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Protein-Truncating Variants at the Cholesteryl Ester Transfer Protein Gene and Risk for Coronary Heart Disease
Insights
Protein-truncating variants (PTVs) in the cholesteryl ester transfer protein (CETP) gene are linked to improved lipid profiles and reduced coronary heart disease (CHD) risk. This genetic insight may inform future CETP inhibition therapies.
Area of Science:
- Genetics and Cardiovascular Disease
- Pharmacogenomics
- Lipid Metabolism
Background:
- Cholesteryl ester transfer protein (CETP) inhibitors have shown limited success in reducing coronary heart disease (CHD) risk.
- Human genetic variants within the CETP gene offer a potential avenue to understand the efficacy of CETP inhibition.
Purpose of the Study:
- To investigate the association between protein-truncating variants (PTVs) in the CETP gene and plasma lipid levels.
- To determine if CETP PTVs are associated with a reduced risk of coronary heart disease (CHD).
Main Methods:
- Sequencing of CETP gene exons in 58,469 participants from 12 case-control studies.
- Definition of PTVs based on premature stop codons, splice site disruption, or frameshift mutations.
- Genotyping of a Japanese-specific PTV in an additional 27,561 participants.
- Statistical analysis of CETP PTV carrier status against plasma lipids and CHD risk.
Main Results:
- Approximately 1 in 975 participants carried a CETP PTV.
- CETP PTV carriers exhibited significantly higher high-density lipoprotein cholesterol (HDL-C), lower low-density lipoprotein cholesterol (LDL-C), and lower triglycerides compared to non-carriers.
- Carrier status for CETP PTVs was associated with a reduced risk of coronary heart disease (CHD).
Conclusions:
- Carriers of CETP PTVs demonstrate a more favorable plasma lipid profile, including elevated HDL-C and reduced LDL-C and triglycerides.
- The presence of CETP PTVs is linked to a significantly lower risk of developing coronary heart disease (CHD).
- These findings highlight the potential role of CETP genetic variations in cardiovascular health and may offer insights for therapeutic strategies.
Rationale:
Therapies that inhibit CETP (cholesteryl ester transfer protein) have failed to demonstrate a reduction in risk for coronary heart disease (CHD). Human DNA sequence variants that truncate the CETP gene may provide insight into the efficacy of CETP inhibition.
Objective:
To test whether protein-truncating variants (PTVs) at the CETP gene were associated with plasma lipid levels and CHD.
Methods And Results:
We sequenced the exons of the CETP gene in 58 469 participants from 12 case-control studies (18 817 CHD cases, 39 652 CHD-free controls). We defined PTV as those that lead to a premature stop, disrupt canonical splice sites, or lead to insertions/deletions that shift frame. We also genotyped 1 Japanese-specific PTV in 27561 participants from 3 case-control studies (14 286 CHD cases, 13 275 CHD-free controls). We tested association of CETP PTV carrier status with both plasma lipids and CHD. Among 58 469 participants with CETP gene-sequencing data available, average age was 51.5 years and 43% were women; 1 in 975 participants carried a PTV at the CETP gene. Compared with noncarriers, carriers of PTV at CETP had higher high-density lipoprotein cholesterol (effect size, 22.6 mg/dL; 95% confidence interval, 18-27; P<1.0×10-4), lower low-density lipoprotein cholesterol (-12.2 mg/dL; 95% confidence interval, -23 to -0.98; P=0.033), and lower triglycerides (-6.3%; 95% confidence interval, -12 to -0.22; P=0.043). CETP PTV carrier status was associated with reduced risk for CHD (summary odds ratio, 0.70; 95% confidence interval, 0.54-0.90; P=5.1×10-3).
Conclusions:
Compared with noncarriers, carriers of PTV at CETP displayed higher high-density lipoprotein cholesterol, lower low-density lipoprotein cholesterol, lower triglycerides, and lower risk for CHD.
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