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1.
Proc Natl Acad Sci U S A ; 117(1): 214-220, 2020 01 07.
Artículo en Inglés | MEDLINE | ID: mdl-31871178

RESUMEN

Piezoelectric materials, a type of "smart" material that generates electricity while deforming and vice versa, have been used extensively for many important implantable medical devices such as sensors, transducers, and actuators. However, commonly utilized piezoelectric materials are either toxic or nondegradable. Thus, implanted devices employing these materials raise a significant concern in terms of safety issues and often require an invasive removal surgery, which can damage directly interfaced tissues/organs. Here, we present a strategy for materials processing, device assembly, and electronic integration to 1) create biodegradable and biocompatible piezoelectric PLLA [poly(l-lactic acid)] nanofibers with a highly controllable, efficient, and stable piezoelectric performance, and 2) demonstrate device applications of this nanomaterial, including a highly sensitive biodegradable pressure sensor for monitoring vital physiological pressures and a biodegradable ultrasonic transducer for blood-brain barrier opening that can be used to facilitate the delivery of drugs into the brain. These significant applications, which have not been achieved so far by conventional piezoelectric materials and bulk piezoelectric PLLA, demonstrate the PLLA nanofibers as a powerful material platform that offers a profound impact on various medical fields including drug delivery, tissue engineering, and implanted medical devices.


Asunto(s)
Implantes Absorbibles , Sistemas Microelectromecánicos/instrumentación , Nanofibras/química , Transductores , Sistemas de Liberación de Medicamentos , Electricidad , Electrónica , Diseño de Equipo , Monitoreo Fisiológico/instrumentación , Presión , Prótesis e Implantes , Ingeniería de Tejidos , Ultrasonido
2.
Adv Mater ; 31(1): e1802084, 2019 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-30294947

RESUMEN

Recent advances in materials, manufacturing, biotechnology, and microelectromechanical systems (MEMS) have fostered many exciting biosensors and bioactuators that are based on biocompatible piezoelectric materials. These biodevices can be safely integrated with biological systems for applications such as sensing biological forces, stimulating tissue growth and healing, as well as diagnosing medical problems. Herein, the principles, applications, future opportunities, and challenges of piezoelectric biomaterials for medical uses are reviewed thoroughly. Modern piezoelectric biosensors/bioactuators are developed with new materials and advanced methods in microfabrication/encapsulation to avoid the toxicity of conventional lead-based piezoelectric materials. Intriguingly, some piezoelectric materials are biodegradable in nature, which eliminates the need for invasive implant extraction. Together, these advancements in the field of piezoelectric materials and microsystems can spark a new age in the field of medicine.


Asunto(s)
Materiales Biocompatibles/química , Técnicas Biosensibles/métodos , Materiales Biocompatibles/metabolismo , Técnicas Biosensibles/instrumentación , Electricidad , Compuestos Inorgánicos/química , Sistemas Microelectromecánicos , Monitoreo Fisiológico/instrumentación , Monitoreo Fisiológico/métodos , Compuestos Orgánicos/química , Ingeniería de Tejidos
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