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K Budde

Publications and source records attributed to K Budde.

At least 91 records · Page 5Linked to original sources

The influence of age on outcome after renal transplantation.

The influence of donor age and recipient age on outcome after renal transplantation has been investigated in numerous studies. There is some evidence that patient survival in elderly patients who receive a transplant is significantly higher compared with those, who remain on dialysis. In general, patient survival after renal transplantation is mainly dependent on recipient age and on comorbid conditions. Concerning graft survival, most studies conclude that the survival of kidneys taken from older donors (> 50 years) and very young donors (< 5 years) is reduced. Graft survival was also found to be reduced in very young recipients (< 5 years). Functional graft survival proved to be better in older recipients (> 50 years) as compared to younger recipients, due to a reduced immunologic response capability. Actual graft survival however, where cases of death with functioning graft are included, is fairly equal in both populations. The question, whether the age difference between donor and recipient has an influence on graft survival, needs to be further investigated. In conclusion, donor and recipient age are important risk factors, which may influence outcome after renal transplantation and therefore should be considered carefully.

Age Factors↗

Glomerular epithelial cell products stimulate mesangial cell proliferation in culture.

Glomerular epithelial cells (GEC) and mesangial cells (MC) are both involved in glomerular diseases. To elucidate potential interactions between these glomerular cell types, we examined whether products of GEC affect the proliferative activity of MC. We found that cultured rat GEC secrete soluble factors into the supernate (GEC-CM) that induce proliferation of quiescent rat MC. The mitogenic activity was trypsin sensitive and partially heat-labile. Biochemical analysis of GEC-CM by gel filtration HPLC, reverse phase HPLC, and isoelectric focusing revealed at least three mitogenic fractions as well as inhibitory activity present in GEC-CM. Competitive binding assays with 125I-labeled PDGF did not show significant amounts of PDGF in GEC-CM. The biochemical features of the GEC-derived MC growth factors are distinct from IL-6, PDGF, bFGF, and endothelin, previously described GEC-derived MC growth factors. Additionally, significant contributions of known growth factors such as IL-1, IL-2, IL-3, IL-4, IL-5, TNF alpha, TGF beta, and GM-CSF are unlikely. The results indicate that GEC produce several biochemically-distinct MC growth regulators. While these epithelial cell-derived mitogens for MC require further characterization, they may play an important role in the regulation of MC replication, such as during embryogenesis and glomerular disease.

Animals↗

Interleukin-6 expression after renal transplantation.

BACKGROUND: Interleukin-6 (IL-6) is an inflammatory cytokine that plays a role in transplant rejection. We tested the hypothesis that IL-6 levels in serum or urine could be of value in predicting acute and chronic allograft rejection. Furthermore, we examined whether or not such levels reflected IL-6 expression in the kidney. METHODS: We measured IL-6 and IL-6 soluble receptor (IL-6sR) in serum and urine of 145 transplant patients and 20 normal controls. In parallel, we studied 108 renal biopsies. IL-6 was measured with a bioassay system using an IL-6 dependent cell line. IL-6sR was measured with enzyme-linked immunosorbent assay. The biopsies were examined for IL-6 and IL-6 receptor (IL-6R) expression with immunohistochemistry. RESULTS: Rejection episodes occurring within 2 months of transplantation were accompanied by elevated IL-6 concentrations in serum (17 +/- 4.8 pg/ml, P < 0.05) and urine (114 +/- 27 pg/ml, P < 0.005), compared to controls. These values returned towards baseline (0-5 pg/ml) after successful rejection treatment. The sensitivity of urine measurements was much higher (93%) than serum (54%). The specificity in serum (70%) and urine (60%) was reduced by infection, acute tubular necrosis, and antithymocyte globulin treatment. Serum and urine IL-6sR values did not correlate with rejection. In biopsy tissue, IL-6 and IL-6R were both elevated during rejection. Especially, mononuclear cells within the interstitial infiltrate stained positive. However, the amount of IL-6 positive cells did not correlate with peripheral IL-6 concentrations. CONCLUSIONS: Urine but not serum IL-6 values are sensitive indicators of rejection; however, they are confounded by infection, acute tubular necrosis, and certain antirejection treatments. These features limit their usefulness.

