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.
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Publikationen
Fischer, Alexandra A. M. | Schatz, Larissa | Baaske, Julia | Römer, Winfried | Weber, Wilfried | Thuenauer, Roland
DOI:
Each cell in a multicellular organism permanently adjusts the concentration of its cell
surface proteins. In particular, epithelial cells tightly control the number of carriers,
transporters and cell adhesion proteins at their plasma membrane. However, sensi-
tively measuring the cell surface concentration of a particular protein of interest in
live cells and in real time represents a considerable challenge. Here, we introduce a
novel approach based on split luciferases, which uses one luciferase fragment as a
tag on the protein of interest and the second fragment as a supplement to the extra-
cellular medium. Once the protein of interest arrives at the cell surface, the luciferase
fragments complement and generate luminescence. We compared the performance
of split Gaussia luciferase and split Nanoluciferase by using a system to synchronize
biosynthetic trafficking with conditional aggregation domains. The best results were
achieved with split Nanoluciferase, for which luminescence increased more than
6000-fold upon recombination. Furthermore, we showed that our approach can sep-
arately detect and quantify the arrival of membrane proteins at the apical and baso-
lateral plasma membrane in single polarized epithelial cells by detecting the
luminescence signals with a microscope, thus opening novel avenues for characteriz-
ing the variations in trafficking in individual epithelial cells.
Hörner, Maximilian | Becker, Jan | Bohnert, Rebecca | Banos, Miguel | Jerez-Longres, Carolina | Mühlhäuser, Vanessa | Härrer, Daniel | Wang Wong, Tin | Meier, Matthias | Weber, Wilfried
DOI:
Hydrogels with adjustable mechanical properties have been engineered as matrices for mammalian cells and allow the dynamic, mechano-responsive manipulation of cell fate and function. Recent research yields hydrogels, where biological photoreceptors translated optical signals into a reversible and adjustable change in hydrogel mechanics. While their initial application provides important insights into mechanobiology, broader implementation is limited by a small dynamic range of addressable stiffness. Herein, this limitation is overcome by developing a photoreceptor-based hydrogel with reversibly adjustable stiffness from ≈800 Pa to the sol state. The hydrogel is based on star-shaped polyethylene glycol, functionalized with the red/far-red light photoreceptor phytochrome B (PhyB), or phytochrome-interacting factor 6 (PIF6). Upon illumination with red light, PhyB heterodimerizes with PIF6, thus crosslinking the polymers and resulting in gelation. However, upon illumination with far-red light, the proteins dissociate and trigger a complete gel-to-sol transition. The hydrogel's light-responsive mechanical properties are comprehensively characterized and it is applied as a reversible extracellular matrix for the spatiotemporally controlled deposition of mammalian cells within a microfluidic chip. It is anticipated that this technology will open new avenues for the site- and time-specific positioning of cells and will contribute to overcome spatial restrictions.
Jerez-Logres, Carolina | Gómez-Matos, Marieta | Becker, Jan | Hörner, Maximilian | Wieland, Franz-Georg | Timmer, Jens | Weber, Wilfried
DOI:
Encapsulated cell-based therapies involve the use of genetically-modified cells embedded in a material in order to produce a therapeutic agent in a specific location in the patient's body. This approach has shown great potential in animal model systems for treating diseases such as type I diabetes or cancer, with selected approaches having been tested in clinical trials. Despite the promise shown by encapsulated cell therapy, though, there are safety concerns yet to be addressed, such as the escape of the engineered cells from the encapsulation material and the resulting production of therapeutic agents at uncontrolled sites in the body. For that reason, there is great interest in the implementation of safety switches that protect from those side effects. Here, we develop a material-genetic interface as safety switch for engineered mammalian cells embedded into hydrogels. Our switch allows the therapeutic cells to sense whether they are embedded in the hydrogel by means of a synthetic receptor and signaling cascade that link transgene expression to the presence of an intact embedding material. The system design is highly modular, allowing its flexible adaptation to other cell types and embedding materials. This autonomously acting switch constitutes an advantage over previously described safety switches, which rely on user-triggered signals to modulate activity or survival of the implanted cells. We envision that the concept developed here will advance the safety of cell therapies and facilitate their translation to clinical evaluation.
