Prader-Willi Syndrome
Conditions
Keywords
Polyvagal Theory, Respiratory Sinus Arrhythmia, Heart rate, Social Behavior, Arginine Vasopressin, Dichotic Listening Tests, Oxytocin, Hyperacusis, Affect, Auditory perception, Sound spectrography
Brief summary
The Polyvagal Theory focuses on how function and structure changed in the vertebrate autonomic nervous system during evolution. The theory is named for the vagus, a major cranial nerve that regulates bodily state. As a function of evolution, humans and other mammals have a new vagal pathway that links the regulation of bodily state to the control of the muscles of the face and head including the middle ear muscles. These pathways regulating body state, facial gesture, listening (i.e., middle ear muscles), and vocal communication collectively function as a Social Engagement System (SES). Because the Social Engagement System is an integrated system, interventions influencing one component of this system (e.g., middle ear muscles) may impact on the other components. Individuals with Prader-Willi Syndrome (PWS) exhibit many behaviors that are consistent with a compromised Social Engagement System. Atypical function of the Social Engagement System results in problems associated with state regulation (e.g., impulsivity, tantrums, and difficulty with change in routine), ingestion (e.g., difficulties in sucking at birth, hyperphagia), coordination of suck/swallow/breathe, intonation of vocalizations, auditory processing and hypersensitivity, and socialization. We propose to confirm that several features of the behavioral phenotype of PWS may be explained within the context of a dysfunctional SES (Specific Aim I), which may be partially rehabilitated via an intervention designed as a 'neural exercise' of the SES (Specific Aim II). Specific Aims: Aim I: To demonstrate that children with PWS have atypical regulation of the SES. We hypothesize these effects will be manifested by dampened vagal regulation of the heart (low parasympathetic tone); poor middle ear muscle regulation resulting in auditory hypersensitivities and poor auditory processing; lack of voice intonation (prosody), and difficulties in accurately detecting the emotions of others. Aim II: To demonstrate the effectiveness of the Listening Project Protocol (LPP) in decreasing the atypical features of the SES in adolescents with PWS. We hypothesize that individuals who complete the LPP will have improved vagal regulation of the heart, improved middle ear muscle regulation, increased voice intonation and improved ability to accurately detect the emotions of others.
Interventions
The filtered music intervention will consist of listening to computer-altered acoustic stimulation, designed to modulate the frequency band of vocal music passed to the participant. The frequency characteristics of the acoustic stimulation are selected to emphasize the relative importance of specific frequencies in conveying the information embedded in human speech Modulation of the acoustic energy within the frequencies of human voice, similar to an exaggerated vocal prosody, are hypothesized to recruit and modulate the neural regulation of the middle ear muscles and to functionally reduce sound hypersensitivities and improve auditory processing.
Sponsors
Study design
Masking description
No masking.
Intervention model description
All participants will receive the active (filtered music) intervention.
Eligibility
Inclusion criteria
1. Participants must be current residents at Latham Centers (LC) School in Brewster MA 2. Participants must meet criteria for Prader-Willi Syndrome 3. Participants must be between ages 13 - 25 years 4. Participants must have normal hearing 5. Participants must have normal vision (or corrected vision)
Exclusion criteria
1. Individuals with current (or a history of) heart disease 2. Individuals who are hearing-impaired 3. Individuals who are being treated for seizure disorder 4. Individuals who do not read/speak English 5. Individuals who are sight-impaired without correction
Design outcomes
Primary
| Measure | Time frame | Description |
|---|---|---|
| Effect of Intervention on Autonomic regulation | Change from 1 week pre-intervention RSA to 1 month post-intervention | Respiratory sinus arrhythmia (RSA) |
Secondary
| Measure | Time frame | Description |
|---|---|---|
| Effect of Intervention on Oxytocin | Change from 1 week pre-intervention oxytocin to 1 month post-intervention | oxytocin levels derived from salivary sample |
| Effect of Intervention on Heart period | Change from 1 week pre-intervention heart period to 1 month post-intervention | heart period |
| Effect of Intervention on Auditory processing | Change from 1 week pre-intervention Filtered Words to 1 month post-intervention | Filtered Words subtest of SCAN |
| Effect of Intervention on Sensory Sensitivities | Change from 1 week pre-intervention BBC Sensory Scales to 1 month post-intervention | BBC Sensory Scales (questionnaire) |
| Effect of Intervention on Social behavior | Change from 1 week post-intervention LPP to 1 month post-intervention | Listening Project Parent (LPP) Questionnaire |