Acute Disease↗

Substitution of conventional cyclosporin with a new microemulsion formulation in renal transplant patients: results after 1 year.

BACKGROUND: A new galenic form of cyclosporin A has been developed, based on microemulsion technology. The bioavailability of the compound is relatively independent of food intake and bile flow. It was the purpose of this prospective clinical trial to study the safety of the microemulsion form of cyclosporin A. METHODS: Three hundred and two renal transplant patients, stratified according to transplant age, were switched from the conventional to the new microemulsion formulation of cyclosporin A. A 1:1 conversion ration was used. Measurements included CsA levels, S-creatinine, liver enzymes, uric acid, and blood pressure. Measurements were performed at baseline and on days 4, 8, 15, 29 and months 3, 6 and 12 after conversion. Dose adjustments were performed to achieve through levels of 80-120 ng/ml. RESULTS: Within the 12-month observation period the cyclosporin dose was reduced by 14.7% (from 204 +/- 60 mg/day at baseline to 174 +/- 51 mg/day after conversion, P < 0.001). Acutely, i.e. by day 8, 1:1 dose conversion resulted in a modest increase of mean drug through levels (from 114 ng/ml at baseline to 120 ng/ml, P < 0.01). This increase was accompanied by an increase in serum creatinine concentration, a decrease in calculated creatinine clearance, and an increase in uric acid values (P < or = 0.05). Liver enzymes remained unchanged while systolic and mean arterial blood pressure decrease (P < 0.05). After 1 month, drug through levels had decreased to baseline (112 ng/ml) and remained there until month 6. They were significantly lower after 12 months (102 +/- 33 ng/ml), P <0.001). Creatinine clearance values increased to above baseline at 6 and 12 months. Within the 1-year period there occurred 24 (= 8%) episodes of biopsy proven rejection and seven episodes of cyclosporin-attributed nephrotoxicity. CONCLUSIONS: The 1:1 conversion from conventional cyclosporin A to the microemulsion formulation s efficacious and safe, but an initial dose reduction of 10% is advised in patients with through levels in the high-normal range.

Administration, Oral↗

Conversion to microemulsion cyclosporine in stable renal transplant patients: results after one year.

We switched 302 renal transplant patients from the conventional to a new microemulsion formulation of cyclosporine, to study the latter's safety and efficacy. We used a simple 1:1 conversion of the patient's total daily dose. We measured trough drug levels as well as serum creatinine, liver enzymes, uric acid, and blood pressure values at baseline and at days 4, 8, 15, 29, and months 3, 6 and 12 after drug substitution. Dose adjustments directed at trough levels 80-120 ng/ml were performed, starting at day 8. Within the 12-month observation period, the cyclosporine dose was reduced by 14.7% (204 +/- 60 mg/day baseline vs 174 +/- 51 mg/day after conversion, p < or = 0.001). By day 8, the 1:1 dosage conversion resulted in a modest mean increase in drug trough levels (114 ng/ml baseline vs 120 ng/ml, p < or = 0.01). This increase was accompanied by an increase in serum creatinine concentration, a decrease in calculated creatinine clearance, and an increase in uric acid values (p < or = 0.05). Liver enzymes remained unchanged while systolic and mean arterial blood pressure decreased (p < or = 0.05). After one month, drug trough levels had decreased to baseline (112 ng/ml) and remained there until month 6. They were significantly lower after 12 months (102 +/- 33 ng/ml, p < or = 0.001). Plasma creatinine values decreased to below baseline by month 6 (p < or = 0.001) and month 12 (p < or = 0.001). Twenty-four (8%) biopsy proven rejection episodes and 7 cases of cyclosporine attributed nephrotoxicity occurred in these 302 patients within these 12 months. We conclude, that a 1:1 conversion from conventional to the microemulsion form of cyclosporine is efficacious and safe. However, we advise an initial 10% decrease in dose reduction in those patients whose trough levels are in the high-normal range.

