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1.
Anal Chim Acta ; 1316: 342852, 2024 Aug 08.
Article in English | MEDLINE | ID: mdl-38969409

ABSTRACT

BACKGROUND: With the advent of personalized medical approaches, precise and tailored treatments are expected to become widely accepted for the prevention and treatment of diabetes. Paper-based colorimetric sensors that function in combination with smartphones have been rapidly developed in recent years because it does not require additional equipment and is inexpensive and easy to perform. In this study, we developed a portable, low-cost, and wearable sweat-glucose detection device for in situ detection. RESULTS: The sensor adopted an integrated biomimetic nanoenzyme of glucose oxidase (GOx) encapsulated in copper 1, 4-benzenedicarboxylate (CuBDC) (GOx@CuBDC) through a biomimetic mineralization process. CuBDC exhibited a peroxide-like effect, cascade catalytic effect with the encapsulated GOx, and increased the enzyme stability. GOx@CuBDC and 3,3,5,5-tetramethylbenzidine were combined to form a hybrid membrane that achieved single-step paper-based glucose detection. SIGNIFICANCE AND NOVELTY: This GOx@CuBDC-based colorimetric glucose sensor was used to quantitatively analyze the sweat-glucose concentration with smartphone readings. The sensor exhibited a good linear relationship over the concentration range of 40-900 µM and a limit of detection of 20.7 µM (S/N = 3). Moreover, the sensor performed well in situ monitoring and in evaluating variations based on the consumption of foods with different glycemic indices. Therefore, the fabricated wearable sweat-glucose sensors exhibited optimal practical application performance.


Subject(s)
Biosensing Techniques , Colorimetry , Copper , Glucose Oxidase , Glucose , Smartphone , Sweat , Glucose Oxidase/chemistry , Glucose Oxidase/metabolism , Copper/chemistry , Sweat/chemistry , Humans , Glucose/analysis , Wearable Electronic Devices , Limit of Detection , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism
2.
Mikrochim Acta ; 191(8): 451, 2024 07 06.
Article in English | MEDLINE | ID: mdl-38970693

ABSTRACT

Ti3C2Tx MXene/CuxO composites were prepared by acid etching combined with electrochemical technique. The abundant active sites on the surface of MXene greatly increase the loading of CuxO nanoparticles, and the synergistic effect between the different components of the composite can accelerate the oxidation reaction of glucose. The results indicate that at the working potential of 0.55 V (vs. Ag/AgCl), the glucose sensor based on Ti3C2Tx MXene/CuxO composite presents large linear concentration ranges from 1 µM to 4.655 mM (sensitivity of 361 µA mM-1 cm-2) and from 5.155 mM to 16.155 mM (sensitivity of 133 µA mM-1 cm-2). The limit of detection is 0.065 µM. In addition, the sensor effectively avoids the oxidative interference of common interfering species such as ascorbic acid, dopamine and uric acid. The sensor has good reproducibility, stability and acceptable recoveries for the detection of glucose in human sweat sample (97.5-103.3%) with RSD values less than 4%. Based on these excellent properties it has great potential for the detection of glucose in real samples.


Subject(s)
Copper , Electrochemical Techniques , Glucose , Limit of Detection , Titanium , Copper/chemistry , Humans , Titanium/chemistry , Glucose/analysis , Glucose/chemistry , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Sweat/chemistry , Electrodes , Oxidation-Reduction , Reproducibility of Results , Biosensing Techniques/methods , Nanocomposites/chemistry
3.
Biosensors (Basel) ; 14(6)2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38920598

ABSTRACT

A microfluidic sweat monitoring patch that collects human sweat for a long time is designed to achieve the effect of detecting the rise and fall of human sweat glucose over a long period of time by increasing the use time of a single patch. Five collection pools, four serpentine channels, and two different valves are provided. Among them, the three-dimensional valve has a large burst pressure as a balance between the internal and external air pressures of the patch. The bursting pressure of the two-dimensional diverter valve is smaller than that of the three-dimensional gas valve, and its role is to control the flow direction of the liquid. Through plasma hydrophilic treatment of different durations, the optimal hydrophilic duration is obtained. The embedded chromogenic disc detects the sweat glucose value at two adjacent time intervals and compares the information of the human body to increase or reduce glucose. The patch has good flexibility and can fit well with human skin, and because polydimethylsiloxane (PDMS) has good light transmission, it reduces the measurement error caused by the color-taking process and makes the detection results more accurate.


