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用于肿瘤治疗的压电材料的基本原理与应用:最新进展与展望

The fundamentals and applications of piezoelectric materials for tumor therapy: recent advances and outlook.

作者信息

Wang Yan, Zang Pengyu, Yang Dan, Zhang Rui, Gai Shili, Yang Piaoping

机构信息

Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Material Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.

Yantai Research Institute, Harbin Engineering University, Yantai 264000, P. R. China.

出版信息

Mater Horiz. 2023 Apr 3;10(4):1140-1184. doi: 10.1039/d2mh01221a.

Abstract

Malignant tumors are one of the main diseases leading to death, and the vigorous development of nanotechnology has opened up new frontiers for antitumor therapy. Currently, researchers are focused on solving the biomedical challenges associated with traditional anti-tumor medical methods, promoting the research and development of nano-drug carriers and new nano-drugs, which brings great hope for improving the curative effect and reducing toxic and side effects. Among the new systems being investigated, piezoelectric nano biomaterials, including ferroelectrics, piezoelectric and pyroelectric materials, have recently received extensive attention for antitumor applications. By coupling force, light, magnetism or heat and electricity, polarized charges are generated in these materials microscopically, forming a piezo-potential and establishing a built-in electric field. Polarized charges can directly act on the materials in the tumor micro-environment and also assist in the separation of carriers and inhibit recombination based on piezoelectric theory and piezoelectric optoelectronic theory. Based on this, piezoelectric materials convert various forms of primary energy (such as light energy, mechanical energy, thermal energy and magnetic energy) from the surrounding environment into secondary energy (such as electrical energy and chemical energy). Herein, we review the basic theory and principles of piezoelectric materials, pyroelectric materials and ferroelectric materials as nanomedicine. Then, we summarize the types of piezoelectric materials reported to date and their wide applications in treatment, imaging, device construction and probe detection in various tumor treatment fields. Based on this, we discuss the relevant characteristics and post-processing strategies of nano piezoelectric biomaterials to obtain the maximum piezoelectric response. Finally, we present the key challenges and future prospects for the development of ferroelectric, piezoelectric and pyroelectric nanomaterial-based nanoagents for efficient energy harvesting and conversion for desirable therapeutic outcomes.

摘要

恶性肿瘤是导致死亡的主要疾病之一,纳米技术的蓬勃发展为抗肿瘤治疗开辟了新的领域。目前,研究人员致力于解决与传统抗肿瘤医疗方法相关的生物医学挑战,推动纳米药物载体和新型纳米药物的研发,这为提高疗效和降低毒副作用带来了巨大希望。在正在研究的新系统中,包括铁电体、压电体和热释电材料在内的压电纳米生物材料最近在抗肿瘤应用中受到了广泛关注。通过力、光、磁或热与电的耦合,这些材料在微观上会产生极化电荷,形成压电势并建立内建电场。极化电荷可以直接作用于肿瘤微环境中的物质,还能根据压电理论和压电光电理论协助载体分离并抑制复合。基于此,压电材料将周围环境中的各种形式的一次能量(如光能、机械能、热能和磁能)转换为二次能量(如电能和化学能)。在此,我们综述了作为纳米医学的压电材料、热释电材料和铁电材料的基本理论和原理。然后,我们总结了迄今为止报道的压电材料的类型及其在各种肿瘤治疗领域的治疗、成像、器件构建和探针检测中的广泛应用。基于此,我们讨论了纳米压电生物材料的相关特性和后处理策略,以获得最大的压电响应。最后,我们提出了基于铁电、压电和热释电纳米材料的纳米制剂在高效能量收集和转换以实现理想治疗效果方面发展的关键挑战和未来前景。

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