropic master regulator could have small, quantitative effects on development.

摘要

MADS 盒转录因子之间的相互作用对于花发育的调控至关重要,并且预测 MADS 盒蛋白-蛋白相互作用的改变影响了花的进化。然而,蛋白质-蛋白质相互作用的进化变异如何影响 MADS 盒蛋白的功能仍然未知。为了评估改变 MADS 盒蛋白-蛋白相互作用对转录因子功能的影响,我们转向禾本科植物,其中 B 类 MADS 盒蛋白之间的相互作用发生了变化。我们使用玉米()作为实验系统来测试这种进化变异性的功能后果。我们发现 B 类二聚体的差异与雄蕊形状的细微、定量差异有关。相比之下,差异二聚化导致下游基因表达的大规模变化。差异二聚化还影响 B 类复合物的组成和丰度,而与转录本水平无关。这表明差异的 B 类二聚化影响蛋白降解,揭示了 MADS 盒相互作用进化变异性的一个重要后果。我们的结果强调了发育基因网络进化的复杂性:改变蛋白质-蛋白质相互作用不仅可能影响转录因子复合物的组成,还可能影响其在发育花朵中的降解和持久性。我们的结果还表明,多效性主调控因子的编码变化如何对发育产生微小的、定量的影响。