Subject(s)
Sweat , Humans , Sweat/chemistry , Hypoglycemia , Glucose/analysis , Biosensing Techniques , Microfluidics , Dimethylpolysiloxanes/chemistry , Blood Glucose/analysis
4.
Int J Mol Sci ; 25(12)2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38928100

ABSTRACT

Rich biological information in sweat provides great potential for health monitoring and management. However, due to the complexity of sweat, the development of environmentally friendly green electronic products is of great significance to the construction of ecological civilization. This study utilized a simple combination of polystyrene sulfonate sodium (PSS) and filter paper (FP) to prepare cellulose materials coated with conductive polymers, developing an electrochemical sensor based on the modified materials. The mechanical and electrochemical properties of the fabricated PSS/FP membrane were optimized by adjusting the feeding dosage of PSS. The realized PSS/FP composite containing 7% PSS displayed good conductivity (9.1 × 10-2 S/m), reducing electric resistance by 99.2% compared with the original FP membrane (6.7 × 10-4 S/m). The stable current of the membrane in simulated sweat under different pH environments is highly correlated with the pH values. Additionally, when the membrane is exposed to simulated sweat with varying ion concentrations, the current signal changes in real time with the concentration variations. The response time averages around 0.3 s.


Subject(s)
Cellulose , Electric Conductivity , Polystyrenes , Sweat , Sweat/chemistry , Cellulose/chemistry , Hydrogen-Ion Concentration , Polystyrenes/chemistry , Polymers/chemistry , Humans , Electrochemical Techniques/methods , Biosensing Techniques/methods
5.
ACS Sens ; 9(6): 3296-3306, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38829039

ABSTRACT

As a facile substitute for the invasive technique of blood testing, wearable electrochemical sensors exhibit high potential for the noninvasive and real-time monitoring of biomarkers in human sweat. However, owing to enzyme specificity, the simultaneous detection of multiple biomarkers by enzymatic analysis is challenging. Moreover, sweat accumulation under sensors causes sweat contamination, which hinders real-time biomarker detection from sweat. This study reports the design and fabrication of flexible wearable electrochemical sensors containing a composite comprising Au nanorods (AuNRs) and poly(3,4-ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS) for the nonenzymatic detection of levodopa (LD) and uric acid (UA) in sweat. Each sensor was integrated with a flexible three-electrode system and a microfluidic patch for sweat sampling. AuNRs immobilized by PEG-doped PEDOT:PSS showed excellent analytical performance for LD and UA at different potentials. Thus, the newly fabricated sensors could detect LD and UA over a broad detection range with high sensitivity and showed a low limit of detection for both species. On-body assessments confirmed the ability of these sensors to simultaneously detect LD and UA in real time. Therefore, this study could open new frontiers in the fabrication of wearable electrochemical sensors for the pharmacokinetic profile tracking of LD and gout management.


Subject(s)
Bridged Bicyclo Compounds, Heterocyclic , Electrochemical Techniques , Gold , Levodopa , Polymers , Polystyrenes , Sweat , Uric Acid , Wearable Electronic Devices , Uric Acid/analysis , Humans , Levodopa/analysis , Levodopa/blood , Sweat/chemistry , Polystyrenes/chemistry , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Gold/chemistry , Bridged Bicyclo Compounds, Heterocyclic/chemistry , Polymers/chemistry , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Nanotubes/chemistry , Limit of Detection
6.
ACS Sens ; 9(6): 3413-3422, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38887933

ABSTRACT

In recent years, wearable devices have been widely used for human health monitoring. Such monitoring predominantly relies on the principles of optics and electronics. However, electronic detection is susceptible to electromagnetic interference, and traditional optical fiber detection is limited in functionality and unable to simultaneously detect both physical and chemical signals. Hence, a wearable, embedded asymmetric color-blocked optical fiber sensor based on a hydrogel has been developed. Its sensing principle is grounded in the total internal reflection within the optical fiber. The method for posture sensing involves changes in the light path due to fiber bending with color blocks providing wavelength-selective modulation by absorption changes. Sweat pH sensing is facilitated by variations in fluorescence intensity triggered by sweat-induced conformational changes in Rhodamine B. With just one fiber, it achieves both physical and chemical signal detection. Fabricated using a molding technique, this fiber boasts excellent biocompatibility and can accurately discern single and multiple bending points, with a recognition range of 0-90° for a single segment, a detection limit of 0.02 mm-1 and a sweat pH sensing linear regression R2 of 0.993, alongside great light propagation properties (-0.6 dB·cm-1). With its extensive capabilities, it holds promise for applications in medical monitoring.


