Gruppenfoto der Arbeitsgruppe Dynamische Biomaterialien vor dem Eingang des INM; die Mitarbeitenden laufen gemeinsam auf die Kamera zu.

Dynamische Biomaterialien

Wir untersuchen und steuern gezielt die Wechselwirkungen zwischen synthetischen Materialien und lebenden Zellen. Wir entwickeln zellinstruktive Umgebungen und materialbasierte Ansätze für abfallfreie therapeutische Lösungen.

Unsere Gruppe entwickelt Hydrogelmaterialien mit gezielt programmierten und einstellbaren Eigenschaften, die darauf ausgelegt sind, lebende Zellen einzukapseln und deren Verhalten gezielt zu beeinflussen. Wir untersuchen die Wechselwirkungen zwischen lebenden Zellen und unbelebter Materie und erforschen, wie sich diese nutzen lassen, um zelluläre Funktionen gezielt zu steuern und letztlich therapeutische Vorteile zu erzielen.

Gemeinsam mit Forschenden aus der synthetischen Biologie, Biophysik und Arzneimittelentwicklung sowie mit klinisch tätigen Fachleuten untersuchen wir das Anwendungspotenzial unserer Entwicklungen. Ein besonderer Schwerpunkt liegt dabei auf neuartigen Materialien für die ophthalmologische Wirkstofffreisetzung.

Wir tragen zu den INM-Kompetenzfeldern „Opto-interaktive Materialien“ und „Bio-intelligente Materialien“ bei. Unsere Forschung ist auf biomedizinische Fragestellungen und Anforderungen ausgerichtet.

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)681-9300-399
Martina Bonnard
Sekretärin
Telefon: +49 (0)681-9300-397
Mitarbeiter/innen
B.Sc. Israa Abdulrahman Mohammed Kheir Elh
Doktorandin
Telefon: +49 (0)681-9300-351
E-Mail: Israa.Abdulrahman@leibniz-inm.de
Britta Abt
Technische Mitarbeiterin
Telefon: +49 (0)681-9300-363
E-Mail: Britta.Abt@leibniz-inm.de
Dr.-Ing. Sener Albayrak
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-157
E-Mail: Sener.Albayrak@leibniz-inm.de
Dr. Gerardo Asensio Martín
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-315
E-Mail: gerardo.asensiomartin@leibniz-inm.de
Dipl.-Chem. Stefan Brück
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-245
E-Mail: stefan.brueck@leibniz-inm.de
M.Sc. Rishi Chaurasia
Doktorand
Telefon: +49 (0)681-9300-401
E-Mail: rishi.chaurasia@leibniz-inm.de
B.Sc. Jesús Chong Talavera
Wissenschaftliche Hilfskraft
Telefon: +49 (0)681-9300-108/251
E-Mail: jesus.chong@leibniz-inm.de
29,60 Semhar Eyob
Azubi Chemielaborant/in
Telefon: +49 (0)681-9300-414
E-Mail: semhar.eyob@leibniz-inm.de
M.Sc. Hafiz Syed Usama bin Farrukh
Doktorand
Telefon: +49 (0)681-9300-360
E-Mail: Usama.Farrukh@leibniz-inm.de
Dr. Aleeza Farrukh
Stv. Leiterin Dynamische Biomaterialien
Telefon: +49 (0)681-9300-399
E-Mail: aleeza.farrukh@leibniz-inm.de
Dr. Jun Feng
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-214
E-Mail: jun.feng@leibniz-inm.de
M.Sc. Annalena Elisabeth Frank
Doktorandin
E-Mail: annalena.frank@leibniz-inm.de
B.Sc. Daniel Alfonso Garcia Sanchez
Wissenschaftliche Hilfskraft
Telefon: +49 (0)681-9300-315
E-Mail: daniel.sanchez@leibniz-inm.de
Anna-Lena Haag
Azubi Chemielaborant/in
Telefon: +49 (0)681-9300-330
E-Mail: anna-lena.haag@leibniz-inm.de
Dr. Hannah Jahn-Kelleter
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-384
E-Mail: Hannah.Jahn-Kelleter@leibniz-inm.de
Dr. Jennifer Yvonne Kasper
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-345
E-Mail: Jennifer.Kasper@leibniz-inm.de
M.Sc. Mokhamad Khamdan
Doktorand
Telefon: +49 (0)681-9300-349
E-Mail: mokhamad.khamdan@leibniz-inm.de
Dr. Simone Krings
Gastwissenschaftler/in
Telefon: +49 (0)681-9300-315
E-Mail: simone.krings@leibniz-inm.de
Dr. Rinku Kumar
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-316
E-Mail: rinku.kumar@leibniz-inm.de
Prof. Dr. Juan Mancebo Aracil
Gastwissenschaftler/in
Telefon: +49 (0)681-9300-155
E-Mail: juan.mancebo@leibniz-inm.de
M.Sc. Joëlle Aurelie Mekontso Ngaffo
Doktorandin
Telefon: +49 (0)681-9300-247
E-Mail: joelle.mekontso@leibniz-inm.de
M.Sc. Kyusun Pyun
Doktorand
Telefon: +49 (0)681-9300-401
E-Mail: kyusun.pyun@leibniz-inm.de
M.Sc. Ann-Cathrin Schlapp
Doktorandin
Telefon: +49 (0)681-9300-214
E-Mail: Ann-Cathrin.Schlapp@leibniz-inm.de
Silke Siegrist
Technische Mitarbeiterin
Telefon: +49 (0)681-9300-363
E-Mail: silke.siegrist@leibniz-inm.de
Dr. Therese Steudter
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-384
E-Mail: therese.steudter@leibniz-inm.de
M.Sc. Lara Luana Teruel Enrico
Doktorandin
Telefon: +49 (0)681-9300-282
E-Mail: LaraLuana.TeruelEnrico@leibniz-inm.de
Forschung