Adult↗

Clinical pharmacokinetics of tacrolimus in rescue therapy after renal transplantation.

Tacrolimus, a potent new immunosuppressive drug, was introduced for rescue therapy in 25 renal transplant recipients with ongoing rejection (n = 24) or severe cyclosporine toxicity (n = 1). A highly significant (p < 0.001) rise in serum creatinine from 138 +/- 14 (3 months before conversion) to 295 +/- 26 mumol/l preceded conversion to tacrolimus. Tacrolimus rescue therapy started 73 +/- 9 months after transplantation, the follow-up was 8 +/- 1 months. Outcome, pharmacokinetics, and side-effects were analyzed. Patient survival was 100% on tacrolimus therapy. Graft survival was 88% after 3 months, and 70% after 8 months. Serum creatinine remained stable during the observation period (Crea after 8 months: 271 +/- 26 mumol/l). Starting with an initial dose of 9.6 +/- 0.3 mg/day (0.14 +/- 0.01 mg/kg/day) we could reduce tacrolimus dose to 6.0 +/- 0.9 mg/day (0.09 +/- 0.02 mg/kg/day; p < 0.001) after 1 month. Tacrolimus trough levels were adjusted to a therapeutic window of 5-8 ng/ml. We had to perform 3.4 +/- 0.5 dose adjustments per patient mainly within the first month after conversion (70%). A high variability in interindividual tacrolimus dose was noted. Last cyclosporine dose was a good predictor of required tacrolimus dose after 1 month (r = 0.88; p < 0.001). Overall, 82 adverse events were noted, of which 29 (35%) were associated with high trough levels (> 10 ng/ml). In contrast, 3 patients with trough levels < 4 ng/ml had ongoing rejection. Blood pressure and routine laboratory data remained unchanged. Steroid dose could be tapered from 12 +/- 2 to 5 +/- 0.3 mg/day (p < 0.02). Gingival hyperplasia and hirsutism improved after conversion. We conclude: Tacrolimus conversion for rescue therapy after renal transplantation is efficient and safe with target trough levels between 5 -8 ng/ml. Frequent drug monitoring is necessary, especially within the first month after conversion. Previous cyclosporine dose can be used as a guideline for starting dose.

Adult↗

The diagnostic value of GM-CSF and IL-6 determinations in patients after renal transplantation.

Cytokines are released by graft-infiltrating cells during cellular rejection. We studied the release of GMCSF and IL-6 and their prognostic significance in predicting rejection. Sequential measurements were made in serum and urine samples with an IL-6 specific cell line and a GMCSF ELISA. Biopsy tissue was snap frozen and examined with immunohistochemical methods. The IL-6 values for normal controls (CTR) and stable transplant patients (PTS) were 5-10 pg/ml in serum and 0-2.5 pg/ml in urine. In 51 biopsy-proven rejections (AR), serum IL-6 values at least doubled in 15 (sensitivity 29%, specificity 87%; 19 +/- 7 vs. 7 +/- 2 pg/ml; P = ns). In urine an increase was observed in 29 of 36 AR (sensitivity 80%, specificity 75%; 92 +/- 34 vs. 5 +/- 1 pg/ml; P < 0.05). After treatment, IL-6 decreased in urine in 26/29 PTS to 7 +/- 2 pg/ml (P < 0.05). In three PTS, rejection persisted, as did their elevated IL-6 urine values. In PTS with urinary tract infections, IL-6 increased in the serum of 13/19 and in the urine of 10/12. GMCSF in serum was not influenced by rejection; however, urine values increased in 22/33 AR (sensitivity 67%, specificity 96%; 22 +/- 5 vs. 4.8 +/- 0.3 pg/ml; P < 0.05). These values decreased (5 +/- 0.3; P < 0.05) after treatment. During infection, increased urinary GMCSF levels were observed in 2/9 PTS. Further analysis revealed a better correlation between elevated cytokine levels and rejection episodes in the early posttransplant period. In kidneys with acute rejection, IL-6 was found in the interstitium of all PTS tested. CTR tissue was negative. In PTS GMCSF was found in arterioles and in infiltrate; however, control tissue also showed some staining. Cytokine labeling in tissue could not be correlated with serum or urine values. We concluded: (1) serum IL-6 and GMCSF are of no value in rejection; (2) in urine, they reflect rejection, especially in the early posttransplant period; however, infection confounds the results; (3) IL-6 staining in tissue may be helpful, but requires more study.

