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NCT Number: NCT05990062

Improving Prosthetic Arms for Amputee: A Better Fit and More Functionality

This research and development will improve upon and investigate the potential validity of an innovative new transradial socket and harness design (the KSH system) that offers an alternative to standard hard sockets and rubber liners with a hybrid polymer and textile-based design derived from advanced athletic shoe technology. The project consists of designing, custom fitting and evaluating the function and comfort of the this new novel system. The study will take place in 3 phases; Phase 1, five experienced Veterans with transradial arm amputations will be recruited to provide guidance and to assist with the design and development. Experienced end-user Veterans and Clinical staff will work together to assist with design, develop the fitting process and working with engineers on the design of a completely digital fitting device for measuring the residual limb and locating bony prominences of the limb to inform the socket design. Phase 2, testing and assessment, the design and process validation will take place with the five Veteran upper transradial arm amputees Phase 3, an additional 20 Veterans with transradial arm amputations will be recruited and fit with the KSH system and undergo a series of evaluative tests. Veterans will perform a series of static and dynamic tasks to evaluate function, comfort and load bearing failure. The primary goal of this study is to improve upon the current preliminary prototype and to test it with a broader population of potential users to help advance the engineering and design, and to learn the potential to fit a range of Veterans with transradial amputations.

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Key information

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

VA Pittsburgh Healthcare System University Drive Division, Pittsburgh, PA

Pittsburgh, Pennsylvania, 15240, United States

Location status: Recruiting

Location contact

Elizabeth B Toth, BA

CONTACT

[email protected]

(412) 954-5382

Rory A Cooper, PhD

PRINCIPAL_INVESTIGATOR

About this study

Acceptance of prosthetic arms has long been a problem for clinical prosthetics, and recent studies indicate that recent advancements have done little to improve usage. Objections related to the fit and comfort of prosthetic arms remain the main reasons cited for the disuse of the devices, numbering nine of the top ten reasons cited for abandonment in a survey study. By addressing the literal point of pain for these users, the investigators hope to increase use and acceptance, allowing existing devices to have more positive impact on Veterans' lives. The breathability of composite sockets has been an acknowledged problem nearly since their development by the VA in the 1940s. Indeed, while the VA successfully developed a breathable composite socket very early on, it was quickly abandoned after it was discovered that the breathable composite recreated the problems with odor and cleanliness with leather sockets that the composites had been developed to solve. Industry leader Otto Bock discovered the same thing when it developed a porous silicone liner decades later. While VA and civilian providers were successful in replacing leather sockets with composites through the innovations in composites and other materials following World War II. Prosthetic clinics used to employ leatherworkers skilled in the art of making custom sockets and braces out of these traditional materials, but these services have disappeared along with the Veterans demanding them, and the workers capable of delivering them. By taking advantage of the benefits of the advanced materials and construction techniques that have replaced leather in the athletic shoe industry over the last seventy-five years, the investigators hope to restore much of the comfort and fit of these extinct socket designs, while at the same time delivering the improvements that have been delivered by the athletic shoe industry and advances in design and manufacturing over the same period. Lim design is working on a textile based prosthetic socket; however, the approach differs from the investigators': 1) The Lim design is not intended or currently suitable for upper limbs; 2) While a textile design, the Lim design cannot dynamically change in volume through the range of motion and constrains motion similar to any other socket once it has been adjusted; 3) The textile design of the Lim socket is nether breathable nor wicking and is designed to be used with silicone and/or gel liners, hence suffers from the same deficiencies with respect to heat and moisture management as traditional sockets. Lim Innovations and Ossur have publicly stated that they do not intend to pursue further innovations in the upper limb market. These frank admissions make it clear that the development of orphan devices for Veterans, must become the responsibility of the VA, whose goals for serving Veterans are sometimes in contrast with and not limited to the constraints of large and profitable markets. VA in collaboration with small companies can help fill this much needed void for innovation. VA has shown leadership in related domains with the research and design for ultralight wheelchairs, alternative controls for powered wheelchairs, and adaptive sports and recreation equipment, all of which eventually assisted the broader populations of Americans with disabilities. Harness discomfort is just as detrimental to acceptance as poor socket-body interface and can lead to contralateral damage to the axilla. Indeed, one recent study concluded that there was no acceptable level of force at which a body powered prosthesis could be operated pain and fatigue free with a traditional harness. While the conclusions of this study obviously contradict the staying power of the body powered prosthesis and harness system accepted by more than 90 per cent of the roughly half of users who accept a prosthesis at all, it does indicate that there is substantial improvement to be made in harnessing that could significantly improve both acceptance and comfort of the users who have been willing to tolerate the uncomfortable standard of care that has seen slow progress for decades.

