Bioengineering Systems for Modulating Notch Signaling in Cardiovascular Development, Disease, and Regeneration (open access)

Bioengineering Systems for Modulating Notch Signaling in Cardiovascular Development, Disease, and Regeneration

This article is a review summarizing the significant roles of Notch signaling in individual cardiac cell types. It covers the bioengineering systems of microfluidics, hydrogel, spheroid, and 3D bioprinting and provides insights into ancillary supports of bioengineering systems, varied types of cardiovascular cells, and advanced characterization approaches in further refining Notch signaling in cardiovascular development, disease, and regeneration.
Date: September 30, 2021
Creator: Huerta Gomez, Angello; Joshi, Sanika; Yang, Yong; Tune, Johnathan D. & Zhao, Ming-Tao
Object Type: Article
System: The UNT Digital Library
Modulating 3D Cellular Connectivity Via Spatially-Controlled Programmable Bonding (open access)

Modulating 3D Cellular Connectivity Via Spatially-Controlled Programmable Bonding

Data management plan for the grant "Modulating 3D Cellular Connectivity Via Spatially-Controlled Programmable Bonding." This project seeks to demonstrate proof-of-concept for technology that allows one to systematically place cells on substrates to create complex 3D assemblies with precise control over individual cellular interactions. The technology generated within this proposal will open new avenues for studying multicellular communication pathways, stem cell differentiation, and understanding developmental processes. Spatially-defined cell-cell communication plays a critical role in numerous disease and developmental processes that include osteoarthritic degeneration, cancer metastasis, and organ regeneration.
Date: 2021-09-01/2023-08-31
Creator: Meckes, Brian
Object Type: Text
System: The UNT Digital Library
Development of Genetic Sensors and Circuits for Creating Novel Cellular Behaviors (open access)

Development of Genetic Sensors and Circuits for Creating Novel Cellular Behaviors

Data management plan for the grant "Development of Genetic Sensors and Circuits for Creating Novel Cellular Behaviors." This research is expected to advance the capability to engineer organisms for biomedical uses. Specifically, the outcomes of this project include design principles for engineering regulators from different protein families, an extensive set of genetic sensors for detecting a broad range of signals, and novel genetic circuits that address uprising problems in biomedical fields. It uses a novel multidisciplinary approach to enhance the health of the nation by creating tools that facilitate both medical-related discoveries and the implementation of new strategies for biomedical applications.
Date: 2021-09-15/2026-08-31
Creator: Chan, Clement T. Y.
Object Type: Text
System: The UNT Digital Library