Key result
Coronary tortuosity links to ~14-fold higher hypertension odds, increased CIMT, hyperlipidemia, and LV diastolic dysfunction.
Why the study?
Data are conflicting regarding the link between coronary tortuosity and atherosclerosis, despite its known associations with age and hypertension.
Is coronary tortuosity associated with increased carotid intima-media thickness, diastolic dysfunction, and CAD risk factors in patients without significant CAD?
Case-Control (n=60)
No
Is coronary tortuosity associated with increased carotid intima-media thickness, diastolic dysfunction, and CAD risk factors in patients without significant CAD?
Effect estimate: OR 14.7 (95% CI 3.5-62.1)
Absolute Event Rate: 86.7% vs 30%
p-value: p=<0.001
Coronary tortuosity is associated with early atherosclerotic markers including increased carotid intima-media thickness, hypertension, hyperlipidemia, and diastolic dysfunction.
Hypothesis-generating for coronary tortuosity as early atherosclerosis marker; prospective studies needed before clinical adoption.
BACKGROUND: Coronary tortuosity (C-Tor) is a common finding in coronary angiography (CAG). There are conflicting data about its link to atherosclerosis: one study found a negative relationship with coronary artery disease (CAD), although it had been linked to age and hypertension (HTN), which are CAD risk factors. Carotid intima-media thickness (C-IMT) is a measure of early atherosclerosis and a surrogate for CAD, diastolic dysfunction is also associated with CAD risk factors. In this retrospective case-control study, we investigated the relationship between C-Tor, C-IMT, diastolic dysfunction, and the other risk factors in patients undergoing CAG in a tertiary hospital between July 2017 and June 2018, after excluding patients with significant CAD. C-Tor was defined as the presence of ≥ 3 bends (≥ 45°) along the trunk of at least one main coronary artery in CAG. RESULTS: After excluding 663 patients due to exclusion criteria, 30 patients with C-Tor were compared with age and gender-matched controls. HTN was significantly more common in the C-Tor group (86.7% vs. 30%, p < 0.002); other clinical characteristics were similar. The C-IMT was abnormal in the C-Tor group only (p: 0.007). The diastolic dysfunction parameters differed between the two groups: the E/A ratio was < 1 in the C-Tor group and > 1 in the normal group (p: < 0.001); the E velocity and deceleration time were significantly lower in the C-Tor group (p: 0.001 and < 0.001 respectively); the E/E' ratio, A, and A' velocities were significantly higher (p: 0.005, < 0.001, < 0.001 respectively); while the S' velocity was similar in the 2 groups (p: 0.078). The C-Tor group had higher total cholesterol and LDL (p: 0.003 and 0.006 respectively). All C-Tor patients undergoing stress tests had positive results. The only independent C-Tor predictors in a regression analysis were HTN, total cholesterol, A-wave velocity, and deceleration time (DT) (odds ratio: 14.7, 1.03, 1.15, and 0.95, all p: < 0.05). A-wave velocity had the best area under the curve, sensitivity, and specificity for C-Tor prediction (0.88, 73.3%, and 96.7% respectively) followed by DT (0.86, 66.67%, and 96.6% respectively). CONCLUSION: C-Tor is associated with increased C-IMT, HTN, hyperlipidemia, and left ventricular diastolic dysfunction; all contributing to an ongoing atherosclerotic process. A-wave velocity and DT were independent predictors of C-Tor. C-Tor may cause microvascular ischemia that merits further investigation.
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Elamragy et al. (2021) conducted a case-control in Coronary tortuosity (n=60). Coronary tortuosity vs. Normal coronaries was evaluated on Hypertension (OR 14.7, 95% CI 3.5-62.1, p=<0.001). Coronary tortuosity is independently associated with hypertension (OR 14.7), increased carotid intima-media thickness, hyperlipidemia, and left ventricular diastolic dysfunction.
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