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At least 19 recordsLinked to original sources

Complications of percutaneous nephrostomy, percutaneous insertion of ureteral endoprosthesis, and replacement procedures.

PURPOSE: The aim of the present study was to record and identify the frequency of complications following percutaneous nephrostomy, replacement of nephrostomy drains and percutaneous insertion of ureteral endoprostheses. METHODS: During a 10-year period 341 patients were referred to our department with indications for percutaneous nephrostomy and/or percutaneous insertion of a ureteral endoprosthesis, and a total of 1036 interventional procedures were performed (nephrostomy, catheter change, stenting). RESULTS: There were three major complications (0.29%): two patients died during the first 30 days after the procedure, due to aggravation of their condition caused by the procedure, and one patient had retroperitoneal bleeding requiring surgery. There were 76 complications of intermediate severity (7.33%): catheter or stent displacement (n = 37, 3.57%) catheter occlusion (n = 18, 1.73%), hematuria (n = 12, 1.16%), and urinary tract infection (n = 9, 0.87%). The 55 minor complications (5.3%) comprised inflammation of the skin at the site of insertion of the percutaneous catheter. CONCLUSION: The small number of complications observed during acts of interventional uroradiology prove transcutaneous manipulations to be safe medical procedures.

Adolescent↗

Salvage of an obstructed single kidney by combined percutaneous nephrostomy, percutaneous stone extraction and alkalinisation.

A 72-year-old woman with a single kidney and renal calculi was admitted as an emergency with sepsis and anuria. Renal drainage was established by percutaneous nephrostomy (PTN) as an emergency procedure. A nephrostogram showed multiple lucent stones and a single opaque calculus in the renal pelvis. The definitive treatment of the mixed calculi was carried out through the PTN. The lucent stones were dissolved by alkaline irrigation and the opaque stone removed by a biliary basket via the dilated tract. The safety and simplicity of PTN as an emergency procedure and its use for definitive treatment with the avoidance of surgery are stressed.

Administration, Oral↗

Do's and don't's of percutaneous nephrostomy.

Percutaneous nephrostomy procedures generally are safe. The associated mortality rate is approximately 0.04%, and the incidence of important complications is 5% (2-4). To minimize complications, certain precautions always should be followed. First, radiologists should perform a preprocedural evaluation of the patient, with correction of marked coagulopathy or thrombocytopenia before all but the most emergent procedures. Second, antibiotics should be administered routinely before nephrostomy drainage; the choice of antibiotics can be based on the specific patient's risk factors for bacteriuria. To minimize the risk of clinically important renal vascular damage, radiologists should do the following: 1. Always achieve adequate visualization of the calices. 2. Identify a posterior calix for puncture that will give access to the appropriate segment of the kidney for anticipated procedures and allow safe creation of a tract. 3. Puncture below the 11th rib (and preferably below the 12th rib when feasible). 4. Puncture the tip of a posterior calix from a 20 degrees-30 degrees, posterolateral oblique approach to avoid major blood vessels. 5. Make a single-wall puncture of the calix. 6. Perform exchange transfusion for opacification of the renal pelvis and calices during percutaneous nephrostomy procedures to minimize the risk of sepsis. Overdistention can increase the likelihood of sepsis or retroperitoneal contamination. 7. Inject contrast material via a catheter placed over a wire to confirm the intracollecting system location of the entry. 8. Avoid unnecessary (complicated, prolonged) procedures in an infected, obstructed system. 9. Use only self-retaining drainage catheters to minimize the risk of inadvertent catheter dislodgment. 10. Create large-bore tracts with a balloon dilation system. By contrast, radiologists should not do the following: 1. Puncture above the 11th rib (unless all other avenues of approach have been exhausted). 2. Lose access to an obstructed kidney once the kidney has been punctured. Placement of a "safety" wire for all complex manipulations is recommended. 3. Panic if excessive bleeding or evidence of adjacent organ injury is seen. Excessive bleeding usually can be stopped with tract tamponade by using a balloon catheter advanced through the tract or with placement of an appropriate-sized nephrostomy tube to occlude the tract. If active bleeding continues or recurs, arteriography should be considered. The quantity of bleeding can be monitored with sequential hematocrit measurements. Almost all renal artery injuries can be treated with minimally invasive procedures, such as selective embolization of the branch artery involved, and this will lead to infarction of only a small segment of kidney, with preservation of functioning renal parenchyma. Injury to an adjacent organ usually can be treated nonsurgically (21,23). The most commonly injured extrarenal abdominal organ is the colon (Fig 6). On occasion, a percutaneous nephrostomy needle may traverse the retroperitoneal segment of the colon, and this type of injury generally can be treated nonsurgically, as well (23). If the colon has been traversed, adequate urinary drainage should be ensured before the transcolonic nephrostomy catheter is removed (so that a nephrocolonic fistula is not maintained). This can be done by placing a ureteral stent and a bladder catheter (18). Once adequate urinary drainage is provided, the nephrostomy catheter can be withdrawn into the colon and used as a percutaneous colostomy drain. The percutaneous colostomy tract should be allowed to mature for several days before this catheter is removed. In addition, appropriate antibiotics should be administered from the time a transcolonic tract is identified until the percutaneous tract has healed completely. Transthoracic entry can cause pneumothorax and pleural effusions. These should be treated only if they are large or cause symptoms (21). (ABSTRACT TRUNCATED)

