Iridovirus and Microsporidian Linked to Honey Bee Colony Decline
Open Access
- 6 October 2010
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLOS ONE
- Vol. 5 (10) , e13181
- https://doi.org/10.1371/journal.pone.0013181
Abstract
In 2010 Colony Collapse Disorder (CCD), again devastated honey bee colonies in the USA, indicating that the problem is neither diminishing nor has it been resolved. Many CCD investigations, using sensitive genome-based methods, have found small RNA bee viruses and the microsporidia, Nosema apis and N. ceranae in healthy and collapsing colonies alike with no single pathogen firmly linked to honey bee losses. We used Mass spectrometry-based proteomics (MSP) to identify and quantify thousands of proteins from healthy and collapsing bee colonies. MSP revealed two unreported RNA viruses in North American honey bees, Varroa destructor-1 virus and Kakugo virus, and identified an invertebrate iridescent virus (IIV) (Iridoviridae) associated with CCD colonies. Prevalence of IIV significantly discriminated among strong, failing, and collapsed colonies. In addition, bees in failing colonies contained not only IIV, but also Nosema. Co-occurrence of these microbes consistently marked CCD in (1) bees from commercial apiaries sampled across the U.S. in 2006–2007, (2) bees sequentially sampled as the disorder progressed in an observation hive colony in 2008, and (3) bees from a recurrence of CCD in Florida in 2009. The pathogen pairing was not observed in samples from colonies with no history of CCD, namely bees from Australia and a large, non-migratory beekeeping business in Montana. Laboratory cage trials with a strain of IIV type 6 and Nosema ceranae confirmed that co-infection with these two pathogens was more lethal to bees than either pathogen alone. These findings implicate co-infection by IIV and Nosema with honey bee colony decline, giving credence to older research pointing to IIV, interacting with Nosema and mites, as probable cause of bee losses in the USA, Europe, and Asia. We next need to characterize the IIV and Nosema that we detected and develop management practices to reduce honey bee losses.Keywords
This publication has 39 references indexed in Scilit:
- Double-Blind Characterization of Non-Genome-Sequenced Bacteria by Mass Spectrometry-Based ProteomicsApplied and Environmental Microbiology, 2010
- High Levels of Miticides and Agrochemicals in North American Apiaries: Implications for Honey Bee HealthPLOS ONE, 2010
- Changes in transcript abundance relating to colony collapse disorder in honey bees ( Apis mellifera )Proceedings of the National Academy of Sciences, 2009
- Colony Collapse Disorder: A Descriptive StudyPLOS ONE, 2009
- The use of RNA-dependent RNA polymerase for the taxonomic assignment of Picorna-like viruses (order Picornavirales) infecting Apis mellifera L. populationsVirology Journal, 2008
- Induction of apoptosis by iridovirus virion protein extractArchiv für die gesamte Virusforschung, 2007
- Prevalence and Phylogeny of Kakugo Virus, a Novel Insect Picorna-Like Virus That Infects the Honeybee ( Apis mellifera L.), under Various Colony ConditionsJournal of Virology, 2006
- Genome of Invertebrate Iridescent Virus Type 3 (Mosquito Iridescent Virus)Journal of Virology, 2006
- Mass spectrometry-based proteomicsNature, 2003
- Empirical Statistical Model To Estimate the Accuracy of Peptide Identifications Made by MS/MS and Database SearchAnalytical Chemistry, 2002