Designing biomimetic substrates and electrodes for bioelectronic devices with the necessary mechanical, electrical, and biological properties is critical considering the potential mismatch between soft tissue and rigid electronics, where incompatibility leads to decreased device performance, delamination, inflammation, and discomfort. There is an unmet engineering and clinical need for epidermal bioelectronics that are bioinert, can emulate host tissue mechanical properties, demonstrate low bulk resistivity, and are flexible and scalable. To address this shortcoming, this work describes innovations pertaining to the development of a hydrophilic, biocompatible nanocomposite comprised of carbon black (CB), polyvinyl alcohol (PVA), and glycerol for neuro-muscular and rehabilitative applications. We find that this materials platform (herein referred to as CB-AFTIDerm), comprised of 3 wt% PVA and 5 wt% glycerol, demonstrated superior biocompatibility (cytotoxic grade of 0), high flexibility (maximum of 140% stretchability and as low as 1% ∆R/R at 3.5-cm bending diameter), low electrical resistivity (as low as 0.6 Ω.cm), and electrical stability over a long-term duration (at 235 Ω in the lateral direction and between 300 Ω and 400 Ω in the transverse direction for a 24 h period). We find that the optimal CB concentration for our material platform is at 50% CB. We present examples for use in electroceutical therapy of chronic wounds and in orthopedic rehabilitation for monitoring joint angles. Achieving such results from a material, mechanics, biological, and electrical perspective facilitates the translational potential of this materials platform for the digital health and wearable technologies community to improve patient outcomes.
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http://dx.doi.org/10.1002/jbm.b.35559 | DOI Listing |
J Am Med Inform Assoc
March 2025
National Institute on Minority Health and Health Disparities, National Institutes of Health, Rockville, MD 20818, United States.
Objectives: The goal of this study was to investigate the association of perceived discrimination with health outcomes and disparities.
Materials And Methods: The study cohort consists of 60 180 participants from the 4 largest self-identified race and ethnicity (SIRE) groups in the All of Us Research Program participant body: Asian (1291), Black (4726), Hispanic (5336), and White (48 827). A perceived discrimination index (PDI) was derived from participant responses to the "Social Determinants of Health" survey, and the All of Us Researcher Workbench was used to analyze associations and mediation effects of PDI and SIRE with 1755 diseases.
Tissue Eng Regen Med
March 2025
Department of Chemical Engineering, Kwangwoon University, 20 Kwangwoon-Ro, Nowon-Gu, Seoul, 01897, Republic of Korea.
Background: Strontium ranelate (SR) is an effective bone regeneration drug; however, its low bioavailability and strong hydrophilicity cause a strong cytotoxicity, venous thrombosis, and allergic reactions when administered in its free form. This study aims to enhance the SR bioavailability by utilizing nanostructured lipid carriers (NLC) as a drug delivery system (DDS).
Methods: To improve the drug delivery efficiency and sustained release of the NLC, their surfaces were coated with chitosan oligosaccharide (COS), a natural polymer.
Small
March 2025
Multidisciplinary Platform of Advanced Engineering, Department of Chemical Engineering, School of Engineering, Monash University Malaysia, Jalan Lagoon Selatan, Bandar Sunway, Selangor, 47500, Malaysia.
The design of highly efficient photocatalysts to photoreduce nitrogen (N) to ammonia (NH) under mild conditions is extremely challenging. In this work, various molar ratio of molybdenum (Mo) is incorporated into BiOCl via a hydrothermal process. The resulting Mo-doped BiOCl exhibits remarkable solar-driven activity for N photo fixation without any scavengers or sacrificial agents.
View Article and Find Full Text PDFAdv Mater
March 2025
Department of Materials Science and Engineering, Southern University of Science and Technology, Shenzhen, Guangdong, 518055, P. R. China.
P2-type NaNiMnO (NNMO) as cathode material for sodium-ion batteries (SIBs) largely suffers from continuous accumulation of local stress caused by destructive structural evolution and irreversible oxygen loss upon cycling, leading to rapid capacity degradation. Herein, a strategy of negative enthalpy doping (NED), wherein transition metal (TM) sites are substituted with 0.01 mol each Sn, Sb, Cu, Ti, Mg, and Zn to increase the stability of the TM layers, is proposed.
View Article and Find Full Text PDFNanomaterials (Basel)
February 2025
School of Chemistry and Materials Science, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, 1 Sub-Lane Xiangshan, Hangzhou 310024, China.
Oxidative stress, resulting from an imbalance between reactive oxygen species (ROS) and antioxidants, is a critical factor in the pathogenesis of a wide range of diseases. The excessive accumulation of ROS can cause severe cellular damage, leading to tissue dysfunction and disease progression. The development of nanomaterials with antioxidant properties presents a promising strategy for addressing this challenge.
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