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临床试验/NCT05441462
NCT05441462已完成不适用

Defining in Vivo Kinematics of Single Piece Silastic Joint Replacements in the Hand With Magnetic Resonance Imaging

Wrightington, Wigan and Leigh NHS Foundation Trust1 个研究点 分布在 1 个国家目标入组 7 人开始时间: 2022年4月7日最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
入组人数
7
试验地点
1
主要终点
Deformation Assesment - Assesment of deformation of single piece silastic joint replacements in vivo

研究概览

简要总结

To assess in vivo the kinematics of single piece silastic joint replacements in the hand with magnetic resonance imaging

详细描述

Proximal inter phalangeal joint (PIPJ) replacement is performed for pain relief in the end stage of arthritis. Rheumatoid arthritis is the commonest indication in the metacarpophalangeal joint (MCPJ). In the PIPJ there is a more even spilt between degenerative and rheumatoid arthritis.

There are several options for PIPJ replacement currently licensed for use in the United Kingdom although data is not entered in to the National Joint Registry so the exact numbers and failure rates are unknown. Data from the Norwegian joint registry indicates that 99% of implanted MCPJ and PIPJ replacements are single piece silastic implants.

Three main prostheses represent the majority of implants used in the United Kingdom, Swanson, Sutter and Neuflex. All these implants have been shown in the literature to fracture either at the hinge or the distal stem - hinge interface. This is true of explants and in vitro simulator testing.

Long term survivorship in MCPJ and PIPJ replacement is below that of hip and knee replacement. One of the largest single series shows 63% survivorship at 17 year follow up but with radiological evidence of failure in at least two thirds. This compares poorly to the 82.9% survivorship for Exeter cemented hip replacements at 22 years. The long term aim of this project is to understand how the implants move. This will help explain failure in particular the newly observe hinge failure in Neuflex implants and provide ideas to improve these implants. Any modifications can be tested on the in vitro finger joint testing rig The method of MRI acquisition will be similar to that described in. This will require optimising. In order to limit movement to a sagittal displacement, a thermoplastic splint will support the wrist and hand up to the level of the proximal palmer crease. A rig will also be made to hold the MCP / PIP joints in extension and positions of flexion increasing by 200 to maximum flexion. These will depend upon the patient's range of motion. The Investigators will define the centre of rotation of the hinge then points on the shoulder and stem of the implant from which to measure displacement. Points on the metacarpal and proximal phalanx will also be defined to allow measurement of the displacement of the implant relative to the bone during the range of movement.

研究设计

研究类型
Observational
观察模型
Other
时间视角
Retrospective

入排标准

年龄范围
18 Years 至 —(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • Single piece silastic joint replacement with an adequate range of movement (ROM), i.e.
  • an arc of movement of ≥ 50
  • Age over 18
  • Able to give informed consent

排除标准

  • Any contraindication to MRI scanning
  • Fractured implant
  • Fixed flexion deformity >30 degrees in the replaced joint
  • Total range of motion <50 degrees in the replaced joint
  • Awaiting further surgery
  • Abnormal joint instability
  • Previous surgery on the same digit (other than the joint replacement)
  • Replacement of the joint of the opposite hand

结局指标

主要结局

Deformation Assesment - Assesment of deformation of single piece silastic joint replacements in vivo

时间窗: Six months

Currently the only studies of single piece silastic joint replacement movements are in cadaveric models. These have shown there is a difference in the instantaneous centre of rotation between replacement and native joints. This has not been shown in vivo. As stated in the rational of the study the issue to address is the high failure rate of single piece silastic joint replacements in the hand. Key to this is understanding how they behave in vivo and how this differs from native joints. The primary objective is to show that in vivo displacement can be shown with MRI and is a reproducible method. Once the MRI scans have been obtained a computer generated 3D model of the scans will be made and measurements of deformation of the implant and its movements relative to the bony supporting structure will be made.

次要结局

  • To compare the movement of different implant designs and single replacements with native joints in combination with the assesment of acceptability and feasibility of MRI.(Through study completion, an average of one year)

研究者

申办方类型
Other
责任方
Sponsor

研究点 (1)

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