Subject(s)
Hydrogels , Optical Fibers , Posture , Sweat , Wearable Electronic Devices , Hydrogen-Ion Concentration , Sweat/chemistry , Humans , Hydrogels/chemistry , Posture/physiology , Rhodamines/chemistry , Biosensing Techniques/methods , Monitoring, Physiologic/methods , Monitoring, Physiologic/instrumentation
7.
Anal Chim Acta ; 1312: 342761, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38834276

ABSTRACT

BACKGROUND: Diabetes is a significant health threat, with its prevalence and burden increasing worldwide indicating its challenge for global healthcare management. To decrease the disease severity, the diabetic patients are recommended to regularly check their blood glucose levels. The conventional finger-pricking test possesses some drawbacks, including painfulness and infection risk. Nowadays, smartphone has become a part of our lives offering an important benefit in self-health monitoring. Thus, non-invasive wearable sweat glucose sensor connected with a smartphone readout is of interest for real-time glucose detection. RESULTS: Wearable sweat glucose sensing device is fabricated for self-monitoring of diabetes. This device is designed as a body strap consisting of a sensing strip and a portable potentiostat connected with a smartphone readout via Bluetooth. The sensing strip is modified by carbon nanotubes (CNTs)-cellulose nanofibers (CNFs), followed by electrodeposition of Prussian blue. To preserve the activity of glucose oxidase (GOx) immobilized on the modified sensing strip, chitosan is coated on the top layer of the electrode strip. Herein, machine learning is implemented to correlate between the electrochemical results and the nanomaterial content along with deposition cycle of prussian blue, which provide the highest current response signal. The optimized regression models provide an insight, establishing a robust framework for design of high-performance glucose sensor. SIGNIFICANCE: This wearable glucose sensing device connected with a smartphone readout offers a user-friendly platform for real-time sweat glucose monitoring. This device provides a linear range of 0.1-1.5 mM with a detection limit of 0.1 mM that is sufficient enough for distinguishing between normal and diabetes patient with a cut-off level of 0.3 mM. This platform might be an alternative tool for improving health management for diabetes patients.


Subject(s)
Biosensing Techniques , Diabetes Mellitus , Machine Learning , Smartphone , Sweat , Wearable Electronic Devices , Humans , Sweat/chemistry , Biosensing Techniques/instrumentation , Diabetes Mellitus/diagnosis , Glucose/analysis , Nanotubes, Carbon/chemistry , Glucose Oxidase/chemistry , Glucose Oxidase/metabolism , Electrochemical Techniques/instrumentation
8.
Med Sci Monit ; 30: e943321, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38863180

ABSTRACT

BACKGROUND This study explored the integration of conductive threads into a microfluidic compact disc (CD), developed using the xurographic method, for a potential sweat biosensing platform. MATERIAL AND METHODS The microfluidic CD platform, fabricated using the xurographic method with PVC films, included venting channels and conductive threads linked to copper electrodes. With distinct microfluidic sets for load and metering, flow control, and measurement, the CD's operation involved spinning for sequential liquid movement. Impedance analysis using HIOKI IM3590 was conducted for saline and artificial sweat solutions on 4 identical CDs, ensuring reliable conductivity and measurements over a 1 kHz to 200 kHz frequency range. RESULTS Significant differences in |Z| values were observed between saline and artificial sweat treatments. 27.5 µL of saline differed significantly from 27.5 µL of artificial sweat, 72.5 µL of saline from 72.5 µL of artificial sweat, and 192.5 µL of saline from 192.5 µL of sweat. Significant disparities in |Z| values were observed between dry fibers and Groups 2, 3, and 4 (varying saline amounts). No significant differences emerged between dry fibers and Groups 6, 7, and 8 (distinct artificial sweat amounts). These findings underscore variations in fiber characteristics between equivalent exposures, emphasizing the nuanced response of the microfluidic CD platform to different liquid compositions. CONCLUSIONS This study shows the potential of integrating conductive threads in a microfluidic CD platform for sweat sensing. Challenges in volume control and thread coating degradation must be addressed for transformative biosensing devices in personalized healthcare.