| Effect of Intervention on Accuracy of Affect recognition | Change from 1 week pre-intervention DARE (accuracy) to 1 month post-intervention | Dynamic Affect Recognition Evaluation (DARE) - accuracy |
| Effect of Intervention on Prosody | Change from 1 week pre-intervention Prosody to 1 month post-intervention | Analyses of vocal recordings |
| Effect of Intervention on Disruptive Behavior | Change from 1 week pre-intervention DBC to 1 month post-intervention | Developmental Behavior Checklist (DBC) (questionnaire) |
| Effect of Intervention on Vasopressin | Change from 1 week pre-intervention vasopressin to 1 month post-intervention | vasopressin levels derived from salivary sample |
| Effect of Intervention on Latency to Affect recognition | Change from 1 week pre-intervention DARE (latency) to 1 month post-intervention | Dynamic Affect Recognition Evaluation (DARE) - latency |
Other
| Measure | Time frame | Description |
|---|---|---|
| Immediate effects of intervention on Latency to Affect recognition | Change from 1 week pre-intervention DARE latency to 1 week post-intervention | Dynamic Affect Recognition Evaluation (DARE) - latency |
| Short-term effects of intervention on Latency to Affect recognition | Change from 1 week post-intervention DARE latency to 1 month post-intervention | Dynamic Affect Recognition Evaluation (DARE) - latency |
| Stability of Accuracy of Affect recognition | Change from 6 months pre-intervention DARE accuracy to 1 week pre-intervention | Dynamic Affect Recognition Evaluation (DARE) - accuracy |
| Immediate effects of intervention on Accuracy of Affect recognition | Change from 1 week pre-intervention DARE accuracy to 1 week post-intervention | Dynamic Affect Recognition Evaluation (DARE) - accuracy |
| Short-term effects of intervention on Accuracy of Affect recognition | Change from 1 week post-intervention DARE accuracy to 1 month post-intervention | Dynamic Affect Recognition Evaluation (DARE) - accuracy |
| Stability of Prosody | Change from 6 months pre-intervention prosody to 1 week pre-intervention | Analyses of vocal recordings |
| Stability of Autonomic regulation | Change from 6 months pre-intervention RSA to 1 week pre-intervention | Respiratory sinus arrhythmia (RSA) |
| Short-term effects of intervention on Prosody | Change from 1 week post-intervention prosody to 1 month post-intervention | Analyses of vocal recordings |
| Stability of Disruptive behavior | Change from 6 months pre-intervention DBC to 1 week pre-intervention | Developmental Behavior Checklist (DBC) (questionnaire) |
| Immediate effects of intervention on Disruptive behavior | Change from 1 week pre-intervention DBC to 1 week post-intervention | Developmental Behavior Checklist (DBC) (questionnaire) |
| Short-term effects of intervention on Disruptive behavior | Change from 1 week post-intervention DBC to 1 month post-intervention | Developmental Behavior Checklist (DBC) (questionnaire) |
| Stability of Oxytocin | Change from 6 months pre-intervention oxytocin to 1 week pre-intervention | oxytocin levels derived from salivary sample |
| Stability of Vasopressin | Change from 6 months pre-intervention vasopressin to 1 week pre-intervention | vasopressin levels derived from salivary sample |
| Immediate effects of intervention on Prosody | Change from 1 week pre-intervention prosody to 1 week post-intervention | Analyses of vocal recordings |
| Immediate effects of intervention on Autonomic regulation | Change from 1 week pre-intervention RSA to 1 week post-intervention | Respiratory sinus arrhythmia (RSA) |
| Short-term effects of intervention on Autonomic regulation | Change from 1 week post-intervention RSA to 1 month post-intervention | Respiratory sinus arrhythmia (RSA) |
| Stability of Heart period | Change from 6 months pre-intervention heart period to 1 week pre-intervention | heart period |
| Immediate effects of intervention on Heart period | Change from 1 week pre-intervention heart period to 1 week post-intervention | heart period |
| Short-term effects of intervention on Heart period | Change from 1 week post-intervention heart period to 1 month post-intervention | heart period |
| Stability of Auditory processing | Change from 6 months pre-intervention Filtered Words to 1 week pre-intervention | Filtered Words subtest of SCAN |
| Immediate effects of intervention on Auditory processing | Change from 1 week pre-intervention Filtered Words to 1 week post-intervention | Filtered Words subtest of SCAN |
| Short-term effects of intervention on Auditory processing | Change from 1 week post-intervention Filtered Words to 1 month post-intervention | Filtered Words subtest of SCAN |
| Stability of Sensory Sensitivities | Change from 6 months pre-intervention BBC Sensory Scales to 1 week pre-intervention | BBC Sensory Scales (questionnaire) |
| Stability of Latency to Affect recognition | Change from 6 months pre-intervention DARE latency to 1 week pre-intervention | Dynamic Affect Recognition Evaluation (DARE) - latency |
Countries
United States