Abstract

Sugarcane Bacilliform Guadeloupe A Virus (SCBGAV, genus Badnavirus, family Caulimoviridae) is an emerging, deleterious pathogen of sugarcane which presents a substantial barrier to producing high sugarcane earnings. Sugarcane bacilliform viruses (SCBVs) are one of the main species that infect sugarcane. During the last 30 years, significant genetic changes in SCBV strains have been observed with a high risk of disease incidence associated with crop damage. SCBV infection may lead to significant losses in biomass production in susceptible sugarcane cultivars. The circular, double-stranded (ds) DNA genome of SCBGAV (7.4 Kb) is composed of three open reading frames (ORFs) on the positive strand that replicate by a reverse transcriptase. SCBGAV can infect sugarcane in a semipersistent manner via the insect vectors sugarcane mealybug species. In the current study, we used miRNA target prediction algorithms to identify and comprehensively analyze the genome-wide sugarcane (Saccharum officinarum L.)-encoded microRNA (miRNA) targets against the SCBGAV. Mature miRNA target sequences were retrieved from the miRBase (miRNA database) and were further analyzed for hybridization to the SCBGAV genome. Multiple computational approaches—including miRNA-target seed pairing, multiple target positions, minimum free energy, target site accessibility, maximum complementarity, pattern recognition and minimum folding energy for attachments—were considered by all algorithms. Among them, sof-miR396 was identified as the top effective candidate, capable of targeting the vital ORF3 of the SCBGAV genome. miRanda, RNA22 and RNAhybrid algorithms predicted hybridization of sof-miR396 at common locus position 3394. The predicted sugarcane miRNAs against viral mRNA targets possess antiviral activities, leading to translational inhibition by mRNA cleavage. Interaction network of sugarcane-encoded miRNAs with SCBGAV genes, created using Circos, allow analyze new targets. The finding of the present study acts as a first step towards the creation of SCBGAV-resistant sugarcane through the expression of the identified miRNAs.

Highlights

  • Sugarcane bacilliform virus (SCBV, genus: Badnavirus, family Caulimoviridae) is a circular, non-enveloped bacilliform, monopartite DNA virus that harbors about 7.5 kb doublestranded DNA with three open reading frames (ORFs) (Sun et al, 2016)

  • RNAhybrid is a unique algorithm which determines miRNA and mRNA hybridization using following unique parameters (Krüger & Rehmsmeier, 2006). This algorithm is applied to calculate (MFE) minimum free energy and mode of target inhibition suggested as per the Brodersen et al (2008) conclusion. psRNATarget is the most widely used plant miRNA target prediction tool which deals with a large set of data

  • These predicted miRNAs were identified after setting the parameters of Minimum free energy (MFE), seed pairing, target site accessibility, folding energy and pattern recognition, using key features of miRNA target prediction

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Summary

Introduction

Sugarcane bacilliform virus (SCBV, genus: Badnavirus, family Caulimoviridae) is a circular, non-enveloped bacilliform, monopartite DNA virus that harbors about 7.5 kb doublestranded (ds) DNA with three open reading frames (ORFs) (Sun et al, 2016). SCBVs are highly endemic in S. officinarum germplasm These viruses can infect commercial sugarcane (Saccharum interspecific hybrids), S. barberi, S. robustum, S. spontaneum and S. sinensis (Lockhart, Ireyt & Comstock, 1996). Four distinct SCBV species have been classified by the International Committee on Taxonomy of Viruses (ICTV) These are Sugarcane Bacilliform Guadeloupe A Virus (SCBGAV), Sugarcane Bacilliform Guadeloupe D Virus (SCBGDV) Sugarcane bacilliform MO virus (SCBMOVMOR) and Sugarcane bacilliform IM virus (SCBIMV-QLD) originating from Guadeloupe, Morocco and Australia, respectively (Adams & Carstens, 2012; Adams et al, 2016; Bouhida, Lockhart & Olszewski, 1993; Geijskes et al, 2002; Muller et al, 2011)

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