Molinari, Pamela E. | Krapp, Adriana R. | Weiner, Andrea | Beyer, Hannes M. | Kondadi, Arun Kumar | Blomeier, Tim | López, Melina | Bustos-Sanmamed, Pilar | Tevere, Evelyn | Weber, Wilfried | Reichert, Andreas S. | Calcaterra, Nora B. | Beller, Mathias | Carrillo, Nestor | Zurbriggen, Matias D.
DOI:
NADP(H) is a central metabolic hub providing reducing equivalents to multiple biosynthetic, regulatory and antioxidative pathways in all living organisms. While biosensors are available to determine NADP+ or NADPH levels in vivo, no probe exists to estimate the NADP(H) redox status, a determinant of the cell energy availability. We describe herein the design and characterization of a genetically-encoded ratiometric biosensor, termed NERNST, able to interact with NADP(H) and estimate ENADP(H). NERNST consists of a redox-sensitive green fluorescent protein (roGFP2) fused to an NADPH-thioredoxin reductase C module which selectively monitors NADP(H) redox states via oxido-reduction of the roGFP2 moiety. NERNST is functional in bacterial, plant and animal cells, and organelles such as chloroplasts and mitochondria. Using NERNST, we monitor NADP(H) dynamics during bacterial growth, environmental stresses in plants, metabolic challenges to mammalian cells, and wounding in zebrafish. NERNST estimates the NADP(H) redox poise in living organisms, with various potential applications in biochemical, biotechnological and biomedical research.
Russ, Marissa | Ehret, Anna K. | Hörner, Maximilian | Peschkov, Daniel | Bohnert, Rebecca | Idstein, Vincent | Minguet, Susana | Weber, Wilfried | Lillemeier, Björn F. | Yousefi, O. Sascha | Schamel, Wolfgang W.
DOI:
The kinetics of a ligand-receptor interaction determine the responses of the receptor-expressing cell. One approach to experimentally and reversibly change this kinetics on demand is optogenetics. We have previously developed a system in which the interaction of a modified receptor with an engineered ligand can be controlled by light. In this system the ligand is a soluble Phytochrome B (PhyB) tetramer and the receptor is fused to a mutated PhyB-interacting factor (PIFS). However, often the natural ligand is not soluble, but expressed as a membrane protein on another cell. This allows ligand-receptor interactions in two dimensions. Here, we developed a strategy to generate cells that display PhyB as a membrane-bound protein by expressing the SpyCatcher fused to a transmembrane domain in HEK-293T cells and covalently coupling purified PhyB-SpyTag to these cells. As proof-of-principle, we use Jurkat T cells that express a GFP-PIFS-T cell receptor and show that these cells can be stimulated by the PhyB-coupled HEK-293T cells in a light dependent manner. Thus, we call the PhyB-coupled cells opto-antigen presenting cells (opto-APCs). Our work expands the toolbox of optogenetic technologies, allowing two-dimensional ligand-receptor interactions to be controlled by light.
Su, C. | Rodriguez-Franco, M. | Lace, B. | Nebel, N. | Hernandez-Reyes, C. | Liang, P. | Schulze, E. | Mymrikov, E. V. | Gross, N. M. | Knerr, J. | Wang, H. | Siukstaite, L. | Keller, J. | Libourel, C. | Fischer, A. A. M. | Gabor, K. E. | Mark, E. | Popp, C. | Hunte, C. | Weber, Wilfried | Wendler, P. | Stanislas, T. | Delaux, P. M. | Einsle, O. | Grosse, R. | Römer, W. | Ott, T.
