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
Telefon: +49 (0)681-9300-435
E-Mail: mario.arenasgarcia@leibniz-inm.de
M.Sc. Anja Armbruster
Doktorandin
Telefon: +49 (0)681-9300-445
E-Mail: anja.armbruster@leibniz-inm.de
M.Sc. Miguel Baños Maestro
Doktorand
Telefon: +49 (0)681-9300-450
E-Mail: miguel.banos@leibniz-inm.de
M.Sc. Jan Lukas Becker
Doktorand
Telefon: +49 (0)681-9300-444
E-Mail: jan.becker@leibniz-inm.de
Dr. Marc Blanch Asensio
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-435
E-Mail: Marc.BlanchAsensio@leibniz-inm.de
B.Sc. Sophia Eich
Master-Student/in
Telefon: +49 (0)681-9300-446
E-Mail: sophia.eich@leibniz-inm.de
Dr. Linda Elberskirch
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-449
E-Mail: linda.elberskirch@leibniz-inm.de
Christine Faller-Schneider
Technische Mitarbeiterin
Telefon: +49 (0)681-9300-334
E-Mail: christine.faller@leibniz-inm.de
Dr. Saskia Christine Frank
Wissenschaftliche Mitarbeiterin
E-Mail: saskia.frank@leibniz-inm.de
Cendi Gomes Policarpo Lima
Wissenschaftliche Hilfskraft
Telefon: +49 (0)681-9300-449
E-Mail: cendi.gomes@leibniz-inm.de
Dr. Payman Goodarzi
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-435
E-Mail: payman.goodarzi@leibniz-inm.de
B.Sc. Ruiqi Guo
Master-Student/in
Telefon: +49 (0)681-9300-108/251
E-Mail: ruiqi.guo@leibniz-inm.de
B.Sc. Laura-Céline Halor
Master-Student/in
Telefon: +49 (0)681-9300-395
E-Mail: laura.halor@leibniz-inm.de
M.Sc. Meret Kaliske
Doktorandin
Telefon: +49 (0)681-9300-449
E-Mail: meret.kaliske@leibniz-inm.de
B.Sc. Marc Kehrer
Wissenschaftliche Hilfskraft
Telefon: +49 (0)681-9300-441
E-Mail: marc.kehrer@leibniz-inm.de
Deniz Kezek
Doktorandin
Telefon: +49 (0)681-9300-446
E-Mail: deniz.kezek@leibniz-inm.de
M.Sc. Ali Khazem
Doktorand
Telefon: +49 (0)681-9300-352
E-Mail: ali.khazem@leibniz-inm.de
Silke Kiefer
Technische Mitarbeiterin
Telefon: +49 (0)681-9300-405
E-Mail: silke.kiefer@leibniz-inm.de
Dr. Letitia Leydet
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-395
E-Mail: letitia.leydet@leibniz-inm.de
PD Dr. Stefan Lohse
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-441
E-Mail: stefan.lohse@leibniz-inm.de
M.Sc. Hanna Mayer
Doktorandin
Telefon: +49 (0)681-9300-447
E-Mail: hanna.mayer@leibniz-inm.de
M.Sc. Francesca Miceli
Gastdoktorand/in
Telefon: +49 (0)681-9300-448
E-Mail: francesca.miceli@leibniz-inm.de
M.Sc. Asim Mohamed Elfatih Hamad
Doktorand
Telefon: +49 (0)681-9300-446/447
E-Mail: asim.mohamed@leibniz-inm.de
Dr. Berina Muhovic
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-395
E-Mail: Berina.Muhovic@leibniz-inm.de
M.Sc. Geisler Muñoz Guamuro
Doktorand
Telefon: +49 (0)681-9300-450
E-Mail: geisler.munoz-guamuro@leibniz-inm.de
Dr. Stepanka Nedvedova
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-435
E-Mail: stepanka.nedvedova@leibniz-inm.de
Dr. Thi Minh Ha Pham
Wissenschaftliche Mitarbeiterin
E-Mail: ha.pham@leibniz-inm.de
Katja Safa
Labormithilfe
E-Mail: katja.safa@leibniz-inm.de
M.Eng. Pierre Victor Marie Trehin
Wissenschaftlicher Mitarbeiter
Telefon: +49 (0)681-9300-448/449
E-Mail: pierre.trehin@leibniz-inm.de
B.Sc. Sili Vettiyara Sunil
Wissenschaftliche Hilfskraft
Telefon: +49 (0)681-9300-445
E-Mail: sili.sunil@leibniz-inm.de
Dr. Veronika Vetyskova
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-448
E-Mail: veronika.vetyskova@leibniz-inm.de
M.Sc. Anke Weiand
Doktorandin
Telefon: +49 (0)681-9300-444
E-Mail: anke.weiand@leibniz-inm.de
Lennart Weismantel
Technischer Mitarbeiter
Telefon: +49 (0)681-9300-352
E-Mail: lennart.weismantel@leibniz-inm.de
B.Sc. Di Wu
Master-Student/in
Telefon: +49 (0)681-9300-108/251
E-Mail: di.wu@leibniz-inm.de
Dr. Anabel Zwick
Wissenschaftliche Mitarbeiterin
Telefon: +49 (0)681-9300-395
E-Mail: anabel.zwick@leibniz-inm.de

