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The Effect of Glucagon on Rates of Hepatic Mitochondrial Oxidation in Man Assessed by PINTA

The Effect of Glucagon on Rates of Hepatic Mitochondrial Oxidation and Pyruvate Carboxylase Flux in Man Assessed by Positional Isotopomer NMR Tracer Analysis (PINTA)

Status
Completed
Phases
Phase 1
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03965130
Enrollment
10
Registered
2019-05-28
Start date
2019-06-05
Completion date
2023-07-06
Last updated
2024-11-26

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Healthy Participants

Keywords

Hepatic Glucose Metabolism, Hepatic Mitochondrial Oxidation, PINTA, Glucagon

Brief summary

It is well established that alterations in the portal vein insulin:glucagon ratio play a major role in the dysregulated hepatic glucose metabolism in type 2 diabetes but the molecular mechanism by which glucagon promotes alterations in hepatic glucose production and mitochondrial oxidation remain poorly understood. This is borne out of the fact that both glucagon agonists and antagonists are being developed to treat type 2 diabetes with unclear mechanisms of action. This study will directly assess rates of mitochondrial oxidation and pyruvate carboxylase flux for the first time in humans using PINTA analysis as well as the effects of glucagon. The results will have important implications for the possibility of intervening in the pathogenesis of non alcoholic fatty liver and type 2 diabetes via chronic dual GLP-1/glucagon receptor antagonism and provide an important rationale for why a dual agonist may be more efficacious for treatment of non alcoholic fatty liver and T2D than GLP-1 alone.

Detailed description

Objectives: To examine rates of hepatic mitochondrial oxidation in healthy volunteers with liver lipid less than 2%. To examine the effects of glucagon on hepatic glucose and fat metabolism in vivo, this study will apply a novel Positional Isotopomer NMR Tracer Analysis (PINTA) method to quantify rates of hepatic mitochondrial oxidation and pyruvate carboxylase flux, which has been cross-validated in awake rodents and humans (Perry et al. Nature Communications 2017). Preliminary rodent studies have found that glucagon stimulates intrahepatic lipolysis through an InsP3R-I-dependent process, leading to increases in hepatic acetyl-CoA content, which allosterically activates pyruvate carboxylase activity and flux, and that this phenomenon explains its acute, transcription-independent effect to acutely stimulate hepatic gluconeogenesis in vivo (unpublished results). In addition, using PINTA analysis it has been shown that glucagon stimulates hepatic mitochondrial oxidation through calcium signaling in awake mice, and that this process can be exploited by short-term continuous glucagon treatment leading to two-fold increases in hepatic mitochondrial fat oxidation, which in turn results in large reductions in hepatic steatosis and marked improvements in glucose tolerance through reversal of hepatic insulin resistance in a high fat fed rat model of non alcoholic fatty liver. Hypothesis: 1\. A physiological increase in plasma glucagon concentrations will promote a significant increase in rates of hepatic mitochondrial oxidation in healthy humans. 3\. A physiological increase in plasma glucagon concentrations will promote a significant increase in rates of hepatic pyruvate carboxylase flux in healthy humans. 4\. A physiological increase in plasma glucagon concentrations will promote a significant increase in rates of 13C4 β-hydroxybutyrate turnover (hepatic ketogenesis) in healthy humans. Study Design - Clinical Plan: The effects of a physiological increase in plasma glucagon on rates of hepatic mitochondrial oxidation and pyruvate carboxylase flux will be examined in a group of up to 12 healthy participants (ages 21-65) using Positional Isotopomer NMR Tracer Analysis (PINTA) (Perry et al. Nature Communication 2017). Briefly rates of hepatic mitochondrial oxidation and hepatic pyruvate carboxylase flux will be assessed in 12 healthy overnight fasted participants by PINTA after a three-hour infusion of glucagon or saline. The glucagon infusion will be designed to increase peripheral and portal vein plasma glucagon concentrations 3-4 fold. The effects of a physiological increase in plasma glucagon on rates of hepatic ketogenesis will also be assessed using an infusion of 13C4 β-betahydroxybutyrate (Perry et al. Cell Metabolism 2017). Rates of hepatic pyruvate carboxylase flux /citrate synthase flux by PINTA: Participants (n=12) will be studied by PINTA under 2 conditions: 1) following an overnight fast and a 3 hour saline infusion (Control), 2) following an overnight fast and a 3 hour glucagon infusion. Briefly, after collection of baseline blood samples a 3 hour infusion of tracers as described below will be started. Relative rates of pyruvate carboxylase to citrate synthesis flux will be assessed using a constant infusion of \[3-13C\] lactate and rates of glucose production will be measured using an infusion of \[2H7\]glucose (Perry et al. Nature Communication 2017). Rates of hepatic ketogenesis will be measured using a constant infusion of \[3C β-hydroxybutyrate as previously described (Perry et al. Cell Metabolism 2017). Whole body energy expenditure and the respiratory quotient will be assessed by indirect calorimetry.

