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
Loading... please refresh the page if content is not showing up.

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
Toxocariasis D014120 3 associated lipids
Translocation, Genetic D014178 20 associated lipids
Tremor D014202 15 associated lipids
Trichomonas Infections D014245 3 associated lipids
Trichomonas Vaginitis D014247 2 associated lipids
Trypanosomiasis D014352 5 associated lipids
Tuberous Sclerosis D014402 2 associated lipids
Ulcer D014456 16 associated lipids
Uremia D014511 33 associated lipids
Urinary Tract Infections D014552 11 associated lipids
Urination Disorders D014555 9 associated lipids
Urticaria D014581 13 associated lipids
Uveitis D014605 14 associated lipids
Uveitis, Anterior D014606 11 associated lipids
Uveomeningoencephalitic Syndrome D014607 1 associated lipids
Vascular Diseases D014652 16 associated lipids
Vasculitis D014657 14 associated lipids
Venous Insufficiency D014689 2 associated lipids
Viremia D014766 4 associated lipids
Vision Disorders D014786 10 associated lipids
Vitiligo D014820 2 associated lipids
Vomiting D014839 21 associated lipids
West Nile Fever D014901 1 associated lipids
Wounds, Stab D014951 3 associated lipids
Dementia, Vascular D015140 7 associated lipids
Cholangitis, Sclerosing D015209 1 associated lipids
Inflammatory Bowel Diseases D015212 9 associated lipids
Carcinoma, Merkel Cell D015266 2 associated lipids
Churg-Strauss Syndrome D015267 2 associated lipids
Tumor Lysis Syndrome D015275 2 associated lipids
Discitis D015299 2 associated lipids
Dry Eye Syndromes D015352 10 associated lipids
Scleritis D015423 3 associated lipids
Reperfusion Injury D015427 65 associated lipids
Weight Gain D015430 101 associated lipids
Weight Loss D015431 56 associated lipids
Glomerulonephritis, Membranoproliferative D015432 3 associated lipids
Glomerulonephritis, Membranous D015433 6 associated lipids
Panniculitis, Lupus Erythematosus D015435 1 associated lipids
Leprosy, Borderline D015439 3 associated lipids
Leukemia, Biphenotypic, Acute D015456 2 associated lipids
Leukemia, T-Cell D015458 23 associated lipids
Leukemia-Lymphoma, Adult T-Cell D015459 25 associated lipids
Leukemia, Myelogenous, Chronic, BCR-ABL Positive D015464 17 associated lipids
Leukemia, Myeloid, Chronic-Phase D015466 1 associated lipids
Paraparesis, Tropical Spastic D015493 1 associated lipids
Histiocytosis D015614 2 associated lipids
HIV Infections D015658 20 associated lipids
Osteoporosis, Postmenopausal D015663 4 associated lipids
Eye Diseases, Hereditary D015785 1 associated lipids
Per page 10 20 50 100 | Total 613

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
Loading... please refresh the page if content is not showing up.

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
Loading... please refresh the page if content is not showing up.

