logo

Designing Vascular Geometries in 3D Bioprinted Models for Immuno-oncology

Sector: Education • Location: United Kingdom

Source: EU Funding & Tenders Portal

Project
Ongoing

Cancer is a global challenge. Addressing this, the EU Mission on Cancer aims to improve the lives of >3 million people by 2030. To achieve this goal requires not only new treatments, but also new in vitro platforms to study how their efficacy can be maximised. Cancer immunotherapy has been a promising treatment for certain haematological cancers, but is encountering tremendous challenges when used

Project Information FAQ

Project Information

3 Q
The project “Designing Vascular Geometries in 3D Bioprinted Models for Immuno-oncology” is an infrastructure initiative in the Education sector, located in United Kingdom. Taiyo aggregates data on it from EU Funding & Tenders Portal.

Want to explore the full details? View the full report

Participants

Sponsoring Agency

Obfuscated Data

Company

Obfuscated Data

Status

Original status

ongoing

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

Email

ObfuscatedData@email.com

Address

Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data

Description

Description

Cancer is a global challenge. Addressing this, the EU Mission on Cancer aims to improve the lives of >3 million people by 2030. To achieve this goal requires not only new treatments, but also new in vitro platforms to study how their efficacy can be maximised. Cancer immunotherapy has been a promising treatment for certain haematological cancers, but is encountering tremendous challenges when used for solid cancers. One of the main reasons is that tumours are often protected by an immunosuppressive microenvironment that impedes the delivery and infiltration of immune cells, such as T cells. Specifically, the tumour vasculature is both structurally and functionally abnormal, which interrupts the transport of therapeutic T cells to tumour sites. This project (VASPRINT) will fabricate tumour models containing different vascular architectures. To this end, VASPRINT will combine top-down bioprinting with bottom-up self-assembly methods to create hierarchical vascular networks. VASPRINT will employ analytical tools from graph theory and fractal geometry to gain a quantitative understanding of the vascular structures. The engineered tissue model will be used to address a key question: how does tumour vascular geometry influence T cell trafficking? Despite advancements, the specific effects of vascular geometry on T cell trafficking remain poorly understood. This proposal includes learning bioprinting from the Associated Partner (Harvard University), as well as fractal analysis and modelling from the Beneficiary (University College London). In return, the Researcher will contribute his expertise in the algorithmic design of biomaterial structures (outgoing phase) and developing advanced tumour models for T cell therapy research (return phase). This project aims to advance the scientific understanding of tumour vasculature in the context of immuno-oncology, generating useful insights for therapy development, ultimately contributing to the EU Mission on Cancer.

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