Subject(s)
Biosensing Techniques , Lab-On-A-Chip Devices , Sweat , Sweat/chemistry , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Humans , Microfluidics/methods , Microfluidics/instrumentation , Electric Conductivity , Electrodes , Electric Impedance
9.
Biosens Bioelectron ; 261: 116502, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38896980

ABSTRACT

Oxidative stress is widely recognized as a pivotal factor contributing to numerous Central Nervous System (CNS) ailments. The concentrations of hydrogen peroxide (H2O2) and phosphorylated proteins within the human body serve as crucial indicators of oxidative stress. As such, the real-time monitoring of H2O2 and phosphorylated proteins in sweat is vital for the early identification, diagnosis, and management of diseases linked to oxidative stress. In this context, we present a novel microfluidic wearable electrochemical sensor by modifying the electrode with Prussian blue (PB) and loading sulfur-rich vacancy-containing molybdenum disulfide (MoS2-X) onto Multi-walled carbon nanotube (CNTs) to form coaxially layered CNTs/MoS2-X, which was then synthesized with highly dispersed titanium dioxide nanoparticles (TiO2) to synthesize CNTs/MoS2-X/TiO2 composites for the detection of human sweat H2O2 and phosphorylated proteins, respectively. This structure, with its sulfur vacancies and coaxial layering, significantly improved sensitivity of electrochemical sensors, allowing it to detect H2O2 in a range of 0.01-1 mM with a detection limit of 4.80 µM, and phosphoproteins in a range of 0.01-1 mg/mL with a threshold of 0.917 µg/mL. Furthermore, the miniature sensor demonstrates outstanding performance in detecting analytes in both simulated and real sweat. Comprehensive biosafety assessments have validated the compatibility of the electrode material, underscoring the potential of sensor as a reliable and non-invasive method for tracking biomarkers linked to CNS disorders. This microfluidic wearable electrochemical biosensor with high performance and biosafety features shows great promise for the development of cutting-edge wearable technology devices for tracking CNS disease indicators.


Subject(s)
Biomarkers , Biosensing Techniques , Electrochemical Techniques , Hydrogen Peroxide , Nanotubes, Carbon , Oxidative Stress , Sweat , Titanium , Wearable Electronic Devices , Humans , Biosensing Techniques/instrumentation , Biomarkers/analysis , Nanotubes, Carbon/chemistry , Sweat/chemistry , Hydrogen Peroxide/analysis , Hydrogen Peroxide/chemistry , Electrochemical Techniques/instrumentation , Electrochemical Techniques/methods , Titanium/chemistry , Molybdenum/chemistry , Ferrocyanides/chemistry , Disulfides/chemistry , Limit of Detection , Equipment Design
10.
ACS Appl Mater Interfaces ; 16(21): 27065-27074, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38748094

ABSTRACT

Wearable biomedical sensors have enabled noninvasive and continuous physiological monitoring for daily health management and early detection of chronic diseases. Among biomedical sensors, wearable pH sensors attracted significant interest, as pH influences most biological reactions. However, conformable pH sensors that have sweat absorption ability, are self-adhesive to the skin, and are gas permeable remain largely unexplored. In this study, we present a pioneering approach to this problem by developing a Janus membrane-based pH sensor with self-adhesiveness on the skin. The sensor is composed of a hydrophobic polyurethane-polydimethylsiloxane porous hundreds nanometer-thick substrate and a hydrophilic poly(vinyl alcohol)-poly(acrylic acid) porous nanofiber layer. This Janus membrane exhibits a thickness of around 10 µm, providing a conformable adhesion to the skin. The simultaneous realization of solution absorption, gas permeability, and self-adhesiveness makes it suitable for long-term continuous monitoring without compromising the comfort of the wearer. The pH sensor was tested successfully for continuous monitoring for 7.5 h, demonstrating its potential for stable analysis of skin health conditions. The Janus membrane-based pH sensor holds significant promise for comprehensive skin health monitoring and wearable biomedical applications.


Subject(s)
Polyurethanes , Sweat , Wearable Electronic Devices , Hydrogen-Ion Concentration , Humans , Sweat/chemistry , Polyurethanes/chemistry , Permeability , Acrylic Resins/chemistry , Membranes, Artificial , Dimethylpolysiloxanes/chemistry , Adhesiveness , Nanofibers/chemistry , Biosensing Techniques/methods , Biosensing Techniques/instrumentation , Porosity , Gases/chemistry , Gases/analysis
11.
Biosens Bioelectron ; 258: 116358, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38718634

