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The Effects of a Glutathione Precursor (FT061452),on Serum and Intracellular Glutathione Levels

PILOT: The Effects of Short Term Administration of a Novel Glutathione Precursor (FT061452), on Serum and Intracellular Glutathione Levels

Status
Completed
Phases
Phase 1
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01251315
Enrollment
24
Registered
2010-12-01
Start date
2010-12-31
Completion date
2011-06-30
Last updated
2014-04-14

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

Conditions

Oxidative Stress

Keywords

Glutathione, Antioxidant, Free radical, Oxidative stress, N-Acetyl Cysteine, Glutathione precursor

Brief summary

Glutathione is a powerful protective substance found within every cell in the body. It has been shown that glutathione levels go down as a person gets older, which makes a person more likely to get heart disease, high blood sugar problems and different kind of cancers. N-Acetyl Cysteine is used as a dietary supplement. It has been reported to increase glutathione levels in the body. The diet supplement called ProImmune is also changed by the body into glutathione. Therefore, the purpose of this study is to find out the effect of ProImmune in healthy people. This study will also help to prove whether or not the ProImmune is able to improve the blood levels of glutathione in healthy people.

Detailed description

Glutathione (gamma-glutamyl-cysteine-glycine; GSH) is a powerful antioxidant found within every cell. GSH is predominantly known to protect the cells from damage caused by free radicals. The concentration of glutathione declines with age, stress, and in some age-related diseases. When glutathione becomes deficient, a series of events are initiated termed oxidative stress and the associated cell signaling leads to impaired immune function and similar abnormalities in numerous cell systems. Oral glutathione is ineffective in replenishing glutathione levels and reversing the abnormal signaling pathways associated with oxidative stress. Intravenous glutathione has been shown to be effective but is short-lived. N-Acetyl Cysteine, a glutathione precursor, has had limited efficacy in clinical settings and suffers from an adverse effect profile.Null Hypothesis (primary): The administration of FT061452 will not increase serum and intracellular glutathione levels in comparison to N-Acetyl Cysteine (NAC), and placebo. Null Hypothesis (secondary): The administration of FT061452 will not improve vascular function in comparison to N-Acetyl Cysteine (NAC), and placebo. The Specific Aims of this pilot study are to: * Compare the change in serum and intracellular glutathione levels following the administration of a novel oral glutathione precursor, FT061452, (modified glutathione with selenium added, and cystine replacing cysteine, in doses equivalent to NAC) compared to low dose or usual dose of NAC, and placebo. * Compare the change in select clinical parameters (vascular function) following the administration of a novel oral glutathione precursor, FT061452, (modified glutathione with selenium added, and cystine replacing cysteine) compared to N-Acetyl Cysteine (NAC), and placebo. * As a pilot study a third goal is to generate effect sizes for appropriately powering future clinical trials. Background: Increased rates of adverse health outcomes for racial and ethnic minorities have been linked to a confluence of socio-cultural, environmental, immunological, and genetic based factors, frequently acting in concert. Ultimately, the majority of these factors lead to adverse physiologic and cellular changes. However, it is the chronic activation of these neurohormonal systems through the above stresses that lead to maladaptive health consequences such as accelerated apoptosis, atherogenesis, altered immune function, and other dysregulations of cellular function. Ultimately, stress related cellular activities contribute to many of the observed premature chronic diseases in humans, many of which are found in disproportionately high rates in minority communities. Glutathione is the major regulator of the cellular oxidative state that buffers many of these stress related pathways. When glutathione becomes deficient there occurs an increase in reactive oxidative species (ROS) that collectively can be termed oxidative stress. Clinically, oral glutathione (GSH) has been ineffective in replenishing glutathione levels and reversing the associated abnormal cellular signaling. GSH as a whole molecule cannot be taken up by cells in mammals but is largely metabolized in the gastrointestinal tract into constituent amino acids, including the highly oxidizable L-cysteine, which cannot be re-united extracellularly into glutathione as its re-assimilation requires two cytosolic, ATP-dependent enzymes. Thus, the processes that achieve glutathione synthesis require special conditions that are only present within the cell. Oral glutathione preparations are limited by their ability to provide adequate substrate to stimulate intracellular glutathione synthesis due to L-cysteine being highly oxidizable. Intravenous glutathione administration is expensive, short-lived, and