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临床试验/NCT02801019
NCT02801019已完成不适用

Wear and Creep of Vitamin E-Diffused Highly Cross-Linked Polyethylene Liners Randomized Radiostereometric Study of 70 Hips Followed for 2 Years

Sahlgrenska University Hospital, Sweden0 个研究点目标入组 70 人开始时间: 2008年6月1日最近更新:
适应症

试验速览

阶段
不适用
状态
已完成
发起方
入组人数
70
主要终点
Wear of vitamin E incorporated highly cross linked polyethylene

研究概览

简要总结

Vitamin E incorporated highly cross linked polyethylene (E-XLPE) was developed to increase oxidative resistance of highly cross-linked polyethylene (XLPE) without affecting mechanical properties. The investigators evaluated this type of polyethylene in a randomized clinical study, using Radiostereometric Analysis (RSA). The objective of this study was to compare the early-term wear of E-XLPE to a compression annealed polyethylene liner (C-XLPE, ArComXL®). The clinical outcome at two years was not expected to be affected by the choice of polyethylene.

详细描述

First generation of modern highly cross-linked polyethylene (XLPE) was clinically introduced in 1998 and has in most countries become standard as bearing surface in total hip arthroplasty. Studies of these materials have shown significantly reduced femoral head penetration when compared to gamma sterilized conventional polyethylene.

Thermaly treating (melting or annealing) is often a part of the manufacturing process of highly cross-linked polyethylenes. The polyethylene is exposed to irradiation to achieve cross-linking and improve wear resistance. Cross-linking by irradiation increases the amount of free radicals in the material.These radicals must be eliminated or stabilized to avoid oxidative degradation over time.Thermal treatment improves oxidation resistance but potentially changes the mechanical properties of the polyethylene.

By annealing i.e. heat treatment under the melt temperature the material maintains better mechanical properties, but elimination of free radicals is suboptimal, which can lead to oxidation in vivo.Heat treatment of the polyethylene above the melt temperature will more effectively reduce or eliminate the amount of residual free radicals. This will increase oxidation resistance, but will negatively influence the mechanical properties of the material.

Due to these limitations new generations of cross-linked polyethylene materials have been developed. Introducing Vitamin E (α-tocopherol), a natural antioxidant into the material prevents oxidative degradation and stabilizes the free radicals found in irradiated polyethylene plastic. In laboratory tests, polyethylene liners with incorporated vitamin-E have demonstrated similar wear, greater strength and better resistance to oxidation compared with the first generation cross-linked polyethylene. Currently, there are only laboratory studies on vitamin E diffused polyethylene available.

The hypothesis in this study is that the early-term E-XLPE wear is low and comparable to a heat-treated XLPE. The investigators also hypothesize that implant fixation and clinical outcome at two years will be unaffected by the choice of polyethylene.

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Supportive Care
盲法
Double (Participant, Investigator)

入排标准

年龄范围
20 Years 至 75 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • primary and certain subgroups of secondary osteoarthritis
  • Patients aged 20-75 years

排除标准

  • inflammatory arthritis
  • cortisone or chemotherapy treatment
  • known osteoporosis or osteomalacia

结局指标

主要结局

Wear of vitamin E incorporated highly cross linked polyethylene

时间窗: up to 2 years

Evaluation of the early bedding in and wear in an uncemented arthroplasty supplied with liners made of vitamin E diffusion doped XLPE in comparsion to annealed polyethylene liner, ArComXL.

次要结局

  • Cup and stem translations(up to 2 years)

研究者

发起方
Sahlgrenska University Hospital, Sweden
申办方类型
Other
责任方
Principal Investigator
主要研究者

Bita Shareghi

PhD student

Sahlgrenska University Hospital, Sweden

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