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
Schmidt LE et al. Relationship between postoperative erythromycin breath test and early morbidity in liver transplant recipients. 2003 Transplantation pmid:12883193
Troppmann C et al. Higher surgical wound complication rates with sirolimus immunosuppression after kidney transplantation: a matched-pair pilot study. 2003 Transplantation pmid:12883205
Therapondos G et al. Cardiac hypertrophy in liver transplant recipients: tacrolimus, cyclosporine or both? 2003 Transplantation pmid:12883220
Thomas J et al. The immunosuppressive action of FK506. In vitro induction of allogeneic unresponsiveness in human CTL precursors. 1990 Transplantation pmid:1689518
Cavaillé-Coll MW and Elashoff MR Commentary on a comparison of tacrolimus and cyclosporine for immunosuppression after cadaveric renal transplantation. 1998 Transplantation pmid:9448161
Moss MC et al. Lithium use for bipolar disorder post renal transplant: is mood stabilization without toxicity possible? 2014 Transplantation pmid:24492429
Fridell JA et al. Steroid withdrawal for pancreas after kidney transplantation in recipients on maintenance prednisone immunosuppression. 2006 Transplantation pmid:16906038
Boldt A et al. The influence of immunosuppressive drugs on T- and B-cell apoptosis via p53-mediated pathway in vitro and in vivo. 2006 Transplantation pmid:16906043
Reutzel-Selke A et al. Short-term immunosuppressive treatment of the donor ameliorates consequences of ischemia/ reperfusion injury and long-term graft function in renal allografts from older donors. 2003 Transplantation pmid:12811235
Gaber AO et al. Acute rejection characteristics from a prospective, randomized, double-blind, placebo-controlled multicenter trial of early corticosteroid withdrawal. 2013 Transplantation pmid:23423269
Molano RD et al. Long-term islet allograft survival in nonobese diabetic mice treated with tacrolimus, rapamycin, and anti-interleukin-2 antibody. 2003 Transplantation pmid:12811239
Jain A et al. Delayed introduction of tacrolimus postliver transplant with intravenous mycophenolate mofetil preserves renal function without incurring rejection. 2014 Transplantation pmid:25285953
Ericzon BG et al. The effect of FK506 treatment on pancreaticoduodenal allotransplantation in the primate. 1992 Transplantation pmid:1376501
Egeland EJ et al. High Tacrolimus Clearance Is a Risk Factor for Acute Rejection in the Early Phase After Renal Transplantation. 2017 Transplantation pmid:28452920
Gonwa TA et al. End-stage renal disease (ESRD) after orthotopic liver transplantation (OLTX) using calcineurin-based immunotherapy: risk of development and treatment. 2001 Transplantation pmid:11773892
Fisher RA et al. A prospective randomized trial of mycophenolate mofetil with neoral or tacrolimus after orthotopic liver transplantation. 1998 Transplantation pmid:9884248
Yates CJ et al. Screening for new-onset diabetes after kidney transplantation: limitations of fasting glucose and advantages of afternoon glucose and glycated hemoglobin. 2013 Transplantation pmid:23902993
Egidi MF and Gaber AO Outcomes of African-American kidney-transplant recipients treated with sirolimus, tacrolimus, and corticosteroids. 2003 Transplantation pmid:12605133
Ciancio G et al. Use of intravenous FK506 to treat acute rejection in simultaneous pancreas-kidney transplant recipients on maintenance oral FK506. 1997 Transplantation pmid:9075856
Camirand G et al. Combined immunosuppression of mycophenolate mofetil and FK506 for myoblast transplantation in mdx mice. 2001 Transplantation pmid:11468532
Squifflet JP et al. Dose optimization of mycophenolate mofetil when administered with a low dose of tacrolimus in cadaveric renal transplant recipients. 2001 Transplantation pmid:11468536
Yu S et al. Influence of CYP3A5 gene polymorphisms of donor rather than recipient to tacrolimus individual dose requirement in liver transplantation. 2006 Transplantation pmid:16421475
Jurcevic S et al. A new enzyme-linked immunosorbent assay to measure anti-endothelial antibodies after cardiac transplantation demonstrates greater inhibition of antibody formation by tacrolimus compared with cyclosporine. 1998 Transplantation pmid:9603168
Borrows R et al. Five years of steroid sparing in renal transplantation with tacrolimus and mycophenolate mofetil. 2006 Transplantation pmid:16421488
