SUPERB · StructUral ProtEins foR Biomedical materials
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2020-05-01 → 2022-04-30
- Финансиране от ЕС
- 175 572 €
- Участници
- 1
- Схема
- MSCA-IF-EF-SE
Линиите свързват координатора с партньорите.
Накратко на български
Протеинови полимери, създадени чрез компютърно моделиране, се изследват за синтезиране на нови биомедицински материали, подобни на коприната или еластина. Те могат да заменят пластмасовите мрежи в тялото, за да подобрят възстановяването на тъканите и да намалят разходите за здравеопазване.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
StructUral ProtEins foR Biomedical materials
Aging of an increasing global population (with life expectancy predicted to reach 106 years for those born in the EU after 2030) is a serious challenge for public health systems, bringing along a rise in diseases caused by compromised tissues. To that end, the healthcare community is eagerly searching for new, smarter and more sustainable materials to treat those diseases. Developing such materials would contribute to a better health condition for citizens, while reducing the costs of healthcare (expected to rise to double-digit figures in the EU by 2050). In that regard, protein polymers are an interesting source of advanced medical materials, due to their natural abundance, sustainability, easy processability, cytocompatibility, tuneable degradation, bioresorbability, and controllable mechanical properties. These are all interesting features for materials for medical applications. The main hypothesis of the SUPERB (StructUral ProtEins foR Biomedical materials) project is that the discovery of new protein-based materials can be greatly accelerated by the use of computational modelling. The objective is to simulate and manufacture de novo fusion proteins for the synthesis of medical materials that incorporate, heal and regenerate in the body faster and better than current materials, like meshes based on polypropylene, polytetrafluoroethylene and polyethylene tereoxphthalate. These are aspects of great social and commercial relevance. The research performed in this project sits at a crossover between computational modelling, bioprocess engineering and materials science. We first designed fusion proteins computationally through the modular assembly of simplified building block motifs from structural proteins like elastin or silk. These proteins were studied via molecular dynamics simulation to uncover how polymer building blocks (i.e., hydrophilic vs hydrophobic, charged vs uncharged, ordered vs disordered) and their distribution along the polymer chain affected the ability of these proteins to form macroscopic viscoelastic materials (Objective 1). Optimal protein sequences identified via simulations were then biosynthesised through fermentative processes (Objective 2), investigating processing routes to maximise their recovery from the fermentation broth. Finally, the purified proteins will be used to manufacture macroscopic materials (e.g., hydrogels) for biomedical applications (Objective 3). These materials were tested and characterised to validate the predictive power of the computational models.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The SUPERB project will train an experienced researcher (ER), Dr. Diego López Barreiro, in the modelling and manufacture of protein-based polymers for healthcare materials. The ER will combine building blocks of structural proteins like elastin or collagen into de novo fusion protein polymers. The healthcare community is becoming increasingly interested in these polymers as a source of advanced healthcare materials, due to their natural abundance, tuneable degradation, easy processability, cytocompatibility, or controllable physicochemical properties. This project will study how polymer features and processing conditions determine the nanostructure of the materials derived thereof, and hence their macroscopic properties. This will be done through an interdisciplinary approach that will (i) use molecular dynamics simulations to select protein sequences and processing conditions for material manufacture; (ii) biosynthesise selected proteins via fermentative processes; and (iii) fabricate, test and characterise hydrogels or thin film materials for model validation. The excellent knowledge and expertise of the host institution in this crucial field for the EU will ensure the success of this proposal. This project will develop a methodology to improve the rationality and decrease the time needed to develop new protein healthcare materials, reducing animal use and experimental costs. Moreover, while the proposed approach is used here on a limited suite of protein building blocks, it can be applied to any other peptide sequences or biopolymers (e.g., bioactive peptides, bioplastics, nanocellulose), becoming a valuable tool to accelerate the discovery of healthcare materials. Furthermore, the project will support the ER in deepening his expertise in protein materials and expose him to the industrial field. This will also enhance his research, project and IPR management skills, acquiring necessary competences for professional maturity and an independent career.
Оригинален текст от CORDIS (на английски).
Участници
- DSM FOOD SPECIALTIES BV · DelftКоординаторНидерландия
Връзки
Данни: CORDIS, © Европейски съюз
