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Biology subjects

Sands, I.

Publications and source records attributed to Sands, I..

2 recordsLinked to original sources

Injectable Janus Base Nanomatrix (JBNm) in Maintaining Long-Term Homeostasis of Regenerated Cartilage for Tissue Chip Applications

Engineered cartilage tissues have wide applications in in vivo cartilage repair as well as in vitro models, such as cartilage-on-a-chip or cartilage tissue chips. Currently, most cartilage tissue engineering approaches focus on promoting chondrogenesis of stem cells to produce regenerated cartilage. However, this regenerated cartilage can dedifferentiate into fibrotic tissue or further differentiate into hypertrophic or calcified cartilage. One of the most challenging objectives in cartilage tissue engineering is to maintain long-term cartilage homeostasis. Since the microenvironment of engineered cartilage tissue is crucial for stem cell adhesion, proliferation, differentiation, and function, we aim to develop a novel scaffold that can maintain the long-term homeostasis of regenerated cartilage. Therefore, we developed a library of Janus base nanomatrices (JBNms), composed of DNA-inspired Janus nanotubes (JBNts) as well as cartilage extracellular matrix (ECM) proteins. The JBNms were developed to selectively promote chondro-lineage cell functions while inhibiting bone and endothelial cell growth. More importantly, the JBNm can effectively promote chondrogenesis while inhibiting hypertrophy, osteogenesis, angiogenesis, and dedifferentiation. Additionally, the JBNm is injectable, forming a solid scaffold suitable for producing and maintaining regenerated cartilage tissue in microfluidic chips, making it ideal for tissue chip applications. In this study, we successfully created cartilage tissue chips using JBNms. These chips can model cartilage tissue even after long-term culture and can also mimic arthritis progression, making them useful for drug screening. Thus, we have developed a novel nanomaterial approach for improved cartilage tissue engineering and cartilage tissue chip applications.

bioengineering↗

Electrically Conductive DNA-Inspired Coating for Intracortical Neural Microelectrodes

Different from conventional electrodes, intracortical neural microelectrodes are the size of one or several neural cells. Due to the limited space for cell-electrode connections, the bio-integration between each neural cell and the electrode surface is critical. To improve bio-integration and electrode functions, various coating materials (such as conductive polymers (CPs), carbon nanotubes (CNTs), and natural hydrogels) have been developed aiming to provide an enhanced interface for neuron recruitment, bio-anchorage, and electrical function. However, synthetic materials usually have limited biocompatibility and/or relatively high cytotoxicity, while biological materials present poor electrical functions. Therefore, current coatings possess biological, functional or electrochemical limitations that are not optimal for intracortical neural microelectrodes. To overcome this obstacle, we developed an electrically conductive coating based on biological molecules, named Janus base nano-coating (JBNc). JBNc is formed by Janus base nanotubes (JBNts) which are a family of nanotubes assembled from engineered DNA base pair units. Based on the long-distance translocation ability of the {pi} electrons of JBNts, we developed them into an electrically conductive coating on the electrode surface. For the first time, we reported the DNA-inspired JBNc had an electrochemical performance that met and exceeded standard metal electrode surface in cyclic voltammetry, impedance spectroscopy, charge injection capacity tests, and neural recording. Moreover, we demonstrated enhanced bio-anchorage and microelectrode interface integration using SEM and AFM. Importantly, we demonstrated enhanced functional response to JBNc microelectrodes with immunohistochemical staining and RNA sequencing (RNAseq) analysis. Using cell viability assays, we also showed the benefits of DNA-mimicking chemistry of Janus base nanomaterials compared to conventional microelectrode coatings. We anticipate that these results will serve as a foundation for the continued development and study of JBNc to enhance interface dynamics and ultimately the performance and reliability of brain microelectrodes.

bioengineering↗