tacrolimus

Tacrolimus is a lipid of Polyketides (PK) class. Tacrolimus is associated with abnormalities such as Renal glomerular disease. The involved functions are known as inhibitors, Fungicidal activity, Metabolic Inhibition, Excretory function and Dephosphorylation. Tacrolimus often locates in Hepatic, Mitochondrial matrix and Inner mitochondrial membrane. The associated genes with Tacrolimus are RHOA gene and BGN gene.

Cross Reference

Introduction

To understand associated biological information of tacrolimus, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with tacrolimus?

tacrolimus is suspected in Renal glomerular disease, Candidiasis, Mycoses, PARKINSON DISEASE, LATE-ONSET, Morphologically altered structure, Skin Diseases, Infectious and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

Disease Cross reference Weighted score Related literature
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Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with tacrolimus

MeSH term MeSH ID Detail
Hemolysis D006461 131 associated lipids
Uremia D014511 33 associated lipids
Colitis, Ulcerative D003093 24 associated lipids
Stomach Ulcer D013276 75 associated lipids
Kidney Failure, Chronic D007676 51 associated lipids
Nocardia Infections D009617 6 associated lipids
Diarrhea D003967 32 associated lipids
Diabetes Mellitus D003920 90 associated lipids
Graft Occlusion, Vascular D006083 11 associated lipids
Hypercalcemia D006934 13 associated lipids
Neovascularization, Pathologic D009389 39 associated lipids
Adenocarcinoma D000230 166 associated lipids
Dermatitis, Contact D003877 59 associated lipids
Bacterial Infections D001424 21 associated lipids
Pain D010146 64 associated lipids
Autoimmune Diseases D001327 27 associated lipids
Lupus Erythematosus, Systemic D008180 43 associated lipids
Genital Diseases, Female D005831 7 associated lipids
Mouth Diseases D009059 5 associated lipids
Meningococcal Infections D008589 3 associated lipids
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PubChem Associated disorders and diseases

What pathways are associated with tacrolimus

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with tacrolimus?

Related references are published most in these journals:

Location Cross reference Weighted score Related literatures
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What functions are associated with tacrolimus?


Related references are published most in these journals:

Function Cross reference Weighted score Related literatures

What lipids are associated with tacrolimus?

Related references are published most in these journals:

Lipid concept Cross reference Weighted score Related literatures
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What genes are associated with tacrolimus?

Related references are published most in these journals:


Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with tacrolimus?

There are no associated biomedical information in the current reference collection.

