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Variation in MSRA modifies risk of neonatal intestinal obstruction in cystic fibrosis
Lindsay B Henderson1, Vishal K Doshi, Scott M Blackman
1McKusick-Nathans Institute of Genetic Medicine, Johns Hopkins University School of Medicine, Baltimore, Maryland, USA.
Insights
Meconium ileus (MI), a serious intestinal obstruction in cystic fibrosis (CF) newborns, is influenced by genetic factors. The MSRA gene was identified as a key modifier, potentially altering obstruction risk and improving survival in CF patients.
Area of Science:
- Genetics
- Molecular Biology
- Neonatology
Background:
- Meconium ileus (MI) is a severe intestinal obstruction in 15% of cystic fibrosis (CF) neonates.
- MI is a highly heritable condition, suggesting genetic modifiers play a significant role.
- Previous studies linked specific genetic loci to MI development.
Purpose of the Study:
- To investigate the genetic basis of meconium ileus in cystic fibrosis patients.
- To identify specific genes that modify the risk and severity of MI.
- To explore the biological mechanisms underlying MSRA's role in intestinal obstruction.
Main Methods:
- Regional family-based association analysis of a previously linked locus.
- SNP haplotype analysis within and upstream of the MSRA gene.
- Validation in an independent cohort of CF patients and in CF mouse models (Cftr(-/-)Msra(-/-)).
Main Results:
- Specific SNP haplotypes within and 5' to the MSRA gene were significantly associated with MI.
- A protective haplotype for MI was validated in an independent cohort of CF patients.
- Msra null alleles in CF mice reduced intestinal obstruction and improved survival.
Conclusions:
- MSRA is identified as a significant genetic modifier of meconium ileus in cystic fibrosis.
- MSRA, an antioxidant enzyme, may influence fetal intestinal proteolysis, impacting MI incidence.
- Understanding MSRA's role offers new insights into neonatal intestinal obstruction mechanisms in CF.
Abstract:
Meconium ileus (MI), a life-threatening intestinal obstruction due to meconium with abnormal protein content, occurs in approximately 15 percent of neonates with cystic fibrosis (CF). Analysis of twins with CF demonstrates that MI is a highly heritable trait, indicating that genetic modifiers are largely responsible for this complication. Here, we performed regional family-based association analysis of a locus that had previously been linked to MI and found that SNP haplotypes 5' to and within the MSRA gene were associated with MI (P = 1.99 × 10(-5) to 1.08 × 10(-6); Bonferroni P = 0.057 to 3.1 × 10(-3)). The haplotype with the lowest P value showed association with MI in an independent sample of 1,335 unrelated CF patients (OR = 0.72, 95% CI [0.53-0.98], P = 0.04). Intestinal obstruction at the time of weaning was decreased in CF mice with Msra null alleles compared to those with wild-type Msra resulting in significant improvement in survival (P = 1.2 × 10(-4)). Similar levels of goblet cell hyperplasia were observed in the ilea of the Cftr(-/-) and Cftr(-/-)Msra(-/-) mice. Modulation of MSRA, an antioxidant shown to preserve the activity of enzymes, may influence proteolysis in the developing intestine of the CF fetus, thereby altering the incidence of obstruction in the newborn period. Identification of MSRA as a modifier of MI provides new insight into the biologic mechanism of neonatal intestinal obstruction caused by loss of CFTR function.
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