Study Objectives and Hypothesis:

Specific Aim 1: Improve and develop the design and systems for fitting an innovative new transradial suspension design based on currently available technology used in athletic shoe construction.

  • Design Criteria 1a: Optimize CAD documentation by revising and translating the current Autodesk Fusion 360 design to SolidWorks, aiding customization and improving design for manufacture.
  • Design Criteria 1b: Verify that the currently Direct Metal Laser Sintered (DMLS) printed wrist and quick release can be efficiently and effectively CNC machined.
  • Design Criteria 1c: Create fixturing and finalize CNC programming for manufacture, including the specification of manufacturing tolerances to ensure proper fit of components.
  • Design Criteria 1e: Verify forearm and elbow counter parts-currently printed in Multijet Fusion (MJF)-in Selective Laser Sintering (SLS) or Fused Deposition or Fused Filament (FDM/FFF) Nylon material.
  • Design Criteria 1f: Automate adaptation of the design through plugin and API development.
  • Design Criteria 1g: Optimize production of 2D textile patterns with, for example, ExactFlat.
  • Design Criteria 1h: Design a digital or Brannock-like fitting device for measuring the residual limb and locating bony prominences of the limb to inform the socket design.
  • Design Criteria 1i: Design the device to weigh less than 2 pounds in total. The design will address common limitations of current upper-limb prostheses by improving comfort, range of motion, function, and sustained prosthesis use among individuals with transradial amputation.

Specific Aim 2: Verify performance gains for the innovative KSH system that can be delivered to Veterans. The new design is expected to significantly exceed the performance of the standard-of-care prosthesis in quantitative measures.

  • Hypothesis 2a (H2a): That the improved KSH will provide a higher tensile static load bearing capacity before failure than the current standard-of-care prosthesis.
  • Hypothesis 2b (H2b): That the improved KSH will provide greater tensile loads in a dynamic environment. The KSH system will allow users to perform better on a rowing ergometer 10-minute test before failure than the current standard-of-care prosthesis, as measured using strokes per minute, power in Watts, distance in meters, maximal force, and time before failure.
  • Hypothesis 2c (H2c): The improved KSH will provide a greater range of motion in flexion/extension than the current standard-of-care prosthesis.
  • Hypothesis 2d (H3d): Participants will require less time for donning/doffing the KSH than their current standard-of-care prosthesis.

Specific Aim 3: Verify functionality of the KSH system through testing with end-users.

  • Hypothesis 3a (H3a): Participants will report high usability with setup and operation of the device (>80 on the System Usability Scale (SUS)).
  • Hypothesis 3b (H3b): Participants will report significantly higher Socket Comfort Scores (SCS) with the KSH than their current standard-of-care prosthesis.
  • Hypothesis 3c (H3c): Lower weight will correlate with greater user satisfaction, and the KSH will be statistically and clinically significantly lighter than participants' current devices.
  • Hypothesis 3d (H3d): Participants will report that they would switch to the new design or have an additional prosthesis with the new design.
  • Hypothesis 3e (H3e): Participants will report significantly higher Orthotics and Prosthetics User Survey (OPUS) scores with the KSH than their current standard-of-care prosthesis.