NCBI Entrez Crosslinks

All references with tacrolimus

Download all related citations
Per page 10 20 50 100 | Total 15051
Authors Title Published Journal PubMed Link
Suzuki H et al. Induction of transplantation tolerance in adult rats by vascularized spleen transplantation. 1997 Transplantation pmid:9293881
Plock JA et al. Adipose- and Bone Marrow-Derived Mesenchymal Stem Cells Prolong Graft Survival in Vascularized Composite Allotransplantation. 2015 Transplantation pmid:26102613
Stevens RB et al. Randomized trial of single-dose versus divided-dose rabbit anti-thymocyte globulin induction in renal transplantation: an interim report. 2008 Transplantation pmid:18497677
Arns W et al. Pharmacokinetics and Clinical Outcomes of Generic Tacrolimus (Hexal) Versus Branded Tacrolimus in De Novo Kidney Transplant Patients: A Multicenter, Randomized Trial. 2017 Transplantation pmid:28658202
Moxey-Mims MM Increased incidence of insulin-dependent diabetes mellitus in pediatric renal transplant patients receiving tacrolimus (FK506) 1999 Transplantation pmid:10440413
Jordan ML et al. Results of pancreas transplantation after steroid withdrawal under tacrolimus immunosuppression. 2000 Transplantation pmid:10670637
McGhee B et al. Therapeutic use of an extemporaneously prepared oral suspension of tacrolimus in pediatric patients. 1997 Transplantation pmid:9326429
Yoshimura N et al. The direct effect of FK506 and rapamycin on interleukin 1(beta) and immunoglobulin production in vitro. 1994 Transplantation pmid:7517078
Budde K et al. Conversion from mycophenolate mofetil to enteric-coated mycophenolate sodium in maintenance renal transplant recipients receiving tacrolimus: clinical, pharmacokinetic, and pharmacodynamic outcomes. 2007 Transplantation pmid:17318074
Tuteja S et al. The effect of gut metabolism on tacrolimus bioavailability in renal transplant recipients. 2001 Transplantation pmid:11397967
Stifft F et al. Lower variability in 24-hour exposure during once-daily compared to twice-daily tacrolimus formulation in kidney transplantation. 2014 Transplantation pmid:24686426
Reichenspurner H et al. Optimization of the immunosuppressive protocol after lung transplantation. 1999 Transplantation pmid:10428269
Pilmore HL et al. Tacrolimus for the treatment of gout in renal transplantation: two case reports and review of the literature. 2001 Transplantation pmid:11726837
Sampaio MS et al. Association of immunosuppressive maintenance regimens with posttransplant lymphoproliferative disorder in kidney transplant recipients. 2012 Transplantation pmid:22129761
Soccal PM et al. Improvement of drug-induced chronic renal failure in lung transplantation. 1999 Transplantation pmid:10428288
Moxey-Mims MM et al. Increased incidence of insulin-dependent diabetes mellitus in pediatric renal transplant patients receiving tacrolimus (FK506) 1998 Transplantation pmid:9521193
Koenen HJ et al. Superior T-cell suppression by rapamycin and FK506 over rapamycin and cyclosporine A because of abrogated cytotoxic T-lymphocyte induction, impaired memory responses, and persistent apoptosis. 2003 Transplantation pmid:12792519
Jain A et al. Pharmacokinetics of tacrolimus in living donor liver transplant and deceased donor liver transplant recipients. 2008 Transplantation pmid:18347534
Ishizuka J et al. Effects of FK506 and cyclosporine on dynamic insulin secretion from isolated dog pancreatic islets. 1993 Transplantation pmid:7506454
Murase N et al. FK506 suppression of heart and liver allograft rejection. II: The induction of graft acceptance in rats. 1990 Transplantation pmid:1700504
Robertsen I et al. Use of generic tacrolimus in elderly renal transplant recipients: precaution is needed. 2015 Transplantation pmid:25148382
Kaplan B et al. Low bioavailability of cyclosporine microemulsion and tacrolimus in a small bowel transplant recipient: possible relationship to intestinal P-glycoprotein activity. 1999 Transplantation pmid:10075604
Gaber AO et al. Comparison of sirolimus plus tacrolimus versus sirolimus plus cyclosporine in high-risk renal allograft recipients: results from an open-label, randomized trial. 2008 Transplantation pmid:19005398
Erden E et al. Plasma FK506 levels in patients with histopathologically documented renal allograft rejection. 1994 Transplantation pmid:7519801
Morikawa K et al. The distinct effects of FK506 on the activation, proliferation, and differentiation of human B lymphocytes. 1992 Transplantation pmid:1281561
McDevitt-Potter LM et al. A multicenter experience with generic tacrolimus conversion. 2011 Transplantation pmid:21788920
Roth D et al. Primary immunosuppression with tacrolimus and mycophenolate mofetil for renal allograft recipients. 1998 Transplantation pmid:9458023
Zhao W et al. Pharmacokinetic interaction between tacrolimus and amlodipine in a renal transplant child. 2012 Transplantation pmid:22450597
Ciancio G et al. A randomized trial of three renal transplant induction antibodies: early comparison of tacrolimus, mycophenolate mofetil, and steroid dosing, and newer immune-monitoring. 2005 Transplantation pmid:16123718
Berg UB et al. Renal function before and long after liver transplantation in children. 2001 Transplantation pmid:11544422
Irish W et al. Three-year posttransplant graft survival in renal-transplant patients with graft function at 6 months receiving tacrolimus or cyclosporine microemulsion within a triple-drug regimen. 2003 Transplantation pmid:14688516
Akst LM et al. Induction of tolerance in a rat model of laryngeal transplantation. 2003 Transplantation pmid:14688529
Lauria MW et al. Metabolic long-term follow-up of functioning simultaneous pancreas-kidney transplantation versus pancreas transplantation alone: insights and limitations. 2010 Transplantation pmid:20061923
Gruessner RW et al. Mycophenolate mofetil in pancreas transplantation. 1998 Transplantation pmid:9721799
Emond JC et al. Improved results of living-related liver transplantation with routine application in a pediatric program. 1993 Transplantation pmid:7682738
Kai N et al. Prevention of insulitis and diabetes in nonobese diabetic mice by administration of FK506. 1993 Transplantation pmid:7682740
Chisholm MA et al. Coadministration of tacrolimus with anti-acid drugs. 2003 Transplantation pmid:12973105
Koch R et al. Cyclosporine A-induced achalasia-like esophageal motility disorder in a liver transplant recipient: successful conversion to tacrolimus. 2003 Transplantation pmid:12973123
Kershner RP and Fitzsimmons WE Relationship of FK506 whole blood concentrations and efficacy and toxicity after liver and kidney transplantation. 1996 Transplantation pmid:8878385
Nolan TJ and Schad GA Tacrolimus allows autoinfective development of the parasitic nematode Strongyloides stercoralis. 1996 Transplantation pmid:8878405
Devlin J et al. Nitric oxide generation. A predictive parameter of acute allograft rejection. 1994 Transplantation pmid:7522365
Higgins R et al. Rises and falls in donor-specific and third-party HLA antibody levels after antibody incompatible transplantation. 2009 Transplantation pmid:19300192
Steiner RW Steroid withdrawal in kidney transplantation: the subgroup fallacy. 2011 Transplantation pmid:21336084
Dhar DK et al. The salutary effect of FK506 in ischemia-reperfusion injury of the canine liver. 1992 Transplantation pmid:1384188
Bashuda H et al. Induction of persistent allograft tolerance in the rat by combined treatment with anti-leukocyte function-associated antigen-1 and anti-intercellular adhesion molecule-1 monoclonal antibodies, donor-specific transfusion, and FK506. 1996 Transplantation pmid:8693525
Hughes JR et al. Blood levels of TGFbeta1 in liver transplant recipients receiving either tacrolimus or micro-emulsified cyclosporine. 1999 Transplantation pmid:10480422
Cacciarelli TV et al. Management of posttransplant lymphoproliferative disease in pediatric liver transplant recipients receiving primary tacrolimus (FK506) therapy. 1998 Transplantation pmid:9808490
Macphee IA et al. Tacrolimus pharmacogenetics: the CYP3A5*1 allele predicts low dose-normalized tacrolimus blood concentrations in whites and South Asians. 2005 Transplantation pmid:15729180
Griffith BP et al. A prospective randomized trial of FK506 versus cyclosporine after human pulmonary transplantation. 1994 Transplantation pmid:7512292
Sun S et al. Effect of tacrolimus on hemodynamics and absorption of experimental small intestinal transplants. 1996 Transplantation pmid:8633368