Publikationen

2008
Drug-sensing hydrogels for the inducible release of biopharmaceuticals

Ehrbar, M. | Schoenmakers, R. | Christen, E. H. | Fussenegger, M. | Weber, Wilfried

DOI:

Drug-dependent dissociation or association of cellular receptors represents a potent pharmacologic mode of action for regulating cell fate and function. Transferring the knowledge of pharmacologically triggered protein-protein interactions to materials science will enable novel design concepts for stimuli-sensing smart hydrogels. Here, we show the design and validation of an antibiotic-sensing hydrogel for the trigger-inducible release of human vascular endothelial growth factor. Genetically engineered bacterial gyrase subunit B (GyrB) (ref. 4) coupled to polyacrylamide was dimerized by the addition of the aminocoumarin antibiotic coumermycin, resulting in hydrogel formation. Addition of increasing concentrations of clinically validated novobiocin (Albamycin) dissociated the GyrB subunits, thereby resulting in dissociation of the hydrogel and dose- and time-dependent liberation of the entrapped protein pharmaceutical VEGF 121 for triggering proliferation of human umbilical vein endothelial cells. Pharmacologically controlled hydrogels have the potential to fulfil the promises of stimuli-sensing materials as smart devices for spatiotemporally controlled delivery of drugs within the patient. © 2008 Macmillan Publishers Limited. All rights reserved.

DOI:

Nature Materials,
2008, 7 (10), 800-804.

A synthetic mammalian gene circuit reveals antituberculosis compounds

Weber, Wilfried | Schoenmakers, R. | Keller, B. | Gitzinger, M. | Grau, T. | Baba, M. D. E. | Sander, P. | Fussenegger, M.

DOI:

Synthetic biology provides insight into natural gene-network dynamics and enables assembly of engineered transcription circuitries for production of difficult-to-access therapeutic molecules. In Mycobacterium tuberculosis EthR binds to a specific operator (OethR) thereby repressing ethA and preventing EthA-catalyzed conversion of the prodrug ethionamide, which increases the resistance of the pathogen to this last-line-of-defense treatment. We have designed a synthetic mammalian gene circuit that senses the EthR-O ethR interaction in human cells and produces a quantitative reporter gene expression readout. Challenging of the synthetic network with compounds of a rationally designed chemical library revealed 2-phenylethyl-butyrate as a nontoxic substance that abolished EthR's repressor function inside human cells, in mice, and within M. tuberculosis where it triggered derepression of ethA and increased the sensitivity of this pathogen to ethionamide. The discovery of antituberculosis compounds by using synthetic mammalian gene circuits may establish a new line of defense against multidrug-resistant M. tuberculosis. © 2008 by The National Academy of Sciences of the USA.

DOI:

Proceedings of the National Academy of Sciences of the United States of America,
2008, 105 (29), 9994-9998.

2007
An engineered L-arginine sensor of Chlamydia pneumoniae enables arginine-adjustable transcription control in mammalian cells and mice

Hartenbach, S. | Daoud-El Baba, M. | Weber, Wilfried | Fussenegger, M.