Humans↗

[An arteriovenous fistula as a complication of percutaneous nephrostomy].

Percutaneous nephrostomy has emerged as a substitute for surgical nephrostomy. The complication rate is low, hematuria being one of the most common. Treatment should be conservative while possible since the clot plays an important role in the tamponade of hemorrhage. Arteriovenous fistulas following percutaneous nephrostomy are rare. Diagnosis is by arteriography and treatment is by selective embolization.

Arteriovenous Fistula↗

Use and maintenance of percutaneous nephrostomy.

Percutaneous nephrostomy has been used for the diagnosis and treatment of 64 patients. There have been no unsuccessful attempts at nephrostomy placement and no major complications were noted. This procedure can be accomplished readily and safely, reliably and effectively for short- and long-term urinary diversion in various urologic conditions in children and adults. Catheter care is described, and use of the nephrostomy tract for various urological problems is discussed.

Adult↗

[Ultrasound-guided percutaneous nephrostomy].

Percutaneous nephrostomy is a mini-invasive technique that creates an external outlet from the renal excretory tract through a catheter inserted through the flank. Indications for this procedure are of both diagnostic and therapeutic type. The nephrostomic catheter is generally positioned under ultrasound guidance, which has the advantages of showing the localization of the renal cavities and the depth of the kidney, and can be used during pregnancy and in subjects with allergy to contrast medium or with reduced renal function. When possible, it is best to associate US with fluoroscopic guidance, as this association has been found to guarantee a success rate exceeding 98%. Within the kidney, the zone known as Broedel's avascular plane, where the terminal branches of the posterior and anterior arterial systems meet, is the safest place to pass the nephrostomic catheter through, as there is little vascularization in this zone. Access is generally posterior and at the level of the inferior calyx, by means of Seldinger's, the one step or a mixed access technique involving a catheter sheathing a metal cannula. Seldinger's access technique is most commonly used, entailing explorative puncture of the renal cavity with a 22 G needle. We prefer to puncture the kidney direct, under US guidance and using an 18 G needle: a metal wire is passed through the needle and then after withdrawing the needle, the fascia dilators are inserted, of scaled widths increasing up to 2 G wider than the nephrostomic catheter. Care must be taken not to go beyond the curve of the guide wire to avoid trauma to the renal parenchyma. The most critical moment is when the catheter is inserted along the wire at the point of passage through the peri-renal fat: the catheter tends to deflect the point of the guide wire away from the desired direction as the peri-renal fat offers less resistance. The metal wire may be of variable rigidity and length, hydrophilic. The catheter may also be made of various materials: the ideal catheter should slide easily, be flexible, soft and resist encrustation. Each material has its own characteristics but polyurethane is the most ductile and is generally used for nephrostomic catheters. The catheter can also feature different types of point and width and may be autostatic like the Foley catheter or else a cope loop.

Humans↗

CT-guided antegrade pyelography and percutaneous nephrostomy.

