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Brain Dopamine Biomarker

Observational Parkinson Disease Healthy Adult Participants

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An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: Levadopa/Carbidopa eyedrops, Sham, Levodopa/Carbidopa (Sinemet).
Who it may be relevant to
Registry conditions: Parkinson Disease, Healthy Adult Participants. Basic parameters: from 18 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Center list to be confirmed — check the primary protocol.
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Blue Color Processing in the Eye as a Biomarker of Brain Dopamine

Overview

This study is being conducted at the Morsani College of Medicine to determine whether signals recorded from the eyes and brain can be used as a noninvasive way to monitor dopamine function. Approximately 50 adults (25 with Parkinson's disease and 25 without Parkinson's disease) will participate. Participants will undergo electroretinography (ERG) and electroencephalography (EEG), which are FDA-approved, noninvasive devices that measure electrical activity from the retina and brain using sensors placed on the skin around the eyes and scalp. Participants with Parkinson's disease will be tested before and after taking their prescribed Parkinson's medication (e.g., Sinemet® \[carbidopa/levodopa\]). Participants without Parkinson's disease will receive a single dose of compounded levodopa/carbidopa eye drops (an FDA-approved drug used in an unapproved ophthalmic formulation) in one eye and a placebo eye drop in the other eye. The placebo consists of the same vehicle solution without levodopa/carbidopa and contains 0.1% ascorbic acid, 0.001% benzalkonium chloride, and phosphate-buffered saline. Randomization will be used to determine which eye receives the levodopa/carbidopa eye drop and which eye receives the placebo. Researchers will compare measurements obtained before and after treatment to evaluate whether blue-light visual responses are associated with dopamine activity.

Detailed description

We have recently reported that visual electroencephalographic (EEG) processing of event related potentials (ERPs) is dysregulated in subjects with opioid use disorder (OUD) and that blue color cognitive processing is potentially robust enough to serve as a electrocortical biomarker for brain dopamine (DA) with a significance level of p\<0.0001 (Cohen's d 0.89). Blue color processing in the retina is mediated by DA-containing amacrine cells and co-varies with brain DA. With the adoption of a more robust physiological approach, mainly electroretinographic (ERG) recordings combined with ERPs, this might be increased to sigma significance levels, towards the goal of achieving an accurate biomarker of brain DA. We are currently working on this approach using the S-cone ERG response blue cone ERG response, which is modulated by DA levels in the retina. This would be a physiological approach that can be accomplished in the clinic by primary and secondary health professionals quickly and non-invasively with FDA-approved ERG instruments typically used by ophthalmologists to determine the function of the retina. We will propose to record ERGs and ERPs in 25 Parkinson's (PD) subjects and 25 non-PD age-matched controls with a suite of light stimulation procedures to evaluate physiological and cognitive measures of blue color processing. This will be accomplished before and after administration of drug treatment for PD (e.g., Sinemet) in PD subjects.

Specific Aim: Assess feasibility and characterize a noninvasive electrocortical biomarker of brain DA by integrating blue cone S-cone ERG response ERG with ERPs, and test its specificity / sensitivity to DAergic modulation in PD and non PD controls. This aim will be accomplished by recording ERG and ERP responses to blue light stimulation in 25 PD subjects and 25 age matched controls, before and after pharmacologic with Levodopa/Carbidopa eyedrop intervention.

The core hypothesis of this proposal is that blue color processing, including cortical processing as we have recently reported, has the potential to be a psychophysical biomarker of brain DA and monitoring of treatment efficacy for treatment of PD, drug abuse, and other DA-dependent disorders.

