Gruppenfoto der Arbeitsgruppe Materials Synthetic Biology im INM; die Mitarbeitenden stehen gemeinsam in einem Innenbereich vor großen Fenstern

Materialorientierte Synthetische Biologie

Unsere Inspiration ist die Anpassungsfähigkeit von Organismen und den Materialien, aus denen sie aufgebaut sind, an wechselnde Umweltbedingungen. Pflanzen passen ihr Wachstum an die Lichtverhältnisse an, Bakterien entwickeln Resistenzen gegen Antibiotika oder Knochen werden durch Belastung stärker. Grundlage für diese Anpassungsfähigkeit ist eine faszinierende Signalverarbeitung der Organismen: Durch molekulare Sensoren werden Umweltbedingungen wahrgenommen, die Signale werden prozessiert und mit dem genetischen Programm des Organismus integriert, um am Ende eine passgenaue Reaktion auszulösen.

In unserer Forschung verwenden wir diese molekularen informationsverarbeitenden Mechanismen, um die Funktion und Eigenschaften von Zellen und Materialien gezielt zu steuern. Dies eröffnet neuartige Möglichkeiten in der grundladen- und anwendungsorientierten Forschung.

Mehr Informationen finden Sie auf unserer englischsprachigen Seite.

Prof. Dr. Wilfried Weber,
Prof. Dr. Wilfried Weber
Leiter Materialorientierte Synthetische Biologie
Telefon: +49 (0)681-9300-520
Mitarbeiter/innen
Daniel Ablahad
Technischer Mitarbeiter
Telefon: +49 (0)681-9300-352
E-Mail: Daniel.Ablahad@leibniz-inm.de
Brandon Alarcón Campos
Austauschstudent/in
E-Mail: brandon.alarcon@leibniz-inm.de
Dr. Mario Alfonso Arenas Garcia
Wissenschaftlicher Mitarbeiter
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E-Mail: mario.arenasgarcia@leibniz-inm.de
M.Sc. Anja Armbruster
Doktorandin
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E-Mail: anja.armbruster@leibniz-inm.de
M.Sc. Miguel Baños Maestro
Doktorand
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E-Mail: miguel.banos@leibniz-inm.de
M.Sc. Jan Lukas Becker
Doktorand
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Dr. Marc Blanch Asensio
Wissenschaftlicher Mitarbeiter
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B.Sc. Sophia Eich
Master-Student/in
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Dr. Linda Elberskirch
Wissenschaftliche Mitarbeiterin
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Christine Faller-Schneider
Technische Mitarbeiterin
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Dr. Saskia Christine Frank
Wissenschaftliche Mitarbeiterin
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Cendi Gomes Policarpo Lima
Wissenschaftliche Hilfskraft
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Dr. Payman Goodarzi
Wissenschaftlicher Mitarbeiter
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B.Sc. Ruiqi Guo
Master-Student/in
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B.Sc. Laura-Céline Halor
Master-Student/in
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M.Sc. Meret Kaliske
Doktorandin
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B.Sc. Marc Kehrer
Wissenschaftliche Hilfskraft
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Deniz Kezek
Doktorandin
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M.Sc. Ali Khazem
Doktorand
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Silke Kiefer
Technische Mitarbeiterin
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Dr. Letitia Leydet
Wissenschaftliche Mitarbeiterin
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E-Mail: letitia.leydet@leibniz-inm.de
PD Dr. Stefan Lohse
Wissenschaftlicher Mitarbeiter
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E-Mail: stefan.lohse@leibniz-inm.de
M.Sc. Hanna Mayer
Doktorandin
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M.Sc. Francesca Miceli
Gastdoktorand/in
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E-Mail: francesca.miceli@leibniz-inm.de
M.Sc. Asim Mohamed Elfatih Hamad
Doktorand
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E-Mail: asim.mohamed@leibniz-inm.de
Dr. Berina Muhovic
Wissenschaftliche Mitarbeiterin
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M.Sc. Geisler Muñoz Guamuro
Doktorand
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Dr. Stepanka Nedvedova
Wissenschaftliche Mitarbeiterin
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Dr. Thi Minh Ha Pham
Wissenschaftliche Mitarbeiterin
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Katja Safa
Labormithilfe
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M.Eng. Pierre Victor Marie Trehin
Wissenschaftlicher Mitarbeiter
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E-Mail: pierre.trehin@leibniz-inm.de
B.Sc. Sili Vettiyara Sunil
Wissenschaftliche Hilfskraft
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Dr. Veronika Vetyskova
Wissenschaftliche Mitarbeiterin
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M.Sc. Anke Weiand
Doktorandin
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Lennart Weismantel
Technischer Mitarbeiter
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B.Sc. Di Wu
Master-Student/in
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Dr. Anabel Zwick
Wissenschaftliche Mitarbeiterin
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Publikationen

2013
Pharmacologically controlled protein switch for on-off regulation of growth factor activity

Karlsson, M. | Rebmann, B. | Lienemann, P. S. | Sprossmann, N. | Ehrbar, M. | Radziwill, G. | Weber, Wilfried

DOI:

The precise manipulation of growth factor signaling is central to the progress of tissue engineering. Methods for direct time-resolved activation of signaling pathways through controlled receptor dimerization have been reported; however, these suffer from the risks associated with gene transfer. Here we present an alternative gene transfer-free approach in the form of a protein switch featuring pharmacologically controlled ON-OFF regulation of growth factor activity. The reversible operation of the switch enables stimulation of target processes within a defined period of time. The protein switch provides a means for both studying and manipulating signaling processes, and is thus believed to be a valuable tool for basic research as well as tissue engineering and biomedical applications.

