Skip to content

Blood Lactate Concentrations With and Without Exercise in Parkinson's Disease and Multiple Sclerosis Patients

Phase 1 Study of A Double-Blind Placebo-Controlled Study of the Effect of Beta-Alanine and Whole Body Vibration on Neurologic Motoric Function, Vascular Function, and Quality of Life in Parkinson's Disease

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT02184494
Acronym
PDMSLac
Enrollment
34
Registered
2014-07-09
Start date
2014-08-31
Completion date
2014-12-31
Last updated
2017-03-30

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

Conditions

Multiple Sclerosis, Parkinson's Disease

Keywords

Parkinson's Disease, Multiple Sclerosis, Fatigue, Resting Energy Expenditure, Whole Body Vibration, Exercise, Blood Lactate

Brief summary

Fatigue is one of the most common and debilitating symptoms experienced in Parkinson's Disease (PD) and Multiple Sclerosis (MS). There are multiple proposed mechanisms of disorder-related fatigue, however, it is unknown whether PD or MS patients experience compromised blood lactate responses to an acute bout of exercise, subjecting them to exercise-related fatigue. These populations may experience higher energy expenditure at rest due to increased rigidity, however, limited data exists investigating resting energy expenditure in these populations. Researchers hypothesize that PD and MS patients will display higher resting energy expenditure than healthy age-matched controls, and that level of energy expenditure will correlate with amount of rigidity or spasticity. Also, we hypothesize that baseline levels of lactate will not be different between PD/MS and control groups, but post-exercise blood lactate levels will be significantly higher in the PD/MS groups.

Detailed description

Patients diagnosed with Parkinson's Disease (PD) and Multiple Sclerosis (MS) frequently experience increased levels of muscle weakness and fatigue; This impairment is exacerbated with onset of exercise and alleviated with rest or sleep . Importantly, in about 1/3 of PD patients, fatigue is considered debilitating , and even further, there is inconclusive evidence suggesting that anti-PD and anti-MS drugs improve fatigue. The precise mechanisms and pathogenesis of the disorder-specific fatigue in PD and MS remain elusive. Both peripheral and central cholinergic systems are affected in PD , however, it has been shown that peripheral cholinergic neurons at the neuromuscular junction are normal functioning . Even so, recruitment of necessary motor units may be greatly affected due to peripheral neuropathy common in both PD and MS . Following repetitive nerve stimulation in PD and MS, there is consistent evidence of a decrease in the number of functioning motor units and decrements in muscle responses. This promotes progressive fatigue with decrements in the amplitude of movement. Therefore, recruitment of motor units may be a major cause of rapid fatigue in repetitive movement with PD and MS patients, even though peripheral neuromuscular junctions do not seem to be affected. In addition to skeletal muscle inefficiency, work rate and efficiency of breathing using respiratory muscles is significantly lower in a PD population during repetitive stimulation, used to simulate exercise-induced repetitive contractions. Respiratory inefficiencies in MS include, but are not limited to reduced forced vital capacity, hypoxemia, and respiratory muscle weakness. In addition to possible neurological mechanisms of PD- and MS-related fatigue, rigidity, defined as involuntary state of continuous muscle tension in PD, and spasticity and rigidity in MS may also have a profound effect on fatigue outcomes . Adequate muscle length is required for effective muscle contraction. Rigidity likely changes the length of the muscle at rest, and therefore contributes to ineffective muscle contraction when active. In addition to inefficient muscle contraction, the increased continuous active contraction, or tone, of the muscle results in an increase in resting energy expenditure compared to healthy individuals, even in pharmacologically treated PD patients. Interestingly, resting energy expenditure in MS patients was shown to be comparable to age-matched healthy controls; however, it is important to note that these MS patients remained medicated during the study. In addition, rigidity and spasticity, common in PD and MS, respectively may provide varying levels of resting energy expenditure; however, no research to date has examined these differences. In total, if more energy is being expended at rest, hypothetically, PD and MS patients will have inadequate energy stores to exercise to their respective full capacity. This could potentiate early onset of lactic acid and hydrogen accumulation in active muscle, decrease the pH of the active muscle, and contribute to early fatigue in repetitive tasks. Purportedly, the combination of early onset of skeletal and respiratory muscle fatigue, in addition to muscle rigidity would create an environment similar to that of high intensity exercise, even at low intensities or rest. The ensuing result may likely be an accumulation of lactic acid and hydrogen ions, making the muscle environment very acidic. However, changes in the levels of resting and post-exercise blood lactate levels have not been elucidated. Therefore, we are planning to measure resting energy expenditure using a ventilation face mask and a noseclip. Blood lactate will be sampled at rest, after simulated high-intensity exercise, and ten minutes after rest (when lactate significantly increases). The exercise will consist of performing 5 sets of static, shallow 120 degree squats for 1 minute, with 1 minute of seated rest between each squat. Sustained isometric contraction at 2/3 of the maximal voluntary contractile force for 2 to 3 minutes was found to occlude local blood flow enough that local oxygen stores were depleted . Muscle lactate is also increased 12-fold upon fatigue of isometric holds such as squats. This same environment of lactic acid buildup can be simulated by circulatory occlusion as well as 60-second isometric quadricep contractions . Isometric squats will be employed to observe differences in blood response in PD compared to healthy individuals. Therefore, the purpose of this study is to analyze the differences in resting energy expenditure and exercise-induced lactate production in PD and MS compared to healthy, age-matched controls.

