Calcified lesion is a risk factor for adverse events, even in the drug-eluting stent (DES) era. Recently, drug-coated balloon (DCB) has been shown to have favourable results for in-stent restenosis and small vessels, but its results for calcified lesions are unknown. This study aimed to clarify the rotational atherectomy (RA) and DCB results for calcified lesions of nonsmall vessels. A total of 194 consecutive de novo lesions from 165 cases underwent RA for calcified lesions of nonsmall vessels between January 2016 and August 2018 in a single centre. Overall, 8 cases/10 lesions were excluded because of RA followed plain old balloon angioplasty (POBA). Remaining lesions were grouped into the DES (88 cases/104 lesions) and DCB (69 cases/80 lesions) groups and then compared retrospectively. The primary endpoint was post-discharge major adverse cardiovascular events (MACE) at 1 year, and it was defined as cardiac death, noncardiac death, target-vessel-related myocardial infarction, target lesion revascularization (TLR), and major bleeding (BARC ≥ type 3). There was no difference in the clinical follow-up rate between RA + DES (96/104 lesions) and RA + DCB (78/80 lesions). The post-discharge MACE values after 1 year of RA + DES and RA + DCB were 8% and 11% (P = 0.30), respectively, in terms of cardiac death (0% vs. 0%, respectively), noncardiac death (4% vs. 3%, respectively, P = 0.36), target-vessel-related myocardial infarction (0% vs. 0%, respectively), TLR (4% vs. 8%, respectively, P = 0.30), and major bleeding (1% vs. 0%, respectively). For calcified lesions of nonsmall vessels, RA + DCB showed good results as well as RA + DES. RA + DCB is a potential new strategy for these lesions.
Methods for realizing high sensitivity for a frequency-change-type single-crystal silicon two-axis acceleration sensor are proposed. The volume of the prototype sensor is about 4:0 Â 4:2 Â 0:5 mm 3 and the resonance frequency is approximately 80 kHz. The sensor characteristics are analyzed using the finite-element method. Selecting the axis to apply the acceleration and using bent support bars are both effective methods to increase sensor sensitivity. The sensitivity increases 42% when the sensor is rotated and used under the condition of z ¼ À45 . Using the bent support bars and rotating the sensor around the z-axis, a 100% increase in sensitivity was finally obtained in a sensor which has the mass equal to that of the prototype sensor. On the other hand, a 56% increase was finally realized in the sensor which has the outside-dimension equal to that of the prototype sensor.
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