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1.
J Mater Chem B ; 12(7): 1854-1863, 2024 Feb 14.
Article in English | MEDLINE | ID: mdl-38291979

ABSTRACT

Electrical gradients are fundamental to physiological processes including cell migration, tissue formation, organ development, and response to injury and regeneration. Current electrical modulation of cells is primarily studied under a uniform electrical field. Here we demonstrate the fabrication of conductive gradient hydrogels (CGGs) that display mechanical properties and varying local electrical gradients mimicking physiological conditions. The electrically-stimulated CGGs enhanced human mesenchymal stem cell (hMSC) viability and attachment. Cells on CGGs under electrical stimulation showed a high expression of neural progenitor markers such as Nestin, GFAP, and Sox2. More importantly, CGGs showed cell differentiation toward oligodendrocyte lineage (Oligo2) in the center of the scaffold where the electric field was uniform with a greater intensity, while cells preferred neuronal lineage (NeuN) on the edge of the scaffold on a varying electric field at lower magnitude. Our data suggest that CGGs can serve as a useful platform to study the effects of electrical gradients on stem cells and potentially provide insights on developing new neural engineering applications.


Subject(s)
Adult Stem Cells , Hydrogels , Humans , Hydrogels/pharmacology , Cell Differentiation , Cells, Cultured , Cell Line
2.
bioRxiv ; 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38168181

ABSTRACT

Cadaveric islet and stem cell-derived transplantations hold promise as treatments for type 1 diabetes. To tackle the issue of immunocompatibility, numerous cellular macroencapsulation techniques have been developed that utilize diffusion to transport insulin across an immunoisolating barrier. However, despite several devices progressing to human clinical trials, none have successfully managed to attain physiologic glucose control or insulin independence. Based on empirical evidence, macroencapsulation methods with multilayered, high islet surface density are incompatible with homeostatic, on-demand insulin delivery and physiologic glucose regulation, when reliant solely on diffusion. An additional driving force is essential to overcome the distance limit of diffusion. In this study, we present both theoretical proof and experimental validation that applying pressure at levels comparable to physiological diastolic blood pressure significantly enhances insulin flux across immunoisolation membranes-increasing it by nearly three orders of magnitude. This significant enhancement in transport rate allows for precise, sub-minute regulation of both bolus and basal insulin delivery. By incorporating this technique with a pump-based extravascular system, we demonstrate the ability to rapidly reduce glucose levels in diabetic rodent models, effectively replicating the timescale and therapeutic effect of subcutaneous insulin injection or infusion. This advance provides a potential path towards achieving insulin independence with islet macroencapsulation. One Sentence Summary: Towards improved glucose control, applying sub-minute pressure at physiological levels enhances therapeutic insulin transport from macroencapsulated islets.

3.
Adv Electron Mater ; 9(10)2023 Oct.
Article in English | MEDLINE | ID: mdl-38045756

ABSTRACT

Effective stroke recovery therapeutics remain limited. Stem cell therapies have yielded promising results, but the harsh ischemic environment of the post-stroke brain reduces their therapeutic potential. Previously, we developed a conductive polymer scaffold system that enabled stem cell delivery with simultaneous electrical modulation of the cells and surrounding neural environment. This wired polymer scaffold proved efficacious in optimizing ideal conditions for stem cell mediated motor improvements in a rodent model of stroke. To further enable preclinical studies and enhance translational potential, we identified a method to improve this system by eliminating its dependence upon a tethered power source. We have herein developed a wirelessly powered, electrically conductive polymer system that eases therapeutic application and enables full mobility. As a proof of concept, we demonstrate that the wirelessly powered scaffold is able to stimulate neural stem cells in vitro, as well as in vivo in a rodent model of stroke. This system modulates the stroke microenvironment and increases the production of endogenous stem cells. In summation, this novel, wirelessly powered conductive scaffold can serve as a mobile platform for a wide variety of therapeutics involving electrical stimulation.