ABSTRACT

Wearable sensors for sweat glucose monitoring are gaining massive interest as a patient-friendly and non-invasive way to manage diabetes. The present work offers an alternative on-body method employing an all-printed flexible electrochemical sensor to quantify the amount of glucose in human sweat. The working electrode of the glucose sensor was printed using a custom-formulated ink containing multi-walled carbon nanotube (MWCNT), poly (3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOPT: PSS), and iron (II, III) oxide (Fe3O4) nanoparticles. This novel ink composition has good conductivity, enhanced catalytic activity, and excellent selectivity. The working electrode was modified using Prussian blue (PB) nanoparticles and glucose oxidase enzyme (GOx). The sensor displayed a linear chronoamperometric response to glucose from 1 µM to 400 µM, with a precise detection limit of ∼0.38 µM and an impressive sensitivity of ∼4.495 µAµM-1cm-2. The sensor stored at 4 °C exhibited excellent stability over 60 days, high selectivity, and greater reproducibility. The glucose detection via the standard addition method in human sweat samples acquired a high recovery rate of 96.0-98.6%. Examining human sweat during physical activity also attested to the biosensor's real-time viability. The results also show an impressive correlation between glucose levels obtained from a commercial blood glucose meter and sweat glucose concentrations. Remarkably, the present results outperform previously published printed glucose sensors in terms of detection range, low cost, ease of manufacturing, stability, selectivity, and wearability.


Subject(s)
Biosensing Techniques , Glucose Oxidase , Glucose , Limit of Detection , Nanocomposites , Nanotubes, Carbon , Sweat , Wearable Electronic Devices , Humans , Biosensing Techniques/instrumentation , Nanotubes, Carbon/chemistry , Sweat/chemistry , Nanocomposites/chemistry , Glucose/analysis , Glucose Oxidase/chemistry , Ink , Electrochemical Techniques , Ferric Compounds/chemistry , Ferrocyanides/chemistry , Polymers/chemistry , Reproducibility of Results , Bridged Bicyclo Compounds, Heterocyclic/chemistry , Polystyrenes
12.
Biosens Bioelectron ; 258: 116354, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38723331

ABSTRACT

Real-time monitoring of biological markers in sweat is a valuable tool for health assessment. In this study, we have developed an innovative wearable biosensor for precise analysis of glucose in sweat during physical activities. The sensor is based on a single-atom catalyst of platinum (Pt) uniformly dispersed on tricobalt tetroxide (Co3O4) nanorods and reduced graphene oxide (rGO), featuring a unique three-dimensional nanostructure and excellent glucose electrocatalytic performance with a wide detection range of 1-800 µM. Additionally, density functional theory calculations have revealed the synergetic role of Pt active sites in the Pt single-atom catalyst (Co3O4/rGO/Pt) in glucose adsorption and electron transfer, thereby enhancing sensor performance. To enable application in wearable devices, we designed an S-shaped microfluidic chip and a point-of-care testing (POCT) device, both of which were validated for effectiveness through actual use by volunteers. This research provides valuable insights and innovative approaches for analyzing sweat glucose using wearable devices, contributing to the advancement of personalized healthcare.


Subject(s)
Biosensing Techniques , Glucose , Graphite , Platinum , Sweat , Wearable Electronic Devices , Biosensing Techniques/instrumentation , Sweat/chemistry , Platinum/chemistry , Humans , Catalysis , Glucose/analysis , Graphite/chemistry , Electrochemical Techniques/instrumentation , Nanotubes/chemistry , Limit of Detection , Equipment Design , Oxides/chemistry
13.
Sci Rep ; 14(1): 11526, 2024 05 21.
Article in English | MEDLINE | ID: mdl-38773136

ABSTRACT

This paper reports on the development of a flexible-wearable potentiometric sensor for real-time monitoring of sodium ion (Na+), potassium ion (K+), and pH in human sweat. Na0.44MnO2, polyaniline, and K2Co[Fe(CN)6] were used as sensing materials for Na+, H+ and K+ monitoring, respectively. The simultaneous potentiometric Na+, K+, and pH sensing were carried out by the developed sensor, which enables signal collection and transmission in real-time to the smartphone via a Wi-Fi access point. Then, the potentiometric responses were evaluated by a designed android application. Na+, K+, and pH sensors illustrated high sensitivity (59.7 ± 0.8 mV/decade for Na+, 57.8 ± 0.9 mV/decade for K+, and 54.7 ± 0.6 mV/pH for pH), excellent stability, and good batch-to-batch reproducibility. The results of on-body experiments demonstrated that the proposed platform is capable of real-time monitoring of the investigated ions.