impractical, as the transiently higher plasma concentrations are largely independent of intracellular glutathione activity, where much of the oxidative balance is performed. N-Acetyl Cysteine (NAC), a glutathione precursor, has had limited efficacy in clinical settings and suffers from an adverse side-effect profile. However, preliminary findings of a novel glutathione precursor with vitamin implications (FT061452) indicate it can affect the metabolism of glutathione via 2 mechanisms: 1) increasing the availability of intracellular cysteine by using the more stable cystine as the physiologic and more stable cysteine carrier which can traverse the cell membrane and create a more optimal Cys/CySS redox state, and 2) adding selenium, an important co-factor for glutathione reductase. Thus, FT061452 appears to provide a greater cellular delivery of substrate to attenuate oxidative stress, in comparison to traditional glutathione precursors, which despite showing promise,have not demonstrated consistent clinical efficacy. Preliminary studies ; Preliminary studies to investigate GSH and several GSH analogs might protect spermine-induced apoptosis in aortic vascular smooth muscle cells (VSMC) have been promising. Given that spermine (a uremic toxin) increases intracellular ROS and promotes apoptosis in some cultured cells, we first examined the generation of ROS along with intracellular levels of reduced GSH and the ratio of reduced GSH and oxidized glutathione (GSH/GSSG) in VSMC in response to spermine treatment and its attenuation by concomitant administration of similar strengths of GSH, NAC and FT061452. While concomitant exposure of these cells to NAC, GSH, or FT061452 attenuated spermine-induced decrease in GSH levels, only the addition of the novel glutathione precursor, FT061452, to spermine treated cells increased intracellular GSH levels above control values. Study Design & Method: This is a prospective randomized controlled pilot study, which will include twenty-four (24) healthy individuals between ages of 30-65 years old. The study will occur over the course of two days. On Day 1, potential subjects will be screened to determine eligibility by mini history and physical exam, complete blood count (CBC) and complete metabolic panel (CMP). On Day 2, eligible subjects will report to Participant and Clinical Interactions Resource Center (formerly known as the CRC) after fasting overnight. The first 12 subjects (low dose) will be randomized into three groups, 1) those given a single dose of placebo, 2) those given 600 mg (low dose) of N-Acetyl Cysteine (NAC) or 3) those given 3000 mg of study drug (FT061452). Serum and intracellular glutathione levels, biomarkers, and non-invasive measures of vascular function were assessed at baseline, 2, 4 and 6 hours. During their stay in CRC, subjects in every group will be fed the same meal. The second 12 subjects (usual dose) will be randomized into three groups, 1) those given a single dose of placebo, 2) those given 1200 mg (usual dose) of N-Acetyl Cysteine (NAC) or 3) those given 6000 mg of study drug (FT061452). Serum and intracellular glutathione levels, biomarkers, and non-invasive measures of vascular function will be assessed at baseline, 2, 4 and 6 hours. During their stay in CRC, subjects in every group will be fed the same meal. At baseline, 2, 4 and 6 hours, a blood sample (15 cc per draw) will be obtained for serum and intracellular glutathione levels, stored serum for biomarkers, and non-invasive measures of vascular function will be assessed at baseline and 6 hours, as follows: 1) Pulse wave velocity and Augmentation Index (via SphygmoCor): (central artery pressure and central aortic pulse pressure) and 2) Peripheral vascular endothelial function (via EndoPat): (% flow mediated dilation). This study has potential benefits to others. The knowledge gained will provide realistic and practical information that guides the implementation of a non-pharmacological intervention to reduce the progression of age related morbidities. Because CDU's community is largely minority, the community of color will be included in this recruitment. The IRB exercises oversight of all protocols involving human subjects, monitors for adverse events, and performs audits of all approved protocols.

Interventions

This is a prospective randomized controlled pilot study, which will include twenty-four (24) healthy individuals.The first 12 subjects (low dose) will be randomized into three sub groups. The first group will be given a single dose of placebo.

DRUGN Acetyl cysteine, 600mg (low dose)

The sub-group of four subjects (low dose) will be given a single dose of 600 mg of N-Acetyl Cysteine (NAC).

DRUGProimmune 200 (FT061452) 3000mg low dose

The sub-group of four subjects (low dose) will be given a single dose of Proimmune 200 (FT061452) 3000mg low dose'

The second sub set of 12 subjects (high dose) will be randomized into three sub groups. The first group will be given a single dose of placebo.

N Acetyl cysteine (high dose) N-Acetyl Cysteine(NAC)1200mg (high dose) given as a single dose.

DRUGFT061452, 6000mg high dose

Proimmune 200(FT061452) high dose group given 6000 mg as a single dose.