4.
Front Neurol ; 14: 1272992, 2023.
Article in English | MEDLINE | ID: mdl-38145118

ABSTRACT

Background: Stroke is one of the most common neurological conditions that often leads to upper limb motor impairments, significantly affecting individuals' quality of life. Rehabilitation strategies are crucial in facilitating post-stroke recovery and improving functional independence. Functional Electrical Stimulation (FES) systems have emerged as promising upper limb rehabilitation tools, offering innovative neuromuscular reeducation approaches. Objective: The main objective of this paper is to provide a comprehensive systematic review of the start-of-the-art functional electrical stimulation (FES) systems for upper limb neurorehabilitation in post-stroke therapy. More specifically, this paper aims to review different types of FES systems, their feasibility testing, or randomized control trials (RCT) studies. Methods: The FES systems classification is based on the involvement of patient feedback within the FES control, which mainly includes "Open-Loop FES Systems" (manually controlled) and "Closed-Loop FES Systems" (brain-computer interface-BCI and electromyography-EMG controlled). Thus, valuable insights are presented into the technological advantages and effectiveness of Manual FES, EEG-FES, and EMG-FES systems. Results and discussion: The review analyzed 25 studies and found that the use of FES-based rehabilitation systems resulted in favorable outcomes for the stroke recovery of upper limb functional movements, as measured by the FMA (Fugl-Meyer Assessment) (Manually controlled FES: mean difference = 5.6, 95% CI (3.77, 7.5), P < 0.001; BCI-controlled FES: mean difference = 5.37, 95% CI (4.2, 6.6), P < 0.001; EMG-controlled FES: mean difference = 14.14, 95% CI (11.72, 16.6), P < 0.001) and ARAT (Action Research Arm Test) (EMG-controlled FES: mean difference = 11.9, 95% CI (8.8, 14.9), P < 0.001) scores. Furthermore, the shortcomings, clinical considerations, comparison to non-FES systems, design improvements, and possible future implications are also discussed for improving stroke rehabilitation systems and advancing post-stroke recovery. Thus, summarizing the existing literature, this review paper can help researchers identify areas for further investigation. This can lead to formulating research questions and developing new studies aimed at improving FES systems and their outcomes in upper limb rehabilitation.

5.
Nat Nanotechnol ; 17(9): 1015-1022, 2022 09.
Article in English | MEDLINE | ID: mdl-35995855

ABSTRACT

Current clinical brain tumour therapy practices are based on tumour resection and post-operative chemotherapy or X-ray radiation. Resection requires technically challenging open-skull surgeries that can lead to major neurological deficits and, in some cases, death. Treatments with X-ray and chemotherapy, on the other hand, cause major side-effects such as damage to surrounding normal brain tissues and other organs. Here we report the development of an integrated nanomedicine-bioelectronics brain-machine interface that enables continuous and on-demand treatment of brain tumours, without open-skull surgery and toxicological side-effects on other organs. Near-infrared surface plasmon characteristics of our gold nanostars enabled the precise treatment of deep brain tumours in freely behaving mice. Moreover, the nanostars' surface coating enabled their selective diffusion in tumour tissues after intratumoral administration, leading to the exclusive heating of tumours for treatment. This versatile remotely controlled and wireless method allows the adjustment of nanoparticles' photothermal strength, as well as power and wavelength of the therapeutic light, to target tumours in different anatomical locations within the brain.


Subject(s)
Brain Neoplasms , Nanoparticles , Photochemotherapy , Animals , Brain Neoplasms/drug therapy , Cell Line, Tumor , Gold/therapeutic use , Mice , Theranostic Nanomedicine
6.
Methods Mol Biol ; 2448: 131-139, 2022.
Article in English | MEDLINE | ID: mdl-35167095

ABSTRACT

The identification of non-canonical UCP1-independent thermogenic mechanisms offers new opportunities to target such pathways to improve metabolic health. Based on our recent studies on Ca2+ futile cycling thermogenesis in beige fat, we applied the newly developed implantable wireless optogenetic system to activate Ca2+ cycling in an adipocyte-specific manner without external stimuli, i.e., fat-specific cold mimetics. Here, we describe the detailed methodology and application to the prevention of obesity.


Subject(s)
Optogenetics , Thermogenesis , Adipocytes/metabolism , Adipose Tissue, Beige/metabolism , Energy Metabolism , Humans , Obesity/metabolism , Uncoupling Protein 1/genetics , Uncoupling Protein 1/metabolism
7.
Endocrinology ; 163(2)2022 02 01.
Article in English | MEDLINE | ID: mdl-34888628

ABSTRACT

Pathogenic INS gene mutations are causative for mutant INS-gene-induced diabetes of youth (MIDY). We characterize a novel de novo heterozygous INS gene mutation (c.289A>C, p.T97P) that presented in an autoantibody-negative 5-month-old male infant with severe diabetic ketoacidosis. In silico pathogenicity prediction tools provided contradictory interpretations, while structural modeling indicated a deleterious effect on proinsulin folding. Transfection of wildtype and INS p.T97P expression and luciferase reporter constructs demonstrated elevated intracellular mutant proinsulin levels and dramatically impaired proinsulin/insulin and luciferase secretion. Notably, proteasome inhibition partially and selectively rescued INS p.T97P-derived luciferase secretion. Additionally, expression of INS p.T97P caused increased intracellular proinsulin aggregate formation and XBP-1s protein levels, consistent with induction of endoplasmic reticulum stress. We conclude that INS p.T97P is a newly identified pathogenic A-chain variant that is causative for MIDY via disruption of proinsulin folding and processing with induction of the endoplasmic reticulum stress response.


