Biliary Anastomosis Using Surgical Loupe Versus Microscope in Living Donor Liver Transplantation
NCT04618692
Digestive System Diseases, Digestive System Neoplasms
Istanbul, Turkey (Türkiye)
View Trial DetailsNCT Number: NCT07541807
Identifying drugs at risk of interacting with other drugs, called drug-drug interaction (DDI), early in their development is crucial in avoiding late-stage drug development failures. The liver plays a key role in DDIs , with liver cells playing a major part in the taking up and getting rid of drugs. Currently, there is a lack of safe, widely available tools for testing DDIs in humans, particularly interactions involving liver cell transporters.
This study is part of five work packages under the TRISTAN project (Translational Imaging in Drug Safety Assessment) which aims to improve drug safety using imaging. A pilot study provided proof-of-principle that the imaging procedure, dynamic gadoxetate (a type of dye) enhanced magnetic resonance imaging (DGE-MRI), can be used to measure the effect drugs have on the liver cell transporters in humans, using Rifampicin as a test drug. This study aims to further confirm DGE-MRI as a liver imaging biomarker in humans using two different drugs known to act on these transporters.
All study procedures will be done at Sheffield Teaching Hospitals NHS Foundation Trust at the Royal Hallamshire Hospital. This is the site for University of Sheffield MRI related research. Healthy volunteer participants over the age of 18 years old will be eligible with the aim to recruit 12 volunteers. Each participant will attend 3 visits undertaken in a stepwise manner. Visit A will be for screening, consent and baseline blood tests. Visit B will include two MRI scans with gadoxetate administered at each and blood tests measuring liver function taken prior to each scan. Participants will proceed to Visit C if satisfactory images are obtained during the previous visit. Visit C will mirror Visit B, however either Metformin of Ciclosporin will be administered prior to the first scan. The study duration is three months.
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Notify Me18 year and older
All sexes
Observational
Royal Hallamshire Hospital, Sheffield, United Kingdom
The identification of drugs at risk of drug-drug interactions (DDI) early in the drug development life cycle is key to avoid late stage drug development failures. A critical gap in current methodologies is for tools that are widely available and safe to use in humans, and specifically can distinguish between perturbation of hepatocellular uptake, excretion or both.
Dynamic gadoxetate enhanced magnetic resonance imaging (DGE-MRI) is a technique that can potentially fill this gap. The MRI contrast agent gadoxetate is used in clinical routine, it is known to be taken up in hepatocytes by transporters OATPB1 and excreted to bile by MRP2 transporters, and the respective uptake and excretion rates can be quantified with DGE-MRI using suitable MRI scans and data modelling.
Studies in animal models using DGE-MRI on 6 different drugs have clearly demonstrated various levels of drug-induced inhibition of gadoxetate uptake and excretion. Recently, a proof-of-concept study in healthy human volunteers using DGE-MRI to characterise a single drug (rifampicin) has shown a systematic 95% reduction in gadoxetate uptake and 40% reduction in excretion.
Aims
Study objectives The purpose of the current study is to expand on these previous results and use DGE-MRI to measure the inhibition of gadoxetate uptake and excretion in volunteers with two other test drugs, metformin and ciclosporin (Neoral). These drugs are selected because they are commonly used in clinical practice, have a good safety profile and are known to inhibit OATP1B1 and MRP2 function. They should therefore also produce a measurable effect on gadoxetate uptake and excretion rates. If we can show that this is indeed measurable, the results will add further evidence that these effects can be detected by DGE-MRI, improve our understanding of relevant effect size and limits of detection, and help us identify thresholds above which reduction in gadoxetate uptake or excretion would be of concern.
Study endpoints
Long-term aims On the longer term we expect these data to help build a case that DGE-MRI can be a useful tool to assess transported-mediated DDI risk in early drug development. The study results will be included in an application to FDA's biomarker qualification program as described in a biomarker qualification plan (submitted to FDA) following acceptance by the FDA of a letter of intent outlining the rationale for this biomarker in drug development.
