Diagnosis and treatment of chronic arterial insufficiency of the lower extremities: a critical review.
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Biomedical subjects
Publications and source records attributed to D E Strandness.
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The natural history of renal artery stenosis (RAS) has been difficult to document because serial arteriography is rarely justified. Duplex scanning is a noninvasive technique that is ideally suited for both screening and follow-up of RAS. In this approach, renal arteries are classified as normal, < 60% stenosis, > or = 60% stenosis, or occluded, and disease progression is defined as a change in the duplex classification. The purpose of this study was to determine the rate of disease progression in atherosclerotic RAS by serial duplex scanning. At least one abnormal renal artery was identified in each of 76 patients being screened for RAS. Of the 152 renal arteries, 20 were excluded (14 prior interventions, 5 occlusions, 1 technically inadequate duplex scan), leaving 132 for the natural history follow-up protocol. The patient group included 36 men and 40 women, with a mean age of 67 years, who were followed for a mean of 32 months (maximum 55 months). The initial status of the 132 renal arteries was normal in 36, < 60% stenosis in 35, and > or = 60% stenosis in 61. The cumulative incidence of progression from normal to > or = 60% RAS was 0% at 1 year, 0% at 2 years, and 8% at 3 years. The cumulative incidence of progression from < 60% to > or = 60% RAS was 30% at 1 year, 44% at 2 years, and 48% at 3 years. All 4 renal arteries that progressed to occlusion had > or = 60% stenoses at the initial visit, and for those arteries with a > or = 60% stenosis, the cumulative incidence of progression to occlusion was 4% at 1 year, 4% at 2 years, and 7% at 3 years. Progression of RAS occurred at an average rate of 7% per year for all categories of baseline disease combined. Progression of atherosclerotic RAS is relatively common, particularly from < 60% to > or = 60% stenosis.
No non-invasive test can predict the clinical outcome of renal revascularization procedures. Because duplex sonographic measurements of intrarenal flow patterns reflect the resistance to flow within the kidney, the prognostic value of the cortical end-diastolic to peak systolic (d/s) velocity ratio was investigated in patients undergoing intervention for renal artery stenosis. The clinical and duplex sonographic data on 32 patients with 35 interventions (30 percutaneous transluminal angioplasties and five operations) on 42 renal artery sides were analysed. Twenty-three patients had atherosclerotic renal artery stenosis and nine patients had fibromuscular dysplasia resulting in > or = 60% renal artery stenosis. Measurements of the renal to aortic velocity ratio and cortical d/s ratio were performed before and after intervention. In the atherosclerotic patients, three interventions were clinically and technically successful, eight were technically successful but clinical failures, and 14 were clinically and technically unsuccessful. In the fibromuscular dysplasia patients, eight interventions were clinically and technically successful, and two were clinically and technically unsuccessful. The difference between the corresponding d/s ratios for atherosclerotic and fibromuscular dysplasia sides was significant on both the treated and not-treated sides (P < 0.02, two-tailed unpaired t-test). None of the 11 clinically successful procedures had a d/s ratio below 0.3, compared with seven values below 0.3 in the 24 clinically unsuccessful interventions (P = 0.05, one-tailed Fisher's exact test). It is concluded that: (1), a d/s ratio below 0.3 correlates with clinical failure in subsequent treatment of hypertension by renal revascularization, while a value above 0.3 has no prognostic significance; (2), despite technical success, not all atherosclerotic patients have clinical success from renal artery interventions; (3), in fibromuscular dysplasia patients, all clinical failures of renal artery interventions are associated with technical failures; and (4), the difference in d/s ratio between atherosclerotic and fibromuscular dysplasia patients may be a consequence of the more advanced age, longer duration of hypertension and additional risk factors in atherosclerotic patients.
Ultrasonic duplex scanning was developed and introduced into clinical practice by the combined efforts of engineers and physicians. The instrumentation represents a marriage of B-mode imaging and Doppler technology. Since its introduction in 1974, numerous modifications and upgrading of the technology have taken place. The modern duplex scanner can be used to study vascular disease wherever it is found in the body.