Relevance to Veterans: According to the DoD/VA Extremity Amputation Center of Excellence there were about 3,000 Veterans with transradial amputations enrolled for VA Healthcare in FY21, out of about 62,000 Veterans with limb amputations enrolled for VA healthcare. Veterans with arm amputations from Post-911 conflicts number just over 200, and because the total number of Veterans missing arms is demographically small, this very fact has severely limited innovation in the field of prosthetic arms. Those missing at least all five fingers of a hand are among the VA's most significantly disabled Veterans, rated at 80 per cent disabled alone for the loss of a dominant hand. Many arm amputees are eligible for Special Monthly Compensation as well as vehicle and housing modifications, reflecting the degree to which these Veterans' lives are impacted by the impairment. Indeed, even among the civilian population, arm amputation is rare enough to easily meet the FDA's medical orphan criteria of fewer than 200,000 patients, though the FDA's orphan drug law specifically excludes medical devices, and the FDA has a lower device threshold of 8,000 patients, further limiting innovation. The NIH's Genetic and Rare Diseases Information Center (GARD) lists limb absence as a rare birth condition but doesn't mention the same disability acquired by trauma or through other diseases, such as cancer, which is the second most common cause despite the small total number from all causes. While the subject design can be extended to other levels of amputation, this study will focus on transradial, or below elbow amputees. This population represents approximately seventy-five per cent of the VA population of Veterans with arm amputations, a subset that is also much more likely to successfully wear a prosthetic arm. Over 90% of these users choose body powered. The design could be extended to other Veteran populations, including people with lower-limb amputations and other levels of amputation, potentially increasing the benefit by offering the same benefits to those Veterans. By targeting the portion of an orphan population that is already more likely to use the device for which improvement is sought, and by targeting the concerns that are most likely to lead to abandonment, this research stands to increase acceptance and therefore access to activities of daily living, employment and recreation that can improve quality of life for some of the VA's most impaired patients. Success could then also be translated to larger populations with similar needs. The proposed design is intended to address more than half the total population of Veterans with upper limb amputations and could with additional research and development be designed in the future for other levels of amputation, including lower limb and myoelectric upper limb use.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Unilateral transradial arm amputation
  • Possession of a functioning and wearable previously fit prosthetic arm of any type
  • Residual limb length of at least 4 inches from the lateral epicondyle to the distal tip
  • Residual limb length less than or equal to that allowing a clearance of 1.5 inches from a fitted wrist
  • Must have at least 5-years of prosthetic use experience (For Phase 1 & 2)
  • Must have at least 1-year of prosthetic use experience (For Phase 3 only)

Exclusion criteria

  • Current open sores or incisions, Heterotopic ossification (HO), traumatic neuromas, or any other condition preventing the wearing of a prosthetic socket
  • Residual limb length less than 4 inches
  • Residual limb length greater than that allowing 1.5 inches clearance from a fitted wrist.

The investigators will make every effort to recruit Veterans. If its found that it is not possible to recruit enough Veterans, the investigators will perform a non-Veteran amendment to this protocol.

Treatment and study plan

K-Socket-Harness

Device

A transradial socket and harness design that offers a hybrid polymer and textile-based design derived from advanced athletic shoe technology. The KSH integrated socket, frame, and wrist, the "variable compliance prosthetic socket with breathable matrix," creates a dynamic and secure attachment with a combination of two lacing systems. The lacing systems lengthen and shorten six flexible hinges at the elbow, maintaining a secure attachment throughout the range of motion and accounting for volume changes in the soft tissue of the elbow that would otherwise restrict range of motion or cause the socket to separate from the residual limb.

Other names: KSH System

Primary outcomes

  1. Static tensile load bearing capacity to reach a 50-pound load on an industrial scale

    Time frame: 20 minutes

    The investigators will test tensile static load bearing capacity up to a 50 -pound load or to failure. The Veteran will stand safely on an industrial scale with the arm extended at their side and weight will be added to the distal end of the prosthesis until the goal is met or the prosthesis fails. The investigators will perform the task on both the KSH socket and the standard socket.