Hydrogele mit latenten Eigenschaften

Durch die Integration von Phototriggern und lichtresponsiven molekularen Motoren in polymere Netzwerke entwickeln wir 4D-Hydrogele mit optisch regulierbarer (bio)chemischer Aktivität, Vernetzung, Degradation oder mechanischer Aktuation. Diese Materialien werden für biophysikalische Untersuchungen der zellulären Reaktion auf Veränderungen biochemischer und mechanischer Signale in der extrazellulären Umgebung eingesetzt.

Schematische Darstellung eines dreidimensionalen Hydrogel-Netzwerks mit eingebetteten lichtaktiven Komponenten zur Steuerung von chemischen und mechanischen Eigenschaften
Schematische Darstellung eines automatisierten Pipettiersystems, das Materialproben in eine Mikroplatte überträgt; die vergrößerte Bildfolge zeigt unterschiedliche geschichtete Zellumgebungen für Hochdurchsatzexperimente.

Modelle zellulärer Mikroumgebungen

Wir entwickeln synthetische Modelle von Zell-Matrix- und Zell-Zell-Grenzflächen mit gezielt integrierten biochemischen, mechanischen und dimensionalen Signalen. Um den Erkenntnisgewinn zu beschleunigen, entwickeln wir Material-Mikroarrays für biophysikalische Hochdurchsatzexperimente und setzen diese zur Untersuchung multifaktorieller Zellreaktionen ein.

Lebende therapeutische Systeme

Wir entwickeln Biotinten und nutzen Biofabrikationstechnologien zur funktionellen und sicheren Verkapselung von Zellen in Medizinprodukten. Unser Schwerpunkt liegt auf selbstregenerierenden lebenden therapeutischen Materialien, die zelluläre Wirkstofffabriken integrieren und eine langfristige, potenziell unbegrenzte Wirkstofffreisetzung ermöglichen. Unser Ziel ist es, neue Ansätze für die ophthalmologische Therapie zu entwickeln, insbesondere lebende, selbstregenerierende Kontaktlinsen mit kontinuierlicher Wirkstofffreisetzung.

Schematische Darstellung eines Biofabrikationsprozesses: Zellhaltiges Material wird aus einem Vorratsbehälter durch eine Düse in eine röhrenförmige Struktur eingebracht, aus der Wirkstoffe freigesetzt werden.
Partner
Logo und Schriftzug des Collaborative Research Center CRC / SFB 1027.

Publikationen

2017
Multifunctional Thin Films and Coatings from Caffeic Acid and a Cross-Linking Diamine

Iacomino, Mariagrazia | Paez, Julieta I. | Avolio, Roberto | Carpentieri, Andrea | Panzella, Lucia | Falco, Geppino | Pizzo, Elio | Errico, Maria E. | Napolitano, Alessandra | del Campo, Aranzazu | d’Ischia, Marco

DOI:

The exploitation of easily accessible and nontoxic natural catechol compounds for surface functionalization and coating is attracting growing interest for biomedical applications. We report herein the deposition on different substrates of chemically stable thin films by autoxidation of 1 mM caffeic acid (CA) solutions at pH 9 in the presence of equimolar amounts of hexamethylenediamine (HMDA). UV–visible, mass spectrometric, and solid state 13C and 15N NMR analysis indicated covalent incorporation of the amine during CA polymerization to produce insoluble trioxybenzacridinium scaffolds decorated with carboxyl and amine functionalities. Similar coatings are obtained by replacing CA with 4-methylcatechol (MC) in the presence of HMDA. No significant film deposition was detected in the absence of HMDA nor by replacing it with shorter chain ethylenediamine, or with monoamines. The CA/HMDA-based films resisted oxidative and reductive treatments, displayed efficient Fe(II) and Cu(II) binding capacity and organic dyes adsorption, and provided an excellent cytocompatible platform for growing embryonic stem cells. These results pointed to HMDA as an efficient cross-linking mediator of film deposition from natural catechols for surface functionalization and coatings.