Interventions

DEVICEpro5 AIRdaptive Power Plate (Badhoevedorp, The Netherlands)

Subjects will be exposed to vertical vibration with a frequency and peak-to-peak displacement of 30 Hz and 1 mm, respectively, which provides a peak-to-peak acceleration of about 4.16 G. Whole Body Vibration

Sponsors

Florida State University
Lead SponsorOTHER

Study design

Allocation
NON_RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
NONE

Eligibility

Sex/Gender
ALL
Age
45 Years to 90 Years
Healthy volunteers
Yes

Inclusion criteria

* Parkinson's Disease Stage I-IV (be standard criteria H&Y scale) * Multiple Sclerosis * Healthy, age-matched controls * 45 to 90 years old

Exclusion criteria

* Dementia * Co-morbid neurologic factors * Individuals without independent ambulation * Significant heart and respiratory disease * Debilitating arthritis

Design outcomes

Primary

MeasureTime frameDescription
Blood Lactate ResponseBefore, immediately after, and 10 minutes after the squatting exercise protocolMeasured using a blood lactate analyzer, a finger prick test measured before, after, and 10 minutes after exercise

Secondary

MeasureTime frameDescription
Resting Energy ExpenditureMeasured immediately upon arriving to the laboratory. Lasted approximately 25 minutes.Measured using using indirect calorimetry with a ventilated face mask and noseclip (Parvometrics, Sandy, UT). This involves laying supine for 30 to 60 minutes.