Macphee IA et al. Tacrolimus pharmacogenetics: polymorphisms associated with expression of cytochrome p4503A5 and P-glycoprotein correlate with dose requirement. 2002 Transplantation pmid:12490779
Shapiro AM et al. Defining optimal immunosuppression for islet transplantation based on reduced diabetogenicity in canine islet autografts. 2002 Transplantation pmid:12490784
Shaffer D et al. Normal pancreas allograft function following simultaneous pancreas kidney transplantation after rescue therapy with tacrolimus (FK506). 1995 Transplantation pmid:7535958
Andries S et al. Posttransplant immune hepatitis in pediatric liver transplant recipients: incidence and maintenance therapy with azathioprine. 2001 Transplantation pmid:11477351
Ho ET et al. Once-daily extended-release versus twice-daily standard-release tacrolimus in kidney transplant recipients: a systematic review. 2013 Transplantation pmid:23542469
Taler SJ et al. Role of steroid dose in hypertension early after liver transplantation with tacrolimus (FK506) and cyclosporine. 1996 Transplantation pmid:8970613
Porrini E et al. Prediabetes in patients receiving tacrolimus in the first year after kidney transplantation: a prospective and multicenter study. 2008 Transplantation pmid:18431233
Veroux M et al. Impact of conversion to a once daily tacrolimus-based regimen in kidney transplant recipients with gastrointestinal complications. 2012 Transplantation pmid:22298033
Naesens M et al. Maturation of dose-corrected tacrolimus predose trough levels in pediatric kidney allograft recipients. 2008 Transplantation pmid:18431234
Roelen DL et al. Differential inhibition of primed alloreactive CTLs in vitro by clinically used concentrations of cyclosporine and FK506. 1993 Transplantation pmid:7687397
MacDonald AS Management strategies for nephrotoxicity. 2000 Transplantation pmid:10910262
Reyes J et al. Long-term results after conversion from cyclosporine to tacrolimus in pediatric liver transplantation for acute and chronic rejection. 2000 Transplantation pmid:10910279
Higgins RM et al. Conversion from tacrolimus to cyclosporine in stable renal transplant patients: safety, metabolic changes, and pharmacokinetic comparison. 2000 Transplantation pmid:10836393
Garton T Nefazodone and cyp450 3a4 interactions with cyclosporine and tacrolimus1. 2002 Transplantation pmid:12352898
Cantarovich D et al. Switching from cyclosporine to tacrolimus in patients with chronic transplant dysfunction or cyclosporine-induced adverse events. 2005 Transplantation pmid:15714172
Yamauchi A et al. Neurotoxicity induced by tacrolimus after liver transplantation: relation to genetic polymorphisms of the ABCB1 (MDR1) gene. 2002 Transplantation pmid:12352921
Thomas PG et al. Alemtuzumab (Campath 1H) induction with tacrolimus monotherapy is safe for high immunological risk renal transplantation. 2007 Transplantation pmid:17565326
Inamura N et al. Prolongation of skin allograft survival in rats by a novel immunosuppressive agent, FK506. 1988 Transplantation pmid:2447690
Peng Y et al. Donor-derived mesenchymal stem cells combined with low-dose tacrolimus prevent acute rejection after renal transplantation: a clinical pilot study. 2013 Transplantation pmid:23263506
Kuypers DR et al. Improved adherence to tacrolimus once-daily formulation in renal recipients: a randomized controlled trial using electronic monitoring. 2013 Transplantation pmid:23263559
Shapiro R et al. Tacrolimus in pediatric renal transplantation. 1996 Transplantation pmid:8990356
Ko S et al. The pharmacokinetic benefits of newly developed liposome-incorporated FK506. 1994 Transplantation pmid:7526494
White M et al. Subclinical inflammation and prothrombotic state in heart transplant recipients: impact of cyclosporin microemulsion vs. tacrolimus. 2006 Transplantation pmid:17006323
Katz IA et al. Comparison of the effects of FK506 and cyclosporine on bone mineral metabolism in the rat. A pilot study. 1991 Transplantation pmid:1716801
Inomata Y et al. The evolution of immunosuppression with FK506 in pediatric living-related liver transplantation. 1996 Transplantation pmid:8600632
Foster RD et al. Long-term acceptance of composite tissue allografts through mixed chimerism and CD28 blockade. 2003 Transplantation pmid:14508367