DOI:

Langmuir,
2017, 33 (9), 2096-2102.

Cell Adhesion on RGD-Displaying Knottins with Varying Numbers of Tryptophan Amino Acids to Tune the Affinity for Assembly on Cucurbit[8]uril Surfaces

Sankaran, Shrikrishnan | Cavatorta, Emanuela | Huskens, Jurriaan | Jonkheijm, Pascal

DOI:

Cell adhesion is studied on multivalent knottins, displaying RGD ligands with a high affinity for integrin receptors, that are assembled on CB[8]-methylviologen-modified surfaces. The multivalency in the knottins stems from the number of tryptophan amino acid moieties, between 0 and 4, that can form a heteroternary complex with cucurbit[8]uril (CB[8]) and surface-tethered methylviologen (MV2+). The binding affinity of the knottins with CB[8] and MV2+ surfaces was evaluated using surface plasmon resonance spectroscopy. Specific binding occurred, and the affinity increased with the valency of tryptophans on the knottin. Additionally, increased multilayer formation was observed, attributed to homoternary complex formation between tryptophan residues of different knottins and CB[8]. Thus, we were able to control the surface coverage of the knottins by valency and concentration. Cell experiments with mouse myoblast (C2C12) cells on the self-assembled knottin surfaces showed specific integrin recognition by the RGD-displaying knottins. Moreover, cells were observed to elongate more on the supramolecular knottin surfaces with a higher valency, and in addition, more pronounced focal adhesion formation was observed on the higher-valency knottin surfaces. We attribute this effect to the enhanced coverage and the enhanced affinity of the knottins in their interaction with the CB[8] surface. Collectively, these results are promising for the development of biomaterials including knottins via CB[8] ternary complexes for tunable interactions with cells.

DOI:

Langmuir,
2017, 33 (35), 8813-8820.

OPEN ACCESS
Cell Adhesion on Dynamic Supramolecular Surfaces Probed by Fluid Force Microscopy-Based Single-Cell Force Spectroscopy

Sankaran, Shrikrishnan | Jaatinen, Leena | Brinkmann, Jenny | Zambelli, Tomaso | Vörös, Janos | Jonkheijm, Pascal

DOI:

Biomimetic and stimuli-responsive cell-material interfaces are actively being developed to study and control various cell-dynamics phenomena. Since cells naturally reside in the highly dynamic and complex environment of the extracellular matrix, attempts are being made to replicate these conditions in synthetic biomaterials. Supramolecular chemistry, dealing with noncovalent interactions, has recently provided possibilities to incorporate such dynamicity and responsiveness in various types of architectures. Using a cucurbit[8]uril-based host–guest system, we have successfully established a dynamic and electrochemically responsive interface for the display of the integrin-specific ligand, Arg-Gly-Asp (RGD), to promote cell adhesion. Due to the weak nature of the noncovalent forces by which the components at the interface are held together, we expected that cell adhesion would also be weaker in comparison to traditional interfaces where ligands are usually immobilized by covalent linkages. To assess the stability and limitations of our noncovalent interfaces, we performed single-cell force spectroscopy studies using fluid force microscopy. This technique enabled us to measure rupture forces of multiple cells that were allowed to adhere for several hours on individual substrates. We found that the rupture forces of cells adhered to both the noncovalent and covalent interfaces were nearly identical for up to several hours. We have analyzed and elucidated the reasons behind this result as a combination of factors including the weak rupture force between linear Arg-Gly-Asp and integrin, high surface density of the ligand, and increase in effective concentration of the supramolecular components under spread cells. These characteristics enable the construction of highly dynamic biointerfaces without compromising cell-adhesive properties.

DOI:

ACS Nano,
2017, 11 (4), 3867-3874.