Other

MeasureTime frameDescription
Neurological FunctionMeasured immediately after the resting energy expenditure measurement, and before the other questionnaires. Lasted approximately 15 minutes.Neurological functional state will be assessed using the Unified Parkinson's Disease Rating Scale (UPDRS). Of the 5 sections of the examination, two parts were used. Part II (self-evaluation of aspects of the experiences of daily living) consisted of 13 Likert scale questions (graded 0 to 4, with 4 being most severe), including speech, saliva and drooling, chewing and swallowing, eating tasks, dressing, hygiene, handwriting, doing hobbies and other activities, turning in bed, tremor, getting out of bed/car/deep chair, walking and balance, and freezing. Part III (motor evaluation performed by trained research personnel) consisted of 14 Likert scale questions (graded 0 to 4, with 4 being most severe), including speech, facial expression, rigidity, finger tapping, hand movements, pronation-supination movements of hands, toe tapping, leg agility, arising from chair, gait, etc... Values were summed, with higher values indicating increased impairment and disability.
Health and Activity QuestionnaireCollected immediately after the UPDRS (if PD population), or immediately after the resting energy expenditure measurement (if MS or healthy, older adult). Measured with other questionnaires and immediately before squatting exercise. Lasted ~10 minutes.Short Form 36 Health Survey questionnaire: patient-reported survey of 36 questions, yielding the participant's degree of health on 8 different scale scores (each scale summed into a 0-100 score, with lower scores indicating more disability). The eight scales include vitality, physical functioning, bodily pain, general health perceptions, physical role functioning, emotional role functioning, social role functioning, and mental health. Schwab and England Activities of Daily Living Questionnaire: self-rated, single item assessment of the participant's ability to perform daily activities with speed and independence, measured using a Likert scale of percentages, in 10% increments. A score of 100% indicates total independence, while 0% indicates complete dependence.
Fatigue/Depression AssessmentCollected at the same time as the other questionnaires. Lasted approximately 5-7 minutes.Fatigue Severity Scale: 9-item, self-reporting rating that rates the severity of your fatigue symptoms on a Likert scale ranging from 1 to 7, with 1 indicating strong disagreement, and 7 indicating strong agreement. The sum of scores is calculated. The lower the score, the more severe the participant's fatigue symptoms. Beck's Depression Inventory: 21-item, self-report rating inventory that measures characteristic attitudes and symptoms of depression on a Likert scale ranging from 0 to 3, with 3 being the most severe. The sum of scores is calculated. A high score indicates more severe depression and related symptoms.

Countries

United States

Participant flow

Participants by arm

ArmCount
Blood Lactate Response in PD
This arm involves performing 5 sets of 1-minute squats with 1 minute of rest between each, and a finger prick before, after, and 10 minutes after the exercise in a PD population. One set of the squats will be performed on a whole body vibration plate, and one on the ground. pro5 AIRdaptive Power Plate, Badhoevedorp, The Netherlands: Subjects will be exposed to vertical vibration with a frequency and peak-to-peak displacement of 30 Hz and 1 mm, respectively, which provides a peak-to-peak acceleration of about 4.16 G. Whole Body Vibration
12
Blood Lactate Response in MS
This arm involves performing 5 sets of 1-minute squats with 1 minute of rest between each, and a finger prick before, after, and 10 minutes after the exercise in an MS population. One set of the squats will be performed on a whole body vibration plate, and one on the ground. pro5 AIRdaptive Power Plate, Badhoevedorp, The Netherlands: Subjects will be exposed to vertical vibration with a frequency and peak-to-peak displacement of 30 Hz and 1 mm, respectively, which provides a peak-to-peak acceleration of about 4.16 G. Whole Body Vibration
11
Blood Lactate Responses in Healthy, Older Adults
This arm involves performing 5 sets of 1-minute squats with 1 minute of rest between each, and a finger prick before, after, and 10 minutes after the exercise in healthy, older adults. One set of the squats will be performed on a whole body vibration plate, and one on the ground. pro5 AIRdaptive Power Plate, Badhoevedorp, The Netherlands: Subjects will be exposed to vertical vibration with a frequency and peak-to-peak displacement of 30 Hz and 1 mm, respectively, which provides a peak-to-peak acceleration of about 4.16 G. Whole Body Vibration
8
Total31

