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1.
IEEE Trans Biomed Eng ; 67(9): 2417-2426, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32011243

RESUMO

OBJECTIVE: Early stage diagnosis of sepsis without overburdening health services is essential to improving patient outcomes. METHODS: A fast and simple-to-use platform that combines an integrated circuit with paper microfluidics for simultaneous detection of multiple-metabolites appropriate for diagnostics was presented. Paper based sensors are a primary candidate for widespread deployment of diagnostic or test devices. However, the majority of devices today use a simple paper strip to detect a single marker using the reflectance of light. However, for many diseases such as sepsis, one biomarker is not sufficient to make a unique diagnosis. In this work multiple measurements are made on patterned paper simultaneously. Using laser ablation to fabricate microfluidic channels on paper provides a flexible and direct approach for mass manufacture of disposable paper strips. A reusable photodiode array on a complementary metal oxide semiconductor chip is used as the transducer. RESULTS: The system measures changes in optical absorbance in the paper to achieve a cost-effective and easily implemented system that is capable of multiple simultaneous assays. Potential sepsis metabolite biomarkers glucose and lactate have been studied and quantified with the platform, achieving sensitivity within the physiological range in human serum. CONCLUSION: We have detailed a disposable paper-based CMOS photodiode sensor platform for real-time simultaneous detection of metabolites for diseases such as sepsis. SIGNIFICANCE: A combination of a low-cost paper strip with microfluidic channels and a sensitive CMOS photodiode sensor array makes our platform a robust portable and inexpensive biosensing device for multiple diagnostic tests in many different applications.


Assuntos
Técnicas Biossensoriais , Semicondutores , Desenho de Equipamento , Glucose , Humanos , Microfluídica
2.
IEEE Trans Biomed Eng ; 67(2): 614-623, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31226063

RESUMO

Precision metabolomics and quantification for cost-effective rapid diagnosis of disease are the key goals in personalized medicine and point-of-care testing. At present, patients are subjected to multiple test procedures requiring large laboratory equipment. Microelectronics has already made modern computing and communications possible by integration of complex functions within a single chip. As More than Moore technology increases in importance, integrated circuits for densely patterned sensor chips have grown in significance. Here, we present a versatile single complementary metal-oxide-semiconductor chip forming a platform to address personalized needs through on-chip multimodal optical and electrochemical detection that will reduce the number of tests that patients must take. The chip integrates interleaved sensing subsystems for quadruple-mode colorimetric, chemiluminescent, surface plasmon resonance, and hydrogen ion measurements. These subsystems include a photodiode array and a single photon avalanche diode array with some elements functionalized to introduce a surface plasmon resonance mode. The chip also includes an array of ion sensitive field-effect transistors. The sensor arrays are distributed uniformly over an active area on the chip surface in a scalable and modular design. Bio-functionalization of the physical sensors yields a highly selective simultaneous multiple-assay platform in a disposable format. We demonstrate its versatile capabilities through quantified bio-assays performed on-chip for glucose, cholesterol, urea, and urate, each within their naturally occurring physiological range.


Assuntos
Biomarcadores/análise , Técnicas Biossensoriais/instrumentação , Nanotecnologia/instrumentação , Glicemia/análise , Técnicas de Química Analítica/instrumentação , Colesterol/sangue , Desenho de Equipamento , Humanos , Semicondutores , Ácido Úrico/análise
3.
Biosens Bioelectron ; 122: 88-94, 2018 Dec 30.
Artigo em Inglês | MEDLINE | ID: mdl-30245326

RESUMO

Metabolites, the small molecules that underpin life, can act as indicators of the physiological state of the body when their abundance varies, offering routes to diagnosis of many diseases. The ability to assay for multiple metabolites simultaneously will underpin a new generation of precision diagnostic tools. Here, we report the development of a handheld device based on complementary metal oxide semiconductor (CMOS) technology with multiple isolated micro-well reaction zones and integrated optical sensing allowing simultaneous enzyme-based assays of multiple metabolites (choline, xanthine, sarcosine and cholesterol) associated with multiple diseases. These metabolites were measured in clinically relevant concentration range with minimum concentrations measured: 25 µM for choline, 100 µM for xanthine, 1.25 µM for sarcosine and 50 µM for cholesterol. Linking the device to an Android-based user interface allows for quantification of metabolites in serum and urine within 2 min of applying samples to the device. The quantitative performance of the device was validated by comparison to accredited tests for cholesterol and glucose.


