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本文引用的文献

1
Noninvasive glucose monitoring: increasing accuracy by combination of multi-technology and multi-sensors.无创血糖监测:通过多技术与多传感器结合提高准确性
J Diabetes Sci Technol. 2010 May 1;4(3):583-95. doi: 10.1177/193229681000400312.
2
Amperometric glucose sensors: sources of error and potential benefit of redundancy.电流型葡萄糖传感器:误差来源及冗余的潜在益处。
J Diabetes Sci Technol. 2010 Jan 1;4(1):221-5. doi: 10.1177/193229681000400127.
3
Single walled carbon nanotubes as reporters for the optical detection of glucose.单壁碳纳米管作为用于葡萄糖光学检测的报告分子。
J Diabetes Sci Technol. 2009 Mar 1;3(2):242-52. doi: 10.1177/193229680900300204.
4
Enhanced glucose sensor linearity using poly(vinyl alcohol) hydrogels.使用聚乙烯醇水凝胶增强葡萄糖传感器的线性度。
J Diabetes Sci Technol. 2009 Jul 1;3(4):863-74. doi: 10.1177/193229680900300434.
5
Increases in whole blood glucose measurements using optically based self-monitoring of blood glucose analyzers due to extreme Canadian winters.由于加拿大冬季极为寒冷,使用基于光学原理的血糖仪进行全血葡萄糖测量时测量值会升高。
J Diabetes Sci Technol. 2009 Jul 1;3(4):661-7. doi: 10.1177/193229680900300407.
6
Noninvasive ultrasonic glucose sensing with large pigs (approximately 200 pounds) using a lightweight cymbal transducer array and biosensors.使用轻质钹式换能器阵列和生物传感器对大约200磅重的大型猪进行无创超声葡萄糖传感。
J Diabetes Sci Technol. 2009 May 1;3(3):517-23. doi: 10.1177/193229680900300316.
7
Emerging synergy between nanotechnology and implantable biosensors: a review.纳米技术与可植入生物传感器的协同作用:综述。
Biosens Bioelectron. 2010 Mar 15;25(7):1553-65. doi: 10.1016/j.bios.2009.12.001. Epub 2009 Dec 11.
8
Layer-by-layer assembled semipermeable membrane for amperometric glucose sensors.用于安培型葡萄糖传感器的逐层组装半透膜
J Diabetes Sci Technol. 2007 Mar;1(2):193-200. doi: 10.1177/193229680700100209.
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Immobilization techniques to avoid enzyme loss from oxidase-based biosensors: a one-year study.避免基于氧化酶的生物传感器中酶损失的固定化技术:一项为期一年的研究。
J Diabetes Sci Technol. 2007 Jan;1(1):18-27. doi: 10.1177/193229680700100104.
10
Controlling acute inflammation with fast releasing dexamethasone-PLGA microsphere/pva hydrogel composites for implantable devices.用用于可植入装置的快速释放地塞米松 - PLGA微球/聚乙烯醇水凝胶复合材料控制急性炎症。
J Diabetes Sci Technol. 2007 Jan;1(1):8-17. doi: 10.1177/193229680700100103.

持续血糖监测技术:当前问题与未来前景

Technologies for continuous glucose monitoring: current problems and future promises.

作者信息

Vaddiraju Santhisagar, Burgess Diane J, Tomazos Ioannis, Jain Faquir C, Papadimitrakopoulos Fotios

机构信息

Nanomaterials Optoelectronics Laboratory, Polymer Program, Institute of Materials Science, University of Connecticut, Storrs, Connecticut 06268, USA.

出版信息

J Diabetes Sci Technol. 2010 Nov 1;4(6):1540-62. doi: 10.1177/193229681000400632.

DOI:10.1177/193229681000400632
PMID:21129353
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3005068/
Abstract

Devices for continuous glucose monitoring (CGM) are currently a major focus of research in the area of diabetes management. It is envisioned that such devices will have the ability to alert a diabetes patient (or the parent or medical care giver of a diabetes patient) of impending hypoglycemic/hyperglycemic events and thereby enable the patient to avoid extreme hypoglycemic/hyperglycemic excursions as well as minimize deviations outside the normal glucose range, thus preventing both life-threatening events and the debilitating complications associated with diabetes. It is anticipated that CGM devices will utilize constant feedback of analytical information from a glucose sensor to activate an insulin delivery pump, thereby ultimately realizing the concept of an artificial pancreas. Depending on whether the CGM device penetrates/breaks the skin and/or the sample is measured extracorporeally, these devices can be categorized as totally invasive, minimally invasive, and noninvasive. In addition, CGM devices are further classified according to the transduction mechanisms used for glucose sensing (i.e., electrochemical, optical, and piezoelectric). However, at present, most of these technologies are plagued by a variety of issues that affect their accuracy and long-term performance. This article presents a critical comparison of existing CGM technologies, highlighting critical issues of device accuracy, foreign body response, calibration, and miniaturization. An outlook on future developments with an emphasis on long-term reliability and performance is also presented.

摘要

连续血糖监测(CGM)设备目前是糖尿病管理领域的主要研究重点。预计此类设备将能够提醒糖尿病患者(或糖尿病患者的父母或医疗护理人员)即将发生的低血糖/高血糖事件,从而使患者能够避免极端的低血糖/高血糖波动,并尽量减少血糖超出正常范围的偏差,进而预防危及生命的事件以及与糖尿病相关的使人衰弱的并发症。预计CGM设备将利用来自葡萄糖传感器的分析信息的持续反馈来激活胰岛素输送泵,从而最终实现人工胰腺的概念。根据CGM设备是否穿透/划破皮肤和/或样本是否在体外测量,这些设备可分为完全侵入性、微创和非侵入性。此外,CGM设备还根据用于葡萄糖传感的转导机制(即电化学、光学和压电)进一步分类。然而,目前这些技术大多受到各种影响其准确性和长期性能的问题困扰。本文对现有CGM技术进行了批判性比较,突出了设备准确性、异物反应、校准和小型化等关键问题。还展望了未来的发展,重点是长期可靠性和性能。