OPEN ACCESS
Stacked-Layer Heterostructure Films of 2D Thiophene Nanosheets and Graphene for High-Rate All-Solid-State Pseudocapacitors with Enhanced Volumetric Capacitance

Wu, Zhong-Shuai | Zheng, Yijun | Zheng, Shuanghao | Wang, Sen | Sun, Chenglin | Parvez, Khaled | Ikeda, Taichi | Bao, Xinhe | Müllen, Klaus | Feng, Xinliang

DOI:

Stacked-layer heterostructure films of 2D thiophene nanosheets and electrochemically exfoliated graphene are constructed for ultrahigh-rate all-solid-state flexible pseudocapacitors and micro-supercapacitors with superior volumetric capacitance due to the synergetic effect of the ultrathin pseudocapacitive thiophene nanosheets and the capacitive electrochemically exfoliated graphene.

DOI:

Advanced Materials,
2017, 29 (3), 1602960, 1-7.

Hybrid Surface Patterns Mimicking the Design of the Adhesive Toe Pad of Tree Frog

Xue, Longjian | Sanz, Belén | Luo, Aoyi | Turner, Kevin T. | Wang, Xin | Tan, Di | Zhang, Rui | Du, Hang | Steinhart, Martin | Mijangos, Carmen | Guttmann, Markus | Kappl, Michael | del Campo, Aránzazu

DOI:

Biological materials achieve directional reinforcement with oriented assemblies of anisotropic building blocks. One such example is the nanocomposite structure of keratinized epithelium on the toe pad of tree frogs, in which hexagonal arrays of (soft) epithelial cells are crossed by densely packed and oriented (hard) keratin nanofibrils. Here, a method is established to fabricate arrays of tree-frog-inspired composite micropatterns composed of polydimethylsiloxane (PDMS) micropillars embedded with polystyrene (PS) nanopillars. Adhesive and frictional studies of these synthetic materials reveal a benefit of the hierarchical and anisotropic design for both adhesion and friction, in particular, at high matrix–fiber interfacial strengths. The presence of PS nanopillars alters the stress distribution at the contact interface of micropillars and therefore enhances the adhesion and friction of the composite micropattern. The results suggest a design principle for bioinspired structural adhesives, especially for wet environments.

DOI:

ACS Nano,
2017, 11 (10), 9711-9719.

OPEN ACCESS
3D bioprinting of structural proteins

Włodarczyk-Biegun, Małgorzata K. | del Campo, Aránzazu

DOI:

3D bioprinting is a booming method to obtain scaffolds of different materials with predesigned and customized morphologies and geometries. In this review we focus on the experimental strategies and recent achievements in the bioprinting of major structural proteins (collagen, silk, fibrin), as a particularly interesting technology to reconstruct the biochemical and biophysical composition and hierarchical morphology of natural scaffolds. The flexibility in molecular design offered by structural proteins, combined with the flexibility in mixing, deposition, and mechanical processing inherent to bioprinting technologies, enables the fabrication of highly functional scaffolds and tissue mimics with a degree of complexity and organization which has only just started to be explored. Here we describe the printing parameters and physical (mechanical) properties of bioinks based on structural proteins, including the biological function of the printed scaffolds. We describe applied printing techniques and cross-linking methods, highlighting the modifications implemented to improve scaffold properties. The used cell types, cell viability, and possible construct applications are also reported. We envision that the application of printing technologies to structural proteins will enable unprecedented control over their supramolecular organization, conferring printed scaffolds biological properties and functions close to natural systems.

DOI:

Biomaterials,
2017, 134, 180-201.

2016
Bioconjugating thiols to poly(acrylamide) gels for cell culture using methylsulfonyl co-monomers

Farrukh, Aleeza | Paez, Julieta I. | Salierno, Marcelo | del Campo, Aránzazu

DOI:

Poly(acrylamide) P(AAm) gels have become relevant model substrates to study cell response to the mechanical and biochemical properties of the cellular microenvironment. However, current bioconjugation strategies to functionalize P(AAm) gels, mainly using photoinduced arylazide coupling, show poor specificity and hinder conclusive studies of material properties and cellular responses. We describe methylsulfonyl-containing P(AAm) hydrogels for cell culture. These gels allow easy, specific and functional covalent coupling of thiol containing bioligands in tunable concentrations under physiological conditions, while retaining the same swelling, porosity, cytocompatibility, and low protein adsorption of P(AAm) gels. These materials allow quantitative and standardized studies of cell-materials interactions with P(AAm) gels.

DOI:

Angewandte Chemie-International Edition,
2016, 55 (6), 2092-2096.