DOI:

For optimal compatibility with biopharmaceutical manufacturing and gene therapy, heterologous transgene control systems must be responsive to side-effect-free physiologic inducer molecules. The arginine-inducible interaction of the ArgR repressor and the ArgR-specific ARG box, which synchronize arginine import and synthesis in the intracellular human pathogen Chlamydia pneumoniae, was engineered for arginine-regulated transgene (ART) expression in mammalian cells. A synthetic arginine-responsive transactivator (ARG), consisting of ArgR fused to the Herpes simplex VP16 transactivation domain, reversibly adjusted transgene transcription of chimeric ARG box-containing mammalian minimal promoters (PART) in an arginine-inducible manner. Arginine-controlled transgene expression showed rapid induction kinetics in a variety of mammalian cell lines and was adjustable and reversible at concentrations which were compatible with host cell physiology. ART variants containing different transactivation domains, variable spacing between ARG box and minimal promoter and several tandem ARG boxes showed modified regulation performance tailored for specific expression scenarios and cell types. Mice implanted with microencapsulated cells engineered for ART-inducible expression of the human placental secreted alkaline phosphatase (SEAP) exhibited adjustable serum phosphatase levels after treatment with different arginine doses. Using a physiologic inducer, such as the amino acid L-arginine, to control heterologous transgenes in a seamless manner which is devoid of noticeable metabolic interference will foster novel opportunities for precise expression dosing in future gene therapy scenarios as well as the manufacturing of difficult-to-produce protein pharmaceuticals. © 2007 The Author(s).

DOI:

Nucleic Acids Research,
2007, 35 (20).

OPEN ACCESS
A novel generic dipstick-based technology for rapid and precise detection of tetracycline, streptogramin and macrolide antibiotics in food samples

Link, N. | Weber, Wilfried | Fussenegger, M.

DOI:

Excessive use of antibiotics in veterinary medicine and as growth promoters in stock farming has been associated with the dramatically increasing prevalence of multidrug-resistant human pathogenic bacteria. European community legislators have therefore restricted the veterinary use of antibiotics and banned them as growth-promoting food additives in stock breeding (1831/2003/EC). The monitoring of such legislation requires technology for precise and straightforward on-site quantification of antibiotics in farm samples and food products without the need for extensive laboratory equipment and trained personnel. Capitalizing on bacterial transcriptional regulators (TetR, PIP, E), which are dose-dependently released from their cognate operators (tetO, PIR, ETR) upon binding of specific classes of antibiotics (tetracycline, streptogramins, macrolides) we have designed an easy-to-handle dipstick-based assay for detection of antibiotic levels in serum, meat and milk whose detection limits are up to 40-fold below licensed threshold values. The generic dipstick consists of either nitrocellulose, nylon or polyvinylidenfluorid (PVDF) membrane strips coated with streptavidin and immobilized biotinylated operator DNA, which acts as capture DNA to bind hexa-histidine (His6)-tagged bacterial biosensors. Antibiotics present in specific samples triggered the dose-dependent release of the capture DNA-biosensor interaction, which, after dipping into two different solutions, results in a correlated conversion of a chromogenic substrate by a standard His6-targeted enzyme complex. This can be quantified by comparison of the dipstick to a standardized color scale or by assessing the terminal solution at 450 nm. As demonstrated using serum, meat and milk samples spiked with 14 different antibiotics, the dipstick technology provided sensitive detection in a rapid assay format, and could be employed to monitor non-authorized use of antibiotics and to discover novel antibiotics. © 2006 Elsevier B.V. All rights reserved.

DOI:

Journal of Biotechnology,
2007, 128 (3), 668-680.

Vitamin H-regulated transgene expression in mammalian cells

Weber, Wilfried | Bacchus, W. | Daoud-El Baba, M. | Fussenegger, M.

DOI:

Although adjustable transgene expression systems are considered essential for future therapeutic and biopharmaceutical manufacturing applications, the currently available transcription control modalities all require side-effect-prone inducers such as immunosupressants, hormones and antibiotics for fine-tuning. We have designed a novel mammalian transcription-control system, which is reversibly fine-tuned by non-toxic vitamin H (also referred to as biotin). Ligation of vitamin H, by engineered Escherichia coli biotin ligase (BirA), to a synthetic biotinylation signal fused to the tetracycline-dependent transactivator (tTA), enables heterodimerization of tTA to a streptavidin-linked transrepressor domain (KRAB), thereby abolishing tTA-mediated transactivation of specific target promoters. As heterodimerization of tTA to KRAB is ultimately conditional upon the presence of vitamin H, the system is vitamin H responsive. Transgenic Chinese hamster ovary cells, engineered for vitamin H-responsive gene expression, showed high-level, adjustable and reversible production of a human model glycoprotein in bench-scale culture systems, bioreactor-based biopharmaceutical manufacturing scenarios, and after implantation into mice. The vitamin H-responsive expression systems showed unique band pass filter-like regulation features characterized by high-level expression at low (0-2 nM biotin), maximum repression at intermediate (100-1000 nM biotin), and high-level expression at increased (> 100 000 nM biotin) biotin concentrations. Sequential ON-to-OFF-to-ON, ON-to-OFF and OFF-to-ON expression profiles with graded expression transitions can all be achieved by simply increasing the level of a single inducer molecule without exchanging the culture medium. These novel expression characteristics mediated by an FDA-licensed inducer may foster advances in therapeutic cell engineering and manufacturing of difficult-to-produce protein therapeutics. © 2007 The Author(s).