DOI:
In plants, the topological organization of membranes has mainly been attributed to the cell wall and the cytoskeleton. Additionally, few proteins, such as plant-specific remorins have been shown to function as protein and lipid organizers. Root nodule symbiosis requires continuous membrane re-arrangements, with bacteria being finally released from infection threads into membrane-confined symbiosomes. We found that mutations in the symbiosis-specific SYMREM1 gene result in highly disorganized perimicrobial membranes. AlphaFold modelling and biochemical analyses reveal that SYMREM1 oligomerizes into antiparallel dimers and may form a higher-order membrane scaffolding structure. This was experimentally confirmed when expressing this and other remorins in wall-less protoplasts is sufficient where they significantly alter and stabilize de novo membrane topologies ranging from membrane blebs to long membrane tubes with a central actin filament. Reciprocally, mechanically induced membrane indentations were equally stabilized by SYMREM1. Taken together we describe a plant-specific mechanism that allows the stabilization of large-scale membrane conformations independent of the cell wall. © 2023, The Author(s).
Raute, Katrin | Strietz, Juliane | Parigiani, Maria Alejandra | Andrieux, Geoffroy | Thomas, Oliver S. | Kistner, Klaus M. | Zintchenko, Marina | Aichele, Peter | Hofmann, Maike | Zhou, Houjiang | Weber, Wilfried | Boerries, Melanie | Swamy, Mahima | Maurer, Jochen | Minguet, Susana
DOI:
There are no targeted therapies for patients with triple-negative breast cancer (TNBC). TNBC is enriched in breast cancer stem cells (BCSC), which play a key role in metastasis, chemoresistance, relapse, and mortality. γδ T cells hold great potential in immunotherapy against cancer and might provide an approach to therapeutically target TNBC. γδ T cells are commonly observed to infiltrate solid tumors and have an extensive repertoire of tumor-sensing mechanisms, recognizing stress-induced molecules and phosphoantigens (pAgs) on transformed cells. Herein, we show that patient-derived triple-negative BCSCs are efficiently recognized and killed by ex vivo expanded γδ T cells from healthy donors. Orthotopically xenografted BCSCs, however, were refractory to γδ T-cell immunotherapy. We unraveled concerted differentiation and immune escape mechanisms: xenografted BCSCs lost stemness, expression of γδ T-cell ligands, adhesion molecules, and pAgs, thereby evading immune recognition by γδ T cells. Indeed, neither promigratory engineered γδ T cells, nor anti–PD-1 checkpoint blockade, significantly prolonged overall survival of tumor-bearing mice. BCSC immune escape was independent of the immune pressure exerted by the γδ T cells and could be pharmacologically reverted by zoledronate or IFNα treatment. These results pave the way for novel combinatorial immunotherapies for TNBC.

Ates, H. C. | Mohsenin, H. | Wenzel, C. | Glatz, R. T. | Wagner, H. J. | Bruch, R. | Hoefflin, N. | Spassov, S. | Streicher, L. | Lozano-Zahonero, S. | Flamm, B. | Trittler, R. | Hug, M. J. | Köhn, M. | Schmidt, J. | Schumann, S. | Urban, G. A. | Weber, Wilfried | Dincer, C.
DOI:
Personalized antibiotherapy ensures that the antibiotic concentration remains in the optimal therapeutic window to maximize efficacy, minimize side effects, and avoid the emergence of drug resistance due to insufficient dosing. However, such individualized schemes need frequent sampling to tailor the blood antibiotic concentrations. To optimally integrate therapeutic drug monitoring (TDM) into the clinical workflow, antibiotic levels can either be measured in blood using point-of-care testing (POCT), or can rely on noninvasive sampling. Here, a versatile biosensor with an antibody-free assay for on-site TDM is presented. The platform is evaluated with an animal study, where antibiotic concentrations are quantified in different matrices including whole blood, plasma, urine, saliva, and exhaled breath condensate (EBC). The clearance and the temporal evaluation of antibiotic levels in EBC and plasma are demonstrated. Influence of matrix effects on measured drug concentrations is determined by comparing the plasma levels with those in noninvasive samples. The system's potential for blood-based POCT is further illustrated by tracking ß‑lactam concentrations in untreated blood samples. Finally, multiplexing capabilities are explored successfully for multianalyte/sample analysis. By enabling a rapid, low-cost, sample-independent, and multiplexed on-site TDM, this system can shift the paradigm of “one‑size-fits-all” strategy. © 2021 The Authors. Advanced Materials published by Wiley-VCH GmbH