Methods
This is a single centre, prospective observational study including healthy volunteer participants. 6 participants will be recruited to each immediate-release metformin and ciclosporin (Neoral) drug arms (12 total). After screening and consent, each subject will attend two hospital visits no less than 7 days apart. On each visit they will undergo DGE-MRI in the morning, and once again after a 2-hour break to allow for sufficient time to measure biliary gadoxetate clearance. On the second visit one of the two test drugs will be administered before the first scan. Each DGE-MRI scan will be performed using 25% (¼) of a clinical dose of gadoxetate. Immediate-release metformin and ciclosporin (Neoral) will be used at standardised dosages (1000mg and 100mg, respectively). Blood samples will be taken before drug administration and before each scan for comparative assessment with liver function tests (LFT).
The work is outlined below.
Analyses
All images will be reviewed by a qualified abdominal radiologist to check for incidental findings.
Gadoxetate uptake and excretion kinetic rate constants will be measured with and without the drug for all participants. The primary outcome measure is the effect size of the drug on uptake and excretion.
The primary analyses will be done at the University of Sheffield.
Safety
The modelling and use of gadoxetate as a research biomarker was established in the proof-of-concept study conducted at the University of Leeds. Gadoxetate will be used at 25% (¼) standard clinical dose for each scan. This dose was established in the precursor study as the requisite dose to enable analyses of gadoxetate kinetics whilst not exposing participants unnecessarily to higher doses of the gadoxetate. At 25% of standard clinical dose, gadoxetate is not licensed for the diagnostic use. The administration of gadoxetate will be authorised by the clinical lead, Dr Benjamin Rea.
Both Metformin and Ciclosporin have an excellent safety profile and record, and therefore the risk posed to a healthy volunteer with no history of polypharmacy or comorbidities from a one off dose, is negligible. Routine clinical exclusions will be applied pertaining to the administration of gadoxetate, metformin and ciclosporin (Neoral) as well as contraindications to MRI imaging.
There will be no monitoring procedures undertaken following completion of this study but the research fellow will remain contactable following completion of the study for further queries.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Standard MRI exclusions, including:
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
quantitative variables extracted from the MRI data.
95% CI on the mean effect size of uptake rate khe (mL/min/100mL)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
quantitative variables extracted from the MRI data.
95% CI on the mean effect size of excretion rate kbh (mL/min/100mL
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Use of quantitative variables extracted from MRI data
Effect size (%) calculated as = 100* (rate constant with drug - rate constant without drug)/(rate constant without drug)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Use of quantitative variables extracted from MRI data
Effect size (%) calculated as = 100* (rate constant with drug - rate constant without drug)/(rate constant without drug)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Quantitative variables from blood test results; AST (IU per Litre), ALT (IU per Litre), ALP(IU per Litre), GGT(IU per Litre) and bilirubin (umol per litre)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Use of quantitative variables extracted from MRI data
Effect size displayed as (%) calculated as = 100* (Relative enhancement ratio with drug- Relative enhancement ratio without drug)/(Relative enhancement ratio without drug)
Area under the curve, mM*sec; liver concentrations, mL/100cm3)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Use of quantitative variables extracted from MRI data
Effect size displayed as (%) and calculated as = 100* (Area under the curve blood concentration with drug- Area under the curve blood concentration without drug)/(Area under the curve blood concentration without drug)
Area under the curve units are (mM*sec)
Time frame: Visit B which is performed at baseline, Visit C which is performed within 56 days of baseline visit B
Effect size displayed as (%) and calculated as = 100* (Area under the curve liver concentration with drug- Area under the curve liver concentration without drug)/(Area under the curve liver concentration without drug)
(liver concentrations, (mL/100cm3))
Time frame: Visit B which is performed at baseline
quantitative variables extracted from the MRI data.
95% CI on the mean effect size of uptake rate khe (mL/min/100mL)
Time frame: Visit B which is performed at baseline
quantitative variables extracted from the MRI data.
95% CI on the mean effect size of excretion rate kbh (mL/min/100mL
Sheffield Teaching Hospitals NHS Foundation Trust
Other
Quantifying the Perturbation of Gadoxetate Kinetics by Metformin and Ciclosporin With Functional Magnetic Resonance Imaging of the Liver
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