Monitoring the contact stress distribution of gecko-inspired adhesives using mechano-sensitive surface coatings

Neubauer, Jens Werner | Xue, Longjian | Erath, Johann | Drotlef, Dirk M. | del Campo, Aranzazu | Fery, Andreas

DOI:

The contact geometry of microstructured adhesive surfaces is of high relevance for adhesion enhancement. Theoretical considerations indicate that the stress distribution in the contact zone is crucial for the detachment mechanism, but direct experimental evidence is missing so far. In this work, we propose a method that allows, for the first time, the detection of local stresses at the contact area of biomimetic adhesive microstructures during contact formation, compression and detachment. We use a mechano-sensitive polymeric layer, which turns mechanical stresses into changes of fluorescence intensity. The biomimetic surface is brought into contact with this layer in a well-defined fashion using a micro-contact printer, while the contact area is monitored with fluorescence microscopy in situ. Thus, changes in stress distribution across the contact area during compression and pull-off can be visualized with a lateral resolution of 1 μm. We apply this method to study the enhanced adhesive performance of T-shaped micropillars, compared to flat punch microstructures. We find significant differences in the stress distribution of the both differing contact geometries during pull-off. In particular, we find direct evidence for the suppression of crack nucleation at the edge of T-shaped pillars, which confirms theoretical models for the superior adhesive properties of these structures.

DOI:

ACS Applied Materials & Interfaces,
2016, 8 (28), 17870-17877.

Guiding cell migration with microscale stiffness patterns and undulated surfaces

Pham, Jonathan T. | Xue, Longjian | del Campo, Aránzazu | Salierno, Marcelo

DOI:

By placing stiff structures under soft materials, prior studies have demonstrated that cells sense and prefer to position themselves over the stiff structures. However, an understanding of how cells migrate on such surfaces has not been established. Many studies have also shown that cells readily align to surface topography. Here we investigate the influence of these two aspects in directing cell migration on surfaces with 5 and 10 μm line stiffness patterns (a cellular to subcellular length scale). A simple approach to create flat, stiffness-patterned surfaces by suspending a thin, low modulus polydimethylsiloxane (PDMS) film over a high modulus PDMS structure is presented, as well as a route to add undulations. We confirm that cells are able to sense through the thin film by observation of focal adhesions being positioned on stiff regions. We examine migration by introducing migration efficiency, a quantitative parameter to determine how strongly cells migrate in a certain direction. We found that cells have a preference to align and migrate along stiffness patterns while the addition of undulations boosts this effect, significantly increasing migration efficiency in either case. Interestingly, we found speed to play little role in the migration efficiency and to be mainly influenced by the top layer modulus. Our results demonstrate that both stiffness patterns and surface undulations are important considerations when investigating the interactions of cells with biomaterial surfaces. Statement of Significance: Two common physical considerations for cell-surface interactions include patterned stiffness and patterned topography. However, their relative influences on cell migration behavior have not been established, particularly on cellular to subcellular scale patterns. For stiffness patterning, it has been recently shown that cells tend to position themselves over a stiff structure that is placed under a thin soft layer. By quantifying the directional migration efficiency on such surfaces with and without undulations, we show that migration can be manipulated by flat stiffness patterns, although surface undulations also play a strong role. Our results offer insight on the effect of cellular scale stiffness and topographical patterns on cell migration, which is critical for the development of fundamental cell studies and engineered implants.

DOI:

Acta Biomaterialia,
2016, 38, 106-115.

Phototriggered fibril-like environments arbitrate cell escapes and migration from endothelial monolayers

Salierno, Marcelo J. | García-Fernandez, Luis | Carabelos, Noelia | Kiefer, Karin | García, Andrés J. | del Campo, Aránzazu

DOI:

Cell detachment and migration from the endothelium occurs during vasculogenesis and also in pathological states. Here, we use a novel approach to trigger single cell release from an endothelial monolayer by in-situ opening of adhesive, fibril-like environment using light-responsive ligands and scanning lasers. Cell escapes from the monolayer were observed on the fibril-like adhesive tracks with 3-15 μm width. The frequency of endothelial cell escapes increased monotonically with the fibril width and with the density of the light-activated adhesive ligand. Interestingly, treatment with VEGF induced cohesiveness within the cell layer, preventing cell leaks. When migrating through the tracks, cells presented body lateral reduction and nuclear deformation imposed by the line width and dependent on myosin contractility. Cell migration mode changed from mesenchymal to amoeboid-like when the adhesive tracks narrowed (≤5 μm). Moreover, cell nucleus was shrunk showing packed DNA on lines narrower than the nuclear dimensions in a mechanisms intimately associated with the stress fibers. This platform allows the detailed study of escapes and migratory transitions of cohesive cells, which are relevant processes in development and during diseases such as organ fibrosis and carcinomas.

DOI:

Biomaterials,
2016, 82, 113-123.