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[A successful surgical repair of ventricular septal perforation, whose perforated position could be marked by Swan-Ganz catheter before the operation].

The patient was a 72-year-old woman who was admitted with AMI. On the next day, a systolic murmur of Levine II/VI became audible on the left sternal border of the 5th intercostal space and VSP was diagnosed by the echocardiogram. The hemodynamics was comparatively stable, and so we scheduled the elective operation in the expectation of the healing of the infarction tissue. At the cardiac catheterization just before the operation, L-R shunt ratio was 64.9% and main PA was 41/18 (26) mmHg. Before the operation we marked the VSP position by Swan-Ganz catheter through the left ventricle and VSP closure and 2 CABG was performed. We concluded that this method was useful for the diagnosis and therapy of VSP.

Aged↗

New nomenclature concept of perforator flap.

Confusion regarding the perforator flap concept has arisen partly from the use of ill-defined nomenclature without consistency; flaps have been named according to either the proximal vessel, the location harvested or the muscle dissected. Since, a variety of conflicting terms can distort the exact understanding of the flap and the true perforator concept, a precise and scientific system of nomenclature is promptly needed. In order to remedy such confusion, the author reviewed 54 recently published articles and 38 abstracts for vague or inaccurate nomenclatures, and compared the perforator flaps with the conventional flaps. A new nomenclature was then drawn up according to three perforator types: direct cutaneous, septocutaneous and musculocutaneous perforator. Even though only musculocutaneous perforators were considered to be true perforators in the initial concept, some perforator flaps have subsequently been added based on septocutaneous or direct cutaneous perforators. Discrimination is necessary and made possible by use of the following nomenclature: a perforator flap based on a musculocutaneous perforator is named according to the name of the muscle perforated, and perforator flaps based on other types of perforators, are named according to the name of the proximal vessel. The term 'perforator based' further defines those flaps harvested without sacrificing the proximal vessel. This new nomenclature concept would be a great help in discriminating among the various patterns of perforator flaps and also in preventing confusion arising from the misnaming of new perforator flaps in the future. Furthermore, the perforator pattern used in the flap can easily be comprehended, and especially in extremities, various perforator flaps, based on the musculocutaneous or septocutaneous perforator, can plainly be distinguished with this new nomenclature concept.

Humans↗

Increased coronary perforation in the new device era. Incidence, classification, management, and outcome.

BACKGROUND: The incidence of coronary perforation using new percutaneous revascularization techniques may be increased compared with PTCA. Still, perforation is uncommonly reported, and the optimal management and expected outcome remain unknown. The objectives of the study were to determine the incidence of coronary perforation using balloon angioplasty (percutaneous transluminal coronary angioplasty, PTCA) and new revascularization techniques and to develop optimal strategies for its management based on classification and outcome. METHODS AND RESULTS: Eleven sites with frequent use of new revascularization devices and prospective coding of consecutive procedures for coronary perforation during 1990 to 1991 contributed to a perforation registry. Patients with perforation were matched by device with an equal-sized cohort without perforation. Data were collected centrally, and all procedural cineangiograms were reviewed at a core angiographic laboratory. A classification scheme based on angiographic appearance of the perforation (I, extraluminal crater without extravasation; II, pericardial or myocardial blushing; III, perforation > or = 1-mm diameter with contrast streaming; and cavity spilling) was evaluated as a predictor of outcome and as a basis for management. Perforation was observed in 62 of 12,900 procedures reported (0.5%; 95% confidence interval, 0.4% to 0.6%), more commonly with devices intended to remove or ablate tissue (atherectomy, laser) than with PTCA (1.3%, 0.9% to 1.6% versus 0.1%, 0.1% to 0.1%; P < .001). The perforation population was notable for its advanced age (67 +/- 10 years) and high incidence of female sex (46%) (both P < .001 compared with patients without perforation). Perforation could be treated expectantly or with PTCA but without cardiac surgery in 85%, 90%, and 44% of class I, II, and III perforations, respectively. Class I perforations (n = 13, 21%) were associated with death in none, myocardial infarction in none, and tamponade in 8%. The incidences of these adverse events were 0%, 14%, and 13% in class II perforations (n = 31, 50%) and 19%, 50%, and 63% in non-cavity spilling class III perforations, respectively (n = 16, 26%). Two of the 15 instances of cardiac tamponade (13%) were delayed, occurring within 24 hours after dismissal from the catheterization laboratory. CONCLUSION: The incidence of perforation, while low, is increased with new devices. Women and the elderly are at highest risk. The clinical risk after perforation can be classified angiographically, but even low-risk perforations occasionally have poor clinical outcome. Patients should be observed for delayed cardiac tamponade for at least 24 hours.

