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P F Halloran

Publications and source records attributed to P F Halloran.

At least 19 recordsLinked to original sources

IFN-gamma alters the pathology of graft rejection: protection from early necrosis.

We studied the effect of host IFN-gamma on the pathology of acute rejection of vascularized mouse heart and kidney allografts. Organs from CBA donors (H-2k) were transplanted into BALB/c (H-2d) hosts with wild-type (WT) or disrupted (GKO, BALB/c mice with disrupted IFN-gamma genes) IFN-gamma genes. In WT hosts, rejecting hearts and kidneys showed mononuclear cell infiltration, intense induction of donor MHC products, but little parenchymal necrosis at day 7. Rejecting allografts in GKO recipients showed infiltrate but little or no induction of donor MHC and developed extensive necrosis despite patent large vessels. The necrosis was immunologically mediated, since it developed during rejection, was absent in isografts, and was prevented by immunosuppressing the recipient with cyclosporine or mycophenolate mofetil. Rejecting kidneys in GKO hosts showed increased mRNA for heme oxygenase 1, and decreased mRNA for NO synthase 2 and monokine inducible by IFN-gamma (MIG). The mRNA levels for CTL genes (perforin, granzyme B, and Fas ligand) were similar in rejecting kidneys in WT and GKO hosts, and the host Ab responses were similar. The administration of recombinant IFN-gamma to GKO hosts reduced but did not fully prevent the effects of IFN-gamma deficiency: MHC was induced, but the prevention of necrosis and induction of MIG were incomplete compared with WT hosts. Thus, IFN-gamma has unique effects in vascularized allografts, including induction of MHC and MIG, and protection against parenchymal necrosis, probably at the level of the microcirculation. This is probably a local action of IFN-gamma produced in large quantities in the allograft.

Acute Disease↗

Interferon-gamma acts directly on rejecting renal allografts to prevent graft necrosis.

In transplant rejection interferon (IFN)-gamma regulates the recipient immune response but also acts directly on IFN-gamma receptors in the graft. We investigated these direct actions by comparing rejecting kidneys from donors lacking IFN-gamma receptors (GRKO mice) or control donors (129Sv/J) in CBA recipients. Beginning day 5, 129Sv/J kidneys displayed high major histocompatibility complex (MHC) expression, progressive infiltration by inflammatory cells, but no thrombosis and little necrosis, even at day 21. GRKO kidneys showed increasing fibrin thrombi in small veins, peritubular capillary congestion, hyaline casts, and patchy parenchymal necrosis, progressing to near total necrosis at day 10. Terminal dUTP nick-end labeling assays were positive only in the interstitial infiltrate, confirming that massive cell death in GRKO transplants was not apoptotic. Paradoxically, GRKO kidneys showed little donor MHC induction and less inflammatory infiltration. Both GRKO and 129Sv/J allografts evoked vigorous host immune responses including alloantibody and mRNA for cytotoxic T cell genes (perforin, granzyme B, Fas ligand), and displayed similar expression of complement inhibitors (CD46, CD55, CD59). GRKO kidneys displayed less mRNA for inducible nitric oxide synthase and monokine inducible by IFN-gamma but increased heme oxygenase-1 mRNA. Thus IFN-gamma acting on IFN-gamma receptors in allografts promotes infiltration and MHC induction but prevents early thrombosis, congestion, and necrosis.

Animals↗

The role of the class II transactivator (CIITA) in MHC class I and II regulation and graft rejection in kidney.

Class II transactivator (CIITA) induces transcription of MHC class II genes, and induces class I in some cell lines. We examined the effect of CIITA deficiency on class I and II expression in mouse kidney. In CIITA knockout (CIITAKO) mice, basal class II was absent, but class I levels were mildly but significantly increased. Allogeneic stimulation or ischemic injury increased class I and II expression in kidneys of control (wild-type, WT) mice but induced only class I in CIITAKO mice. Thus, in kidney, all basal and induced class II expression was CIITA-dependent, but neither basal nor induced class I was CIITA-dependent. Rejecting kidney allografts from CIITAKO mice in CBA hosts manifested intense induction of donor class I but no donor class II expression. Rejecting kidneys from both WT and CIITAKO donors showed predominantly CD8 T-cell infiltration at days 7 and 21, with increasing tubulitis and arteritis at day 21. CIITAKO kidneys showed fewer infiltrating cells than WT kidneys at day 21. Thus CIITA-deficient kidneys have no basal and induced class II expression but display intense induction of class I expression, and evoke typical rejection lesions, although some indices of infiltration are reduced at day 21.

Animals↗

Tissue distribution of calcineurin and its sensitivity to inhibition by cyclosporine.

