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一种用于最小化切口瘢痕形成的机械调节装置。

A Mechanomodulatory Device to Minimize Incisional Scar Formation.

作者信息

Wong Victor W, Beasley Bill, Zepeda John, Dauskardt Reinhold H, Yock Paul G, Longaker Michael T, Gurtner Geoffrey C

机构信息

Department of Surgery, Stanford University , Stanford, California.

Neodyne Biosciences, Inc. , Menlo Park, California.

出版信息

Adv Wound Care (New Rochelle). 2013 May;2(4):185-194. doi: 10.1089/wound.2012.0396.

Abstract

OBJECTIVE

To mechanically control the wound environment and prevent cutaneous scar formation.

APPROACH

We subjected various material substrates to biomechanical testing to investigate their ability to modulate skin behavior. Combinations of elastomeric materials, adhesives, and strain applicators were evaluated to develop topical stress-shielding devices. Noninvasive imaging modalities were utilized to characterize anatomic site-specific differences in skin biomechanical properties in humans. The devices were tested in a validated large animal model of hypertrophic scarring. Phase I within-patient controlled clinical trials were conducted to confirm their safety and efficacy in scar reduction in patients undergoing abdominoplasty surgery.

RESULTS

Among the tested materials and device applicators, a polymer device was developed that effectively off-loaded high tension wounds and blocked pro-fibrotic pathways and excess scar formation in red Duroc swine. In humans, different anatomic sites exhibit unique biomechanical properties that may correlate with the propensity to form scars. In the clinical trial, utilization of this device significantly reduced incisional scar formation and improved scar appearance for up to 12 months compared with control incisions that underwent routine postoperative care.

INNOVATION

This is the first device that is able to precisely control the mechanical environment of incisional wounds and has been demonstrated in multiple clinical trials to significantly reduce scar formation after surgery.

CONCLUSION

Mechanomodulatory strategies to control the incisional wound environment can significantly reduce pathologic scarring and fibrosis after surgery.

摘要

目的

机械控制伤口环境并预防皮肤瘢痕形成。

方法

我们对各种材料基质进行生物力学测试,以研究它们调节皮肤行为的能力。评估弹性体材料、粘合剂和应变施加器的组合,以开发局部应力屏蔽装置。利用非侵入性成像方式来表征人类皮肤生物力学特性在解剖部位的特异性差异。在经过验证的肥厚性瘢痕大型动物模型中对这些装置进行测试。开展了I期患者内对照临床试验,以确认其在腹部整形手术患者瘢痕减轻方面的安全性和有效性。

结果

在测试的材料和装置施加器中,开发出一种聚合物装置,该装置能有效减轻红色杜洛克猪高张力伤口的负担,并阻断促纤维化途径和过度瘢痕形成。在人类中,不同解剖部位表现出独特的生物力学特性,这可能与形成瘢痕的倾向相关。在临床试验中,与接受常规术后护理的对照切口相比,使用该装置可显著减少切口瘢痕形成,并改善瘢痕外观长达12个月。

创新

这是首个能够精确控制切口伤口机械环境的装置,并且已在多项临床试验中证明可显著减少术后瘢痕形成。

结论

控制切口伤口环境的机械调节策略可显著减少术后病理性瘢痕形成和纤维化。

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