DOI:

Nucleic Acids Research,
2007, 35 (17).

OPEN ACCESS
A novel vector platform for vitamin H-inducible transgene expression in mammalian cells

Weber, Wilfried | Bacchus, W. | Gruber, F. | Hamberger, M. | Fussenegger, M.

DOI:

Inducible transgene control systems have been instrumental to gene therapy, biopharmaceutical manufacturing, drug discovery, synthetic biology and functional genomic research. The most widely used heterologous gene regulation systems are responsive to antibiotics of the tetracycline, streptogramin and macrolide classes. Although these antibiotics are clinically licensed, concerns about the emergence of resistant bacteria, side-effects in animal studies, and economic considerations associated with clearance of antibiotics in biopharmaceutical manufacturing, have limited the use of heterologous transgene control modalities to basic research activities. We have therefore designed a strategy to convert antibiotic-responsive transcription factors into gene regulation systems responsive to non-toxic biotin, also known as vitamin H. Constitutive ligation of biotin to the Avitag-containing VP16 transactivation domain by the Escherichia coli biotin ligase BirA enables heterodimerization with tetracycline- (TetR), streptogramin- (Pip), and macrolide- (E) dependent repressors fused to streptavidin, which creates synthetic transactivators able to activate specific promoters (PhCMV*-1, PPIR, PETR). We have demonstrated (i) that exogenous biotin (40 nM) can induce heterologous transgene expression in a biotin- (serum-) free culture environment (biotin-dependent heterodimerization of transactivator); (ii) that excess biotin (above 200 μM) gradually represses transgene expression in a biotin- (serum-) containing environment (saturation of streptavidin by excess biotin prevents heterodimerization of the transactivator); and (iii) that avidin can sequestrate endogenous biotin in serum-containing cultures and so repress transgene expression in a dose-dependent manner. In addition, by engineering all off the components required for biotin-controlled transgene expression (Avitag-VP16, repressor-streptavidin, BirA) into a tricistronic (lenti)vector configuration, it was possible to transfect (transduce) a variety of mammalian cell lines and primary cells and enable biotin-controlled transgene expression in a simple and straightforward manner. The conversion of generic antibiotic-responsive transcription control modalities into systems adjustable by non-toxic vitamin H may foster novel advances in reprogramming of mammalian cells and production of difficult-to-produce protein pharmaceuticals. © 2007 Elsevier B.V. All rights reserved.

DOI:

Journal of Biotechnology,
2007, 131 (2), 150-158.

Synthetic ecosystems based on airborne inter- and intrakingdom communication

Weber, Wilfried | Daoud-El Baba, M. | Fussenegger, M.

DOI:

Intercellular communication within an organism, between populations, or across species and kingdoms forms the basis of many ecosystems in which organisms coexist through symbiotic, parasitic, or predator-prey relationships. Using multistep airborne communication and signal transduction, we present synthetic ecosystems within a mammalian cell population, in mice, or across species and kingdoms. Inter- and intrakingdom communication was enabled by using sender cells that produce volatile aldehydes, small vitamin-derived molecules, or antibiotics that diffuse, by gas or liquid phase, to receiver cells and induce the expression of specific target genes. Intercellular and cross-kingdom communication was shown to enable quorum sensing between and among mammalian cells, bacteria, yeast and plants, resulting in precise spatiotemporal control of IFN-β production. Interconnection of bacterial, yeast, and mammalian cell signaling enabled the construction of multistep signal transduction and processing networks as well as the design of synthetic ecosystems that mimic fundamental coexistence patterns in nature, including symbiosis, parasitism, and oscillating predator-prey interactions. © 2007 by The National Academy of Sciences of the USA.

