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  4. Differential degradation of RNA species by autophagy related pathways in plants
 
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2019
Paper (Preprint, Research Paper, Review Paper, White Paper, etc.)
Title

Differential degradation of RNA species by autophagy related pathways in plants

Title Supplement
Published on bioRxiv - the preprint server for biology
Abstract
An important function of the plant vacuole is the recycling of the delivered proteins and RNA by autophagy. We provide the first plant vacuolar small RNome by isolation of intact vacuoles from Barley and Arabidopsis, subsequent RNA purification and Next Generation Sequencing. In these vacuolar sRNomes, all types of cellular RNAs were found including those of chloroplast origin, suggesting a bulk-type of RNA transfer to, and breakdown in vacuoles. ATG5 is a major representative of autophagy genes and the vacuolar RNA composition in corresponding knockout plants differed clearly from controls as most chloroplast derived RNA species were missing. Moreover, the read length distribution of RNAs found in ATG5 mutants differed to control samples, indicating altered RNA processing. In contrast, vacuolar RNA length and composition of plants lacking the vacuolar RNase2 (rns2-2), involved in cellular RNA homeostasis, showed minor alterations, only. Our data therefore suggests that mainly autophagy components are responsible for selective transport and targeting of different RNA species into the vacuole for degradation. In addition, mature miRNAs were detected in all vacuolar preparations, however in ATG5 mutants at much lower frequency, indicating a new biological role for vacuolar miRNAs apart from becoming degraded.
Author(s)
Hickl, Daniel
Department of Biology, Plant Physiology, University of Kaiserslautern
Drews, Franziska
Department of Biology, Molecular Cell Biology, Wuppertal University; Molecular Cell Dynamics, Saarland University
Girke, Christopher
Department of Biology, Plant Physiology, University of Kaiserslautern
Zimmer, David
Department of Biology, Computational Systems Biology, University of Kaiserslautern
Mühlhaus, Timo
Department of Biology, Computational Systems Biology, University of Kaiserslautern
Hauth, Jan  
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Nordström, Karl
Department of Genetics, Saarland University
Trentmann, Oliver
Department of Biology, Plant Physiology, University of Kaiserslautern
Neuhaus, Ekkehard
Department of Biology, Plant Physiology, University of Kaiserslautern
Fehlmann, Tobias
Chair for Clinical Bioinformatics, Saarland University
Keller, Andreas
Chair for Clinical Bioinformatics, Saarland University; Stanford, School of Medicine
Simon, Martin
Department of Biology, Molecular Cell Biology, Wuppertal University
Möhlmann, Torsten
Department of Biology, Plant Physiology, University of Kaiserslautern
Funder
Bundesministerium für Bildung und Forschung BMBF (Deutschland)  
Open Access
DOI
10.1101/793950
Language
English
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Keyword(s)
  • vacuole

  • RNase

  • ATG5

  • RNA sequencing

  • barley

  • Arabidopsis

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