Aged↗

In situ hemodynamics of perforating veins in chronic venous insufficiency.

PURPOSE: The prevalence of incompetent perforators increases linearly with the clinical severity of chronic venous insufficiency (CVI) and the presence of deep vein incompetence. Putative transmission of deep vein pressure to skin may cause dermal hypoxia and ulceration. Despite extensive prospective interest in the contribution of perforators toward CVI, their hemodynamic role remains controversial. The aim of this prospective study was to determine the in situ hemodynamic performance of incompetent perforating veins across the clinical spectrum of CVI, by means of duplex ultrasonography. METHODS: A total of 265 perforating veins of 90 legs that had clinical signs and symptoms consistent with CVI in 67 patients referred consecutively to the blood flow laboratory were studied. The clinical distribution of the examined limbs was CEAP(0), 10 limbs; CEAP(1-2), 39 limbs; CEAP(3-4), 21 limbs; and CEAP(5-6), 20 limbs. With the use of gated-Doppler ultrasonography on real-time B-mode imaging, the flow velocity waveforms were obtained from the lumen of perforators on release of manual distal leg compression in the sitting position and analyzed for peak and mean velocities, time to peak velocity, volume flow, venous volume displaced outward, and flow pulsatility. The diameter and duration of outward flow (abnormal reflux > 0.5 seconds) were also measured. RESULTS: Incompetent perforators had bigger diameters, higher peak and mean velocities and volume flow, longer time to peak velocity, and bigger venous volume displaced outward (VV(outward)) than competent perforators (all, P <.0001). The diameter of incompetent perforators did not change significantly with CEAP class (all, P >.1). Incompetent thigh and lower-third calf perforators had a significantly bigger diameter than perforators in the upper and middle calf combined (both, P <.05), in incompetent perforators: reflux duration was unaffected by CEAP class or site (P >.3); peak velocity was higher in those in CEAP(3-4) than those in CEAP(1-2) (P =.024); mean velocity in those in CEAP(3-6) during the first second of reflux was twice that of those in CEAP(1-2) (P <.0001); both higher volume flow and VV(outward) were found in the thigh perforators than those in the upper and middle calf thirds (P <.03); CEAP(3-6) volume flow and VV(outward), both in the first second, were twice that in those in CEAP(1-2) (P <.002); flow pulsatility in those in CEAP(5-6) was lower than in those in CEAP(1-2) (P =.014); in deep vein incompetence, higher peak velocity, volume flow, VV(outward), and diameter occurred than in its absence (P <.01). CEAP designation correlated significantly with mean velocity and flow pulsatility, both in the first second (r = 0.3, P <.01). The flow direction pattern in perforator incompetence was uniform across the CVI spectrum: inward on distal manual limb compression, and outward on its release; competent perforators had a smaller percentage of outward flow on limb compression (P <.01). CONCLUSION: In addition to an increase in diameter, perforator incompetence is characterized by significantly higher mean and peak flow velocities, volume flow, and venous volume displaced outward, and a lower flow pulsatility. Differences in early reflux enable a better hemodynamic stratification of incompetent perforators in CVI classes. In the presence of deep reflux, incompetent perforators sustain further hemodynamic impairment. In situ hemodynamics enable quantification of the function of perforators and can be used in the identification of the clinically relevant perforators and the impact of surgery.

Adolescent↗