DOI:

Proceedings of the National Academy of Sciences of the United States of America,
2007, 104 (25), 10435-10440.

OPEN ACCESS
Inducible product gene expression technology tailored to bioprocess engineering

Weber, Wilfried | Fussenegger, M.

DOI:

Bioprocess engineering has developed as a discipline to design optimal culture conditions and bioreactor operation protocols for production cell lines engineered for constitutive expression of desired protein pharmaceuticals. With the advent of heterologous gene regulation systems it has become possible to fine-tune expression of difficult-to-produce protein pharmaceuticals to optimal levels and to conditionally engineer cell metabolism for the best production performance. However, most of the small-molecules used to trigger expression of product or metabolic engineering product genes are incompatible with downstream processing regulations or process economics. Recent progress in product gene control design has resulted in the development of bioprocess-compatible regulation systems, which are responsive to physical parameters such as temperature or physiologic trigger molecules that are either an inherent part of host cell metabolism or intrinsic components of licensed protein-free cell culture media, such as redox status, vitamin H and gaseous acetaldehyde. While all of these systems have been shown to fine-tune product gene expression independent of the host cell metabolism some of them can be plugged into metabolic networks to capture critical physiologic parameters and convert them into an optimal production response. Assembly of individual product gene control modalities into synthetic networks has recently enabled construction of autonomously regulated time-delay or cell density-sensitive gene circuits, which trigger population-wide induction of product gene expression at a predefined time or culture density. We provide a comprehensive overview on the latest developments in the design of bioprocess-compatible product gene control systems. © 2007 Elsevier Ltd. All rights reserved.

DOI:

Current Opinion in Biotechnology,
2007, 18 (5), 399-410.

A genetic time-delay circuitry in mammalian cells

Weber, Wilfried | Kramer, B. P. | Fussenegger, M.

DOI:

Gene expression circuitries with time-delayed expression profiles regulate key events, such as oscillating systems, noise elimination, and coordinated multi-step processes, in all organisms from bacteria to mammalian cells. We present the rational synthesis of a genetic circuit displaying time-delayed expression in silico and in mammalian cells. The network is based on a time-delay circuit, where the tetracycline-responsive transactivator (tTA) induces expression of the pristinamycin-responsive repressor PIP-KRAB, which silences expression of the terminal human placental secreted alkaline phosphatase (SEAP). While the addition of pristinamycin I inactivates PIP-KRAB and results in the immediate resumption of SEAP expression, addition of tetracycline abolishes PIP-KRAB synthesis. Consequently, SEAP production remains repressed until the PIP-KRAB buffer in the cell is eliminated. We characterized in silico and in vivo the time-delayed expression properties and analyzed the impact of the size and stability of the PIP-KRAB buffer on fine-tuning of the response kinetics. This tunable time-delay circuitry represents a biologic building block for emulating a fundamental circuit topology in integrated artificial synthetic gene networks for the design of tailor-made cell types and organisms. © 2007 Wiley Periodicals, Inc.

DOI:

Biotechnology and Bioengineering,
2007, 98 (4), 894-902.

RepTAGs: Universal tags for isolation and labeling of proteins, for labeling live mammalian cells and for drug discovery

Weber, Wilfried | Link, N. | Aubel, D. | Weber, C. C. | Fussenegger, M.

DOI:

Methods for specific immobilization, isolation and labeling of proteins are central to the elucidation of cellular functions. Based on bacterial repressor proteins, which bind to specific target sequences in response to small molecules (macrolide and tetracycline antibiotics) or environmental parameters (temperature), we have developed a set of protein tags (RepTAGs), which enable reversible immobilization of the protein of interest on a solid support for the isolation and quantification as well as for the specific labeling of target proteins with fluorescent dyes for tracking them within a complex protein mixture. Similarly, live mammalian cells were specifically labeled with a fluorescent operator sequence bound to RepTAGs, which were directed towards the cell surface for easy discrimination between transfected and untransfected cell populations. Based on the drug-responsive RepTAG-DNA interactions, it was also possible to quantify or discover antibiotics in environmental samples or compound libraries by means of rapid, sensitive detection methods involving fluorescence polarization and bioluminescence. We believe that the universally applicable RepTAGs will become essential for the analysis and manipulation of proteins in the most diverse areas of protein chemistry and cell biology. © 2007 Wiley Periodicals, Inc.

DOI:

Biotechnology and Bioengineering,
2007, 98 (6), 1276-1287.