Individualized Supramaximal Stimulation Current During Continuous Neuromonitoring in Thyroid Surgery
NCT07710365
Endocrine System Diseases, Thyroid Disease
Gdansk, Poland
View Trial DetailsNCT Number: NCT01990794
The purpose of this study is to investigate steady-state cobalt levels following dietary supplementation for 90 days with 1 mg cobalt/day (as cobalt chloride in solution) in healthy adult volunteers.
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Notify Me18 year and older
All sexes
Observational
Over the counter cobalt (Co) dietary supplements are available for sale in the United States, but little is known regarding their clinical effects and biokinetic distribution and body burden with long-term use. This study assessed blood kinetics, steady-state levels, biochemical responses, and clinical effects in five adult males and five adult females who voluntarily ingested approximately 1.0 mg Co/day of a commercially available Co supplement over a three month period. Volunteers were instructed to take the Co-dietary supplement in the morning according to the manufacturer's label. Blood samples were collected and analyzed for a number of biochemical parameters before, during, and after dosing. Hearing, vision, cardiac, and neurological functions were also assessed in volunteers before, during, and after dosing.
Healthy volunteers accepted: Yes
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Time frame: Before, during and after cobalt supplementation
The cobalt concentration in whole blood and serum was determined one to two weeks pre-dosing and on the day of the first day of dosing before taking the supplement. Samples were also analyzed during the dosing period as follows: Day 4/5, Day 8/9, Day 14/16, Day 22/23, Day 29/30, Day 43/44, Day 57/58, Day 71/72, and Day 88/90. Cobalt concentration in whole blood and serum was also determined at one, two, six, ten and 16 weeks post-dosing.
Time frame: Before, during and after cobalt supplementation
The cobalt concentration in whole blood and serum was determined one to two weeks pre-dosing and on the day of the first day of dosing before taking the supplement. Samples were also analyzed during the dosing period as follows: Day 4/5, Day 8/9, Day 14/16, Day 22/23, Day 29/30, Day 43/44, Day 57/58, Day 71/72, and Day 88/90. Cobalt concentration in whole blood and serum was also determined at one, two, six, ten and 16 weeks post-dosing.
Time frame: Study volunteers will be followed for the duration of the study, an average of about 8 months for most volunteers
The fraction of albumin bound cobalt in serum was determined one to two weeks pre-dosing and on the day of the first dose before taking the supplement. Samples were also analyzed during the dosing period as follows: Day 4/5, Day 8/9, Day 14/16, Day 22/23, Day 29/30, Day 43/44, Day 57/58, Day 71/72, Day 88/90 and the fraction of albumin bound cobalt in serum was also determined at one and two weeks post-dosing.
Time frame: 0 weeks and three months
Sensitivity to metals before and after cobalt supplementation was assessed by an in vitro lymphocyte transformation test (LTT) performed at week 0 and after three months of cobalt supplementation. The average proliferation rate for each metal treatment was normalized to individual proliferation rates of untreated control cells which generated a stimulation index (SI). According to the manufacture, the SI ranges from 0-15, with an SI from 2 to 4 indicated mild reactivity, from 5 to 8 indicated moderate reactivity, and >8 indicated high reactivity to the metal. The data is presented as the averaged normalized lymphocyte transformation response to each metal in men and women combined (n = 10).
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Baseline, at the study midpoint, and at the study completion
Audiologic assessments including pure tone threshold determination at frequencies ranging from 250 to 16000 Hz were performed with volunteers serving as their own baseline controls for receptive changes during the study (i.e., week 0, ~day 45, ~day 90). Audiologic assessments including a pure-tone threshold determination at frequencies that ranged from 250 to 16000 Hz were performed with volunteers serving as their own baseline controls for receptive changes during the study. Decreases in hearing were considered clinically significant when one of the following 3 American Speech-Language-Hearing Association criteria were met: 1) a ≥20-dB decrease in the pure-tone threshold at one test frequency, 2) a ≥10-dB decrease at 2 adjacent test frequencies, or 3) the loss of 3 consecutive test frequencies where responses were previously obtained.
Time frame: Baseline, at the study midpoint, and at the study completion
Two-dimensional and Doppler echocardiographic examinations were used to assess cardiac anatomy, structure, and function during the study with volunteers serving as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Values of the sural sensory and peroneal motor variables. Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90, and ~4-6 post-weeks).
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: Study volunteers were assessed before and at the end of cobalt supplementation
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. HDL cholesterol levels were assessed before cobalt dietary supplementation and after three months of supplementation.
Time frame: Study volunteers were assessed before and at the end of cobalt supplementation
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Total cholesterol levels were assessed before cobalt dietary supplementation and after three months of supplementation.
Time frame: Study volunteers were assessed before and at the end of cobalt supplementation
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Triglyceride levels were assessed before cobalt dietary supplementation and after three months of supplementation.
Time frame: Study volunteers were assessed before, during and after cobalt supplementation (2 wk post)
Blood chemistries assessed during the study included a lipid panel, comprehensive metabolic panel, creatine kinase-myocardial band, thyroid stimulating hormone, free thyroxine, and complete blood count with differential, total iron, and ferritin. Blood chemistries were assessed at one or two week pre-dose, pre-dose/ Day 1 before taking the supplement, Day 29/30, Day 57/58, Day 88/90 and one and two weeks post-dose.
Time frame: During cobalt supplementation
A 24 hr urine collection for cobalt analysis was performed at Day 14/16, Day 43/44 and Day 88/90.
Time frame: After cobalt supplementation
A 24 hr urine collection for cobalt analysis was performed on three volunteers (two females and one male) at one, two, six and ten weeks post-dosing. The one male volunteer provided three consecutive 24-hr urine samples at the one and two week post-dosing time points; data for individual urine collections were averaged together to give an average one and two week post-dosing data concentration.
Time frame: Baseline, at the study midpoint, and at the study completion
Two-dimensional and Doppler echocardiographic examinations were used to assess cardiac anatomy, structure, and function during the study with volunteers serving as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Two-dimensional and Doppler echocardiographic examinations were used to assess cardiac anatomy, structure, and function during the study with volunteers serving as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Ophthalmology studies included an assessment of visual acuity, slit lamp evaluations, and visual field testing. Retinal nerve fiber layer (RNFL) thickness and optic nerve head (ONH) were assessed using optical coherence tomography (OCT). Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90).
Time frame: Baseline, at the study midpoint, and at the study completion
Values of the sural sensory and peroneal motor variables. Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90, and ~4-6 post-weeks).
Time frame: Baseline, at the study midpoint, and at the study completion
Values of the sural sensory and peroneal motor variables. Volunteers served as their own baseline controls for changes during the study (i.e., week 0, ~day 45, ~day 90, and ~4-6 post-weeks).
Cardno ChemRisk
Other
A 90-Day Cobalt Supplementation Study to Investigate the Cobalt Body Burden in Ten Healthy Adult Volunteers
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