PURPOSE: B-mode imaging of a normal arterial wall shows two echo-dense lines separated by an echolucent zone. Immediately after carotid endarterectomy, this double-line pattern is no longer detectable, but it subsequently reappears in some patients. The objective of this study was to test the hypothesis that the postoperative double line is associated with a lower incidence of carotid restenosis. METHODS: Carotid arteries were serially studied with B-mode ultrasound imaging at 2 weeks and 1, 2, 3, 6, 9, 12, 18, and 24 months after carotid endarterectomy. The wall of the common carotid artery 1 to 2 cm distal to the proximal endarterectomized shelf was analyzed for the presence, quality, and thickness of double lines. All hemodynamically significant stenoses (> or = 50% diameter reducing) were documented with standard duplex scanning criteria. RESULTS: Twenty-four carotid arteries in 23 patients were studied for a mean of 14.7 months (range, 3 to 24 months). A double line developed in 21 common carotid arteries (87.5%) at a mean time of 3.2 months (range, 0.5 to 9.0 months) after surgery with a mean thickness of 0.65 mm (SD = 0.17 mm) at the time of initial detection. A single hemodynamically significant stenosis developed in this group. All three of the remaining arteries that did not form the double-line pattern developed hemodynamically significant stenoses. Carotid restenosis was more likely to occur in arteries that did not form double lines (p < 0.05, Fisher's exact test). CONCLUSIONS: The majority of carotid arteries re-form a double line after endarterectomy. These arteries are less likely to develop restenotic lesions caused by myointimal hyperplasia.
PURPOSE: Our purpose was to investigate the hemodynamic theory that the blood flow rate through a stenotic arterial graft is limited by the onset of turbulence, which acts as a barrier at peak systole against further increases in systolic flow. METHODS: We used duplex ultrasonography to examine 25 stenotic infrainguinal vein grafts. Theory predicts that the flow limitation occurs at peak systole at a stenotic velocity greater than 250 cm/sec, which corresponds to a residual stenotic lumenal diameter of 0.36 cm (Reynolds No. 2000). These numbers are based on the assumption that the 68 ml/min blood flow is supplied by the femoropopliteal graft to the resting lower leg only during systole. When the lumen is smaller than 0.36, peak systolic velocity (PSV) must exceed 250 cm/sec. The increased velocity results in poststenotic turbulence. This turbulent condition restricts the average graft systolic flow to less than the 68 ml/min required by the lower leg, so diastolic flow is needed to make up the deficit. RESULTS: Twenty vein grafts with PSVs of 250 cm/sec or greater had end-diastolic velocities of 50 cm/sec or greater as predicted; three grafts with PSVs of 256 to 300 cm/sec and two grafts with PSVs of less than 250 cm/sec had no forward diastolic flow. CONCLUSION: The onset of turbulence in a stenotic vein graft supplying the lower leg occurs at a PSV of 250 cm/sec or greater. The appearance of diastolic flow maintains the average graft volume flow.
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Two major sequelae of deep vein thrombosis (DVT), obstruction to outflow due to the presence of residual thrombus and reflux due to valvular damage, may contribute to the development of the post-thrombotic syndrome (PTS). We studied the nature and site of residual abnormality, non-invasively with duplex ultrasound, in the veins of 69 limbs in 66 patients, 1 to 6 years after primary acute DVT. There were clinical features of the PTS in 27 limbs and 42 legs were asymptomatic. The pattern of duplex abnormalities was complex and varied for both the PTS and asymptomatic groups. The proportion of abnormal common and external iliac veins and abnormal common, deep and superficial femoral veins was similar for limbs with the PTS and asymptomatic limbs. Twenty-six per cent of legs with the PTS had reflux at the saphenofemoral junction compared with 19% asymptomatic legs (difference not significant). The PTS was associated with proportionally more abnormal popliteal veins (81% vs 55%) and posterior tibial veins (PTV), PTV#1 (41% vs 21%) and PTV#2 (41% vs 14%) when compared with asymptomatic limbs. The odds ratio for a popliteal vein abnormality being associated with the PTS was 3.63 (95% CI 1.16 to 11.43). The odds ratios for PTV#1 and PTV#2 abnormalities in association with the PTS compared to asymptomatic limbs were 2.52 (95% CI 0.87 to 7.31) and 4.13 (95% CI 1.30 to 13.11). In conclusion, residual venous abnormalities after DVT are common and when present in the popliteal and tibial veins are associated with an increased likelihood of PTS expression.
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The relationship between the measured arm-ankle pressure difference (AAPD), or the ankle/arm index (AAI), and the focal peak systolic velocity (PSV) at stenotic sites of infrainguinal vein grafts has not been determined. We attempted to relate these two parameters. We used Doppler systolic pressures and duplex ultrasonography to study 35 infrainguinal vein bypass grafts followed in a surveillance protocol. The following graft groups were identified: grafts in nondiabetic patients (n = 26), grafts in diabetic patients (n = 9), nonrevised stenotic grafts (n = 14), revised stenotic grafts (n = 14), and normal grafts (n = 7). AAPD and AAI were measured in both lower extremities. Pressure gradients across graft stenoses were indirectly estimated using the modified Bernoulli equation (delta P =4V2). Measured AAPDs and estimated pressure gradients showed moderate correlation in nondiabetic (r = 0.58) and diabetic (r = 0.63) patients. Correlation was fair (r = 0.3) prior to graft revision. There was no correlation (r = 0.1) in the nonrevised stenotic grafts. For individual patients with stenotic grafts who were followed in consecutive visits, the correlation varied from none to good (r range 0.01 to 0.71). We conclude that there is a lack of consistent correlation between the measured AAPD, or AAI, and the estimated stenotic graft pressure gradient. This finding illustrates the limitation of the AAI as a monitoring test to predict failure of stenotic infrainguinal vein grafts.