Dopamine (DA) has many functions in the brain and is implicated in a host of psychiatric disorders including PD, schizophrenia, obsessive compulsive disorder, depression, sleep disturbances, restless legs syndrome, attention-deficit hyperactivity disorder, and drug addiction. These neuropsychiatric disorders are associated with both increased and decreased DA transmission in the brain. One goal for the treatment of lowered DA levels characteristic of addiction and PD is to enhance its release in the mesolimbic and nigrostriatal DA systems, which originate in the midbrain and project to the striatum. Currently, this is accomplished with drug therapies that enhance DA synthesis, metabolism, or receptor responses towards the goal of enhancing DA synthesis, transmission, and processing. An important component for any therapeutic individual multimodal addiction treatment plan would be to identify specific biological changes that could be used to diagnose, monitor and tailor treatment objectively. For over three decades, DA, its receptors, transporters, precursors, and metabolites in the mesolimbic and nigrostriatal DA pathways have been investigated as potential biomarkers for PD and drug abuse. The most established, albeit recently controversial, biomarker for brain DA is the quantity of a DA subtype-2 receptors (D2Rs) in the striatum, as measured by positron emission tomography (PET). The number of brain D2Rs are directly proportional to the levels of DA in the brain and its associated activity and transmission\[4\]. However, PET scans are cost-prohibitive for clinical practice. In addition to cost, invasiveness and radiation risk preclude PET scans as a routine clinical tool for assessment of D2R and DA levels in the brain. Interestingly, D2Rs are not only detectable in the brain but are also expressed in peripheral tissues where they play a role in a variety of physiological functions. It has been suggested that D2Rs in the blood may be a peripheral biomarker of brain DA. Accordingly, we have reported that blood DA levels, but not other catecholamines like norepinephrine or epinephrine, are enhanced in RLS with downregulation of lymphocyte and monocyte D2Rs. In PD subjects and in an animal model of PD, we have recently reported that D2Rs expressed on specific populations of blood leukocytes are a potential peripheral biomarker of brain DA in PD. Although this study revealed high significance levels\[5\] for expression of D2Rs on select leukocytes in PD and in the animal model of PD, an effective biomarker needs to approach sigma levels of significance levels to be considered reliable as an objective index of disease state. Thus, although D2R expression in the periphery remains a viable approach to monitoring brain DA, there is no reliable, non-invasive, or even well-accepted molecular, neurochemical, physiological, or perceptual biomarker of brain DA for diagnosis of DA-dependent brain disorders or for monitoring treatment efficacy currently in clinical use. The lack of an effective biomarker of brain DA has stalled innovations in treatment strategies for DA-dependent disorders and conditions. Ideally, a highly significant biological index based on molecular and/or physiological effects in the periphery that reflect brain DA accurately and could be accomplished with existing clinical tools and non-invasively would be a significant contribution to the field.

Other than that described above in our published study on cognitive measures of blue color processing in opioid addicts, we have not recorded ERGs or ERPs in PD subjects. However, we have recently purchased an LKC Technologies RETEval ERG instrument that is FDA-approved for clinical studies and we have recorded blue light flash ERGs in controls.

Interventions

  • Drug Levadopa/Carbidopa eyedrops
    Topical levodopa/carbidopa eyedrops (1.4/0.34 microM) in a base of 0.1% w/v ascorbic acid and 0.001% w/v benzalkonium chloride dissolved in 1× phosphate-buffered saline.
  • Other Sham
    The vehicle (control) solution will consist of 0.1% w/v ascorbic acid and 0.001% w/v benzalkonium chloride dissolved in 1× phosphate-buffered saline.
  • Drug Levodopa/Carbidopa (Sinemet)
    Parkinson's patients will self-administer their medication and measurements will be taken prior to and 15-30 minutes after self-administration.

Primary outcome measures

  • Electroretinography [Time frame: 2 measurements separated by 1 hour]
Secondary outcome measures (1)
  • Electroencephalography [Time frame: 2 measurements separated by 1 hour]

Eligibility criteria

Inclusion criteria

  • Parkinson's subjects will have received physician verified diagnosis of the disease and be on a dopaminergic medication for at least 3 months