Sponsors

Charles Drew University of Medicine and Science
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
NONE

Eligibility

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

Inclusion criteria

1. Subjects will be healthy male or female, 30 to 65 years of age. 2. Subjects must have a BMI between 20 and 35. 3. Subjects must be able to provide informed consent after risks and benefits have been explained. 4. Subjects must be non-smoking (defined as a subject who has not smoked for ≥ 6 months), and must agree to abstain from caffeine 72 hours prior to study day. 5. Subjects are in generally good health, based on pre-study medical history, physical examination and routine laboratory tests. 6. Subjects have, in the Investigator's opinion, no clinically significant disease and/or clinically significant abnormal laboratory values as determined by the Investigator based on medical history, physical examination, or laboratory evaluations conducted at the screening visit or on admission to the clinic.

Exclusion criteria

1. Subjects who have a history of drug or alcohol abuse within 6 months of study screening, as determined by the Investigator. 2. Subjects who have participated in any investigational trial within 30 days or six half-lives of the test drug's biologic activity, whichever is longer, before the start of the study (time of first dose). 3. Subjects who have clinically significant medical or psychiatric illnesses currently or within 30 days of start of study (time of first dose), as determined by 3. the Investigator. 4. Subjects who have had symptoms of any significant acute illness within 30 days prior to the start of study (time of first dose), 5. Subjects who have any condition that interferes with their ability to understand or comply with the requirements of the study. 6. Females who are pregnant or nursing or have a high likelihood of becoming pregnant during the study.

Design outcomes

Primary

MeasureTime frameDescription
Intracellular Glutathione Level6 hoursMean intracellular glutathione level every 2 hour

Secondary

MeasureTime frameDescription
Augmentation IndexBaseline and 6 hoursAugmentation index (%) is defined as the percentage of the central pulse pressure which is attributed to the reflected pulse wave and, therefore, reflects the degree to which central arterial pressure is augmented by wave reflection if appropriate augmentation index has been shown to be a predictor of adverse cardiovascular events in a high risk patient populations,higher augmentation index is associated with target organ damage. Absolute change of augmentation index from baseline to 6 hours will be estimated for the analysis.

Countries

United States

Participant flow

Recruitment details

The participants were recruited between may 2010 through June 2010. Healthy volunteers were recruited by physician referrals from community clinics.

Pre-assignment details

No enrolled participants were excluded.

Participants by arm

ArmCount
Placebo-A
low dose oral x1
4
N Acetyl Cysteine-A
N Acetyl cysteine low dose group (600mg oral X1)
4
Proimmune 200-A
Proimmune 200 low dose group (3000mg oral X 1)
4
Placebo-B
High dose oral X1
4
N Acetyl Cysteine-B
N Acetyl Cysteine High dose group ( 1200mg oral X1)
4
Proimmune 200-B
Proimmune 200 High dose group (6000mg oral x1)
4
Total24

Baseline characteristics

CharacteristicPlacebo-AN Acetyl Cysteine-AProimmune 200-APlacebo-BN Acetyl Cysteine-BProimmune 200-BTotal
Age, Continuous38.7 years
STANDARD_DEVIATION 6.4
38.2 years
STANDARD_DEVIATION 3.8
45.5 years
STANDARD_DEVIATION 12.9
39.3 years
STANDARD_DEVIATION 6.8
38.0 years
STANDARD_DEVIATION 5.8
42.5 years
STANDARD_DEVIATION 9.2
40 years
STANDARD_DEVIATION 8.3
Region of Enrollment
United States
4 participants4 participants4 participants4 participants4 participants4 participants24 participants
Sex: Female, Male
Female
1 Participants1 Participants2 Participants3 Participants1 Participants2 Participants10 Participants
Sex: Female, Male
Male
3 Participants3 Participants2 Participants1 Participants3 Participants2 Participants14 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
EG002
affected / at risk
EG003
affected / at risk
EG004
affected / at risk
EG005
affected / at risk
deaths
Total, all-cause mortality
— / —— / —— / —— / —— / —— / —
other
Total, other adverse events
0 / 40 / 40 / 40 / 40 / 40 / 4
serious
Total, serious adverse events
0 / 40 / 40 / 40 / 40 / 40 / 4