Subject(s)
Diabetic Ketoacidosis/genetics , Insulin/genetics , Mutation, Missense , Diabetes Mellitus , Humans , Infant , Insulin/metabolism , Male , Models, Molecular , Proinsulin/chemistry , Proinsulin/genetics , Proinsulin/metabolism , Protein Folding
8.
Nat Commun ; 12(1): 7034, 2021 Dec 09.
Article in English | MEDLINE | ID: mdl-34887383

ABSTRACT

Semiconducting transition metal dichalcogenides (TMDs) are promising for flexible high-specific-power photovoltaics due to their ultrahigh optical absorption coefficients, desirable band gaps and self-passivated surfaces. However, challenges such as Fermi-level pinning at the metal contact-TMD interface and the inapplicability of traditional doping schemes have prevented most TMD solar cells from exceeding 2% power conversion efficiency (PCE). In addition, fabrication on flexible substrates tends to contaminate or damage TMD interfaces, further reducing performance. Here, we address these fundamental issues by employing: (1) transparent graphene contacts to mitigate Fermi-level pinning, (2) MoOx capping for doping, passivation and anti-reflection, and (3) a clean, non-damaging direct transfer method to realize devices on lightweight flexible polyimide substrates. These lead to record PCE of 5.1% and record specific power of 4.4 W g-1 for flexible TMD (WSe2) solar cells, the latter on par with prevailing thin-film solar technologies cadmium telluride, copper indium gallium selenide, amorphous silicon and III-Vs. We further project that TMD solar cells could achieve specific power up to 46 W g-1, creating unprecedented opportunities in a broad range of industries from aerospace to wearable and implantable electronics.

9.
Sci Rep ; 11(1): 5967, 2021 03 16.
Article in English | MEDLINE | ID: mdl-33727598

ABSTRACT

The rapid growth and development of technology has had significant implications for healthcare, personalized medicine, and our understanding of biology. In this work, we leverage the miniaturization of electronics to realize the first demonstration of wireless detection and communication of an electronic device inside a cell. This is a significant forward step towards a vision of non-invasive, intracellular wireless platforms for single-cell analyses. We demonstrate that a 25 [Formula: see text]m wireless radio frequency identification (RFID) device can not only be taken up by a mammalian cell but can also be detected and specifically identified externally while located intracellularly. The S-parameters and power delivery efficiency of the electronic communication system is quantified before and after immersion in a biological environment; the results show distinct electrical responses for different RFID tags, allowing for classification of cells by examining the electrical output noninvasively. This versatile platform can be adapted for realization of a broad modality of sensors and actuators. This work precedes and facilitates the development of long-term intracellular real-time measurement systems for personalized medicine and furthering our understanding of intrinsic biological behaviors. It helps provide an advanced technique to better assess the long-term evolution of cellular physiology as a result of drug and disease stimuli in a way that is not feasible using current methods.


Subject(s)
Cell Physiological Phenomena , Signal Transduction , Wireless Technology , Bioengineering/instrumentation , Bioengineering/methods , Cells, Cultured , Electronics/instrumentation , Electronics/methods , Equipment Design , Humans , Intracellular Space , Miniaturization
10.
Nat Commun ; 11(1): 1730, 2020 04 07.
Article in English | MEDLINE | ID: mdl-32265443

ABSTRACT

Cold stimuli and the subsequent activation of ß-adrenergic receptor (ß-AR) potently stimulate adipose tissue thermogenesis and increase whole-body energy expenditure. However, systemic activation of the ß3-AR pathway inevitably increases blood pressure, a significant risk factor for cardiovascular disease, and, thus, limits its application for the treatment of obesity. To activate fat thermogenesis under tight spatiotemporal control without external stimuli, here, we report an implantable wireless optogenetic device that bypasses the ß-AR pathway and triggers Ca2+ cycling selectively in adipocytes. The wireless optogenetics stimulation in the subcutaneous adipose tissue potently activates Ca2+ cycling fat thermogenesis and increases whole-body energy expenditure without cold stimuli. Significantly, the light-induced fat thermogenesis was sufficient to protect mice from diet-induced body-weight gain. The present study provides the first proof-of-concept that fat-specific cold mimetics via activating non-canonical thermogenesis protect against obesity.