Assuntos
Técnicas Biossensoriais/instrumentação , Dispositivos Lab-On-A-Chip , Sistemas Automatizados de Assistência Junto ao Leito , Colesterol/sangue , Colesterol/urina , Colina/sangue , Colina/urina , Desenho de Equipamento , Humanos , Masculino , Óxidos/química , Sarcosina/sangue , Sarcosina/urina , Semicondutores , Xantina/sangue , Xantina/urina
4.
ACS Sens ; 3(5): 953-959, 2018 05 25.
Artigo em Inglês | MEDLINE | ID: mdl-29652490

RESUMO

Scalable immunoassay multiplexing offers a route to creating rapid point-of-care (POC) diagnostics. We present a method for multiplexing immunoassays on the surface of a complementary metal oxide semiconductor (CMOS) sensor array integrated circuit (IC) without the use of physical separators such as wells or channels. Major advantages of using a CMOS sensor array include low mass-manufacturing costs, the possibility to multiplex multiple assays on a single IC, and improved signal when averaging multiple sensors, along with providing a platform where wash steps can be incorporated to maximize selectivity and sensitivity compared to paper based lateral flow immunoassay. The device was able to differentiate between samples containing either, neither, or both rabbit anti-mouse (RAM) antibodies and/or anti-HIV gp120 antibodies in serum using a gold-nanoparticle promoted silver enhancement immunoassay. HIV antibody concentrations down to 100 µg/mL were readily detected, which is three times lower than those typically found in infected humans (300-500 µg/mL), and the limit of detection was 10 µg/mL.


Assuntos
Imunoensaio/métodos , Metais/química , Óxidos/química , Semicondutores , Animais , Anticorpos/sangue , Técnicas Biossensoriais/instrumentação , Ouro/química , Proteína gp120 do Envelope de HIV/imunologia , Humanos , Limite de Detecção , Nanopartículas Metálicas/química , Camundongos , Aplicativos Móveis , Coelhos
5.
IEEE Trans Biomed Circuits Syst ; 10(3): 721-30, 2016 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-26742138

RESUMO

We have created a novel chip-based diagnostic tools based upon quantification of metabolites using enzymes specific for their chemical conversion. Using this device we show for the first time that a solid-state circuit can be used to measure enzyme kinetics and calculate the Michaelis-Menten constant. Substrate concentration dependency of enzyme reaction rates is central to this aim. Ion-sensitive field effect transistors (ISFET) are excellent transducers for biosensing applications that are reliant upon enzyme assays, especially since they can be fabricated using mainstream microelectronics technology to ensure low unit cost, mass-manufacture, scaling to make many sensors and straightforward miniaturisation for use in point-of-care devices. Here, we describe an integrated ISFET array comprising 2(16) sensors. The device was fabricated with a complementary metal oxide semiconductor (CMOS) process. Unlike traditional CMOS ISFET sensors that use the Si3N4 passivation of the foundry for ion detection, the device reported here was processed with a layer of Ta2O5 that increased the detection sensitivity to 45 mV/pH unit at the sensor readout. The drift was reduced to 0.8 mV/hour with a linear pH response between pH 2-12. A high-speed instrumentation system capable of acquiring nearly 500 fps was developed to stream out the data. The device was then used to measure glucose concentration through the activity of hexokinase in the range of 0.05 mM-231 mM, encompassing glucose's physiological range in blood. Localised and temporal enzyme kinetics of hexokinase was studied in detail. These results present a roadmap towards a viable personal metabolome machine.


Assuntos
Técnicas e Procedimentos Diagnósticos/instrumentação , Enzimas/metabolismo , Desenho de Equipamento , Humanos , Concentração de Íons de Hidrogênio , Cinética , Dispositivos Lab-On-A-Chip , Semicondutores , Transistores Eletrônicos
6.
Langmuir ; 28(39): 13877-82, 2012 Oct 02.
Artigo em Inglês | MEDLINE | ID: mdl-22934624

RESUMO

The coiled coil is a widespread protein motif responsible for directing the assembly of a wide range of protein complexes. To date, research has focused largely on the solution phase assembly of coiled-coil complexes. Here, we describe an investigation into coiled-coil heterodimer assembly where one of the peptides is immobilized directly onto a gold electrode. Immobilization is achieved by the introduction of a unique cysteine residue at the C terminus, allowing for covalent and orientated attachment to a thiol-reactive surface, here the gold electrode. We show an electrochemical impedance of the resulting self-assembled polypeptide monolayer around |Z| = 4 × 10(4) Ω cm(2) at 100 mHz with a minimum phase angle of -84°, consistent with the formation of a densely packed, insulating layer. The thickness of the peptide monolayer, as measured using ellipsometry, is around 3 nm, close to that expected for a self-assembled monolayer assembled from helical peptides. Crucially, we find that the efficiency of dimerization between a peptide in solution and its coiled-coil partner peptide immobilized on a surface is strongly dependent upon the density of the immobilized peptide layer, with dimer assembly being strongly suppressed by high-density peptide monolayers. We thus develop an approach for controlling the density of the immobilized peptide by diluting the monolayer with a thiolated, random-coil peptide to modulate dimerization efficiency and demonstrate electrochemical detection of highly specific, coiled-coil heterodimer on-surface assembly.


Assuntos
Peptídeos/química , Dimerização , Técnicas Eletroquímicas , Eletrodos , Ouro/química , Peptídeos/síntese química , Compostos de Sulfidrila/química , Propriedades de Superfície
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