Exclusion criteria

  • Any movement, strength, or balance assessments that may pose a potential risk for injury
  • Individuals with a history of photosensitive epilepsy or seizure activity triggered by visual stimuli
  • Current use of antipsychotics, stimulants, or other medications known to affect central dopaminergic transmission
  • Pregnancy
  • Recent ocular surgery
  • Phenylketonuria
  • (PD participants) not cognitively intact and not able to consent for themselves
  • (non-PD subjects) a pre-screening survey will assess medication use and neurological history
  • Ophthalmologic or visual system conditions that may interfere with stimulus delivery or retinal function. These include significant cataract (defined as LOCS III ≥ NC2/NO2 or any media opacity that precludes adequate delivery of visual stimuli to the retina), active retinal or macular pathology (including age-related macular degeneration with significant drusen or geographic atrophy, diabetic retinopathy, retinal vein occlusion, or epiretinal membrane with foveal involvement), glaucoma, or any optic neuropathy.
  • Individuals with congenital color vision deficiencies, particularly tritan-spectrum defects
  • Ocular surgery within the past three months
  • Use of medications known to affect retinal electrophysiology (e.g., chronic hydroxychloroquine, vigabatrin, deferoxamine, or isotretinoin)
  • History of photosensitive epilepsy or visually triggered seizures (especially relevant given the use of bright visual stimuli and potential flicker paradigms)

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: Yes

Study design

Observational model
Cohort

Study locations

Center list to be confirmed — check the primary protocol.

Publications

  • Perlman I, Kondo M, Chelva E, Robson AG, Holder GE. ISCEV extended protocol for the S-cone ERG. Doc Ophthalmol. 2020 Apr;140(2):95-101. doi: 10.1007/s10633-019-09730-6. Epub 2019 Nov 20. PMID 31749034
  • Sisco SM, Slonena E, Okun MS, Bowers D, Price CC. Parkinson's disease and the Stroop color word test: processing speed and interference algorithms. Clin Neuropsychol. 2016 Oct;30(7):1104-17. doi: 10.1080/13854046.2016.1188989. Epub 2016 Jun 6. PMID 27264121
  • Diaz-Santos M, Cao B, Yazdanbakhsh A, Norton DJ, Neargarder S, Cronin-Golomb A. Perceptual, cognitive, and personality rigidity in Parkinson's disease. Neuropsychologia. 2015 Mar;69:183-93. doi: 10.1016/j.neuropsychologia.2015.01.044. Epub 2015 Jan 30. PMID 25640973
  • Soto Linan V, Rioux V, Peralta M 3rd, Dupre N, Hebert M, Levesque M. Early detection of Parkinson's disease: Retinal functional impairments as potential biomarkers. Neurobiol Dis. 2025 May;208:106872. doi: 10.1016/j.nbd.2025.106872. Epub 2025 Mar 14. PMID 40090470
  • Nowacka B, Lubinski W, Honczarenko K, Potemkowski A, Safranow K. Bioelectrical function and structural assessment of the retina in patients with early stages of Parkinson's disease (PD). Doc Ophthalmol. 2015 Oct;131(2):95-104. doi: 10.1007/s10633-015-9503-0. Epub 2015 May 14. PMID 25972299
  • Langheinrich T, Tebartz van Elst L, Lagreze WA, Bach M, Lucking CH, Greenlee MW. Visual contrast response functions in Parkinson's disease: evidence from electroretinograms, visually evoked potentials and psychophysics. Clin Neurophysiol. 2000 Jan;111(1):66-74. doi: 10.1016/s1388-2457(99)00223-0. PMID 10656512
  • Ikeda H, Head GM, Ellis CJ. Electrophysiological signs of retinal dopamine deficiency in recently diagnosed Parkinson's disease and a follow up study. Vision Res. 1994 Oct;34(19):2629-38. doi: 10.1016/0042-6989(94)90248-8. PMID 7975301
  • Gottlob I, Schneider E, Heider W, Skrandies W. Alteration of visual evoked potentials and electroretinograms in Parkinson's disease. Electroencephalogr Clin Neurophysiol. 1987 Apr;66(4):349-57. doi: 10.1016/0013-4694(87)90032-0. PMID 2435514

Identifiers

NCT: NCT07748715 · STUDY010037

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