Subject(s)
Adipocytes/metabolism , Adipose Tissue/metabolism , Channelrhodopsins/metabolism , Obesity/therapy , Optogenetics/instrumentation , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism , Thermogenesis/radiation effects , Adipocytes/radiation effects , Adipose Tissue/radiation effects , Animals , Body Weight/physiology , Body Weight/radiation effects , Calcium/metabolism , Cells, Cultured , Channelrhodopsins/radiation effects , Channelrhodopsins/therapeutic use , Diet , Energy Metabolism/radiation effects , Locomotion , Male , Mice , Mice, Knockout , Obesity/metabolism , Optogenetics/methods , Oxygen Consumption , Receptors, Adrenergic, beta/metabolism , Sarcoplasmic Reticulum Calcium-Transporting ATPases/genetics , Thermogenesis/physiology
11.
Sci Rep ; 9(1): 19565, 2019 12 20.
Article in English | MEDLINE | ID: mdl-31863072

ABSTRACT

Human induced pluripotent stem cell-derived neural progenitor cells (hNPCs) are a promising cell source for stem cell transplantation to treat neurological diseases such as stroke and peripheral nerve injuries. However, there have been limited studies investigating how the dimensionality of the physical and electrical microenvironment affects hNPC function. In this study, we report the fabrication of two- and three-dimensional (2D and 3D respectively) constructs composed of a conductive polymer to compare the effect of electrical stimulation of hydrogel-immobilized hNPCs. The physical dimension (2D vs 3D) of stimulating platforms alone changed the hNPCs gene expression related to cell proliferation and metabolic pathways. The addition of electrical stimulation was critical in upregulating gene expression of neurotrophic factors that are important in regulating cell survival, synaptic remodeling, and nerve regeneration. This study demonstrates that the applied electrical field controls hNPC properties depending on the physical nature of stimulating platforms and cellular metabolic states. The ability to control hNPC functions can be beneficial in understanding mechanistic changes related to electrical modulation and devising novel treatment methods for neurological diseases.


Subject(s)
Neural Stem Cells/cytology , Neurons/cytology , Cell Differentiation/physiology , Cell Proliferation/physiology , Cell Survival/physiology , Electrophysiology , Finite Element Analysis , Humans , Hydrogels/chemistry , Induced Pluripotent Stem Cells/cytology , Neurons/metabolism , Polymers/chemistry , Tissue Scaffolds/chemistry
12.
IEEE Trans Power Electron ; 34(1): 391-402, 2019 Jan.
Article in English | MEDLINE | ID: mdl-32863572

ABSTRACT

Wireless energy harvesting devices convert received AC energy into DC voltages suitable to power the back-end functionality of the devices. The low energy available to the devices require high AC-DC conversion efficiency in order for enough power to be delivered to the load. This paper presents a model to characterize loss through charge pump cells in wireless energy harvesting devices. The proposed model includes the time-domain effects of the input radio-frequency (RF) energy wave and provides additional insight into how clock and switch parameters along with architecture considerations can be used to improve the efficiency of AC-DC conversion. Results are verified using simulation in a 0.18-µm CMOS technology. We show the impact of threshold voltage on reverse conduction and the limitations on increasing transistor switch sizes to support high current loads. Design examples use the presented model to optimize design parameters to decrease loss in the charge pump. We compare the performance between sine-wave and square-wave clocked charge pumps to show the trade-off between charge pump loss and clock generation power consumption. Furthermore, the benefits of easily computing architectural changes is demonstrated using the proposed model showing how the calculated equivalent resistance can be used to determine the benefits of mixed-mode clocking.

13.
Article in English | MEDLINE | ID: mdl-29226018

ABSTRACT

Wireless powering could enable the long-term operation of advanced bioelectronic devices within the human body. Although both enhanced powering depth and device miniaturization can be achieved by shaping the field pattern within the body, existing electromagnetic structures do not provide the spatial phase control required to synthesize such patterns. Here, we describe the design and operation of conformal electromagnetic structures, termed phased surfaces, that interface with non-planar body surfaces and optimally modulate the phase response to enhance the performance of wireless powering. We demonstrate that the phased surfaces can wirelessly transfer energy across anatomically heterogeneous tissues in large animal models, powering miniaturized semiconductor devices (<12 mm3) deep within the body (>4 cm). As an illustration of in vivo operation, we wirelessly regulated cardiac rhythm by powering miniaturized stimulators at multiple endocardial sites in a porcine animal model.