We developed a theoretic model of arterial stenosis to study the relationship between perfusion pressure and regional hemodynamics in stenotic infrainguinal vein grafts in an attempt to identify grafts at high risk for failure. Our model was based on the concept of energy and mass conservation of the flowing blood. We used the modified Bernoulli equation (delta P = 4 delta V2) to calculate the maximum possible intrastenotic peak systolic velocity (PSV) from the systolic blood pressure. PSV was measured by means of duplex ultrasonography in infrainguinal bypasses up to the time of revision (nine grafts) or spontaneous thrombosis (two grafts). We related arm systolic blood pressure, intrastenotic PSV, and prestenotic PSV obtained from duplex examinations conducted prior to graft thrombosis or revision and applied our model to these stenotic vein grafts. Intrastenotic PSV was consistently lower than maximum PSV predicted from the Bernoulli equation. The highest measured intrastenotic PSV of 600 cm/sec would require a minimum perfusion pressure of 144 mm Hg. The lowest measured PSV (20 cm/sec) was considered the minimum "thrombotic threshold velocity." This model predicts that for parabolic profile flow in an 80% diameter-reducing axisymmetric stenosis (96% cross-sectional area reduction), a prestenotic PSV of 20 cm/sec would produce an intrastenotic PSV of 500 cm/sec requiring the equivalent potential energy of 100 mm Hg systolic blood pressure. Our theory implies that in patients with nocturnal hypotension thrombosis of stenotic vein grafts may occur.
PURPOSE: To assess the relationship of duplex ultrasound hemodynamic parameters in stenotic vein grafts with events such as graft thrombosis or surgical revisions. PATIENTS AND METHODS: We studied 35 patent infrainguinal bypass grafts that were observed by means of color duplex graft mapping using a surveillance protocol. RESULTS: During the 11.2 month mean follow-up interval, 10 grafts developed complications. Two stenotic grafts (1 already revised) thrombosed spontaneously, and arteriography was obtained on the basis of either clinical indications or a decreased ankle/brachial index of greater than 0.15 on 9 bypasses, leading to 12 procedures (multiple procedures on 2 grafts). The 14 duplex examinations preceding an event showed these bypasses had increased focal peak systolic velocities that ranged from 250 to 600 cm/s and velocity ratios that ranged from 3.4 to 25.0 at the stenotic segment of the graft, anastomosis, or outflow artery. None of the grafts with a stenotic peak systolic velocity less than 250 cm/s or a velocity ratio less than 3.4 thrombosed spontaneously or required revision. CONCLUSION: We conclude that stenotic vein grafts with a focal peak systolic velocity of at least 250 cm/s or a velocity ratio of at least 3.4 are at increased risk for thrombosis or need for revision. Asymptomatic stenotic vein grafts with focal peak systolic velocities and ratios less than the above values may be safely observed without immediate risk for thrombosis.
PURPOSE: The objectives of this study were to determine the time of onset, location, severity, rate of progression, and subsequent fate of infrainguinal vein graft lesions. METHODS: Sixty-one infrainguinal vein grafts were studied serially with duplex ultrasonography to document the location and severity of each lesion. Grafts were studied at 1, 2, 3, 4, 6, 9, 12, and 18 months and then annually. RESULTS: The cumulative secondary graft patency rate at 3 years (life-table analysis) was 93.2%. A total of 158 lesions were detected in 55 of the 61 grafts studied. The degree of diameter reduction at the time of initial detection was as follows: 1% to 19% (29.6%), 20% to 49% (51.0%), 50% to 75% (17.3%), and greater than 75% (3.1%). Forty-eight percent were detected at the first examination, 59.2% within 2 months, and 85.7% within 6 months. Progression was detected in 31.2% of the lesions by 6 and in 39.1% of the lesions by 18 months (life-table analysis). Thrombosis, in the absence of significant changes in ankle-brachial index (> or = 0.15) or return of symptoms, was not observed in grafts that had lesions with less than 75% diameter reduction. CONCLUSIONS: The data support the performance of a duplex scan either during surgery or before discharge from the hospital in addition to frequent surveillance for the first 6 months. Frequent surveillance is appropriate for lesions with less than 75% diameter reduction as long as they remain asymptomatic and without a significant reduction in the ankle-brachial index.
