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Kazumi Akasaka

Publications and source records attributed to Kazumi Akasaka.

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Hyperinsulinemia is an independent predictor for complex atherosclerotic lesion of thoracic aorta in non-diabetic patients.

OBJECTIVE: Hyperinsulinemia is a well known risk factor for cardiovascular event. However, it is not known whether hyperinsulinemia facilitates atherosclerotic complex lesions of aorta in non-diabetic patients. We investigated whether hyperinsulinemia is an independent marker of severity of atherosclerosis in thoracic aorta of non-diabetic patients using multiplane transesophageal echocardiography (TEE). RESEARCH DESIGN AND METHODS: Non-diabetic 90 patients with cardiovascular disease underwent TEE, and were analyzed for plasma insulin levels of oral glucose tolerance test, conventional atherosclerotic risk factors and coronary angiographic features. RESULTS: Thoracic aortic plaques were detected in 84 patients (93%). The complex atherosclerotic lesions were observed in 35 (39%) patients, most frequently at the part of aortic arch (p<0.005), showing the greatest atheroma score in thoracic aorta (p<0.05). Univariate analysis showed age, male gender, smoking, coronary artery disease, HDL-cholesterol, insulin levels in glucose tolerance test and homeostasis model assessment insulin resistance index (HOMA index) were found to be significant predictors of complex atherosclerotic lesions. Multivariate regression analysis revealed that HOMA index was an independent predictor of complex atherosclerotic lesions (odds ratio 1.93, p=0.006). There was a significant positive correlation between HOMA index and the atheroma score of thoracic aorta (p<0.001). CONCLUSIONS: Hyperinsulinemia is an independent predictor of complex atherosclerotic lesions detected by TEE in the thoracic aorta of non-diabetic patients.

Aged↗

Homocysteine promotes p38-dependent chemotaxis in bovine aortic smooth muscle cells.

OBJECTIVE: Increased levels of homocysteine in the blood are a risk factor for atherosclerosis. The purpose of this study was to examine the effects of homocysteine on smooth muscle cell (SMC) migration and to determine whether p38 was involved in this process. METHODS: The effect of 0.5 to 2.0 mmol/L d , l -homocysteine as a chemoattractant for SMCs was assayed with a modified Boyden chamber. To determine the functional role of p38 in SMC chemotaxis induced by d , l -homocysteine, we treated SMCs with a p38 inhibitor, SB203580, before the assay. RESULTS: The number of migrated cells was increased 7.0 +/- 1.2-fold (n = 15; P < .001) by 2.0 mmol/L d , l -homocysteine. SB203580 partially prevented the migration of SMCs toward homocysteine. Preconditioning SMCs with 2.0 mmol/L d , l -homocysteine significantly enhanced chemotaxis toward 10% fetal bovine serum compared with nonconditioned control SMCs (28.9 +/- 3.3-fold vs 15.6 +/- 2.8-fold; P < .05). There was a fourfold p38 activation after exposure of SMCs to 2.0 mmol/L d , l -homocysteine by immunoblot. CONCLUSIONS: These results suggest that homocysteine not only is a chemoattractant for SMC but can also enhance SMC chemotactic potential. The mechanism of these effects may involve p38 activation. CLINICAL RELEVANCE: This study demonstrates that homocysteine can promote chemotaxis of SMCs through a p38-dependent pathway. To our knowledge, this is the first report that homocysteine may influence SMC chemotaxis. It may be an important mechanism for homocysteine-induced atherogenesis, because the migration of SMCs from the media is believed to play a critical role in progressive intimal thickening. Although homocysteine promotes atherogenesis and thrombosis by a variety of mechanisms, the effects of homocysteine on SMC proliferation and migration might be critical elements that may have potential therapeutic implications, because selective blockade of the p38 pathway is feasible.

Animals↗

[Heart failure].

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Arteriosclerosis↗