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Tundra lists 3 Somatosensory Disorders clinical trials. Each listing includes eligibility criteria, study locations, and direct links to research sites in the Tundra directory.
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NCT07786194
Improvement Through Movement - Balance Control and Somatosensory Function in People With Diabetes Mellitus Type 2
This study focuses on improving balance control and somatosensory functions in individuals aged 60 years and older with diabetes mellitus tyoe 2 (DMT2). Older adults with DMT2 are at an increased risk of balance problems due to diabetic complications such as neuropathy, retinopathy, and possibly reduced vestibular function. The aim of the study is to investigate whether a 12-week exercise program, with or without additional balance exercises, can improve balance control, enhance somatosensory functions (such as touch and vibration thresholds), and positively impact diabetes-related parameters, including HbA1c levels. The study is designed as a randomized controlled trial (RCT). Participants are selected based on reduced balance control identified in a prior cross-sectional study. The intervention group follows an exercise program in accordance with international guidelines, supplemented with balance exercises supervised by the researcher (physiotherapist). The control group follows the same guidelines but without balance exercises; instead, they perform relaxation exercises. Balance control is assessed both statically and dynamically, while somatosensory functions are measured, and diabetes-related parameters are collected. The intervention is primarily home-based, supported by an activity tracker, but the balance or relaxation exercises are conducted under supervision at a designated location. This study aims to contribute to the quality of life of older adults with DMT2 by reducing balance problems and fall risks.
Gender: All
Ages: 60 Years - Any
Updated: 2026-08-25
1 state
NCT07619469
Motion Sickness Severity and Sensorimotor Performance
Background: Motion sickness (MS) is a common syndrome characterized by autonomic and behavioral symptoms, such as nausea and dizziness, resulting from exposure to motion stimuli. Its pathophysiology is closely linked to sensory conflict and postural instability theories. While previous studies suggest that postural control, proprioception, and reaction times are affected in individuals susceptible to MS, there is a lack of comprehensive, comparative research evaluating all these parameters concurrently within the same cohort using standardized methods. Objective: This study aims to systematically measure balance, proprioceptive sensitivity, coordination, and reaction time parameters, and quantitatively analyze their relationship with motion sickness severity. Methodology: In this prospective, cross-sectional study, at least 41 participants aged 18-40 with motion sickness will be recruited. Participants will undergo motion sickness susceptibility and severity grading using the Motion Sickness Susceptibility Questionnaire Short Form (MSSQ-SF) and the Graybiel Scale. Objective assessments will include static and dynamic balance testing (ProKin®), knee joint position sense (Clinometer app), manual dexterity and dynamic balance coordination (Nine-Hole Peg Test, Tandem Walk, Romberg Test), and upper/lower extremity reaction time measurements (BlazePod system).
Gender: All
Ages: 18 Years - 40 Years
Updated: 2026-06-26
NCT05548322
Studies Into Touch in Healthy Humans to Provide Sensory Feedback in Prostheses
Our sense of touch is essential to explore our environment and experience life and is based on signals from receptors in the body that are sensitive to different types of stimulation. The TACTHUM projects aims to investigate the fundamental firing of mechanoreceptors in the body to various external stimuli, with an end-aim to better understand the human somatosensory system and to apply this knowledge to provide comprehensive sensory feedback in prosthetics. We have a vast system of peripheral receptors in the skin and muscles that provide us with exquisitely detailed information about our everyday interactions. When there is injury to a body part, such as in amputation, there is a significant loss of somatosensory input. Prosthetic devices have greatly developmed in the past few years, especially with the introduction of useful sensory feedback. However, there is a lot to discover both about the workings of the somatosensory system and how to recreate this to give feedback in a prosthetic device. The main objective of the TACTHUM project is to understand how to recover and apply useful somatosensory feedback in prostheses for amputees. There are a number of other sub-objectives, to: 1. Determine how tactile mechanoreceptors encode the texture of natural surfaces during passive and active exploration. 2. Investigate how our sense of touch varies with emotional state. 3. Explore what happens to our sense of touch when we explore surfaces at different temperatures. 4. Understand the origin of our perception of humidity. 5. Investigate differences in the encoding of tactile information with age. 6. Determine the perceptions generated by the stimulation of single tactile afferents. 7. Study changes in spontaneous activity and responses to tactile stimulation on the residual limb of amputees. To accomplish these objectives, we will primarily use the technique of microneurography, in vivo recordings from peripheral nerves, to gain direct information about the firing of peripheral neurons in humans. In conjunction with this, we will use a variety of mechanical and thermal stimuli to excite somatosensory fibers and register the activity of other physiological and perceptual measures. This will allow us to gain a fuller understanding of how the incoming somatosensory signals are interpreted and processed. Overall, we aim to explore how more naturalistic tactile interactions are encoded and how these can be translated to provide realistic prosthetic feedback.
Gender: All
Ages: 20 Years - 70 Years
Updated: 2026-03-04