PURPOSE: The aim of this study was to determine whether, in lower extremities with documented episodes of acute deep venous thrombosis (DVT), incompetence develops in veins that were not the site of thrombosis. METHODS: Patients were monitored with serial duplex ultrasonography at 1 day, 1 week, 1, 3, 6, 9, and 12 months, and then annually after detection of acute DVT. The following venous segments were analyzed: common femoral, greater saphenous, proximal superficial femoral, deep femoral, popliteal, and posterior tibial. The incidence of reflux development in both thrombosed and uninvolved segments was determined. Reflux was categorized as either transient or permanent. RESULTS: A total of 227 limbs in 188 patients were serially studied. Mean follow-up was 19.9 months (range 1 to 88 months). Overall, 403 of the 1423 segments (28.3% +/- 2.3%) developed reflux during the study, of which 118 (29.3% +/- 4.4%) had no prior or concurrent history of thrombosis. Considering only the segments that developed incompetence, the percent without prior thrombosis at each level was as follows: common femoral vein (40.0%), greater saphenous vein (53.1%), deep femoral vein (20.6%), proximal superficial femoral vein (23.9%), popliteal vein (8.9%), and posterior tibial vein (31.9%). Valvular insufficiency developing in segments uninvolved with thrombus was more likely to be transient (40.2%) than was the reflux in thrombosed segments (22.6%). This difference was statistically significant (p < 0.05). CONCLUSIONS: Permanent venous valvular damage can occur in the absence of thrombosis after DVT. Reflux in uninvolved venous segments has a different anatomic distribution and is more likely to be transient than the incompetence associated with thrombosis.
PURPOSE: The purpose of this study was to determine the incidence, timing, and outcome of further thrombotic events after an initial episode of acute deep venous thrombosis. METHODS: Venous thrombi in 204 lower extremities (177 patients) were monitored with duplex ultrasonography at intervals of 1 day, 7 days, 1 month, every 3 months for 1 year, and yearly thereafter. RESULTS: Among initially involved extremities, propagation to new segments occurred in 61 (30%) and rethrombosis occurred in 63 (31%). Both propagation and rethrombosis, in different segments, occurred in 27 (13%) extremities. New thrombi were also noted in nine (6%) initially uninvolved extremities. These events were not associated with identifiable clinical risk factors, although extremities with rethrombosis were more extensively involved at presentation. Propagation in initially involved extremities was an early event, occurring within a median of 40 days in all segments. New thrombotic events in initially uninvolved extremities and rethrombosis occurred as later events. The development of reflux was significantly more common among all initially uninvolved segments to which thrombus extended and among mid and distal superficial femoral and popliteal artery segments with rethrombosis. CONCLUSIONS: Recurrent thrombotic events are common after acute deep venous thrombosis and adversely affect the ultimate development of valvular incompetence. Their occurrence is unrelated to recognized clinical risk factors and can occur despite standard anticoagulation measures.
PURPOSE: The Asymptomatic Carotid Atherosclerosis Study (ACAS) showed that carotid endarterectomy reduces stroke risk in symptom-free patients with 60% or greater internal carotid artery (ICA) stenosis. This will surely lead to the performance of an increased number of screening duplex examinations. Assuming that positive study results will lead to arteriography or endarterectomy and keeping in mind the modest benefit for prophylactic endarterectomy demonstrated by ACAS (absolute risk reduction for ipsilateral stroke of 5.8% at 5 years), duplex criteria for 60% or greater ICA stenosis must have high positive predictive values (PPV). Determining criteria for 60% or greater stenosis, which emphasized high accuracy and PPV, forms the basis for this study. METHODS: Stenoses detected by angiography in 352 ICAs were blindly compared with those detected by duplex scanning. Duplex criteria were determined for highest overall accuracy in detection of 60% or greater ICA stenosis and for 95% or greater PPV. RESULTS: Maximal accuracy for detection of 60% or greater stenosis was 90%. This was achieved by the combination of a peak systolic velocity of 260 cm/sec or greater and an end diastolic velocity of 70 cm/sec or greater (sensitivity 84%, specificity 94%, PPV 92%). The 95% PPV for 60% or greater stenosis results from combining peak systolic velocity of 290 cm/sec or greater and end diastolic velocity of 80 cm/sec or greater. CONCLUSIONS: With use of these criteria duplex scanning accurately detects with high PPVs the threshold level of ICA stenosis defined in ACAS as receiving stroke reduction benefit from prophylactic carotid endarterectomy. These criteria should be useful for carotid artery screening and minimizing unneeded intervention.
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