The immunosuppressive activity of cyclosporine is mediated by inhibiting calcineurin phosphatase. However, calcineurin is widely distributed in other tissues. We examined the degree of calcineurin inhibition by cyclosporine in various tissues. In vitro, the cyclosporine concentration inhibiting 50% (IC50) of calcineurin was to approximately 10 ng/mL in human and mouse leukocytes suspensions. In vitro and in vivo IC50s of cyclosporine in homogenates of mouse kidney, heart, liver, testis, and spleen were also comparable (9-48 ng/mL). The maximum calcineurin inhibition by cyclosporine varied, from 83 to 95% of calcineurin activity in spleen, kidney, liver, and testis to 60% in heart and only 10% in brain. Maximum calcineurin inhibition was increased by the addition of cyclophilin A, indicating that cyclophilin concentrations were limiting in some tissues, at least in this assay. Western analysis of mouse tissues showed significantly less cyclophilin in heart than other tissues. cyclosporine concentrations per weight of tissue protein were highest in kidney and liver and lowest in brain and testis after oral dosing, with intermediate levels in spleen, heart, and whole blood. Thus each cyclosporine dose produces rapid and wide-spread inhibition of calcineurin in tissues, with differences in total susceptibility of each tissue.

Animals↗

Immunophilins may limit calcineurin inhibition by cyclosporine and tacrolimus at high drug concentrations.

BACKGROUND: The immunosuppressive drugs cyclosporine (CsA) and tacrolimus (FK506 or FK) are qualitatively similar but differ in molar potency. Both drugs sterically inhibit the phosphatase activity of calcineurin (CN) but differ in molar potency. In our study we explored whether differential inhibition of CN explained the differences in molar potency of FK versus CsA. METHODS: We compared their effects on NFATC2 dephosphorylation using Western analysis, interferon-gamma production using ELISA, and CN phosphatase activity using the CN assay in human peripheral blood leukocytes (PBL) and mouse spleen cell suspension. RESULTS: The FK concentration inhibiting 50% (IC50) of all three activities was approximately 0.2 microg/ml in human PBL, versus 5-20 microg/ml for CsA. Although inhibition of interferon-gamma secretion and NFATC2 dephosphorylation was complete, inhibition of CN phosphatase activity was incomplete with both drugs at saturation, particularly with FK. Inhibition of CN phosphatase activity was incomplete whether FK treatment was in vivo in mouse or in vitro in various human and mouse tissues, especially brain. Exogenous FKBP12 or CyPA increased CN phosphatase inhibition, suggesting that incomplete inhibition of CN phosphatase activity reflected limiting amounts of active immunophilin. CONCLUSIONS: These data contradict the prevailing assumption that immunophilins are abundant and not limiting for inhibition of CN by CsA or FK. Further, the observation that FK and CsA completely inhibit immune function without completely inhibiting CN suggests that the inhibition of immune function is not mediated by general CN inhibition but by inhibition of a subset of CN which is critical for lymphocyte activation.

Animals↗

The use of mycophenolate mofetil in transplant recipients.

With the development of new immunosuppressive agents, the focus of anti-rejection therapy has shifted from prevention of acute allograft rejection to an emphasis on sufficient immunosuppression with minimal toxicity. Mycophenolate mofetil (MMF) is a recently developed immunosuppressive drug, which acts to inhibit T and B cell proliferation by blocking the production of guanosine nucleotides required for DNA synthesis. It also prevents the glycosylation of adhesion molecules that are involved in attachment of lymphocytes to endothelium and potentially in leukocyte infiltration of an allograft during an immune response. High-quality randomized clinical trials have demonstrated that MMF, when used with cyclosporine (CsA) and steroids, reduces the frequency and severity of acute rejection episodes in kidney and heart transplants, improves patient and graft survival in heart allograft recipients and increases renal allograft survival at 3 years. It has also been effective in reversing acute and resistant rejection episodes in heart, kidney and liver recipients. The ability of MMF to facilitate sparing of other immunosuppressive agents, particularly in CsA-related nephrotoxicity, is also promising. By permitting reduction in CsA doses, MMF may stabilize or improve renal graft function in patients with CsA-related nephrotoxicity or chronic allograft nephropathy. Early results of phase I and II trials evaluating MMF therapy in liver and combined pancreas/kidney transplant recipients are encouraging. The main adverse effects associated with oral or intravenous MMF are gastrointestinal and hematologic in nature. Although the direct costs of using MMF vs. azathioprine (AZA) are higher, the decreased incidence and treatment of acute rejection in patients treated with MMF supports its use as a cost-effective option during the first year following transplantation.Thus, MMF has become an important therapeutic tool in the transplant clinician's armamentarium. Ongoing issues to be resolved in clinical trials include the role of MMF in the absence of other potent agents, e.g., as monotherapy or with a steroid but without calcineurin inhibitor; whether MMF will have an impact on chronic allograft dysfunction; and the cost-effectiveness of treatment following the first year of transplantation.

