← Back to NASA Technology Projects
Novel Ultrasound Assessment of Dynamic Muscle Project
Completed
TRL 3 (started at 2, targeting 3)
Description
Substantial research shows that skeletal muscle undergoes atrophy during spaceflight. Because maintenance of the musculoskeletal system is of crucial importance for mobility of astronauts during long-duration missions and upon return to 1-G, it is vital to learn as much as possible about muscle structure and function. Current reports on muscle atrophy following disuse or microgravity are based on study of a single anatomical cross-sectional area, a measurement that ignores more detailed changes in muscle structure. Significant insight into the relationship between muscle structure and function could be achieved by improving muscle imaging techniques. In particular, acquisition of ultrasound imaging during muscle contraction to monitor muscle dynamics could provide critical information regarding microgravity-induced strength loss. Maintenance of the musculoskeletal system is of crucial importance for mobility of astronauts during long-duration missions and upon return to 1-G. However, substantial research shows that skeletal muscle undergoes atrophy during spaceflight. Reports on muscle atrophy are typically based on study of cross-sectional area, a measurement that ignores more detailed changes in muscle structure. Knowledge of the structure of skeletal muscle is key to understanding its function. Ultrasound imaging of muscle during contraction could provide important insight into the relationship between muscle structure and function. Importantly, the use of novel ultrasonographic techniques to evaluate dynamic muscle structure may provide critical information regarding the underlying mechanisms of microgravity-induced strength loss. Five subjects performed various passive and active contractions while ultrasound images of the rectus femoris were obtained. We demonstrated that acquisition of contracting muscle is obtainable using a high frequency ultrasound probe, and that the contracting muscle can be tracked with various algorithms using a custom Matlab program. This work was completed in September, 2012. Further investigations are needed to determine the most valid algorithm for tracking muscle, to assess the reliability of the muscle tracking technique, and to ascertain the association between torque and skeletal muscle strain. Tracking Algorithms in Matlab Program: Ultrasound images of tissue consist of a set of intensity forming 'speckles' that create patterns. If the ultrasound probe remains in the same position during a movement, the changes in the speckle patterns represent movements in the tissue. These movements can be directly and actively followed using speckle-tracking algorithms. Movements of the tissue over the course of an image sequence can then be quantified by monitoring changes in the position of the speckles. Five muscle tracking algorithms were tested with each algorithm outputting muscle strain throughout contractions. Analysis of Ultrasound Images with Matlab Program: On a typical ultrasound image (Figure), the cross sectional area of the muscle (rectus femoris) appears in the center of the image. Visual inspection confirmed that relative motion between the edges can be used to estimate the changes in length and thickness of the muscle. The muscle tracking algorithms automatically tracked the change in position of each marker from the initial frame to subsequent frames for the duration of the contraction.
Benefits
Given that future missions will be of considerably longer duration than the current 6 month stays on the International Space Station, information characterizing skeletal muscle contraction is of fundamental importance for sustaining human presence in space and extending the exploration of our Solar System. Speckle-tracking, a new non-invasive ultrasound imaging technique, could allow for an objective and quantitative evaluation of global and regional muscle function. Greater understanding of muscle atrophy acquired through a combination of the use of speckle tracking and a customized analysis program could provide knowledge that would enhance a crew's ability to effectively, reliably and safely complete long-duration mission tasks. After age 50, the muscle mass declines by 1–2% annually and the muscle strength decreases by ∼1.5%. This age-related muscle loss, termed sarcopenia, affects ∼10% of elderly individuals aged 60–70 years. After the age of 80, up to 50% of people can be affected. Muscle wasting is not only a problem in the elderly, but also a consequence of chronic diseases such as cancer, heart failure, and chronic obstructive pulmonary disease. In the United States alone, there are approximately 12 million cancer patients, 5.7 million heart failure patients, and 15 million chronic obstructive pulmonary disease patients. The assessment of muscle contractile performance with ultrasound could therefore aid in the diagnosis and management of individuals with muscle-related disorders.
Details
| Program | Center Innovation Fund: JSC CIF (JSC CIF) |
| Lead organization | Johnson Space Center, Houston, TX |
| Start date | 2012-05-01 |
| End date | 2012-08-01 |
Project contacts
Listed on TechPort itself — the most direct way to ask about this specific project.
How to get involved
This is early/mid-stage (TRL 3) — the most realistic path in is NASA SBIR/STTR, which funds small businesses and research institutions to develop technology aligned with NASA's needs (equity-free, phased funding). Check whether a current SBIR/STTR solicitation topic overlaps with this project's technology area, or contact the project directly (above) to ask.
None of these are guaranteed paths for this specific project — TechPort itself doesn't have an "apply" button. Reaching out to the contact(s) above with a specific question is usually the fastest way to find out what's actually open.