Subject(s)
Potassium , Potentiometry , Sodium , Sweat , Wearable Electronic Devices , Humans , Hydrogen-Ion Concentration , Potentiometry/methods , Potentiometry/instrumentation , Sodium/analysis , Sweat/chemistry , Potassium/analysis , Biosensing Techniques/instrumentation , Biosensing Techniques/methods , Wireless Technology/instrumentation , Smartphone , Reproducibility of Results
14.
Biosens Bioelectron ; 259: 116386, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38749285

ABSTRACT

Faced with the increasing prevalence of chronic kidney disease (CKD), portable monitoring of CKD-related biomarkers such as potassium ion (K+), creatinine (Cre), and lactic acid (Lac) levels in sweat has shown tremendous potential for early diagnosis. However, a rapidly manufacturable portable device integrating multiple CKD-related biomarker sensors for ease of sweat testing use has yet to be reported. Here, a portable electrochemical sensor integrated with multifunctional laser-induced graphene (LIG) circuits and laser-printed nanomaterials based working electrodes fabricated by fully automatic laser manufacturing is proposed for non-invasive human kidney function monitoring. The sensor comprises a two-electrode LIG circuit for K+ sensing, a three-electrode LIG circuit with a Kelvin compensating connection for Cre and Lac sensing, and a printed circuit board based portable electrochemical workstation. The working electrodes containing Cu and Cu2O nanoparticles fabricated by two-step laser printing show good sensitivity and selectivity toward Cre and Lac sensing. The sensor circuits are fabricated by generating a hydrophilic-hydrophobic interface on a patterned LIG through laser. This sensor recruited rapid laser manufacturing and integrated with multifunctional LIG circuits and laser-printed nanomaterials based working electrodes, which is a potential kidney function monitoring solution for healthy people and kidney disease patients.


Subject(s)
Biosensing Techniques , Graphite , Lasers , Nanostructures , Renal Insufficiency, Chronic , Humans , Graphite/chemistry , Biosensing Techniques/instrumentation , Biosensing Techniques/methods , Nanostructures/chemistry , Renal Insufficiency, Chronic/diagnosis , Kidney/chemistry , Creatinine/analysis , Electrochemical Techniques/instrumentation , Electrochemical Techniques/methods , Sweat/chemistry , Equipment Design , Lactic Acid/analysis , Electrodes , Kidney Function Tests/instrumentation , Biomarkers/analysis , Copper/chemistry
15.
Int J Mol Sci ; 25(9)2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38731882

ABSTRACT

In cholinergic urticaria (CholU), small, itchy wheals are induced by exercise or passive warming and reduced sweating has been reported. Despite the described reduced muscarinic receptor expression, sweat duct obstruction, or sweat allergy, the underlying pathomechanisms are not well understood. To gain further insights, we collected skin biopsies before and after pulse-controlled ergometry and sweat after sauna provocation from CholU patients as well as healthy controls. CholU patients displayed partially severely reduced local sweating, yet total sweat volume was unaltered. However, sweat electrolyte composition was altered, with increased K+ concentration in CholU patients. Formalin-fixed, paraffin-embedded biopsies were stained to explore sweat leakage and tight junction protein expression. Dermcidin staining was not found outside the sweat glands. In the secretory coils of sweat glands, the distribution of claudin-3 and -10b as well as occludin was altered, but the zonula occludens-1 location was unchanged. In all, dermcidin and tight junction protein staining suggests an intact barrier with reduced sweat production capability in CholU patients. For future studies, an ex vivo skin model for quantification of sweat secretion was established, in which sweat secretion could be pharmacologically stimulated or blocked. This ex vivo model will be used to further investigate sweat gland function in CholU patients and decipher the underlying pathomechanism(s).


Subject(s)
Sweat Glands , Sweat , Tight Junctions , Humans , Sweat Glands/metabolism , Female , Tight Junctions/metabolism , Male , Sweat/metabolism , Adult , Middle Aged , Urticaria/metabolism , Urticaria/pathology , Sweating , Skin/metabolism , Skin/pathology
16.
ACS Sens ; 9(6): 3212-3223, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38820602

ABSTRACT

Wearable sweat biosensors have shown great progress in noninvasive, in situ, and continuous health monitoring to demonstrate individuals' physiological states. Advances in novel nanomaterials and fabrication methods promise to usher in a new era of wearable biosensors. Here, we introduce a three-dimensional (3D)-printed flexible wearable health monitor fabricated through a unique one-step continuous manufacturing process with self-supporting microfluidic channels and novel single-atom catalyst-based bioassays for measuring the sweat rate and concentration of three biomarkers. Direct ink writing is adapted to print the microfluidic device with self-supporting structures to harvest human sweat, which eliminates the need for removing sacrificial supporting materials and addresses the contamination and sweat evaporation issues associated with traditional sampling methods. Additionally, the pick-and-place strategy is employed during the printing process to accurately integrate the bioassays, improving manufacturing efficiency. A single-atom catalyst is developed and utilized in colorimetric bioassays to improve sensitivity and accuracy. A feasibility study on human skin successfully demonstrates the functionality and reliability of our health monitor, generating reliable and quantitative in situ results of sweat rate, glucose, lactate, and uric acid concentrations during physical exercise.


