Energy-Based Tissue Fusion for Sutureless Closure: Applications, Mechanisms, and Potential for Functional Recovery.

IF 12.8 1区 工程技术 Q1 ENGINEERING, BIOMEDICAL Annual Review of Biomedical Engineering Pub Date : 2018-06-04 DOI:10.1146/annurev-bioeng-071516-044702
Eric A Kramer, Mark E Rentschler
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引用次数: 21

Abstract

As minimally invasive surgical techniques progress, the demand for efficient, reliable methods for vascular ligation and tissue closure becomes pronounced. The surgical advantages of energy-based vessel sealing exceed those of traditional, compression-based ligatures in procedures sensitive to duration, foreign bodies, and recovery time alike. Although the use of energy-based devices to seal or transect vasculature and connective tissue bundles is widespread, the breadth of heating strategies and energy dosimetry used across devices underscores an uncertainty as to the molecular nature of the sealing mechanism and induced tissue effect. Furthermore, energy-based techniques exhibit promise for the closure and functional repair of soft and connective tissues in the nervous, enteral, and dermal tissue domains. A constitutive theory of molecular bonding forces that arise in response to supraphysiological temperatures is required in order to optimize and progress the use of energy-based tissue fusion. While rapid tissue bonding has been suggested to arise from dehydration, dipole interactions, molecular cross-links, or the coagulation of cellular proteins, long-term functional tissue repair across fusion boundaries requires that the reaction to thermal damage be tailored to catalyze the onset of biological healing and remodeling. In this review, we compile and contrast findings from published thermal fusion research in an effort to encourage a molecular approach to characterization of the prevalent and promising energy-based tissue bond.

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无缝线闭合的能量组织融合:应用、机制和功能恢复的潜力。
随着微创外科技术的进步,对有效、可靠的血管结扎和组织闭合方法的需求变得明显。在对手术时间、异物和恢复时间敏感的情况下,能量血管封闭术的手术优势超过了传统的基于压缩的结扎术。尽管基于能量的装置广泛用于密封或横切脉管系统和结缔组织束,但加热策略的广度和跨装置使用的能量剂量学强调了密封机制和诱导组织效应的分子性质的不确定性。此外,基于能量的技术在神经、肠内和真皮组织领域的软组织和结缔组织的闭合和功能修复方面表现出了希望。为了优化和推进基于能量的组织融合的使用,需要一个响应超生理温度而产生的分子结合力的本构理论。虽然快速的组织结合被认为是由脱水、偶极相互作用、分子交联或细胞蛋白的凝固引起的,但跨越融合边界的长期功能性组织修复需要对热损伤的反应进行调整,以催化生物愈合和重塑的开始。在这篇综述中,我们整理和对比了已发表的热融合研究结果,以鼓励分子方法来表征普遍和有前途的能量基组织键。
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来源期刊
Annual Review of Biomedical Engineering
Annual Review of Biomedical Engineering 工程技术-工程:生物医学
CiteScore
18.80
自引率
0.00%
发文量
14
期刊介绍: Since 1999, the Annual Review of Biomedical Engineering has been capturing major advancements in the expansive realm of biomedical engineering. Encompassing biomechanics, biomaterials, computational genomics and proteomics, tissue engineering, biomonitoring, healthcare engineering, drug delivery, bioelectrical engineering, biochemical engineering, and biomedical imaging, the journal remains a vital resource. The current volume has transitioned from gated to open access through Annual Reviews' Subscribe to Open program, with all articles published under a CC BY license.
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