From Nanowarming to Thermoregulation: New Multiscale Applications of Bioheat Transfer.

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-071516-044532
John C Bischof, Kenneth R Diller
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Abstract

This review explores bioheat transfer applications at multiple scales from nanoparticle (NP) heating to whole-body thermoregulation. For instance, iron oxide nanoparticles are being used for nanowarming, which uniformly and quickly rewarms 50-80-mL (≤5-cm-diameter) vitrified systems by coupling with radio-frequency (RF) fields where standard convective warming fails. A modification of this approach can also be used to successfully rewarm cryopreserved fish embryos (∼0.8 mm diameter) by heating previously injected gold nanoparticles with millisecond pulsed laser irradiation where standard convective warming fails. Finally, laser-induced heating of gold nanoparticles can improve the sensitivity of lateral flow assays (LFAs) so that they are competitive with laboratory tests such as the enzyme-linked immunosorbent assay. This approach addresses the main weakness of LFAs, which are otherwise the cheapest, easiest, and fastest to use point-of-care diagnostic tests in the world. Body core temperature manipulation has now become possible through selective thermal stimulation (STS) approaches. For instance, simple and safe heating of selected areas of the skin surface can open arteriovenous anastomosis flow in glabrous skin when it is not already established, thereby creating a convenient and effective pathway to induce heat flow between the body core and environment. This has led to new applications of STS to increase or decrease core temperatures in humans and animals to assist in surgery (perioperative warming), to aid ischemic stress recovery (cooling), and even to enhance the quality of sleep. Together, these multiscale applications of nanoparticle heating and thermoregulation point to dramatic opportunities for translation and impact in these prophylactic, preservative, diagnostic, and therapeutic applications of bioheat transfer.

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从纳米加热到温度调节:生物热传递的多尺度新应用。
本综述探讨了从纳米粒子(NP)加热到全身体温调节等多种规模的生物热传递应用。例如,氧化铁纳米粒子正被用于纳米升温,通过与射频(RF)场耦合,在标准对流升温失败的情况下均匀、快速地重新加热 50-80 毫升(直径≤5 厘米)的玻璃化系统。在标准对流升温失败的情况下,这种方法的改良版也可用于通过毫秒脉冲激光照射加热先前注入的金纳米粒子,从而成功地对冷冻保存的鱼胚胎(直径∼0.8 毫米)进行再升温。最后,激光诱导加热金纳米粒子可以提高侧向流动检测法(LFA)的灵敏度,使其能够与酶联免疫吸附检测法等实验室检测方法相媲美。这种方法解决了横向流动检测的主要弱点,而横向流动检测本来是世界上最便宜、最简单、使用最快的床旁诊断检测。现在,通过选择性热刺激(STS)方法操纵人体核心温度已成为可能。例如,对皮肤表面的选定区域进行简单而安全的加热,就能打开无毛皮肤上尚未形成的动静脉吻合流,从而为诱导体核与环境之间的热流创造了一条便捷而有效的途径。这使得 STS 有了新的应用,可以提高或降低人体和动物的核心温度,以帮助手术(围术期升温)、帮助缺血应激恢复(降温),甚至提高睡眠质量。总之,纳米粒子加热和体温调节的这些多尺度应用为生物热传递的这些预防、防腐、诊断和治疗应用的转化和影响带来了巨大的机遇。
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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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