Baseline characteristics

CharacteristicBlood Lactate Response in MSBlood Lactate Responses in Healthy, Older AdultsBlood Lactate Response in PDTotal
Age, Categorical
<=18 years
0 Participants0 Participants0 Participants0 Participants
Age, Categorical
>=65 years
2 Participants1 Participants9 Participants12 Participants
Age, Categorical
Between 18 and 65 years
9 Participants7 Participants3 Participants19 Participants
Age, Continuous52 years
STANDARD_DEVIATION 10
50 years
STANDARD_DEVIATION 10
72 years
STANDARD_DEVIATION 9
59 years
STANDARD_DEVIATION 14
Region of Enrollment
United States
11 participants8 participants12 participants31 participants
Sex: Female, Male
Female
11 Participants7 Participants7 Participants25 Participants
Sex: Female, Male
Male
0 Participants1 Participants5 Participants6 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
EG002
affected / at risk
deaths
Total, all-cause mortality
— / —— / —— / —
other
Total, other adverse events
0 / 120 / 110 / 8
serious
Total, serious adverse events
0 / 120 / 110 / 8

Outcome results

Primary

Blood Lactate Response

Measured using a blood lactate analyzer, a finger prick test measured before, after, and 10 minutes after exercise

Time frame: Before, immediately after, and 10 minutes after the squatting exercise protocol

Population: 2 of the 8 participants in the healthy, older adults group did not return for this visit, and thus, were not included in analysis.~1 of the 12 MS participants did not return for this visit, and thus, were not included in analysis.

ArmMeasureGroupValue (MEAN)Dispersion
Blood Lactate Response in PDBlood Lactate ResponsePre without Whole Body Vibration1.7 mmol/LStandard Deviation 0.7
Blood Lactate Response in PDBlood Lactate ResponseImmediately Post without Whole Body Vibration2.3 mmol/LStandard Deviation 0.9
Blood Lactate Response in PDBlood Lactate Response10 Minutes Post without Whole Body Vibration2.2 mmol/LStandard Deviation 1.3
Blood Lactate Response in PDBlood Lactate ResponsePre with Whole Body Vibration1.8 mmol/LStandard Deviation 0.7
Blood Lactate Response in PDBlood Lactate ResponseImmediately Post with Whole Body Vibration3.1 mmol/LStandard Deviation 2.4
Blood Lactate Response in PDBlood Lactate Response10 Minutes Post with Whole Body Vibration1.8 mmol/LStandard Deviation 0.5
Blood Lactate Response in MSBlood Lactate Response10 Minutes Post with Whole Body Vibration3.1 mmol/LStandard Deviation 1.9
Blood Lactate Response in MSBlood Lactate ResponsePre without Whole Body Vibration1.6 mmol/LStandard Deviation 0.7
Blood Lactate Response in MSBlood Lactate ResponsePre with Whole Body Vibration2.2 mmol/LStandard Deviation 1
Blood Lactate Response in MSBlood Lactate ResponseImmediately Post with Whole Body Vibration4.3 mmol/LStandard Deviation 3
Blood Lactate Response in MSBlood Lactate ResponseImmediately Post without Whole Body Vibration2.8 mmol/LStandard Deviation 1.3
Blood Lactate Response in MSBlood Lactate Response10 Minutes Post without Whole Body Vibration3.3 mmol/LStandard Deviation 2.3
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate ResponseImmediately Post without Whole Body Vibration2.5 mmol/LStandard Deviation 1.1
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate Response10 Minutes Post without Whole Body Vibration2.6 mmol/LStandard Deviation 1.2
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate Response10 Minutes Post with Whole Body Vibration2.2 mmol/LStandard Deviation 0.9
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate ResponsePre with Whole Body Vibration1.3 mmol/LStandard Deviation 0.3
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate ResponsePre without Whole Body Vibration1.2 mmol/LStandard Deviation 0.4
Blood Lactate Responses in Healthy, Older AdultsBlood Lactate ResponseImmediately Post with Whole Body Vibration2.9 mmol/LStandard Deviation 0.9
Secondary

Resting Energy Expenditure

Measured using using indirect calorimetry with a ventilated face mask and noseclip (Parvometrics, Sandy, UT). This involves laying supine for 30 to 60 minutes.

