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1.
Nature ; 530(7588): 71-6, 2016 Feb 04.
Artigo em Inglês | MEDLINE | ID: mdl-26779949

RESUMO

Many procedures in modern clinical medicine rely on the use of electronic implants in treating conditions that range from acute coronary events to traumatic injury. However, standard permanent electronic hardware acts as a nidus for infection: bacteria form biofilms along percutaneous wires, or seed haematogenously, with the potential to migrate within the body and to provoke immune-mediated pathological tissue reactions. The associated surgical retrieval procedures, meanwhile, subject patients to the distress associated with re-operation and expose them to additional complications. Here, we report materials, device architectures, integration strategies, and in vivo demonstrations in rats of implantable, multifunctional silicon sensors for the brain, for which all of the constituent materials naturally resorb via hydrolysis and/or metabolic action, eliminating the need for extraction. Continuous monitoring of intracranial pressure and temperature illustrates functionality essential to the treatment of traumatic brain injury; the measurement performance of our resorbable devices compares favourably with that of non-resorbable clinical standards. In our experiments, insulated percutaneous wires connect to an externally mounted, miniaturized wireless potentiostat for data transmission. In a separate set-up, we connect a sensor to an implanted (but only partially resorbable) data-communication system, proving the principle that there is no need for any percutaneous wiring. The devices can be adapted to sense fluid flow, motion, pH or thermal characteristics, in formats that are compatible with the body's abdomen and extremities, as well as the deep brain, suggesting that the sensors might meet many needs in clinical medicine.


Assuntos
Implantes Absorvíveis , Encéfalo/metabolismo , Eletrônica/instrumentação , Monitorização Fisiológica/instrumentação , Próteses e Implantes , Silício , Implantes Absorvíveis/efeitos adversos , Administração Cutânea , Animais , Temperatura Corporal , Encéfalo/cirurgia , Desenho de Equipamento , Hidrólise , Masculino , Monitorização Fisiológica/efeitos adversos , Especificidade de Órgãos , Pressão , Próteses e Implantes/efeitos adversos , Ratos , Ratos Endogâmicos Lew , Telemetria/instrumentação , Tecnologia sem Fio/instrumentação
2.
Muscle Nerve ; 54(6): 1114-1119, 2016 12.
Artigo em Inglês | MEDLINE | ID: mdl-27105137

RESUMO

INTRODUCTION: Comprehensive assessment of the time course of functional recovery following peripheral nerve repair is critical for surgical management of peripheral nerve injuries. This study describes the design and implementation of a novel implantable wireless nerve stimulator capable of repeatedly interfacing peripheral nerve tissue and providing serial evaluation of functional recovery postoperatively. METHODS: Thin-film wireless implants were fabricated and subcutaneously implanted into Lewis rats. Wireless implants were used to serially stimulate rat sciatic nerve and assess functional recovery over 3 months following various nerve injuries. RESULTS: Wireless stimulators demonstrated consistent performances over 3 months in vivo and successfully facilitated serial assessment of nerve and muscle function following nerve crush and nerve transection injuries. CONCLUSIONS: This study highlights the ability of implantable wireless nerve stimulators to provide a unique view into the time course of functional recovery in multiple motor targets. Muscle Nerve 54: 1114-1119, 2016.


Assuntos
Terapia por Estimulação Elétrica/métodos , Recuperação de Função Fisiológica/fisiologia , Neuropatia Ciática/terapia , Telemetria , Animais , Modelos Animais de Doenças , Eletromiografia , Potencial Evocado Motor/fisiologia , Neuroestimuladores Implantáveis , Masculino , Contração Muscular , Força Muscular/fisiologia , Ratos , Ratos Endogâmicos Lew , Neuropatia Ciática/fisiopatologia , Fatores de Tempo
3.
J Neurosurg ; : 1-10, 2018 Feb 09.
Artigo em Inglês | MEDLINE | ID: mdl-29424647

