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Published on: August 20, 2019
Recessive coding and regulatory mutations in FBLIM1 underlie the pathogenesis of chronic recurrent multifocal
Allison J Cox1,2, Benjamin W Darbro1,2, Ronald M Laxer3
1Department of Pediatrics, The University of Iowa, Iowa City, IA, United States of America.
Abstract:
Chronic recurrent multifocal osteomyelitis (CRMO) is a rare, pediatric, autoinflammatory disease characterized by bone pain due to sterile osteomyelitis, and is often accompanied by psoriasis or inflammatory bowel disease. There are two syndromic forms of CRMO, Majeed syndrome and DIRA, for which the genetic cause is known. However, for the majority of cases of CRMO, the genetic basis is unknown. Via whole-exome sequencing, we detected a homozygous mutation in the filamin-binding domain of FBLIM1 in an affected child with consanguineous parents. Microarray analysis of bone marrow macrophages from the CRMO murine model (cmo) determined that the Fblim1 ortholog is the most differentially expressed gene, downregulated over 20-fold in the cmo mouse. We sequenced FBLIM1 in 96 CRMO subjects and found a second proband with a novel frameshift mutation in exon 6 and a rare regulatory variant. In SaOS2 cells, overexpressing the regulatory mutation showed the flanking region acts as an enhancer, and the mutation ablates enhancer activity. Our data implicate FBLIM1 in the pathogenesis of sterile bone inflammation and our findings suggest CRMO is a disorder of chronic inflammation and imbalanced bone remodeling.
Insights
Researchers identified mutations in the FBLIM1 gene as a potential cause of Chronic Recurrent Multifocal Osteomyelitis (CRMO), a rare pediatric bone disease. This discovery sheds light on the genetic basis of CRMO and sterile bone inflammation.
Area of Science:
- Genetics
- Immunology
- Pediatrics
Background:
- Chronic Recurrent Multifocal Osteomyelitis (CRMO) is a rare pediatric autoinflammatory bone disease.
- Known genetic causes exist for syndromic CRMO (Majeed syndrome, DIRA), but most cases remain genetically undefined.
Observation:
- Whole-exome sequencing identified a homozygous FBLIM1 mutation in a CRMO patient.
- The Fblim1 gene was significantly downregulated in a murine model of CRMO.
- A second CRMO patient presented with a novel FBLIM1 frameshift mutation and a regulatory variant.
Findings:
- The identified FBLIM1 mutations implicate the gene in CRMO pathogenesis.
- A regulatory variant in FBLIM1 demonstrated ablation of enhancer activity in cell models.
- FBLIM1 is strongly implicated in the sterile bone inflammation characteristic of CRMO.
Implications:
- These findings suggest CRMO may stem from chronic inflammation and disrupted bone remodeling.
- FBLIM1 mutations represent a newly identified genetic cause for CRMO.
- Further research into FBLIM1's role could lead to new diagnostic and therapeutic strategies for CRMO.
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