Subject(s)
Biomarkers , Printing, Three-Dimensional , Sweat , Wearable Electronic Devices , Humans , Sweat/chemistry , Biomarkers/analysis , Biosensing Techniques/instrumentation , Biosensing Techniques/methods , Lab-On-A-Chip Devices , Lactic Acid/analysis , Microfluidic Analytical Techniques/instrumentation , Microfluidic Analytical Techniques/methods , Uric Acid/analysis , Colorimetry/instrumentation , Colorimetry/methods
17.
Sci Rep ; 14(1): 12570, 2024 05 31.
Article in English | MEDLINE | ID: mdl-38821996

ABSTRACT

Due to growing interest in the investigation of exercise induced sweat biomarkers to assess an individual's health and the increasing prevalence of tattoos in the world's population, investigators sought to determine whether local sweat concentrations and excretion rates of epidermal growth factor (EGF), interleukin (IL) -1α, IL-6, IL-8, cortisol, glucose, blood urea nitrogen (BUN), and lactate differ between tattooed and contralateral non-tattooed skin during exercise. Sixteen recreational exercisers [female (50%)] (age = 25-48 years) with ≥ 1 unilateral permanent tattoo [median tattoo age = 6 years, IQR = 5] on the arm/torso completed an outdoor group fitness session. There were no significant differences between tattooed and non-tattooed skin for sweat EGF, IL-1α, IL-8, cortisol, glucose, BUN, or lactate concentrations. There were no significant differences between tattooed and non-tattooed skin for sweat EGF, IL-1α, IL-8, cortisol, glucose, BUN, or lactate excretion rate. Findings suggest that permanent tattoos older than 1 year may not impact local sweat EGF, IL-1α, IL-8, cortisol, glucose, BUN, and lactate concentrations or excretion rates during exercise.Clinical trial identifier NCT04920266 was registered on June 9, 2021.


Subject(s)
Blood Urea Nitrogen , Cytokines , Exercise , Hydrocortisone , Lactic Acid , Sweat , Tattooing , Adult , Female , Humans , Male , Middle Aged , Biomarkers/analysis , Cytokines/metabolism , Cytokines/analysis , Exercise/physiology , Glucose/metabolism , Glucose/analysis , Hydrocortisone/analysis , Hydrocortisone/blood , Hydrocortisone/metabolism , Lactic Acid/metabolism , Lactic Acid/analysis , Sweat/metabolism , Sweat/chemistry
18.
PLoS One ; 19(5): e0304555, 2024.
Article in English | MEDLINE | ID: mdl-38820269

ABSTRACT

Inflammation is a key driver in the pathogenesis of cystic fibrosis (CF). We assessed the effectiveness of elexacaftor/tezacaftor/ivacaftor (ETI) therapy on downregulating systemic and immune cell-derived inflammatory cytokines. We also monitored the impact of ETI therapy on clinical outcome. Adults with CF, heterozygous for F508del (n = 19), were assessed at baseline, one month and three months following ETI therapy, and clinical outcomes were measured, including sweat chloride, lung function, weight, neutrophil count and C-reactive protein (CRP). Cytokine quantifications were measured in serum and following stimulation of peripheral blood mononuclear cells (PBMCs) with lipopolysaccharide (LPS) and adenosine triphosphate and analysed using LEGEND plex™ Human Inflammation Panel 1 by flow cytometry (n = 19). ASC specks were measured in serum and caspase-1 activity and mRNA levels determined from stimulated PBMCs were determined. Patients remained stable over the study period. ETI therapy resulted in decreased sweat chloride concentrations (p < 0.0001), CRP (p = 0.0112) and neutrophil count (p = 0.0216) and increased percent predicted forced expiratory volume (ppFEV1) (p = 0.0399) from baseline to three months, alongside a trend increase in weight. Three months of ETI significantly decreased IL-18 (p< 0.0011, p < 0.0001), IL-1ß (p<0.0013, p = 0.0476), IL-6 (p = 0.0109, p = 0.0216) and TNF (p = 0.0028, p = 0.0033) levels in CF serum and following PBMCs stimulation respectively. The corresponding mRNA levels were also found to be reduced in stimulated PBMCs, as well as reduced ASC specks and caspase-1 levels, indicative of NLRP3-mediated production of pro-inflammatory cytokines, IL-1ß and IL-18. While ETI therapy is highly effective at reducing sweat chloride and improving lung function, it also displays potent anti-inflammatory properties, which are likely to contribute to improved long-term clinical outcomes.