DOI:

Scientific Reports,
2013, 3.

OPEN ACCESS
Detection of real-time dynamics of drug-target interactions by ultralong nanowalls

Menzel, A. | Gübeli, R. J. | Güder, F. | Weber, Wilfried | Zacharias, M.

DOI:

Detecting drug-target interactions in real-time is a powerful approach for drug discovery and analytics. We show here for the first time the ultra fast electrical real-time detection and quantification of antibiotics using a novel biohybrid nanosensor. The biomolecular sensing is performed on ultralong (mm range) high aspect ratio nanowall (50 nm width) surfaces functionalized with operator DNA tetO which is specifically bound by the sensor protein TetR. This sensor protein is released from the operator DNA in a dose dependent manner by exposing the device functionalized with this bound DNA-protein complex to tetracycline antibiotics. As a result, the electrical conductance is accordingly modulated by these surface net charge changes. The switching mechanism of sensor proteins attached at the functionalized surfaces and releasing them again by antibiotics is demonstrated. With the here presented device the detection limit is below the limits of prevailing detection methods. Moreover, the study is extended to detect antibiotic residues in spiked organic milk from cows far below the maximum residual level of the European Union. In spiked milk samples a detection limit for tetracycline concentrations in the 100 fM level was achieved. The nanowall devices are fabricated by atomic layer deposition-based spacer lithography on full wafer scale which is a simple approach capable for mass production. © 2013 The Royal Society of Chemistry.

DOI:

Lab on a Chip,
2013, 13 (21), 4173-4179.

A red/far-red light-responsive bi-stable toggle switch to control gene expression in mammalian cells

Müller, K. | Engesser, R. | Metzger, S. | Schulz, S. | Kämpf, M. M. | Busacker, M. | Steinberg, T. | Tomakidi, P. | Ehrbar, M. | Nagy, F. | Timmer, J. | Zubriggen, M. D. | Weber, Wilfried

DOI:

Growth and differentiation of multicellular systems is orchestrated by spatially restricted gene expression programs in specialized subpopulations. The targeted manipulation of such processes by synthetic tools with high-spatiotemporal resolution could, therefore, enable a deepened understanding of developmental processes and open new opportunities in tissue engineering. Here, we describe the first red/far-red light-triggered gene switch for mammalian cells for achieving gene expression control in time and space. We show that the system can reversibly be toggled between stable on-and off-states using short light pulses at 660 or 740 nm. Red light-induced gene expression was shown to correlate with the applied photon number and was compatible with different mammalian cell lines, including human primary cells. The light-induced expression kinetics were quantitatively analyzed by a mathematical model. We apply the system for the spatially controlled engineering of angiogenesis in chicken embryos. The system's performance combined with cell-and tissue-compatible regulating red light will enable unprecedented spatiotemporally controlled molecular interventions in mammalian cells, tissues and organisms. © 2013 The Author(s).

DOI:

Nucleic Acids Research,
2013, 41 (7).

OPEN ACCESS
Multi-chromatic control of mammalian gene expression and signaling

Müller, K. | Engesser, R. | Schulz, S. | Steinberg, T. | Tomakidi, P. | Weber, C. C. | Ulm, R. | Timmer, J. | Zurbriggen, M. D. | Weber, Wilfried

DOI:

The emergence and future of mammalian synthetic biology depends on technologies for orchestrating and custom tailoring complementary gene expression and signaling processes in a predictable manner. Here, we demonstrate for the first time multi-chromatic expression control in mammalian cells by differentially inducing up to three genes in a single cell culture in response to light of different wavelengths. To this end, we developed an ultraviolet B (UVB)-inducible expression system by designing a UVB-responsive split transcription factor based on the Arabidopsis thaliana UVB receptor UVR8 and the WD40 domain of COP1. The system allowed high (up to 800-fold) UVB-induced gene expression in human, monkey, hamster and mouse cells. Based on a quantitative model, we determined critical system parameters. By combining this UVB-responsive system with blue and red light-inducible gene control technology, we demonstrate multi-chromatic multi-gene control by differentially expressing three genes in a single cell culture in mammalian cells, and we apply this system for the multi-chromatic control of angiogenic signaling processes. This portfolio of optogenetic tools enables the design and implementation of synthetic biological networks showing unmatched spatiotemporal precision for future research and biomedical applications. © 2013 The Author(s) 2013. Published by Oxford University Press.

DOI:

Nucleic Acids Research,
2013, 41 (12).

