Nerves are made of different fats including omega-3s and omega-6s; however, dietary intakes of omega-6s are very high and omega-3 intakes are very low. We hypothesize that omega-3 supplementation will stop diabetes related changes in cornea nerve structure in patients with type 1 diabetes to stop the development of nerve injury associated with future risk of neuropathy, and reflect changes in the degree of nerve injury over time. As such, we anticipate that patients in the study will maintain Corneal Nerve Fiber Length (CNFL), the primary outcome measure.
This study will test the use of an omega-3 supplement as a potential way to stop nerve damage that has been observed in individuals with type 1 diabetes Nerves supply signals to all structures in the body and take signals back to the spinal cord and brain. Both small and large nerve fibres can be affected in disease states, such as diabetes. Since defects of small nerve fibre activity have important consequences (painful symptoms, erectile dysfunction, cardiac rhythm disturbances, bladder and gastrointestinal dysfunction), it is important to determine new ways to maintain their function to help individuals maintain a high quality of life. Until now, researchers have only tested the effect of omega-3 supplementation in animals with diabetes and have found this nutrient to lessen nerve damage while maintaining the function of nerves. However, there has not been any research on the use of omega-3s on nerve structure and function in humans with type 1 diabetes. Current standard of care for type 1 diabetes is to manage glycemic control and any painful symptoms through medication. The use of omega-3 supplements for prevent or limit nerve damage in diabetes is not within the current standard of care. In this study omega-3 supplementation is experimental and has been approved by Health Canada for use in this study.
Study Type
INTERVENTIONAL
Allocation
NA
Purpose
PREVENTION
Masking
NONE
Enrollment
5 mL twice daily, administered under the tongue
University Health Network, Division of Neurology, Toronto General Hospital
Toronto, Ontario, Canada
Change in corneal nerve fibre length
Participants will undergo examination of nerve fibres adjacent to the Bowman's layer of the cornea in both eyes using the Rostock Cornea Module of the Heidelberg Tomograph III (Heidelberg Engineering, Smithfield RI, USA) to determine corneal IVCM corneal nerve fibre length (CNFL).
Time frame: Baseline and 12 months
Nerve Conduction Studies
Nerve conduction studies will be conducted using standardized testing of the left median, ulnar, peroneal, and sural sensory nerves for signal amplitude and conduction velocity.
Time frame: Baseline and 12 months
Corneal Nerve Fibre Length
Interim measures of CNFL will be measured as a secondary outcome to track progressive changes with supplementation.
Time frame: 4 months and 8 months
Laser Doppler Imaging Flare (LDI Flare) sympathetic skin response
The purpose of this measure is to document, separate from the corneal IVCM parameters, small nerve fiber function. LDI Flare measurement will be conducted on MoorLDI2 Laser Doppler blood perfusion imager.
Time frame: Baseline and 12 months
Vibration Perception Threshold
Vibration perception threshold will be performed using the Neurothesiometer to evaluate sensory nerve function.
Time frame: Baseline and 12 months
Cooling Detection Threshold Testing
Cooling detection threshold testing will evaluate peripheral sensory nerve function.
Time frame: Baseline and 12 months
Omega-3 status
This platform is for informational purposes only and does not constitute medical advice. Always consult a qualified healthcare professional.
40
Red blood cell omega-3 content will be determined using gas-flame chromatography.
Time frame: Baseline, 4, 8 and 12 months
Heart Rate Variability
Time frame: Baseline and 12 months
R-R interval
Time frame: Baseline and 12 months