Outcome results

Primary

Intracellular Glutathione Level

Mean intracellular glutathione level every 2 hour

Time frame: 6 hours

Population: Intention-to-treat

ArmMeasureGroupValue (MEAN)Dispersion
Placebo-AIntracellular Glutathione Level6 hour236.5 µmol/LStandard Deviation 221.3
Placebo-AIntracellular Glutathione Level4 hour178.0 µmol/LStandard Deviation 146.8
Placebo-AIntracellular Glutathione LevelBaseline221.5 µmol/LStandard Deviation 133.7
Placebo-AIntracellular Glutathione Level2 hour242.3 µmol/LStandard Deviation 163.7
N Acetyl Cysteine-AIntracellular Glutathione LevelBaseline118.5 µmol/LStandard Deviation 131.2
N Acetyl Cysteine-AIntracellular Glutathione Level2 hour121.8 µmol/LStandard Deviation 120.4
N Acetyl Cysteine-AIntracellular Glutathione Level6 hour103.5 µmol/LStandard Deviation 104
N Acetyl Cysteine-AIntracellular Glutathione Level4 hour149.8 µmol/LStandard Deviation 167.1
Proimmune 200-AIntracellular Glutathione Level6 hour317.8 µmol/LStandard Deviation 553.3
Proimmune 200-AIntracellular Glutathione LevelBaseline508.5 µmol/LStandard Deviation 493.3
Proimmune 200-AIntracellular Glutathione Level2 hour342.8 µmol/LStandard Deviation 283.6
Proimmune 200-AIntracellular Glutathione Level4 hour440.8 µmol/LStandard Deviation 419.9
Placebo-BIntracellular Glutathione Level2 hour347.8 µmol/LStandard Deviation 109.5
Placebo-BIntracellular Glutathione LevelBaseline358.0 µmol/LStandard Deviation 116.9
Placebo-BIntracellular Glutathione Level6 hour355.0 µmol/LStandard Deviation 319.4
Placebo-BIntracellular Glutathione Level4 hour383.8 µmol/LStandard Deviation 159.2
N Acetyl Cysteine-BIntracellular Glutathione Level2 hour149.5 µmol/LStandard Deviation 74
N Acetyl Cysteine-BIntracellular Glutathione Level4 hour133.5 µmol/LStandard Deviation 75.4
N Acetyl Cysteine-BIntracellular Glutathione Level6 hour125.0 µmol/LStandard Deviation 50.2
N Acetyl Cysteine-BIntracellular Glutathione LevelBaseline147.8 µmol/LStandard Deviation 86.8
Proimmune 200-BIntracellular Glutathione Level6 hour274.0 µmol/LStandard Deviation 240.6
Proimmune 200-BIntracellular Glutathione LevelBaseline132.8 µmol/LStandard Deviation 168.3
Proimmune 200-BIntracellular Glutathione Level2 hour311.8 µmol/LStandard Deviation 228.7
Proimmune 200-BIntracellular Glutathione Level4 hour279.8 µmol/LStandard Deviation 228.7
Secondary

Augmentation Index

Augmentation index (%) is defined as the percentage of the central pulse pressure which is attributed to the reflected pulse wave and, therefore, reflects the degree to which central arterial pressure is augmented by wave reflection if appropriate augmentation index has been shown to be a predictor of adverse cardiovascular events in a high risk patient populations,higher augmentation index is associated with target organ damage. Absolute change of augmentation index from baseline to 6 hours will be estimated for the analysis.

Time frame: Baseline and 6 hours

ArmMeasureGroupValue (MEAN)Dispersion
Placebo-AAugmentation IndexBaseline20 percentage of the central pulse pressureStandard Deviation 5
Placebo-AAugmentation Index6 hour11.3 percentage of the central pulse pressureStandard Deviation 8.4
N Acetyl Cysteine-AAugmentation Index6 hour11.3 percentage of the central pulse pressureStandard Deviation 6.9
N Acetyl Cysteine-AAugmentation IndexBaseline19.8 percentage of the central pulse pressureStandard Deviation 10.2
Proimmune 200-AAugmentation Index6 hour19 percentage of the central pulse pressureStandard Deviation 10.4
Proimmune 200-AAugmentation IndexBaseline28.5 percentage of the central pulse pressureStandard Deviation 12.7
Placebo-BAugmentation IndexBaseline27 percentage of the central pulse pressureStandard Deviation 10.8
Placebo-BAugmentation Index6 hour24.8 percentage of the central pulse pressureStandard Deviation 5.3
N Acetyl Cysteine-BAugmentation IndexBaseline20.3 percentage of the central pulse pressureStandard Deviation 11.9
N Acetyl Cysteine-BAugmentation Index6 hour17.5 percentage of the central pulse pressureStandard Deviation 15.7
Proimmune 200-BAugmentation Index6 hour19.3 percentage of the central pulse pressureStandard Deviation 6.6
Proimmune 200-BAugmentation IndexBaseline26.5 percentage of the central pulse pressureStandard Deviation 6

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