14.
PLoS One ; 12(10): e0186698, 2017.
Article in English | MEDLINE | ID: mdl-29065141

ABSTRACT

Neuromodulation of peripheral nerves with bioelectronic devices is a promising approach for treating a wide range of disorders. Wireless powering could enable long-term operation of these devices, but achieving high performance for miniaturized and deeply placed devices remains a technological challenge. We report the miniaturized integration of a wireless powering system in soft neuromodulation device (15 mm length, 2.7 mm diameter) and demonstrate high performance (about 10%) during in vivo wireless stimulation of the vagus nerve in a porcine animal model. The increased performance is enabled by the generation of a focused and circularly polarized field that enhances efficiency and provides immunity to polarization misalignment. These performance characteristics establish the clinical potential of wireless powering for emerging therapies based on neuromodulation.


Subject(s)
Peripheral Nerves/physiology , Wireless Technology/instrumentation , Animals , Electrodes , Equipment Design , Female , Miniaturization , Swine
15.
Psychiatry Res ; 256: 258-266, 2017 10.
Article in English | MEDLINE | ID: mdl-28648988

ABSTRACT

Using data of 200, 522, 572, and 287 Chinese from Australia, China, Hong Kong and Taiwan respectively, this study aimed at comparing the mental health literacy of Chinese people from different communities, and between Chinese communities and the Australian general public. The participants were asked questions that assessed their recognition of depression and schizophrenia. Compared with the Australians, much lower percentages of Chinese in the four Chinese communities could correctly identify depression and early schizophrenia. Commonalities in the preference for 'psychiatrist', 'psychologist', 'Chinese medical doctor', and 'Chinese traditional healer', a lack of knowledge of medications, and a higher likelihood of endorsement of traditional Chinese medicines were found among the four Chinese communities. Differences in the preference for 'general practitioner' and 'social worker', and a higher percentage of endorsement of herbal medicines were observed among the different Chinese communities. Cultural factors such as Chinese perceptions of mental illness, and socio-contextual factors such as differences in mental health care system in the four communities were offered to explain these commonalities and differences. Mental health promotion programmes for Chinese people may need to consider the above-mentioned cultural and socio-contextual factors so that specific promotion programmes can be developed.


Subject(s)
Asian People/psychology , Health Literacy/statistics & numerical data , Mental Disorders/psychology , Mental Health/ethnology , Adolescent , Adult , Aged , Aged, 80 and over , Australia , China/ethnology , Cross-Cultural Comparison , Female , Health Promotion , Hong Kong , Humans , Male , Mental Disorders/ethnology , Middle Aged , Surveys and Questionnaires , Taiwan , Young Adult
16.
IEEE Trans Med Imaging ; 36(2): 574-583, 2017 02.
Article in English | MEDLINE | ID: mdl-27810803

ABSTRACT

A millimeter (mm) wave radio is presented in this work to support wireless MRI data transmission. High path loss and availability of wide bandwidth make mm-waves an ideal candidate for short range, high data rata communication required for wireless MRI. The proposed system uses a custom designed integrated chip (IC) mm-wave radio with 60 GHz as radio frequency carrier. In this work, we assess performance in a 1.5 T MRI field, with the addition of optical links between the console room and magnet. The system uses ON-OFF keying (OOK) modulation for data transmission and supports data rates from 200 Mb/s to 2.5 Gb/s for distances up-to 65 cm. The presence of highly directional, linearly polarized, on-chip dipole antennas on the mm-wave radio along with the time division multiplexing (TDM) circuitry allows multiple wireless links to be created simultaneously with minimal inter-channel interference. This leads to a highly scalable solution for wireless MRI.


