Jung Il Lae, Ryu Moonyoung, Cho Seok Keun, Shah Pratik, Lee Ju Hye, Bae Hansol, Kim In Gyu, Yang Seong Wook
Department of Radiation Biology, Environmental Radiation Research Group, Korea Atomic Energy Research Institute, Daejeon, 305-353, Republic of Korea.
Department of Plant and Environmental Sciences, Faculty of Science, University of Copenhagen, Thorvaldsensvej 40, DK-1871, Frederiksberg, Copenhagen, Denmark.
PLoS One. 2015 May 6;10(5):e0125514. doi: 10.1371/journal.pone.0125514. eCollection 2015.
MicroRNAs (miRNAs) are short RNA fragments that play important roles in controlled gene silencing, thus regulating many biological processes in plants. Recent studies have indicated that plants modulate miRNAs to sustain their survival in response to a variety of environmental stimuli, such as biotic stresses, cold, drought, nutritional starvation, and toxic heavy metals. Cesium and radio-cesium contaminations have arisen as serious problems that both impede plant growth and enter the food chain through contaminated plants. Many studies have been performed to define plant responses against cesium intoxication. However, the complete profile of miRNAs in plants during cesium intoxication has not been established. Here we show the differential expression of the miRNAs that are mostly down-regulated during cesium intoxication. Furthermore, we found that cesium toxicity disrupts both the processing of pri-miRNAs and AGONOUTE 1 (AGO1)-mediated gene silencing. AGO 1 seems to be especially destabilized by cesium toxicity, possibly through a proteolytic regulatory pathway. Our study presents a comprehensive profile of cesium-responsive miRNAs, which is distinct from that of potassium, and suggests two possible mechanisms underlying the cesium toxicity on miRNA metabolism.
微小RNA(miRNA)是短RNA片段,在可控基因沉默中发挥重要作用,从而调控植物中的许多生物学过程。最近的研究表明,植物会调节miRNA以在应对各种环境刺激(如生物胁迫、寒冷、干旱、营养饥饿和有毒重金属)时维持其生存。铯和放射性铯污染已成为严重问题,既阻碍植物生长,又通过受污染植物进入食物链。已经进行了许多研究来确定植物对铯中毒的反应。然而,铯中毒期间植物中miRNA的完整概况尚未确定。在这里,我们展示了在铯中毒期间大多下调的miRNA的差异表达。此外,我们发现铯毒性会破坏初级miRNA(pri-miRNA)的加工以及AGO1介导的基因沉默。AGO1似乎特别容易受到铯毒性的影响,可能是通过蛋白水解调节途径。我们的研究展示了铯反应性miRNA的全面概况,这与钾的不同,并提出了铯对miRNA代谢毒性的两种可能机制。