Skip to main navigation Skip to search Skip to main content

The RNA strands of the plus and minus polarities of peach latent mosaic viroid fold into different structures

  • Audrey Dubé
  • , Tilman Baumstark
  • , Martin Bisaillon
  • , Jean Pierre Perreault
  • Université de Sherbrooke

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

It is believed that peach latent mosaic viroid (PLMVd) strands of both the plus and minus polarities fold into similar secondary and tertiary structures. In order to verify this hypothesis, the behavior of both strands in three biophysical assays was examined. PLMVd transcripts of plus and minus polarity were found to exhibit distinct electrophoretic mobility properties under native conditions, to precipitate differently in the presence of lithium chloride, and to possess variable thermal denaturation profiles. Subsequently, the structure of PLMVd transcripts of minus polarity was elucidated by biochemical methods, thereby permitting comparison to the known structure of the plus polarity. Specifically, enzymatic probing, electrophoretic mobility shift assay, and ribonuclease H hydrolysis were performed in order to resolve the secondary structure of the minus polarity. The left domains of the strands of both polarities appear to be similar, while the right domain exhibited several differences even though they both adopted a branched structure. The pseudoknot P8 formed in the plus strand seemed not formed in the minus strands. The structural differences between the two polarities might have important implications in various steps of the PLMVd life cycle. Published by Cold Spring Harbor Laboratory Press.

Original languageEnglish
Pages (from-to)463-473
Number of pages11
JournalRNA
Volume16
Issue number3
DOIs
StatePublished - Mar 2010

Keywords

  • Circular RNA
  • Probing
  • Pseudoknot
  • RNA structure
  • Viroid

Fingerprint

Dive into the research topics of 'The RNA strands of the plus and minus polarities of peach latent mosaic viroid fold into different structures'. Together they form a unique fingerprint.

Cite this