Animals↗

Peritubular capillaries in chronic renal allograft rejection: a quantitative ultrastructural study.

Peritubular capillaries (PCs) with a circumferentially multilayered basement membrane have been suggested as an ultrastructural indicator of chronic renal allograft rejection (CR). The authors validated this lesion as a marker for CR, by analyzing its quantitative features, specificity, and sensitivity in 169 renal biopsy specimens. The mean number of circumferential layers (PCcirc) and the incidences of the grades (mild: 2 to 4, moderate: 5 to 6, severe: 7 or more layers) were investigated in biopsy specimens involving CR (CR(Bx), n = 46), acute rejection (n = 11), normal kidneys (n = 20), psoriatics treated with cyclosporine (n = 13), renal transplants with chronic cyclosporine toxicity (n = 12), native kidney diseases (NKD, n = 56), and transplant nephrectomies attributable to CR (Cr(nephr), n = 11). CR was diagnosed with regard to the clinical features and the presence of intimal fibrosis in 41 biopsy specimens or transplant glomerulopathy in 35 biopsy specimens (cg; identified only by electron microscopy in 10 cases). NKD included chronic glomerulonephritis, chronic tubulointerstitial nephritis, benign nephrosclerosis, thrombotic microangiopathy, diabetic nephropathy, and renal disease in elderly patients (median age, 72 years). All PCs around glomeruli were sampled (median, 14 profiles per case). PCs with a moderate/ severe lesion appeared as serrated profiles with a thick, ribbon-like basement membrane layer in semithin plastic sections. The numbers of circumferentially multilayered PCs were significantly characteristic of CR (PCcirc in CR(Bx): 2.87+/-1.83 SD; range, 0 to 7.36; P < .001 v other groups). A severe lesion occurred exclusively in CR (in 12% of the PCs in CR(Bx), and in 38% in CRnephr). A moderate lesion was observed in 0.6% of the PCs in NKD, 16% in CR(Bx), and 21% in CRnephr. Three or more PCs with a moderate lesion were encountered only in CR. A mild lesion was not suggestive of CR at all. In CR(Bx), 27 cases showed a severe lesion or 3 or more PCs with a moderate lesion (cpc; sensitivity: 59%). Four of the 27 cases lacked cg. The cumulative incidence of cpc and cg was 85%. In transplants with cyclosporine toxicity, the presence of cpc verified the coexistence of CR in 7 specimens. In conclusion, cpc is a specific marker of CR. The incidence of cpc increases as CR progresses. The lesion may be caused by a low-grade rejection injury to the PCs. Careful analysis of semithin sections promotes the better sampling of cpc. An ultrastructural demonstration of cpc and cg defines CR more precisely than does light microscopic evaluation per se.

Adolescent↗

The temporal profile of calcineurin inhibition by cyclosporine in vivo.

BACKGROUND: Cyclosporine (CsA) acts by inhibiting the phosphatase calcineurin (CN), but the time course and extent of inhibition in vivo are unknown. We examined the effect of single oral CsA doses on CN activity in humans and mice in vivo. METHODS: In humans, blood CsA levels were determined and CN activity was measured in whole blood and in blood leukocytes of patients up to 12 hr after CsA dosing (just before the second dose). Samples were collected from patients receiving a first single dose (2.5 mg/kg), and up to 14 days later after repeated dosing. In mice, after CsA dosing (12.5-200 mg/kg) by oral gavage, CsA levels in blood and tissue (spleen, kidney) were determined and CN activity was measured in spleen and kidney. RESULTS: In humans, peak CsA levels of 800-2285 microg/L at 1-2 hr produced 70-96% CN inhibition. Inhibition correlated closely with the rise and fall of CsA levels with no observable lag at the times sampled. Repeated doses showed similar CN inhibition to first dose, with no significant adaptation. In mice, CsA peaked at 1 hr in blood, spleen, and kidney, with higher concentrations in spleen and kidney than in blood. CN inhibition closely followed CsA concentrations/doses, and was greater in kidney than spleen. CONCLUSION: Thus CsA induces partial CN inhibition that varies directly with the blood and tissue levels, and may be greater in some tissues due to higher drug accumulation. The high CsA concentrations and CN inhibition in kidney may be relevant to nephrotoxicity.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Microchimerism in sensitized renal patients.

