Chair of Plant Physiology and Biotechnology, Nicolaus Copernicus University, 1 Lwowska Street, 87-100, Toruń, Poland.
Department of Plant Physiology, Warsaw University of Life Sciences-SGGW (WULS-SGGW), Nowoursynowska 166 Street, 02-787, Warsaw, Poland.
Protoplasma. 2019 Sep;256(5):1173-1183. doi: 10.1007/s00709-019-01365-3. Epub 2019 Apr 16.
The phenomenon of excessive flower abscission in yellow lupine is a process of substantial interest to the agricultural industries, because it substantially affects the yield. The aim of this work was to provide an analysis of the changes taking place precisely in the abscission zone (AZ) during early stages of flower separation. We put particular emphasis on mRNA accumulation of BOP (BLADE ON PETIOLE) gene encoding a transcriptional factor so far considered to be essential for AZ formation. Our results show that the AZ displays a particular transcriptional network active in the specific stages of its function, as reflected by the expression profile of LlBOP. Noteworthy, spatio-temporal LlBOP transcript accumulation in the elements of pedicel vascular tissue reveals divergent regulatory mechanism of its activity. We have also found that AZ cells accumulate reactive oxidative species following abscission and what is more, become active due to the increasing amount of uridine-rich small nuclear RNA, accompanied by poly(A) mRNA intensive synthesis. Our paper is a novel report for BOP involvement in the AZ functioning in relation to the whole transcriptional activity of AZ and overall discussed regarding BOP role as a potential mobile key regulator of abscission.
黄花羽扇豆落花过多是农业产业非常关注的现象,因为它会极大地影响产量。本工作旨在分析花分离早期脱落区 (AZ) 中发生的确切变化。我们特别强调了编码转录因子的 BOP(叶柄上的叶片)基因的 mRNA 积累,该基因迄今为止被认为是 AZ 形成所必需的。我们的结果表明,AZ 显示出在其功能特定阶段活跃的特定转录网络,这反映在 LlBOP 的表达谱上。值得注意的是,LlBOP 转录本在花梗维管束组织元素中的时空积累揭示了其活性的不同调节机制。我们还发现,AZ 细胞在脱落后积累活性氧,并且由于富含尿嘧啶的小核 RNA 的增加,AZ 细胞变得活跃,同时伴随着聚(A)mRNA 的强烈合成。我们的论文是关于 BOP 参与与 AZ 整体转录活性有关的 AZ 功能的新报告,并总体上讨论了 BOP 作为脱落的潜在移动关键调节剂的作用。