Carvalho Sofia D, Chatterjee Mithu, Coleman Lauren, Clancy Maureen A, Folta Kevin M
Horticultural Sciences Department, University of Florida, Gainesville, FL,USA.
Horticultural Sciences Department, University of Florida, Gainesville, FL,USA; Plant Molecular and Cellular Biology Program, University of Florida, Gainesville, FL, USA.
Plant Sci. 2016 Apr;245:84-93. doi: 10.1016/j.plantsci.2016.01.002. Epub 2016 Jan 28.
Block of cell proliferation (BOP) proteins are conserved among eukaryotes, and studies in mammals and yeast have described their role in ribosome biogenesis and cell cycle regulation. A BOP1 orthologue was identified in plants, and loss-of-function analyses in tobacco cells confirmed similar activities. This report characterizes a role for BOP1 activity in planta. Two transgenic plant species were used: the diploid strawberry (Fragaria vesca) and Arabidopsis thaliana. FvBOP1 silencing showed changes in pre-rRNA processing, and demonstrated FvBOP1's role in growth and physiology throughout different stages of plant development. In the strawberry, repression of FvBOP1 activity decreased plant fitness prior to flowering, followed by plant death after the reproductive transition, indicating that BOP1 activity is required for transition back to vegetative growth after flowering. A T-DNA null allele of the AtBOP1 gene is lethal, and a 50% decrease in transcript accumulation is sufficient to cause severe developmental defects linked to defective cell division. The conserved protein BOP1 is essential for viability. Lower transcript levels result in defects in rRNA processing and developmental abnormalities that are consistent with its predicted role in ribosome biogenesis.
细胞增殖阻滞(BOP)蛋白在真核生物中保守,在哺乳动物和酵母中的研究描述了它们在核糖体生物合成和细胞周期调控中的作用。在植物中鉴定出了BOP1的直系同源物,烟草细胞中的功能丧失分析证实了类似的活性。本报告描述了BOP1活性在植物中的作用。使用了两种转基因植物物种:二倍体草莓(野草莓)和拟南芥。FvBOP1沉默显示前体rRNA加工发生变化,并证明了FvBOP1在植物发育不同阶段的生长和生理中的作用。在草莓中,FvBOP1活性的抑制在开花前降低了植物适应性,随后在生殖转变后植物死亡,这表明BOP1活性是开花后恢复营养生长所必需的。AtBOP1基因的T-DNA无效等位基因是致死的,转录本积累减少50%足以导致与细胞分裂缺陷相关的严重发育缺陷。保守蛋白BOP1对生存能力至关重要。较低的转录本水平导致rRNA加工缺陷和发育异常,这与其在核糖体生物合成中的预测作用一致。