H2020Индивидуална стипендия2021–2023

MagnetoPrint · Sizing and Magnetically-assisted 3D Printing of Smart Metamaterial Hydrogels for Tissue Engineering

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2021-08-01 → 2023-07-31
Финансиране от ЕС
203 149 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Системата MagnetoPrint разработва 3D принтиране на специални хидрогелове, които се управляват магнитно за създаване на изкуствени тъкани. Това помага за по-точното имитиране на естествената структура на тялото и намалява риска от заразяване при отглеждането на клетките.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

MagnetoPrint: Sizing and Magnetically-assisted 3D Printing of Smart Metamaterial Hydrogels for Tissue Engineering

Tissue engineering is a rapidly growing field with significant potential for repairing damaged organs and improving drug testing methods. One of the primary challenges in tissue engineering is achieving biomimicry, where engineered tissues closely emulate their natural counterparts in terms of structure, function, and mechanical properties. This requires replicating the extracellular matrix (ECM) found in native tissues, which offers mechanical support, biochemical cues, and a scaffold for cell adhesion, playing a pivotal role in tissue development and maturation. Traditional static tissue culture methods have limitations in mimicking the dynamic and mechanically active environments that tissues encounter in the body. Especially for musculoskeletal tissues, maturation under dynamic loading conditions promotes cell proliferation and anisotropic matrix deposition which is important for biomimicry. In the realm of tissue engineering, traditional mechanical contact-based approaches have played a significant role in providing the dynamic loading cues to engineered tissues. However, these methods are not without their limitations. One of the primary drawbacks is the challenge of maintaining sterility during direct mechanical contact with the cultured tissues, which can introduce contamination risks and complicate long-term cultivation. Furthermore, mechanical contact-based methods often offer limited control over the directionality and magnitude of the forces applied to the tissues, which can hinder the precise manipulation necessary for achieving biomimicry and promoting optimal tissue maturation. To address this challenge, this project aimed at developing a new MagnetoPrint system which allows integration of the electromagnetic straining apparatus within the biofabricated tissues to facilitate remote loading and enhancing maturation of engineered tissues. In the system engineered during the course of this project, the electromagnetic forces can be controlled around the tissues, which can induce mechanical strain and deformation in cultured tissues. This closely mimics the dynamic conditions experienced by natural tissues during development and daily activities. In the scope of the project, systems for cartilage have been developed, where both compressive and shear forces can be generated by changing the magnetic domain orientations within the electromagnetic straining system placed over the biofabricated cell-laden constructs. In short-term maturation over 3 weeks (long-term culture experiments are ongoing), the constructs demonstrated enhanced cartilage tissue maturation under dynamic loading compared to the constructs grown in static conditions. This research is currently still ongoing, where long-term maturation of cartilage is being explored and also the system is being adapted to other musculoskeletal tissues such as muscle and tendons.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

3D printing (3DP) technology plays a pivotal role in the biofabrication of engineered tissues which are useful towards several clinical, diagnostic and research applications. Of the different 3DP approaches, extrusion bioprinting (EBp) is the most widely used, for it is cost effective and allows rapid fabrication of physiological scale tissues with controlled placement of different types of encapsulated cells and biomaterials. However, the poor resolution (> 200 µm) of most EBp approaches limits the topographical cues necessary to impart anisotropic cell (avg. ϕ = 20 µm) and extracellular matrix organization within the tissues. Moreover, most tissue engineering approaches do not meet the nutritional requirements of the cells within thick tissues, and utilize static cultures which do not recapitulate the physiological growth conditions. Due to these reasons, the engineered tissues fail to biomimic native tissue properties. The proposed MagnetoPrint process aims to achieve biomimicry via a synergy of chemistry, biology, electromechanical systems design, structural mechanics and multiphysics modeling. First, cell-laden hydrogels are synthesized which could be sized into microstrands (avg. ϕ = 40 µm) during printing, that could impart the relevant anisotropic characteristics. Second, ferromagnetic particles are incorporated within distinct compartments inside the hydrogels to facilitate the deformation of printed tissue in the presence of external magnetic fields. Control of the domain orientations of the magnetic particles is used to impart auxetic properties, to further support nutrient transport and tissue maturation, which is also verified by computational modeling. Third, a complex muscle/tendon interface is printed and matured under the relevant exercising conditions to demonstrate the effectiveness of the project. The process, with its unprecedented features, represents significant progress in the advanced scalable manufacturing of biomimetic engineered tissues.

Оригинален текст от CORDIS (на английски).

Участници

  • EIDGENOESSISCHE TECHNISCHE HOCHSCHULE ZUERICH · ZuerichКоординаторШвейцария

Връзки

Данни: CORDIS, © Европейски съюз