Related Experiment Video
Updated: Jul 3, 2026

Novel RNA-Binding Proteins Isolation by the RaPID Methodology
Published on: September 30, 2016
Identification of receptor-binding protein and host receptor of non-lytic dsRNA phage phiNY
Guoqing Ding1,2, Hongmei Liu1,2, Jing Lan1
1School of Public Health, the key Laboratory of Environmental Pollution Monitoring and Disease Control, Ministry of Education, Guizhou Medical University, Guiyang, China.
Abstract:
To date, complete genome sequences of 14 double-stranded RNA (dsRNA) phages are available, and studies have shown that the host range of dsRNA phages is limited. The hosts of most dsRNA phages belong to the genus Pseudomonas. However, the dsRNA phage phiNY, which has a non-lytic life cycle, was isolated from Microvirgula aerodenitrificans. Currently, the interaction between dsRNA phage phiNY and its host bacteria is unclear, which is not beneficial to a comprehensive understanding of dsRNA phage biology and the exploitation of dsRNA phage with non-lytic life cycle for biomedical applications and others. Phage adsorption is a crucial step through the interactions between receptor-binding protein (RBP) of the phage and its receptors to initiate the infection process, which dictates host range specificity. Thus, we identified the RBP and host receptor of phiNY. Through homology alignment, amino acid sequence similarity analysis, and the phylogenetic tree analysis, orf11, located in the M-segment of dsRNA phage phiNY, encodes a putative RBP. We further performed the whole-cell enzyme-linked immunosorbent assay (ELISA), western blotting assay, and indirect immunofluorescence assay and demonstrated that this orf11 is an RBP. Finally, using affinity chromatography, ELISA, and dynamic light scattering, we identified lipopolysaccharides (LPSs) on the surface of the host M. aerodenitrificans strain LH9 as host receptors involved in the adsorption of the dsRNA bacteriophage phiNY and observed the state of phiNY RBP after combining with LPS by atomic force microscopy. These results will guide future studies on phage-host interaction in a dsRNA phage with a non-lytic life cycle.IMPORTANCEThe interactions between the lytic dsRNA phages and their host receptors have been clarified in previous studies. However, the interaction between the dsRNA phage phiNY (which has a non-lytic life cycle) and its host receptors during the dsRNA phage adsorption process was unknown. Here, we found that phiNY uses the orf11 protein as a receptor-binding protein (RBP). In addition, we found that this orf11 recognizes lipopolysaccharide from the host bacterium Microvirgula aerodenitrificans strain LH9 as a specific receptor. These results suggest that phiNY, like lytic dsRNA phages, uses an RBP to bind to a similar host receptor (i.e., lipopolysaccharide). Determining the interaction between the dsRNA phage phiNY and its host receptors will help to elucidate the mechanisms underlying the phiNY non-lytic life cycle and enhance our understanding of its infection mechanism.
Insights
The double-stranded RNA (dsRNA) phage phiNY uses its orf11 protein as a receptor-binding protein (RBP) to attach to lipopolysaccharides (LPSs) on Microvirgula aerodenitrificans. This clarifies phage-host interactions for non-lytic dsRNA phages.
Area of Science:
- Microbiology
- Virology
- Molecular Biology
Background:
- Limited host range is characteristic of double-stranded RNA (dsRNA) phages, with most infecting Pseudomonas.
- The dsRNA phage phiNY, isolated from Microvirgula aerodenitrificans, possesses a non-lytic life cycle, and its host interactions remain poorly understood.
- Understanding phage-host interactions is crucial for comprehending dsRNA phage biology and exploring applications of non-lytic phages.
Purpose of the Study:
- To identify the receptor-binding protein (RBP) of the dsRNA phage phiNY.
- To determine the specific host receptor utilized by phiNY for adsorption.
- To elucidate the molecular basis of host-phage interaction in a non-lytic dsRNA phage.
Main Methods:
- Homology alignment, amino acid similarity analysis, and phylogenetic tree construction to identify putative RBP.
- Whole-cell ELISA, western blotting, and indirect immunofluorescence assays to confirm RBP function.
- Affinity chromatography, ELISA, and dynamic light scattering to identify host receptors and atomic force microscopy to visualize RBP-receptor binding.
Main Results:
- Orf11, located on the M-segment of phiNY, was identified as the putative receptor-binding protein (RBP).
- Experimental assays confirmed orf11's role as the RBP responsible for phage adsorption.
- Lipopolysaccharides (LPSs) on the surface of M. aerodenitrificans strain LH9 were identified as the specific host receptors for phiNY.
Conclusions:
- The dsRNA phage phiNY employs the orf11 protein as its RBP, which recognizes lipopolysaccharides (LPSs) on M. aerodenitrificans.
- This finding indicates that phiNY utilizes an RBP-LPS interaction, similar to lytic dsRNA phages, for host cell adsorption.
- Elucidating these interactions provides insight into the non-lytic life cycle of phiNY and its infection mechanisms.
Related Concept Videos
DNA Bacteriophages
Inhibitors Of Virion Release

