4.7 Article

A Meta-Analysis of Wearable Contact Lenses for Medical Applications: Role of Electrospun Fiber for Drug Delivery

期刊

POLYMERS
卷 14, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/polym14010185

关键词

wearable contact lens; IOP measurement; drug delivery; electrospinning; glucose monitoring; colorblindness

资金

  1. Nano-Sensors and Devices Group [002EICII01]
  2. Tecnologico de Monterrey, Monterrey, Mexico
  3. Federico Baur Endowed Chair in Nanotechnology [0020240I03]
  4. Writing Lab, Institute for Future of Education, Tecnologico de Monterrey, Mexico

向作者/读者索取更多资源

Wearable contact lenses for medical applications have gained significant attention due to their ability to record physiological information in real-time. These devices are utilized for IOP measurement, glucose detection, ocular drug delivery, and colorblindness treatment. Challenges and shortcomings of current devices are discussed, and the use of electrospun fibers for drug loading and release is highlighted. The transition from clinical trials to real-world applications is also explored.
In recent years, wearable contact lenses for medical applications have attracted significant attention, as they enable continuous real-time recording of physiological information via active and noninvasive measurements. These devices play a vital role in continuous monitoring of intraocular pressure (IOP), noninvasive glucose monitoring in diabetes patients, drug delivery for the treatment of ocular illnesses, and colorblindness treatment. In specific, this class of medical devices is rapidly advancing in the area of drug loading and ocular drug release through incorporation of electrospun fibers. The electrospun fiber matrices offer a high surface area, controlled morphology, wettability, biocompatibility, and tunable porosity, which are highly desirable for controlled drug release. This article provides an overview of the advances of contact lens devices in medical applications with a focus on four main applications of these soft wearable devices: (i) IOP measurement and monitoring, (ii) glucose detection, (iii) ocular drug delivery, and (iv) colorblindness treatment. For each category and application, significant challenges and shortcomings of the current devices are thoroughly discussed, and new areas of opportunity are suggested. We also emphasize the role of electrospun fibers, their fabrication methods along with their characteristics, and the integration of diverse fiber types within the structure of the wearable contact lenses for efficient drug loading, in addition to controlled and sustained drug release. This review article also presents relevant statistics on the evolution of medical contact lenses over the last two decades, their strengths, and the future avenues for making the essential transition from clinical trials to real-world applications.

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