Development of optical microneedle–lens array for photodynamic therapy

IF 3 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Jongho Park, Jingzong Zhang, Beomjoon Kim
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Abstract

Recently, photodynamic therapy (PDT) which involves a photosensitizer (PS), a special drug activated by light, and light irradiation has been widely used in treating various skin diseases such as port-wine stain as well as cancers such as melanoma and non-melanoma skin cancers. PDT comprises two general steps: the introduction of PS into the body or a specific spot to be treated, and the irradiation process using a light source with a specific wavelength to excite the PS. Although PDT is gaining great attention owing to its potential as a targeted approach in the treatment of skin cancers, several limitations still exist for practical use. One of the biggest challenges is the limited penetration of light owing to scattering, reflection, and absorption of light inside the skin layers. In addition, accidental light exposure of the target area causes additional cellular damage, which causes unexpected complications. To solve these issues, we introduced an optical microneedle–lens array (OMLA) to improve the efficiency and safety of PDT treatment. We designed and fabricated a novel optical microneedle–lens array with controlled dimensions to optimize light transmission. In addition, PS was coated uniformly over the tips of the OMLA using the dip coating method. Finally, we confirmed that the PS coated on the OMLA was released into the target area and subsequently generated radical oxygen by light irradiation. We expect that our proposed OMLA for PDT treatment can realize a new light-transmission platform optimized for PDT with targeting various types of skin cancers.

Graphical abstract

光动力治疗用光学微针透镜阵列的研制。
近年来,光动力疗法(PDT)广泛应用于光致敏剂(PS)、光活化的特殊药物和光照射治疗各种皮肤疾病,如葡萄酒斑,以及黑色素瘤和非黑色素瘤皮肤癌等癌症。PDT包括两个一般步骤:将PS引入体内或待治疗的特定部位,以及使用特定波长的光源激发PS的照射过程。尽管PDT因其作为治疗皮肤癌的靶向方法的潜力而受到极大关注,但在实际应用中仍存在一些限制。最大的挑战之一是由于皮肤层内的散射、反射和吸收,光的穿透能力有限。此外,目标区域的意外光照射会导致额外的细胞损伤,从而导致意想不到的并发症。为了解决这些问题,我们引入了光学微针透镜阵列(OMLA)来提高PDT治疗的效率和安全性。为了优化光的传输,我们设计并制作了一种尺寸可控的光学微针透镜阵列。此外,采用浸涂法将PS均匀地涂在OMLA的尖端上。最后,我们证实了涂层在OMLA上的PS被释放到靶区,随后在光照射下产生自由基氧。我们期望我们提出的用于PDT治疗的OMLA可以实现针对各种类型皮肤癌的PDT优化的新光传输平台。
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来源期刊
Biomedical Microdevices
Biomedical Microdevices 工程技术-工程:生物医学
CiteScore
6.90
自引率
3.60%
发文量
32
审稿时长
6 months
期刊介绍: Biomedical Microdevices: BioMEMS and Biomedical Nanotechnology is an interdisciplinary periodical devoted to all aspects of research in the medical diagnostic and therapeutic applications of Micro-Electro-Mechanical Systems (BioMEMS) and nanotechnology for medicine and biology. General subjects of interest include the design, characterization, testing, modeling and clinical validation of microfabricated systems, and their integration on-chip and in larger functional units. The specific interests of the Journal include systems for neural stimulation and recording, bioseparation technologies such as nanofilters and electrophoretic equipment, miniaturized analytic and DNA identification systems, biosensors, and micro/nanotechnologies for cell and tissue research, tissue engineering, cell transplantation, and the controlled release of drugs and biological molecules. Contributions reporting on fundamental and applied investigations of the material science, biochemistry, and physics of biomedical microdevices and nanotechnology are encouraged. A non-exhaustive list of fields of interest includes: nanoparticle synthesis, characterization, and validation of therapeutic or imaging efficacy in animal models; biocompatibility; biochemical modification of microfabricated devices, with reference to non-specific protein adsorption, and the active immobilization and patterning of proteins on micro/nanofabricated surfaces; the dynamics of fluids in micro-and-nano-fabricated channels; the electromechanical and structural response of micro/nanofabricated systems; the interactions of microdevices with cells and tissues, including biocompatibility and biodegradation studies; variations in the characteristics of the systems as a function of the micro/nanofabrication parameters.
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