Time frame: Measured immediately upon arriving to the laboratory. Lasted approximately 25 minutes.

Population: 1 of the 12 PD participants had severe claustrophobia, and could not tolerate the breathing mask on their face.~1 of the 12 PD participants, and 1 of the 8 healthy, older adults participants: dysfunctional equipment, and thus invalid results.

ArmMeasureValue (MEAN)Dispersion
Blood Lactate Response in PDResting Energy Expenditure1338 kcalStandard Deviation 284
Blood Lactate Response in MSResting Energy Expenditure1262 kcalStandard Deviation 139
Blood Lactate Responses in Healthy, Older AdultsResting Energy Expenditure1521 kcalStandard Deviation 276
Other Pre-specified

Fatigue/Depression Assessment

Fatigue Severity Scale: 9-item, self-reporting rating that rates the severity of your fatigue symptoms on a Likert scale ranging from 1 to 7, with 1 indicating strong disagreement, and 7 indicating strong agreement. The sum of scores is calculated. The lower the score, the more severe the participant's fatigue symptoms. Beck's Depression Inventory: 21-item, self-report rating inventory that measures characteristic attitudes and symptoms of depression on a Likert scale ranging from 0 to 3, with 3 being the most severe. The sum of scores is calculated. A high score indicates more severe depression and related symptoms.

Time frame: Collected at the same time as the other questionnaires. Lasted approximately 5-7 minutes.

Population: 2 of the 8 healthy, older adults did not complete all of the surveys, and were thus unable to be added to analysis.

ArmMeasureGroupValue (MEAN)Dispersion
Blood Lactate Response in PDFatigue/Depression AssessmentDepression7 units on a scaleStandard Deviation 5
Blood Lactate Response in PDFatigue/Depression AssessmentFatigue30 units on a scaleStandard Deviation 18
Blood Lactate Response in MSFatigue/Depression AssessmentDepression8 units on a scaleStandard Deviation 5
Blood Lactate Response in MSFatigue/Depression AssessmentFatigue38 units on a scaleStandard Deviation 17
Blood Lactate Responses in Healthy, Older AdultsFatigue/Depression AssessmentDepression3 units on a scaleStandard Deviation 3
Blood Lactate Responses in Healthy, Older AdultsFatigue/Depression AssessmentFatigue17 units on a scaleStandard Deviation 14
Other Pre-specified

Health and Activity Questionnaire

Short Form 36 Health Survey questionnaire: patient-reported survey of 36 questions, yielding the participant's degree of health on 8 different scale scores (each scale summed into a 0-100 score, with lower scores indicating more disability). The eight scales include vitality, physical functioning, bodily pain, general health perceptions, physical role functioning, emotional role functioning, social role functioning, and mental health. Schwab and England Activities of Daily Living Questionnaire: self-rated, single item assessment of the participant's ability to perform daily activities with speed and independence, measured using a Likert scale of percentages, in 10% increments. A score of 100% indicates total independence, while 0% indicates complete dependence.

Time frame: Collected immediately after the UPDRS (if PD population), or immediately after the resting energy expenditure measurement (if MS or healthy, older adult). Measured with other questionnaires and immediately before squatting exercise. Lasted ~10 minutes.

Population: 2 of the 8 healthy, older adults did not complete all of the surveys, and were thus, clearly unable to be added to analysis.