Percutaneous antegrade pyelography and percutaneous nephrostomy can be easily performed using CT guidance. CT provides cross-sectional images which facilitate accurate needle placement into the renal pelvis. CT is capable of detecting subtle density differences within the tissues so that even renal pelvises which do not contain contrast material and are not dilated can be accurately punctured. In addition to these procedures, CT accurately displays the perinephric space so that assessment of complications is possible. Four of five attempted percutaneous nephrostomies and two antegrade pyelograms were successfully performed using CT gudance.

Aged↗

[Experience in percutaneous nephrostomy].

Percutaneous nephrostomy using the Seldinger technique was performed on 15 kidneys in 15 patients with obstructive hydronephrosis. A real-time ultrasound unit was used for needle guidance. Puncture was successful in the first attempt in 11 of the 15 cases (73.3%), and two or more repeated punctures were necessary in only 4 cases (26.7%). Subsequent catheter placement was feasible in each of the kidneys without any serious complications. This procedure proved to be safe, precise and highly useful in the management of the supravesical urinary obstruction by various diseases. Techniques, indications, results and complications of percutaneous nephrostomy are discussed.

Adult↗

Pararenal pseudocyst (urinoma) as complication of percutaneous nephrostomy.

Percutaneous nephrostomy is a well-recognized procedure utilized by the radiologist both as a temporary drainage method for urinary tract obstruction and as the elective therapeutic modality in selected pathologies of the urinary tract. We report a complication not previously mentioned in the literature, urinoma formation.

Aged↗

[Echoguided percutaneous nephrostomy].

Percutaneous US guided nephrostomy is the simplest and most direct technique to drain an obstructed kidney. The indications are included in two groups: temporary drainage and permanent drainage; the former is indicated in the non endoscopically superable ureteral obstruction, in pyonephrosis, in pregnant women and in transplanted kidneys (due to the easier access), the latter is exclusively reserved to neoplastic obstructions. The only real contraindication to the method, besides a documented allergy to local anaesthetics, is represented by a severe coagulopathy. Positioning techniques are the "one shot" technique, in which dilation and positioning are synchronous (it can avoid fluoroscopy but it is more traumatic) and angiographic derived Seldinger's technique, that utilizes fluoroscopy and an instrumentation including a guidewire and a set of Amplatz dilators. Complications are due to the access route; the choice of an intercostal access is always inadvisable, due to the risk of pneumothorax or pulmonary injury; the most frequent complications are vascular (hemorrhage, retroperitoneal hematoma) and usually well controlled; more severe lesions (renal artery laceration and arteriovenous fistula) may require intervention or embolization, but the incidence of nephrectomies due to vascular injury accounts for one per thousand.

Humans↗

Antibiotic bonded nephrostomy catheters for percutaneous nephrostomies.

A prospective controlled trial of the effectiveness of a cefoxitin-bonded nephrostomy catheter was undertaken to determine the effectiveness of an antibiotic bonded catheter in decreasing the infectious complications of percutaneous nephrostomy. The study concludes that bonding of the antibiotic cefoxitin to percutaneous nephrostomy catheters did not influence the incidence of bacteriuria or urinary tract infection. In addition, observations on the overall incidence of complications from percutaneous nephrostomy are made.

Adolescent↗

[Percutaneous nephrostomy. Review of 92 cases].

Presentation of 92 nephrostomies percutaneous in 70 patients. Nephrostomy was bilateral in 5 cases. Three patients had collections of renal origin (2 urinomas and 1 abscess) which were treated percutaneously. The indication for nephrostomy was in all cases obstruction of the collector system, with one exception where the indication was ureteral fistula. Origin was lithiasis in 53 cases, 15 cases vesical carcinoma, 3 post-surgical iatrogenic stenosis, 1 fistula and formation of urinoma after lithotrity, 5 prostate carcinoma infiltration, 8 infectious origin, 4 congenital and 1 due to glandular cystitis. 9 patients were monorenal. In 6 patients leucocytosis was present, 4 has fever, and in 11 coexisted fever and leucocytosis. High creatinine and urea levels were present in 55.7% and 41% patients, respectively.. Renal puncture through lower calyceal group was the preferred option. Purulent urine was obtained in 17 cases. With regard to nephrostomy complications haematuria occurred in 30 cases (only in 9 it lasted more than 1 day); and there was 1 case of pararenal haematoma. Pain was significant in 12% procedures and contrast extravasation resulted in 14% cases (in all of them proper positioning of nephrostomy catheter was possible). Spontaneous expulsion and the subsequent replacement of the catheter occurred in 12 cases. On average, residence time of catheter was 44.8 days. In all cases both the patient's signs and symptoms, and the laboratory results were improved.

