Dynamische Biomaterialien

We study and orchestrate how synthetic materials interact with living cells. We engineer cell-instructive environments and material-based solutions for zero-waste therapeutic solutions

Our group develops hydrogel materials with programmed and tunable properties designed to encapsulate and instruct living cells. We study how living cells and inert matter interact and how these interactions can be exploited to direct cellular functions and ultimately result in therapeutic advantages. We cooperate with synthetic biologists, biophysicists, drug developers and clinicians to explore the application potential of our developments, with a focus on new materials for ophthalmic drug delivery. We contribute to INM’s competence fields opto-interactive and bio-intelligent materials. Our research addresses biomedical needs.

Prof. Dr. Aránzazu del Campo
Prof. Dr. Aránzazu del Campo
Leiterin Dynamische Biomaterialien
Telefon: +49 (0)681-9300-510

Kontakt

Dr. Aleeza Farrukh
Stv. Leiterin Dynamische Biomaterialien
Telefon: +49 (0)681-9300-315
Martina Bonnard
Sekretärin
Telefon: +49 (0)681-9300-397
Mitarbeiter/innen
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E-Mail: lennart.weismantel@leibniz-inm.de
Forschung

Hydrogels with latent properties

By integrating phototriggers and light-responsive molecular motors in polymeric networks, we develop 4D hydrogels with optoregulated (bio)chemical activity, crosslinking, degradation, or mechanoactuation. These are used for biophysical studies of cell response to changes in the biochemical and mechanical signals of the extracellular environment.

Model Cellular Microenvironments

We build synthetic models of cell-matrix and cell-cell interfaces with encoded biochemical, mechanical and dimensional signals. To accelerate discovery, we develop material microarrays for high-throughput biophysical experimentation and apply them to study multifactorial cell responses.

Living Therapeutic Devices

We develop bioinks and apply biofabrication technologies for functional and safe encapsulation of cells in medical devices. We focus on self-replenishable living therapeutic materials which integrate drug biofactories and have unlimited therapeutic release. We aim for innovation in ocular therapeutics with living, self-replenishable drug-eluting contact lenses.

Partner

Publikationen

2021
Thiol-Methylsulfone-Based Hydrogels for Cell Encapsulation: Reactivity Optimization of Aryl-Methylsulfone Substrate for Fine-Tunable Gelation Rate and Improved Stability

Paez, Julieta I. | de Miguel-Jiménez, Adrián | Valbuena-Mendoza, Rocío | Rathore, Aditi | Jin, Minye | Gläser, Alisa | Pearson, Samuel | del Campo, Aránzazu

Biomacromolecules , 2021, 22 (7), 2874–2886.
https://doi.org/10.1021/acs.biomac.1c00256

OPEN ACCESS Weiterlesen
Lighting the Path: Light Delivery Strategies to Activate Photoresponsive Biomaterials In Vivo

Pearson, Samuel | Feng, Jun | del Campo, Aránzazu

Advanced Functional Materials , 2021, 31 (50), 2105989.
https://onlinelibrary.wiley.com/doi/abs/10.1002/adfm.202105989

OPEN ACCESS Weiterlesen
Emerging Biofabrication Techniques: A Review on Natural Polymers for Biomedical Applications

Puertas-Bartolomé, María | Mora-Boza, Ana | García-Fernández, Luis

Polymers , 2021, 13 (8), 1209.
https://www.mdpi.com/2073-4360/13/8/1209

OPEN ACCESS Weiterlesen
Development of bioactive catechol functionalized nanoparticles applicable for 3D bioprinting

Puertas-Bartolomé, María | Włodarczyk-Biegun, Małgorzata K. | del Campo, Aránzazu | Vázquez-Lasa, Blanca | San Román, Julio

Materials Science and Engineering: C , 2021, 131 112515.
https://www.sciencedirect.com/science/article/pii/S092849312100655X

OPEN ACCESS Weiterlesen
Thiol-Methylsulfone-Based Hydrogels for Cell Encapsulation: Reactivity Optimization of Aryl-Methylsulfone Substrate for Fine-Tunable Gelation Rate and Improved Stability

Paez, Julieta I. | de Miguel-Jiménez, Adrián | Valbuena-Mendoza, Rocío | Rathore, Aditi | Jin, Minye | Gläser, Alisa | Pearson, Samuel | del Campo, Aránzazu

Biomacromolecules , 2021, 22 (7), 2874–2886.
https://doi.org/10.1021/acs.biomac.1c00256

Targeting the Microtubule-Network Rescues CTL Killing Efficiency in Dense 3D Matrices

Zhao, Renping | Zhou, Xiangda | Khan, Essak S. | Alansary, Dalia | Friedmann, Kim S. | Yang, Wenjuan | Schwarz, Eva C. | del Campo, Aránzazu | Hoth, Markus | Qu, Bin

Frontiers in Immunology , 2021, 12 (3309), 729820.
https://www.frontiersin.org/article/10.3389/fimmu.2021.729820

OPEN ACCESS Weiterlesen
Targeting the Microtubule-network to improve CTL killing capacity in dense 3D matrices

Zhao, Renping | Zhou, Xiangda | Khan, Essak S. | Alansary, Dalia | Friedmann, Kim S. | Yng, Wenjuan | Schwarz, Eva C. | del Campo, Aránzazu | Hoth, Markus | Qu, Bin

European Journal of Immunology , 2021, 51 46.
https://onlinelibrary.wiley.com/doi/epdf/10.1002/eji.202170200

2020
Anti-correlation of HER2 and focal adhesion complexes in the plasma membrane

Weinberg, Florian | Han, Mitchell Kim Liong | Dahmke, Indra Navina | Del Campo, Aránzazu | de Jonge, Niels

PLOS ONE , 2020, 15 (6), e0234430.
https://doi.org/10.1371/journal.pone.0234430

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Printed Soft Optical Waveguides of PLA Copolymers for Guiding Light into Tissue

Feng, Jun | Jiang, Qiyang | Rogin, Peter | Oliveira, Peter William de | del Campo, Aránzazu

ACS Applied Materials & Interfaces , 2020, 12 (18), 20287-20294.
https://doi.org/10.1021/acsami.0c03903

OPEN ACCESS Weiterlesen
Macroscopic self-evolution of dynamic hydrogels to create hollow interiors

Han, Lu | Zheng, Yijun | Luo, Hao | Feng, Jun | Engstler, Roxanne | Xue, Lulu | Jing, Guangyin | Deng, Xu | del Campo, Aránzazu | Cui, Jiaxi

Angewandte Chemie International Edition , 2020, 59 (14), 5611-5615.
https://onlinelibrary.wiley.com/doi/abs/10.1002/anie.201913574

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