Subject(s)
Magnetic Resonance Imaging , Equipment Design , Radio Waves , Wireless Technology
17.
Nat Methods ; 12(10): 969-74, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26280330

ABSTRACT

To enable sophisticated optogenetic manipulation of neural circuits throughout the nervous system with limited disruption of animal behavior, light-delivery systems beyond fiber optic tethering and large, head-mounted wireless receivers are desirable. We report the development of an easy-to-construct, implantable wireless optogenetic device. Our smallest version (20 mg, 10 mm(3)) is two orders of magnitude smaller than previously reported wireless optogenetic systems, allowing the entire device to be implanted subcutaneously. With a radio-frequency (RF) power source and controller, this implant produces sufficient light power for optogenetic stimulation with minimal tissue heating (<1 °C). We show how three adaptations of the implant allow for untethered optogenetic control throughout the nervous system (brain, spinal cord and peripheral nerve endings) of behaving mice. This technology opens the door for optogenetic experiments in which animals are able to behave naturally with optogenetic manipulation of both central and peripheral targets.


Subject(s)
Brain/physiology , Implants, Experimental , Optogenetics/instrumentation , Spinal Cord/physiology , Wireless Technology , Animals , Equipment Design , Female , Light , Mice, Inbred C57BL , Mice, Transgenic , Miniaturization/instrumentation , Miniaturization/methods , Motor Cortex/physiology , Nociceptors/physiology , Optogenetics/methods , Peripheral Nerves/physiology , Temperature , Wireless Technology/instrumentation
18.
Proc Natl Acad Sci U S A ; 111(22): 7974-9, 2014 Jun 03.
Article in English | MEDLINE | ID: mdl-24843161

ABSTRACT

The ability to implant electronic systems in the human body has led to many medical advances. Progress in semiconductor technology paved the way for devices at the scale of a millimeter or less ("microimplants"), but the miniaturization of the power source remains challenging. Although wireless powering has been demonstrated, energy transfer beyond superficial depths in tissue has so far been limited by large coils (at least a centimeter in diameter) unsuitable for a microimplant. Here, we show that this limitation can be overcome by a method, termed midfield powering, to create a high-energy density region deep in tissue inside of which the power-harvesting structure can be made extremely small. Unlike conventional near-field (inductively coupled) coils, for which coupling is limited by exponential field decay, a patterned metal plate is used to induce spatially confined and adaptive energy transport through propagating modes in tissue. We use this method to power a microimplant (2 mm, 70 mg) capable of closed-chest wireless control of the heart that is orders of magnitude smaller than conventional pacemakers. With exposure levels below human safety thresholds, milliwatt levels of power can be transferred to a deep-tissue (>5 cm) microimplant for both complex electronic function and physiological stimulation. The approach developed here should enable new generations of implantable systems that can be integrated into the body at minimal cost and risk.


Subject(s)
Electronics, Medical/instrumentation , Electronics, Medical/methods , Miniaturization/methods , Models, Theoretical , Prostheses and Implants , Wireless Technology/instrumentation , Animals , Cerebral Cortex , Electric Power Supplies , Electromagnetic Fields , Equipment Design , Heart Ventricles , Humans , Optics and Photonics/instrumentation , Optics and Photonics/methods , Rabbits , Semiconductors , Skin , Swine
19.
Sci Rep ; 3: 2295, 2013.
Article in English | MEDLINE | ID: mdl-23887586

ABSTRACT

Continuous monitoring of in vivo biological processes and their evolution at the cellular level would enable major advances in our understanding of biology and disease. As a stepping stone towards chronic cellular monitoring, we demonstrate massively parallel fabrication and delivery of 3D multilayer micro-Tags (µTags) into living cells. Both 10 µm × 10 µm × 1.5 µm and 18 µm × 7 µm × 1.5 µm devices containing inductive and capacitive structures were designed and fabricated as potential passive radio-frequency identification tags. We show cellular internalization and persistence of µTags over a 5-day period. Our results represent a promising advance in technologies for studying biology and disease at the cellular level.


Subject(s)
Microtechnology/methods , Nanostructures/chemistry , Animals , Biomimetic Materials , Cell Line , Electronics/instrumentation , Macrophages/metabolism , Materials Testing , Mice , Nanostructures/ultrastructure , Silicon/chemistry
20.
Phys Rev Lett ; 110(20): 203905, 2013 May 17.
Article in English | MEDLINE | ID: mdl-25167413

ABSTRACT

We obtain an analytical bound on the efficiency of wireless power transfer to a weakly coupled device. The optimal source is solved for a multilayer geometry in terms of a representation based on the field equivalence principle. The theory reveals that optimal power transfer exploits the properties of the midfield to achieve efficiencies far greater than conventional coil-based designs. As a physical realization of the source, we present a slot array structure whose performance closely approaches the theoretical bound.


Subject(s)
Electric Power Supplies , Models, Theoretical , Prostheses and Implants , Electromagnetic Radiation , Equipment Design
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