BACKGROUND:The natural history of hypertension in healthy normotensive subjects has been described in the Framingham population. We aim to study the rate of progression to hypertension in normotensive subjects after acute myocardial infarction (AMI).METHODS:One hundred seventy-three consecutive normotensive subjects admitted to the Coronary Care Unit with AMI were studied retrospectively with prospective follow-up 4 years after AMI. All the patients who were not known to be diabetic on admission (n = 150) underwent glucose tolerance test (GTT) at 2 months after AMI.RESULTS:Among the 15 patients (8.7%) who developed hypertension, GTT was abnormal in 75% (diabetes = 3, impaired glucose tolerance = 9). There were significantly more Indo-Asians and fewer whites in the hypertensive than in the normotesive patients but they were similar in age and gender, creatinine kinase level, and rate of thrombolysis during admission for AMI. Multiple regression analysis showed that progression to hypertension was a function of the presence of anterior AMI on admission (P = .0297), abnormal GTT (P = .0156), and subsequent MI on follow-up (P = .0122), but was independent of age, gender, smoking habit, body weight, previous MI, thrombolysis, creatinine kinase level, subsequent development of heart failure, and intake of beta-adrenergic blockade or angiotensin-converting enzyme (ACE) inhibitor. Of the hypertensive patients, 47% (n = 7) died compared to 8% (n = 13) of the normotensive subjects (P < .0001).CONCLUSIONS:Progression to hypertension in normotensive subjects after AMI is determined by a combination of the site of the infarct, GTT 2 months after AMI, and subsequent development of a second MI. Systemic hypertension after AMI is associated with a high mortality.
BACKGROUND:Diabetes mellitus (DM) and impaired glucose tolerance (IGT) are not uncommonly associated with hypertension. Fasting blood glucose level is still recognized as an indicator of DM. METHODS:We studied 99 consecutive patients who were not known to be diabetic patients and with no cardiac history, who were attending our Hypertension Clinic for investigation and management of uncontrolled blood pressure (BP). Oral glucose tolerance test (GTT) was carried out and area under the curve for the GTT (AUC-glucose) was calculated. All patients underwent 24-h ambulatory BP monitoring. RESULTS:The GTT was abnormal in 58 patients (58%), indicating IGT in 18, impaired fasting glucose in 16, and DM in 24. The fasting and 120-min glucose level and AUC-glucose in patients with DM on GTT was higher (P <.0001) than in those with IGT/IFG and in the latter was higher than those with normal GTT. Multiple regression analysis showed that abnormal GTT was independent of the following: level of clinic or ambulatory BP; presence or absence of nocturnal BP dip; cholesterol, sodium, and potassium levels; smoking history; alcohol intake; prior treatment for hypertension; and ethnicity. These results were also independent of antihypertensive medications taken. No significant difference was found in glucose level during GTT, AUC-glucose, or age among the groups of patients receiving diuretics only, those receiving diuretics and beta-blockers, and those not receiving any of these agents. CONCLUSIONS:The prevalence of glucose abnormalities in hypertensive patients attending a hospital hypertension clinic is sufficiently high to warrant screening for DM and IGT, and fasting glucose levels are not accurate enough for this purpose. All patients attending such a clinic should undergo a GTT.
Isometric exercise (IME) produces significant hemodynamic changes in the cardiovascular system. We have used IME to study the effect of age on diastolic left ventricular (LV) function in 100 normal volunteers. The E/A ratio (peak velocity of early/atrial filling phases), deceleration time (DT), and isovolumic relaxation time (IVRT) of the transmitral flow were assessed during echocardiography with pulsed-Doppler ultrasound at rest and at peak IME using handgrip. LV mass index (LVMI) and LV ejection fraction (LVEF) were also calculated.
Isometric exercise (IME) produces significant hemodynamic changes in the cardiovascular system. We have used IME to study the effect of age on diastolic left ventricular (LV) function in 100 normal volunteers. The E/A ratio (peak velocity of early/atrial filling phases), deceleration time (DT), and isovolumic relaxation time (IVRT) of the transmitral flow were assessed during echocardiography with pulsed-Doppler ultrasound at rest and at peak IME using handgrip. LV mass index (LVMI) and LV ejection fraction (LVEF) were also calculated. Both E/A and IVRT reduced significantly with increasing age. The LVEF decreased (P <.0001), whereas LVMI increased (P <.05) with advancing age. The LVEF was inversely related to LVMI (P <.05). An inverse relationship was noted between E/A and LVMI (P <.01) during IME. The contribution of the atrial contraction to the total diastolic flow increased significantly with advancing age (P <.02) and increased from 0.29 +/- 0.04 at rest to 0.34 +/- 0.08 during IME (P <.0001). It is concluded that with progressing age, the left ventricle becomes stiffer resulting in a reduction in early filling and a compensatory increase in flow due to atrial contraction. A progressive increase in LVMI, which accompanies aging may contribute to stiffening of the left ventricle and deterioration in diastolic function of the left ventricle. This is exaggerated by IME.