Humans↗

The value of split renal function in severe neonatal and infant pelviureteric obstruction managed by percutaneous nephrostomy.

A percutaneous nephrostomy (PCN) was inserted as part of the management in 17 newborns and infants with severe pelviureteric junction obstruction between 1981 and 1993. Nephrectomy was performed in eight cases and pyeloplasty in nine cases, successfully in six cases (mean follow-up: 7.7 years). PCN was useful for predicting that no non-functioning kidney on intravenous pyelography (IVP) in this series should have been preserved. Among the kidneys with a high excretion delay on IVP, PCN showed that only those that had a split creatinine clearance of more than 1 ml/min/1.73 m2, or theoretical clearance for age and weight of over 6%, should be preserved.

Creatinine↗

Retrograde percutaneous nephrostomy.

Retrograde percutaneous nephrostomy puncture to aid in stone removal is a safe and acceptable alternative to antegrade techniques. For urologists with expertise in endoscopic instrumentation and technique, it is easy to learn and does not require the presence of a skilled interventional radiologist. The advantages of the technique are that it can be performed in a non-dilated collecting system and can result in more accurate and less traumatic puncture. We have found it difficult to use in the presence of staghorn calculi filling the kidney, and its application is obviously limited if access to the lower urinary tract and ureter cannot be obtained. If the technique is unsuccessful, it does not preclude or complicate immediate antegrade percutaneous or open stone removal.

Humans↗

Percutaneous nephrostomy--techniques.

Percutaneous nephrolithotripsy has become a widely accepted procedure, that permits the removal of up to 90% of all renal calculi with minimal morbidity and success rates of over 95%. Together with extracorporeal shock wave lithotripsy and the introduction of the ureterorenoscope it has revolutionised the surgical therapy of this clinical entity, and has reduced the need for open surgical interventions to approximately 5% of the numbers required before these methods became available. The success of percutaneous endoscopic surgery depends mainly on the correct position of the percutaneous nephrostomy, which must provide access to all renal calculi via a straight tract, yet should avoid significant trauma to the kidney or perirenal structures. This situation differs from the requirements for simple drainage of obstructed kidneys, as the collecting system of stone bearing kidneys is usually not dilated and the tract has to be adapted to the specific anatomical situation. Special techniques and material have been developed to meet these demands. The purpose of this article is to present our approach, based on percutaneous nephrolithotripsy in 2100 reno-ureteral units. Special reference is given to difficult anatomic situations, which frequently result in failure in inexperienced hands.

Dilatation↗

Percutaneous nephrostomy--technique.

Percutaneous nephrostomy is increasingly used for temporary relief of upper urinary tract obstruction. The technique described involves the use of angiographic catheters and guides, and will provide drainage for several weeks or months. The patient is placed in the prone oblique position after intravenous contrast to opacify the kidneys. The oblique position ensures that a needle advanced vertically toward the kidney will pass along a posterior oblique line, entering the outer aspect of the kidney away from the hilum and directing guide wires and catheters toward the ureter. A fine needle is passed vertically into the kidney to determine its depth and to provide a pyelogram. A needle-cannula is then directed at the collecting system along a similar line until urine comes back. An angiographic J-guide is introduced and the needle exchanged for a series of vessel dilators, to dilate the track through the tissues. Finally, a catheter is passed over the guide wire into the collecting system, secured to the patient and attached to the drainage bag. Other maneuvers such as ureteral stenting can be added to this technique. The complications and technical difficulties are discussed.

Aged↗

Percutaneous nephrostomy in paediatrics.

Percutaneous nephrostomy has been performed on 18 kidneys in 16 children with an age range of 1 day old to 14 years. The indications and techniques for percutaneous nephrostomy are described, the results are documented, and the effects of the procedure on the management of these patients are discussed. It is shown that percutaneous nephrostomy in paediatrics is a safe and reliable method for draining renal collecting systems in order to relieve obstruction, to assess renal function and to drain pyonephroses.

Child↗