  2. Elbow range of motion in flexion/extension

    Time frame: 30 minutes

    The investigators will measure range of motion (in degrees) in flexion/extension with a standard goniometer. The investigators will perform the task on both the KSH socket and the standard socket.

  3. Donning/doffing prosthesis

    Time frame: 30 minutes

    The investigators will record the time it takes to donn/doff each prosthesis for both the KSH socket and the standard socket.

  4. Power in Watts generated on rowing machine

    Time frame: 10 minutes

    The investigators will test tensile loads in a dynamic environment before failure. The investigators will test the performance on a rowing ergometer 10-minute test before failure, as measured using power in Watts. The investigators will perform the task on both the KSH socket and the standard socket.

  5. Strokes per 10-minute period

    Time frame: 10 minutes

    The investigators will test tensile loads in a dynamic environment before failure. The investigators will test the performance on a rowing ergometer 10-minute test before failure, as measured using strokes per minute. The investigators will perform the task on both the KSH socket and the standard socket.

  6. Distance rowed in meters

    Time frame: 10 minutes

    The investigators will test tensile loads in a dynamic environment before failure. The investigators will test the performance on a rowing ergometer 10-minute test measuring distance in meters before failure or to time expiration. The investigators will perform the task on both the KSH socket and the standard socket.

  7. Maximal force before failure

    Time frame: 10 minutes

    The investigators will test tensile loads in a dynamic environment before failure. The investigators will test the performance on a rowing ergometer 10-minute test measuring maximal force (Newton) before failure. The investigators will perform the task on both the KSH socket and the standard socket.

  8. Total time before failure

    Time frame: 10 minutes

    The investigators will test tensile loads in a dynamic environment before failure. The investigators will test the performance on a rowing ergometer 10-minute test recording the time (in minutes and seconds) before failure. The investigators will perform the task on both the KSH socket and the standard socket.

Secondary outcomes

  1. Usability of prosthesis using the System Usability Score (SUS) on scale from 0-100

    Time frame: 15 minutes

    Participants will report usability with setup and operation of the device from ten questions using a five point Likert scale. The higher the score, the more usable (user friendly) the device is rated by the Veteran. The investigators would like the KSH system to score >80 on the System Usability Scale (SUS)).

  2. Socket Comfort Scores (SCS) on a scale from 0-10

    Time frame: 30 minutes

    Participants will report Socket Comfort Scores (SCS) after wearing and testing of the devices for both with the KSH and current standard-of-care prosthesis by using an 11 point scale, (0-10) zero being the most uncomfortable socket fit you can image, and 10 being the most comfortable socket fit.

  3. Weight of device in pounds

    Time frame: 30 minutes

    The investigators will correlate the weight of the prosthesis in pounds with user satisfaction of both the KSH device and the participants' current device.

  4. Participant preference

    Time frame: 10 minutes

    The investigators will ask the participant which device design they prefer to use.

  5. Orthotics and Prosthetics User Survey (OPUS)

    Time frame: 1 hour

    The investigators will ask the participant to complete the questionnaire focusing on five modules; lower and upper extremity functional status (LEFS and UEFS), client satisfaction with device and services (CSD and CSS), and the health related quality of life (HRQoL) Scores are based on a 100 point scale. The higher the score indicates a better outcome.

Study contacts

Contact information is provided by the study sponsor or research team.

Elizabeth B Toth, BA

CONTACT

[email protected]

(412) 954-5382

Sponsors and collaborators

Lead sponsor

VA Office of Research and Development

Fed

Collaborators

  • Stumpworx LLC

Registry information

Official study title

The Advancement of a New Variable-Compliance Socket and Frame System for Transradial Amputees to Optimize Socket Fit and Upper Limb Function

Acronym: KSH

Important dates

Study start
2025
Primary completion
2028
Study completion
2028
First posted
Aug 14, 2023
Registry last updated
Jul 24, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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