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1.
Phys Biol ; 15(3): 031002, 2018 03 09.
Artigo em Inglês | MEDLINE | ID: mdl-29205173

RESUMO

This roadmap outlines the role semiconductor-based materials play in understanding the complex biophysical dynamics at multiple length scales, as well as the design and implementation of next-generation electronic, optoelectronic, and mechanical devices for biointerfaces. The roadmap emphasizes the advantages of semiconductor building blocks in interfacing, monitoring, and manipulating the activity of biological components, and discusses the possibility of using active semiconductor-cell interfaces for discovering new signaling processes in the biological world.


Assuntos
Comunicação Celular/fisiologia , Polímeros/química , Semicondutores , Propriedades de Superfície
2.
Nat Commun ; 15(1): 6774, 2024 Aug 08.
Artigo em Inglês | MEDLINE | ID: mdl-39117721

RESUMO

Without intervention, cardiac arrhythmias pose a risk of fatality. However, timely intervention can be challenging in environments where transporting a large, heavy defibrillator is impractical, or emergency surgery to implant cardiac stimulation devices is not feasible. Here, we introduce an injectable cardiac stimulator, a syringe loaded with a nanoparticle solution comprising a conductive polymer and a monomer that, upon injection, forms a conductive structure around the heart for cardiac stimulation. Following treatment, the electrode is cleared from the body, eliminating the need for surgical extraction. The mixture adheres to the beating heart in vivo without disrupting its normal rhythm. The electrofunctionalized injectable cardiac stimulator demonstrates a tissue-compatible Young's modulus of 21 kPa and a high conductivity of 55 S/cm. The injected electrode facilitates electrocardiogram measurements, regulates heartbeat in vivo, and rectifies arrhythmia. Conductive functionality is maintained for five consecutive days, and no toxicity is observed at the organism, organ, or cellular levels.


Assuntos
Arritmias Cardíacas , Animais , Arritmias Cardíacas/terapia , Arritmias Cardíacas/fisiopatologia , Condutividade Elétrica , Coração/fisiologia , Nanopartículas/química , Eletrocardiografia , Humanos , Camundongos , Frequência Cardíaca , Polímeros/química , Masculino , Injeções , Módulo de Elasticidade , Terapia por Estimulação Elétrica/instrumentação , Terapia por Estimulação Elétrica/métodos , Eletrodos Implantados
3.
Nat Commun ; 14(1): 4453, 2023 07 24.
Artigo em Inglês | MEDLINE | ID: mdl-37488105

RESUMO

Bioelectronics can potentially complement classical therapies in nonchronic treatments, such as immunotherapy and cancer. In addition to functionality, minimally invasive implantation methods and bioresorbable materials are central to nonchronic treatments. The latter avoids the need for surgical removal after disease relief. Self-organizing substrate-free organic electrodes meet these criteria and integrate seamlessly into dynamic biological systems in ways difficult for classical rigid solid-state electronics. Here we place bioresorbable electrodes with a brain-matched shear modulus-made from water-dispersed nanoparticles in the brain-in the targeted area using a capillary thinner than a human hair. Thereafter, we show that an optional auxiliary module grows dendrites from the installed conductive structure to seamlessly embed neurons and modify the electrode's volume properties. We demonstrate that these soft electrodes set off a controlled cellular response in the brain when relaying external stimuli and that the biocompatible materials show no tissue damage after bioresorption. These findings encourage further investigation of temporary organic bioelectronics for nonchronic treatments assembled in vivo.


Assuntos
Implantes Absorvíveis , Materiais Biocompatíveis , Humanos , Materiais Biocompatíveis/química , Eletrodos , Encéfalo , Condutividade Elétrica , Eletrônica
4.
Science ; 379(6634): 795-802, 2023 02 24.
Artigo em Inglês | MEDLINE | ID: mdl-36821679

RESUMO

Interfacing electronics with neural tissue is crucial for understanding complex biological functions, but conventional bioelectronics consist of rigid electrodes fundamentally incompatible with living systems. The difference between static solid-state electronics and dynamic biological matter makes seamless integration of the two challenging. To address this incompatibility, we developed a method to dynamically create soft substrate-free conducting materials within the biological environment. We demonstrate in vivo electrode formation in zebrafish and leech models, using endogenous metabolites to trigger enzymatic polymerization of organic precursors within an injectable gel, thereby forming conducting polymer gels with long-range conductivity. This approach can be used to target specific biological substructures and is suitable for nerve stimulation, paving the way for fully integrated, in vivo-fabricated electronics within the nervous system.


Assuntos
Biopolímeros , Encéfalo , Condutividade Elétrica , Enzimas , Sistema Nervoso Periférico , Animais , Biopolímeros/biossíntese , Encéfalo/enzimologia , Eletrodos , Eletrônica , Enzimas/metabolismo , Sanguessugas , Modelos Animais , Sistema Nervoso Periférico/enzimologia , Polimerização , Peixe-Zebra
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