OPEN ACCESS
Synthesis of phycocyanobilin in mammalian cells

Müller, K. | Engesser, R. | Timmer, J. | Zurbriggen, M. D. | Nagy, F. | Weber, Wilfried

DOI:

The chromophore 3-Z phycocyanobilin (PCB, (2R,3Z)-8,12-bis(2-carboxyethyl)-18-ethyl-3-ethylidene-2,7,13,17-tetramethyl-2,3-dihydrobilin-1,19(21H,24H)-dione) mediates red and far-red light perception in natural and synthetic biological systems. Here we describe a PCB synthesis strategy in mammalian cells. We optimize the production by co-localizing the biocatalysts to the substrate source, by coordinating the availability of the biocatalysts and by reducing the degradation of the reaction product. We show that the resulting PCB levels of 2 μM are sufficient to sustain the functionality of red light-responsive optogenetic tools suitable for the light-inducible control of gene expression in mammalian cells. © 2013 The Royal Society of Chemistry.

DOI:

Chemical Communications,
2013, 49 (79), 8970-8972.

Optogenetic tools for mammalian systems

Müller, K. | Weber, Wilfried

DOI:

Light is fundamental to life on earth. Therefore, nature has evolved a multitude of photoreceptors that sense light across all kingdoms. This natural resource provides synthetic biology with a vast pool of light-sensing components with distinct spectral properties that can be harnessed to engineer novel optogenetic tools. These devices enable control over gene expression, cell morphology and signaling pathways with superior spatiotemporal resolution and are maturing towards elaborate applications in basic research, in the production of biopharmaceuticals and in biomedicine. This article provides a summary of the recent advances in optogenetics that use light for the precise control of biological functions in mammalian cells. © 2013 The Royal Society of Chemistry.

DOI:

Molecular BioSystems,
2013, 9 (4), 596-608.

A quantitative ratiometric sensor for time-resolved analysis of auxin dynamics

Wend, S. | Dal Bosco, C. | Kämpf, M. M. | Ren, F. | Palme, K. | Weber, Wilfried | Dovzhenko, A. | Zurbriggen, M. D.

DOI:

Time-resolved quantitative analysis of auxin-mediated processes in plant cells is as of yet limited. By applying a synergistic mammalian and plant synthetic biology approach, we have developed a novel ratiometric luminescent biosensor with wide applicability in the study of auxin metabolism, transport, and signalling. The sensitivity and kinetic properties of our genetically encoded biosensor open new perspectives for the analysis of highly complex auxin dynamics in plant growth and development.

DOI:

Scientific Reports,
2013, 3.

OPEN ACCESS
2012
Building synthetic cell systems from the ground up

Current Opinion in Biotechnology,
2012, 23 (5), 641-643.

Synthetic two-way communication between mammalian cells

Bacchus, W. | Lang, M. | El-Baba, M. D. | Weber, Wilfried | Stelling, J. | Fussenegger, M.

DOI:

The design of synthetic biology-inspired control devices enabling entire mammalian cells to receive, process and transfer metabolic information and so communicate with each other via synthetic multichannel networks may provide new insight into the organization of multicellular organisms and future clinical interventions. Here we describe communication networks that orchestrate behavior in individual mammalian cells in response to cell-to-cell metabolic signals. We engineered sender, processor and receiver cells that interact with each other in ways that resemble natural intercellular communication networks such as multistep information processing cascades, feed-forward-based signaling loops, and two-way communication. The engineered two-way communication devices mimicking natural control systems in the development of vertebrate extremities and vasculature was used to program temporal permeability in vascular endothelial cell layers. These synthetic multicellular communication systems may inspire future therapies or tissue engineering strategies. © 2012 Nature America, Inc. All rights reserved.

DOI:

Nature Biotechnology,
2012, 30 (10), 991-996.

Evaluation of bicinchoninic acid as a ligand for copper(i)-catalyzed azide-alkyne bioconjugations

Christen, E. H. | Gübeli, R. J. | Kaufmann, B. | Merkel, L. | Schoenmakers, R. | Budisa, N. | Fussenegger, M. | Weber, Wilfried | Wiltschi, B.

DOI:

The Cu(i)-catalyzed cycloaddition of terminal azides and alkynes (click chemistry) represents a highly specific reaction for the functionalization of biomolecules with chemical moieties such as dyes or polymer matrices. In this study we evaluate the use of bicinchoninic acid (BCA) as a ligand for Cu(i) under physiological reaction conditions. We demonstrate that the BCA-Cu(i)-complex represents an efficient catalyst for the conjugation of fluorophores or biotin to alkyne- or azide-functionalized proteins resulting in increased or at least equal reaction yields compared to commonly used catalysts like Cu(i) in complex with TBTA (tris[(1-benzyl-1H-1,2,3-triazol-4-yl)methyl] amine) or BPAA (bathophenanthroline disulfonic acid). The stabilization of Cu(i) with BCA represents a new strategy for achieving highly efficient bioconjugation reactions under physiological conditions in many application fields. © 2012 The Royal Society of Chemistry.

DOI:

Organic and Biomolecular Chemistry,
2012, 10 (33), 6629-6632.