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Updated: Jan 21, 2026

Confocal Imaging of Double-Stranded RNA and Pattern Recognition Receptors in Negative-Sense RNA Virus Infection
Published on: January 26, 2019
Double-Stranded RNA Is a Novel Molecular Target in Osteomyelitis Pathogenesis: A Translational Avian Model for Human
Elizabeth Greene1, Joshua Flees1, Ahmed Dhamad1
1Center of Excellence for Poultry Science, University of Arkansas, Fayetteville, Arkansas.
Abstract:
Osteomyelitis remains a serious inflammatory bone disease that affects millions of individuals worldwide and for which there is no effective treatment. Despite scientific evidence that Staphylococcus bacteria are the most common causative species for human bacterial chondronecrosis with osteomyelitis (BCO), much remains to be understood about the underlying virulence mechanisms. Herein, we show increased levels of double-stranded RNA (dsRNA) in infected bone in a Staphylococcus-induced chicken BCO model and in human osteomyelitis samples. Administration of synthetic [poly(I:C)] or genetic (Alu) dsRNA induces human osteoblast cell death. Similarly, infection with Staphylococcus isolated from chicken BCO induces dsRNA accumulation and cell death in human osteoblast cell cultures. Both dsRNA administration and Staphylococcus infection activate NACHT, LRR and PYD domains-containing protein (NLRP)3 inflammasome and increase IL18 and IL1B gene expression in human osteoblasts. Pharmacologic inhibition with Ac-YVAD-cmk of caspase 1, a critical component of the NLRP3 inflammasome, prevents DICER1 dysregulation- and dsRNA-induced osteoblast cell death. NLRP3 inflammasome and its components are also activated in bone from BCO chickens and humans with osteomyelitis, compared with their healthy counterparts. These findings provide a rationale for the use of chicken BCO as a human-relevant spontaneous animal model for osteomyelitis and identify dsRNA as a new treatment target for this debilitating bone pathogenesis.
Insights
Double-stranded RNA (dsRNA) accumulation is a key factor in Staphylococcus-induced osteomyelitis, triggering cell death and inflammation. Targeting dsRNA presents a promising new therapeutic strategy for this serious bone infection.
Area of Science:
- Bone Biology
- Immunology
- Microbiology
Background:
- Osteomyelitis is a severe bone infection with limited treatment options.
- Staphylococcus bacteria are primary causative agents, but virulence mechanisms are not fully understood.
Purpose of the Study:
- Investigate the role of double-stranded RNA (dsRNA) in Staphylococcus-induced osteomyelitis.
- Identify potential therapeutic targets for bacterial chondronecrosis with osteomyelitis (BCO).
Main Methods:
- Analyzed dsRNA levels in infected bone from a chicken BCO model and human samples.
- Administered synthetic and genetic dsRNA to human osteoblasts.
- Infected human osteoblasts with Staphylococcus.
- Assessed inflammasome activation (NLRP3) and cytokine expression (IL18, IL1B).
- Utilized caspase 1 inhibitor (Ac-YVAD-cmk) to evaluate dsRNA's role in cell death.
Main Results:
- Increased dsRNA levels were observed in infected bone and human osteomyelitis samples.
- dsRNA administration and Staphylococcus infection induced osteoblast cell death.
- Both dsRNA and Staphylococcus activated the NLRP3 inflammasome, increasing IL18 and IL1B expression.
- Caspase 1 inhibition prevented dsRNA-induced osteoblast cell death.
Conclusions:
- The chicken BCO model is relevant for studying human osteomyelitis.
- dsRNA is a critical mediator of osteoblast cell death in osteomyelitis.
- dsRNA represents a novel therapeutic target for osteomyelitis treatment.
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