ArmMeasureGroupValue (MEAN)Dispersion
Blood Lactate Response in PDHealth and Activity QuestionnaireEnergy/Fatigue55 units on a scaleStandard Deviation 17
Blood Lactate Response in PDHealth and Activity QuestionnaireActivities of Daily Living85 units on a scaleStandard Deviation 5
Blood Lactate Response in PDHealth and Activity QuestionnaireSocial Functioning78 units on a scaleStandard Deviation 20
Blood Lactate Response in PDHealth and Activity QuestionnaireEmotional Well-Being75 units on a scaleStandard Deviation 16
Blood Lactate Response in PDHealth and Activity QuestionnairePhysical Funcitoning65 units on a scaleStandard Deviation 21
Blood Lactate Response in PDHealth and Activity QuestionnaireGeneral Health68 units on a scaleStandard Deviation 19
Blood Lactate Response in PDHealth and Activity QuestionnaireRole Limitations due to Emotional Health73 units on a scaleStandard Deviation 34
Blood Lactate Response in PDHealth and Activity QuestionnaireRole Limitations due to Physical Health43 units on a scaleStandard Deviation 34
Blood Lactate Response in PDHealth and Activity QuestionnairePain73 units on a scaleStandard Deviation 16
Blood Lactate Response in MSHealth and Activity QuestionnaireEmotional Well-Being75 units on a scaleStandard Deviation 13
Blood Lactate Response in MSHealth and Activity QuestionnairePhysical Funcitoning66 units on a scaleStandard Deviation 22
Blood Lactate Response in MSHealth and Activity QuestionnaireRole Limitations due to Physical Health70 units on a scaleStandard Deviation 32
Blood Lactate Response in MSHealth and Activity QuestionnaireRole Limitations due to Emotional Health82 units on a scaleStandard Deviation 26
Blood Lactate Response in MSHealth and Activity QuestionnaireEnergy/Fatigue42 units on a scaleStandard Deviation 26
Blood Lactate Response in MSHealth and Activity QuestionnaireSocial Functioning73 units on a scaleStandard Deviation 22
Blood Lactate Response in MSHealth and Activity QuestionnairePain70 units on a scaleStandard Deviation 29
Blood Lactate Response in MSHealth and Activity QuestionnaireGeneral Health58 units on a scaleStandard Deviation 15
Blood Lactate Response in MSHealth and Activity QuestionnaireActivities of Daily LivingNA units on a scale
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireRole Limitations due to Emotional Health90 units on a scaleStandard Deviation 23
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnairePhysical Funcitoning95 units on a scaleStandard Deviation 4
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnairePain86 units on a scaleStandard Deviation 8
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireRole Limitations due to Physical Health82 units on a scaleStandard Deviation 35
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireActivities of Daily Living100 units on a scaleStandard Deviation 0
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireEmotional Well-Being87 units on a scaleStandard Deviation 5
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireEnergy/Fatigue71 units on a scaleStandard Deviation 21
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireGeneral Health87 units on a scaleStandard Deviation 8
Blood Lactate Responses in Healthy, Older AdultsHealth and Activity QuestionnaireSocial Functioning95 units on a scaleStandard Deviation 13
Other Pre-specified

Neurological Function

Neurological functional state will be assessed using the Unified Parkinson's Disease Rating Scale (UPDRS). Of the 5 sections of the examination, two parts were used. Part II (self-evaluation of aspects of the experiences of daily living) consisted of 13 Likert scale questions (graded 0 to 4, with 4 being most severe), including speech, saliva and drooling, chewing and swallowing, eating tasks, dressing, hygiene, handwriting, doing hobbies and other activities, turning in bed, tremor, getting out of bed/car/deep chair, walking and balance, and freezing. Part III (motor evaluation performed by trained research personnel) consisted of 14 Likert scale questions (graded 0 to 4, with 4 being most severe), including speech, facial expression, rigidity, finger tapping, hand movements, pronation-supination movements of hands, toe tapping, leg agility, arising from chair, gait, etc... Values were summed, with higher values indicating increased impairment and disability.

Time frame: Measured immediately after the resting energy expenditure measurement, and before the other questionnaires. Lasted approximately 15 minutes.

Population: The MS and healthy, older adults populations were not required to be assessed with the UPDRS because the assessment materials were for PD populations, specifically.

ArmMeasureValue (MEAN)Dispersion
Blood Lactate Response in PDNeurological Function23 units on a scaleStandard Deviation 6

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