RESUMO

OBJECTIVE Electrical stimulation of peripheral nerve tissue has been shown to accelerate axonal regeneration. Yet existing methods of applying electrical stimulation to injured peripheral nerves have presented significant barriers to clinical translation. In this study, the authors examined the use of a novel implantable wireless nerve stimulator capable of simultaneously delivering therapeutic electrical stimulation of injured peripheral nerve tissue and providing postoperative serial assessment of functional recovery. METHODS Flexible wireless stimulators were fabricated and implanted into Lewis rats. Thin-film implants were used to deliver brief electrical stimulation (1 hour, 20 Hz) to sciatic nerves after nerve crush or nerve transection-and-repair injuries. RESULTS Electrical stimulation of injured nerves via implanted wireless stimulators significantly improved functional recovery. Brief electrical stimulation was observed to increase the rate of functional recovery after both nerve crush and nerve transection-and-repair injuries. Wireless stimulators successfully facilitated therapeutic stimulation of peripheral nerve tissue and serial assessment of nerve recovery. CONCLUSIONS Implantable wireless stimulators can deliver therapeutic electrical stimulation to injured peripheral nerve tissue. Implantable wireless nerve stimulators might represent a novel means of facilitating therapeutic electrical stimulation in both intraoperative and postoperative settings.

4.
IEEE Rev Biomed Eng ; 11: 217-232, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29994564

RESUMO

Pseudarthrosis is an exceedingly common, costly, and morbid complication in the treatment of long bone fractures and after spinal fusion surgery. Electrical bone growth stimulation (EBGS) presents a unique approach to accelerate healing and promote fusion success rates. Over the past three decades, increased experience and widespread use of EBGS devices has led to significant improvements in stimulation paradigms and clinical outcomes. In this paper, we comprehensively review the literature and examine the history, scientific evidence, available technology, and clinical applications for EBGS. We summarize indications, limitations, and provide an overview of cost-effectiveness and future directions of EBGS technology. Various models of electrical stimulation have been proposed and marketed as adjuncts for spinal fusions and long bone fractures. Clinical studies show variable safety and efficacy of EBGS under different conditions and clinical scenarios. While the results of clinical trials do not support indiscriminate EBGS utilization for any bone injury, the evidence does suggest that EBGS is desirable and cost efficient for certain orthopedic indications, especially when used in combination with standard, first-line treatments. This review should serve as a reference to inform practicing clinicians of available treatment options, facilitate evidence-based decision making, and provide a platform for further research.


Assuntos
Desenvolvimento Ósseo , Terapia por Estimulação Elétrica , Osteogênese , Animais , Desenvolvimento Ósseo/fisiologia , Desenvolvimento Ósseo/efeitos da radiação , Eletrodos Implantados , Humanos , Osteogênese/fisiologia , Osteogênese/efeitos da radiação , Fusão Vertebral
5.
Nat Med ; 24(12): 1830-1836, 2018 12.
Artigo em Inglês | MEDLINE | ID: mdl-30297910

RESUMO

Peripheral nerve injuries represent a significant problem in public health, constituting 2-5% of all trauma cases1. For severe nerve injuries, even advanced forms of clinical intervention often lead to incomplete and unsatisfactory motor and/or sensory function2. Numerous studies report the potential of pharmacological approaches (for example, growth factors, immunosuppressants) to accelerate and enhance nerve regeneration in rodent models3-10. Unfortunately, few have had a positive impact in clinical practice. Direct intraoperative electrical stimulation of injured nerve tissue proximal to the site of repair has been demonstrated to enhance and accelerate functional recovery11,12, suggesting a novel nonpharmacological, bioelectric form of therapy that could complement existing surgical approaches. A significant limitation of this technique is that existing protocols are constrained to intraoperative use and limited therapeutic benefits13. Herein we introduce (i) a platform for wireless, programmable electrical peripheral nerve stimulation, built with a collection of circuit elements and substrates that are entirely bioresorbable and biocompatible, and (ii) the first reported demonstration of enhanced neuroregeneration and functional recovery in rodent models as a result of multiple episodes of electrical stimulation of injured nervous tissue.


Assuntos
Estimulação Elétrica/métodos , Regeneração Nervosa/fisiologia , Traumatismos dos Nervos Periféricos/terapia , Cicatrização/fisiologia , Implantes Absorvíveis/normas , Estimulação Elétrica/instrumentação , Humanos , Traumatismos dos Nervos Periféricos/fisiopatologia , Recuperação de Função Fisiológica , Tecnologia sem Fio
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