Subject(s)
Aminophenols , Anti-Inflammatory Agents , Benzodioxoles , Cystic Fibrosis Transmembrane Conductance Regulator , Cystic Fibrosis , Cytokines , Indoles , Quinolones , Humans , Cystic Fibrosis/drug therapy , Cystic Fibrosis/genetics , Benzodioxoles/therapeutic use , Benzodioxoles/pharmacology , Adult , Aminophenols/therapeutic use , Female , Indoles/therapeutic use , Indoles/pharmacology , Male , Cystic Fibrosis Transmembrane Conductance Regulator/genetics , Quinolones/therapeutic use , Anti-Inflammatory Agents/therapeutic use , Anti-Inflammatory Agents/pharmacology , Cytokines/metabolism , Cytokines/blood , Pyrazoles/therapeutic use , Pyrazoles/pharmacology , Young Adult , Pyridines/therapeutic use , Pyridines/pharmacology , Leukocytes, Mononuclear/metabolism , Leukocytes, Mononuclear/drug effects , C-Reactive Protein/metabolism , Pyrroles/therapeutic use , Pyrroles/pharmacology , Sweat/chemistry , Sweat/metabolism , Pyrrolidines
19.
Anal Chem ; 96(22): 9159-9166, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38726669

ABSTRACT

Flexible photonics offers the possibility of realizing wearable sensors by bridging the advantages of flexible materials and photonic sensing elements. Recently, optical resonators have emerged as a tool to improve their oversensitivity by integrating with flexible photonic sensors. However, direct monitoring of multiple psychological information on human skin remains challenging due to the subtle biological signals and complex tissue interface. To tackle the current challenges, here, we developed a functional thin film laser formed by encapsulating liquid crystal droplet lasers in a flexible hydrogel for monitoring metabolites in human sweat (lactate, glucose, and urea). The three-dimensional cross-linked hydrophilic polymer serves as the adhesive layer to allow small molecules to penetrate from human tissue to generate strong light--matter interactions on the interface of whispering gallery modes resonators. Both the hydrogel and cholesteric liquid crystal microdroplets were modified specifically to achieve high sensitivity and selectivity. As a proof of concept, wavelength-multiplexed sensing and a prototype were demonstrated on human skin to detect human metabolites from perspiration. These results present a significant advance in the fabrication and potential guidance for wearable and functional microlasers in healthcare.


Subject(s)
Hydrogels , Lasers , Skin , Sweat , Wearable Electronic Devices , Humans , Skin/chemistry , Skin/metabolism , Hydrogels/chemistry , Sweat/chemistry , Sweat/metabolism , Glucose/analysis , Glucose/metabolism , Urea/chemistry , Urea/analysis , Lactic Acid/analysis , Lactic Acid/chemistry , Liquid Crystals/chemistry , Methylgalactosides
20.
Biosens Bioelectron ; 260: 116430, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38815465

ABSTRACT

Sweat contains abundant physiological and metabolic data to evaluate an individual's physical health. Since the non-exercise sweat secretion rate is low, with an average value of 1-10 µl h-1 cm-2, sweat is generally collected during exercise for existing wearable sweat sensors. To expand their applications to include daily scenarios, these sensors developed for sports and fitness are challenged by the difficulty of collecting trace amounts of sweat. This study proposes a wearable patch inspired by the hierarchical structure of Sarracenia trichomes, allowing for the spontaneous and fast collection of a small amount of secreted sweat. The patch contains microfluidic channels featuring a 20 µm-wide rib structure, fully utilizing the capillary force, thereby eliminating the issue of sweat hysteresis. Furthermore, with only 0.5 µl of the sweat secreted at the collection site, it can converge on the detection medium located within the center reservoir. Volunteer verification demonstrated a twofold increase in sweat collection efficiency compared to traditional wearable patches. This patch serves as an efficient sweat-collection configuration, promising potential for diverse in situ sweat colorimetric analyses.


Subject(s)
Biosensing Techniques , Equipment Design , Sweat , Wearable Electronic Devices , Sweat/chemistry , Humans , Biosensing Techniques/instrumentation , Colorimetry/instrumentation
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