Engineered Heart Tissue (EHT) Devices based on Ion Conductive Guanosine-Quadruplex (GQ) Hydrogels: A Route to Advance In Vitro 3D Cardiac Tissue Models
Sector: Road • Location: Netherlands
Source: EU Funding & Tenders Portal
In this project, a micro-engineered heart tissue (EHT) device that will advance the physiological relevance of current in vitro 3D cardiac tissue models will be developed. In moving towards this goal, this project will synthesize conductive guanosine-quadruplex (GQ) hydrogels and implement them as cell scaffolds in EHT devices. Key aspects of biomaterials design are the unique conductive and hiera
Project Information FAQ
Project Information
Want to explore the full details? View the full report
Participants
Sponsoring Agency | Obfuscated Data |
Company | Obfuscated Data |
Status
Original status | ended |
Taiyo status | Obfuscated Data |
Taiyo last update | 00-00-0000 |
Available timestamps | 00-00-0000 |
Available timestamp type | Obfuscated Data |
Contact
Contact name | Obfuscated Data |
Phone | 0000000000 |
ObfuscatedData@email.com | |
Address | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Description
Description | In this project, a micro-engineered heart tissue (EHT) device that will advance the physiological relevance of current in vitro 3D cardiac tissue models will be developed. In moving towards this goal, this project will synthesize conductive guanosine-quadruplex (GQ) hydrogels and implement them as cell scaffolds in EHT devices. Key aspects of biomaterials design are the unique conductive and hierarchical 3D fibrous network and the good biocompatibility of GQ hydrogels, which will support cardiac cell culture. Upon integration in the EHT platform, the mentioned properties of GQ hydrogels will enable electrical stimulation of embedded cardiac cells under mild pacing voltages, thereby promoting the formation of morphologically and functionally mature cardiac tissue. GQ hydrogels will demonstrate high flexibility and potentially broad utility as a biocompatible and conductive biomaterial for in vitro cell experimentation. The outcomes of this project will expand the horizon of pre-clinical 3D cardiac tissue models, paving the way for future approaches to drug testing and personalized cardiovascular medicine. |
Original sub-sector | Obfuscated |
Original Currency | USD |
Original budget | 000000000000000 |
Procurement method | Obfuscated Data |
Budget | 000000000000000 |
Location
Region | Obfuscated |
Country | Obfuscated |
State | Obfuscated Data |
County | Obfuscated |
Location | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Source
Source reliability | High |
Data quality score | 100% |
Source | Obfuscated Data |
URL | obfuscated_data,obfuscateddata.com |
More Details
Project Type | Obfuscated Data |
Article Published Date | Obfuscated Data |