BACKGROUND: Patients exposed to allogeneic human tissue sometimes produce anti-HLA antibody for many years in the absence of further obvious antigen exposure. To investigate the mechanism of sustained sensitization, we identified females awaiting renal transplantation with high panel-reactive antibody but no exposure to allogeneic tissue for at least 1 month. METHODS: We analyzed peripheral blood microchimerism using nested polymerase chain reaction amplification specific for the SRY region of the Y chromosome. RESULTS: Microchimerism was detected in 3 of 10 patients but in none of 8 normal female subjects. In two cases, the amplified DNA polymerase chain reaction product was sequenced and was confirmed to be identical to the SRY gene. The estimated level of chimerism as compared with serial dilutions of DNA from male peripheral blood leukocytes was about 1/50000. CONCLUSION: These results do not establish causality but support the possibility that antigens from microchimeric donor cells may sustain the HLA antibody response in certain patients.

Adult↗

Pressure overload induces severe hypertrophy in mice treated with cyclosporine, an inhibitor of calcineurin.

Cardiac hypertrophy is the fundamental adaptation of the adult heart to mechanical load. Recent work has shown that inhibition of calcineurin activity with cyclosporine suppresses the development of hypertrophy in calcineurin transgenic mice and in in vitro systems of neonatal rat cardiocytes stimulated with peptide growth factors. To test the hypothesis that the calcineurin signaling pathway is critical for load-induced hypertrophy in vivo, we examined the effects of cyclosporine treatment on left ventricular hypertrophy induced by experimental ascending aortic stenosis for 4 weeks in mice. Left ventricular systolic pressure was elevated to a similar level in aortic stenosis mice that were treated with cyclosporine versus no drug. Left ventricular mass and myocyte size were similar in treated and untreated aortic stenosis animals and significantly greater than control animals, showing that cyclosporine treatment does not suppress hypertrophic growth. Both treated and untreated animals showed increased left ventricular expression of the load-sensitive gene atrial natriuretic factor. Calcineurin activity was measured in the left ventricle and the spleen from control mice and aortic stenosis mice treated with cyclosporine versus no drug. Levels of calcineurin activity were similar in the spleens of control and untreated aortic stenosis mice. However, calcineurin activity was severely depressed in left ventricular tissue of untreated aortic stenosis mice compared with control mice and was further reduced by cyclosporine treatment. Thus, pathological hypertrophy and cardiac-restricted gene expression induced by pressure overload in vivo are not suppressed by treatment with cyclosporine and do not appear to depend on the elevation of left ventricular calcineurin activity.

Animals↗

Interferon-gamma gene expression during acute graft-versus-host disease: relationship to MHC induction and tissue injury.

The pathogenetic role of interferon-gamma (IFN-gamma) in acute graft-versus-host disease (GVHD) was examined in a murine model. IFN-gamma gene expression was evaluated by northern blotting and mRNA in situ hybridization. The temporal and tissue specific patterns of IFN-gamma gene expression were related to the patterns of major histocompatibility complex (MHC) antigen induction and of tissue injury. Markedly increased levels of IFN-gamma transcripts were seen in the spleen during the early lymphoproliferative phase and coincided with widespread MHC induction in non-lymphoid tissues. Increased IFN-gamma transcripts were also found in the non-lymphoid target tissues during the phase of subsequent tissue injury. These findings support a role for IFN-gamma in leading to widespread MHC induction during acute GVHD and suggest that IFN-gamma may also contribute to target tissue injury during acute GVHD.

Animals↗

Current thinking on chronic renal allograft rejection: issues, concerns, and recommendations from a 1997 roundtable discussion.

Chronic rejection accounts for most renal allograft losses after the first year posttransplantation. On March 24 and 25, 1997, a roundtable of five transplant surgeons, two nephrologists, and one pathologist assembled in Dallas, Texas, to review critical issues surrounding chronic renal allograft rejection. This article summarizes the presentations and relevant discussions of this meeting regarding the cause of chronic rejection, clinical diagnoses, risk factors, future prospects for intervention strategies, and general recommendations for the transplant community. Growing evidence indicates that chronic rejection is the aggregate sum of irreversible immunologic and nonimmunologic injuries to the renal graft over time. A history of acute rejection episodes and inadequate immunosuppression, likely attributable to inconsistent cyclosporine exposure or poor patient compliance, are among the most recognizable immunologic risk factors for chronic rejection. Donor organ quality, delayed graft function, and other donor and recipient variables leading to reduced nephron mass are nonimmunologic factors that contribute to the progressive deterioration of renal graft function. Clinical management of renal transplant recipients should incorporate both immunologic- and nonimmunologic-based intervention strategies aimed at minimizing risk factors to thwart the progression of chronic rejection and improve long-term allograft and patient survival.

Biopsy↗