Biopsy↗

Interleukin 6 is an autocrine growth factor for mesangial cells.

Interleukin 6 (IL-6) induces the acute phase response, differentiation of B cells, proliferation of T cells, thymocytes, hematopoietic progenitors, hybridoma and plasmacytoma cells. Monocytes, T cells, fibroblasts, epithelial and endothelial cells secrete IL-6. Since IL-6 responsive cell-types may participate in the pathogenesis of glomerular inflammation, we studied the secretion of IL-6 by rat MCs, using the IL-6 dependent hybridoma cell line B9. The results of our studies indicate that MCs secrete IL-6 with a molecular weight of 17-42 kDa and isoelectric point of 4.0 to 5.3 MC-IL-6 activity could be blocked by a polyclonal antimurine-IL-6 antibody. MC express IL-6 mRNA as determined by Northern blot. Furthermore, our data demonstrate that IL-6 acts as an autocrine growth factor for MC. Incubation of subconfluent MC with recombinant IL-6 results in a dose-dependent increase of 3H-thymidine incorporation and number of MCs. Moreover, reverse phase HPLC fractions of MC-CM containing IL-6 activity increase 3H-thymidine incorporation by MC. In addition to its possible paracrine role in mediating the immune response in the glomerulus, MC-IL-6 may also be one of the autocrine signals leading to mesangial cell proliferation in vivo.

Animals↗

Rat mesangial cells produce granulocyte-macrophage colony-stimulating factor.

Because inflammatory processes in renal glomeruli may involve monocyte-macrophages (MPs) and T-lymphocytes, we have investigated whether products of glomerular mesangial cells (MCs) can stimulate the proliferative activity of these effector cells. We found that cultured rat MCs (subcultures 2-15), maintained under serum-free conditions, secrete a soluble factor into the supernate [MC-conditioned medium (CM)], which supports growth of the T-helper cell-derived line HT-2. Moreover, MC-CM increased [3H]thymidine incorporation by thioglycollate-elicited peritoneal MPs but did not induce growth of the interleukin 2 (IL-2)- or interleukin 4 (IL-4)-dependent cell line CTLL-2. Further functional, serological, and biochemical analysis of MC-CM revealed that rat MCs secrete a cytokine that, by all of the techniques used, is indistinguishable from granulocyte-macrophage colony-stimulating factor (GM-CSF). Both northern blot and in situ hybridization with a specific cDNA probe for murine GM-CSF showed that MCs express GM-CSF mRNA transcripts. The present findings indicate that cultured rat MCs produce GM-CSF. Release of GM-CSF by MCs in vivo may play a role in the interaction of MCs with MPs, T-cells, and neutrophils in glomerular disease.

Animals↗

Formation of extracellular matrix by cultured rat mesangial cells.

Formation of extracellular matrix (ECM) by mesangial cells (MCs) contributes to progressive glomerulosclerosis. The authors investigated the production and distribution of ECM constituents by cultured rat MCs, using immunocytochemistry and immunoelectron microscopy. Staining for all ECM constituents increased after serum feeding. Localization was strictly intracellular until confluency, when extracellular deposition of collagen IV and laminin appeared, followed by fibronectin and collagen III. In parallel, the intracellular staining for these proteins diminished markedly. Neither extracellular deposition nor intracellular loss was observed for collagen I and thrombospondin. On surfaces coated with collagen IV or laminin, extracellular deposition of ECM constituents clearly preceded confluency. These results indicate that synthesis of ECM constituents parallels MC growth, and that extracellular deposition of ECM occurs at cell-cell contact. Collagen IV or laminin secreted by MCs in the substratum accelerates production and facilitates secretion of other ECM constituents in an autocrine fashion.

Animals↗