Interventions

BIOLOGICALGlucagon

PINTA study with glucagon

OTHERControl Study

The same participants will not receive glucagon during the PINTA study

Sponsors

Merck Sharp & Dohme LLC
CollaboratorINDUSTRY
Yale University
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
CROSSOVER
Primary purpose
BASIC_SCIENCE
Masking
NONE

Intervention model description

Each participant will participate in two studies: one without and one with a 3 hour infusion of glucagon during the PINTA study

Eligibility

Sex/Gender
ALL
Age
21 Years to 65 Years
Healthy volunteers
Yes

Inclusion criteria

* Healthy * Non smoking * Taking no medications except birth control

Exclusion criteria

* Any systemic or organ disease * Smoking * Taking any drug or medications other than birth control (women)

Design outcomes

Primary

MeasureTime frameDescription
Rates of Hepatic Mitochondrial Oxidation5 hoursRates of pyruvate carboxylase flux and citrate synthesis flux will be assessed using GC/MS and NMR analyses of plasma glucose 13C enrichments after the \[3-13C\]lactate infusion

Countries

United States

Participant flow

Participants by arm

ArmCount
Glucagon
Participants will receive glucagon or saline during the PINTA study Glucagon: PINTA study with or without glucagon
10
Total10

Baseline characteristics

CharacteristicGlucagon
Age, Categorical
<=18 years
0 Participants
Age, Categorical
>=65 years
1 Participants
Age, Categorical
Between 18 and 65 years
9 Participants
Age, Continuous58 years
STANDARD_DEVIATION 13
Hepatic mitochondrial function149 micromol per min
STANDARD_DEVIATION 49
Race (NIH/OMB)
American Indian or Alaska Native
0 Participants
Race (NIH/OMB)
Asian
4 Participants
Race (NIH/OMB)
Black or African American
0 Participants
Race (NIH/OMB)
More than one race
0 Participants
Race (NIH/OMB)
Native Hawaiian or Other Pacific Islander
0 Participants
Race (NIH/OMB)
Unknown or Not Reported
0 Participants
Race (NIH/OMB)
White
6 Participants
Region of Enrollment
United States
10 Participants
Sex: Female, Male
Female
3 Participants
Sex: Female, Male
Male
7 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
0 / 100 / 10
other
Total, other adverse events
0 / 100 / 10
serious
Total, serious adverse events
0 / 100 / 10

Outcome results

Primary

Rates of Hepatic Mitochondrial Oxidation

Rates of pyruvate carboxylase flux and citrate synthesis flux will be assessed using GC/MS and NMR analyses of plasma glucose 13C enrichments after the \[3-13C\]lactate infusion

Time frame: 5 hours

Population: Each arm is comprised of the same 10 participants from the crossover design.

ArmMeasureValue (MEAN)Dispersion
GlucagonRates of Hepatic Mitochondrial Oxidation262 micromol/minStandard Error 33
SalineRates of Hepatic Mitochondrial Oxidation149 micromol/minStandard Error 15

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026