TY - THES A1 - Appelt-Menzel, Antje T1 - Etablierung und Qualifizierung eines humanen Blut-Hirn-Schranken-Modells unter Verwendung von induziert pluripotenten und multipotenten Stammzellen T1 - Establishment and qualification of a human blood-brain barrier model by use of human induced pluripotent stemm cells an multipotent stem cells N2 - Die Blut-Hirn-Schranke (BHS) stellt eine der dichtesten und wichtigsten Barrieren zwischen Blutzirkulation und Zentralnervensystem (ZNS) dar. Sie besteht aus spezialisierten Endothelzellen, welche die zerebralen Kapillaren auskleiden und durch sehr dichte Tight Junctions (TJs) miteinander verbunden sind. Weitere Komponenten der dynamischen Blut-Hirn-Schrankenbarriere stellen Perizyten, Astrozyten, Neurone und Mikrogliazellen dar, welche zusammen mit der extrazellulären Matrix der Basalmembran der Gehirnkapillaren und den zuvor genannten Endothelzellen ein komplexes regulatorisches System, die so genannte neurovaskuläre Einheit bilden (Hawkins und Davis 2005). Die Hauptfunktionen der BHS lassen sich in drei Untergruppen untergliedern, die physikalische, metabolische und Transport-Barriere (Neuhaus und Noe 2010). Hauptsächlich dient die BHS der Aufrechterhaltung der Homöostase des ZNS und dem Schutz vor neurotoxischen Substanzen sowie Pathogenen, wie Bakterien und Viren. Zudem ist sie auch für die Versorgung der Neuronen mit Nährstoffen und regulierenden Substanzen sowie den Efflux von Stoffwechselendprodukten des ZNS zurück ins Blut verantwortlich. Für die Entwicklung von Medikamenten zur Behandlung von neurodegenerativen Erkrankungen, wie Morbus Alzheimer, Morbus Parkinson und Multiple Sklerose oder Gehirntumoren, stellt die Dichtigkeit der BHS gegenüber Substanzen und die hohe metabolische Aktivität der Endothelzellen aber ein großes Problem dar. Viele Medikamente sind nicht in der Lage in ausreichender Konzentration die BHS zu überwinden, um an ihren Wirkort zu gelangen oder werden vor dem Transport metabolisiert und die Wirksamkeit dadurch eingeschränkt. Weiterhin spielen auch Defekte der BHS eine entscheidende Rolle in der Beeinflussung der Pathogenese vieler ZNS-Erkrankungen. Aufgrund des hohen Bedarfs an geeigneten Testsystemen in der Grundlagen- sowie präklinischen Forschung für Medikamentenentwicklung und Infektionsstudien wurden eine Vielzahl unterschiedlicher BHS-Modelle entwickelt. Neben in silico-, azellulären in vitro- und in vivo-Modellen sind auch zahlreiche zellbasierte Modelle der BHS entwickelt worden. Standardisierte Modelle auf Basis immortalisierter Zelllinien jedoch weisen nur eine inhomogene TJ-Expression auf und verfügen meist über eine geringe Barriereintegrität, erfasst über transendotheliale elektrische Widerstände (TEER) unter 150 · cm2 (Deli et al. 2005). Im Vergleich dazu wurden in Tierexperimenten TEER-Werte von mehr als 1500 · cm2 an der BHS gemessen (Butt et al. 1990; Crone und Olesen 1982). Die Verfügbarkeit humaner primärer BHS-Zellen ist sehr limitiert und ihr Einsatz nicht nur im Hinblick auf ethische Aspekte bedenklich. Humane Gehirnzellen können z. B. aus Biopsie- oder Autopsiematerial von Patienten mit Epilepsie oder Gehirntumoren isoliert werden. Allerdings besteht hier das Risiko, dass die isolierten Zellen krankheitsbedingt verändert sind, was die Eigenschaften der BHS-Modelle erheblich beeinflussen kann. Eine Alternative, die diese Probleme umgeht, ist die Verwendung von humanen induziert pluripotenten Stammzellen (hiPSCs), um standardisierte humane BHS-Modelle unter reproduzierbaren Bedingungen bereitzustellen. Im Rahmen dieser Arbeit ist es gelungen, hiPSCs in vitro nach etablierten und standardisierten Methoden in Endothelzellen der BHS, neurale Stammzellen (hiPS-NSCs) sowie Astrozyten (hiPS-A) zu differenzieren (Lippmann et al. 2012; Lippmann et al. 2014; Wilson et al. 2015; Yan et al. 2013;Reinhardt et al. 2013) und zum Aufbau der Modelle einzusetzen. Die Endothelzellen wurden mit Hilfe protein- und genbasierter Nachweismethoden auf das Vorhandensein von endothelzellspezifischen TJ-Markern sowie spezifischen Transportern untersucht und funktionell charakterisiert. Die Kryokonservierung der hiPS-EC-Progenitoren, die im Rahmen der vorliegenden Arbeit entwickelt wurde, ermöglicht eine größere räumliche und zeitliche Flexibilität beim Arbeiten mit den stammzellbasierten Modellen sowie das Anlegen standardisierter Zellbanken. Weiterhin wurden multipotente NSCs aus fetalen Gehirnbiopsien isoliert (fNSCs) und als Kontrollkulturen zu den hiPS-NSCs für den Aufbau von BHS-Modellen eingesetzt. Mit dem Ziel die in vivo-BHS bestmöglich zu imitieren und die Modelleigenschaften zu optimieren, wurde ein Set aus zehn unterschiedlichen BHS-Modellen basierend auf primären Zellen, hiPSCs und fNSCs analysiert. Der Aufbau der BHS-Modelle erfolgte unter Verwendung von Transwellsystemen. Durch die systematische Untersuchung des Einflusses der unterschiedlichen Zelltypen der neurovaskulären Einheit auf die Barriereintegrität und Genexpression des BHS-Endothels, konnten die Quadrupel-Kulturen mit Perizyten, Astrozyten und hiPS-NSCs als die Kultur mit den physiologischsten Eigenschaften identifiziert werden. Auf Grund der signifikant erhöhten TEER-Werte von bis zu 2500 · cm2 und einer um mindestens 1,5-fachen Steigerung der Genexpression BHSrelevanter Transporter und TJ-Moleküle gegenüber den Monokulturen, wurden diese Modelle für weiterführende Studien ausgewählt. Das Vorhandensein eines komplexen, in vivo-ähnlichen TJ-Netzwerkes, bestehend aus Occludin, Claudin 1, 3, 4 und 5, konnte mittels quantitativer Realtime-PCR, Western Blot sowie ultrastruktureller Analyse in der Gefrierbruch- und Raster-Elektronenmikroskopie nachgewiesen werden. Neben der Begrenzung der parazellulären Permeabilität, welche über die geringe Permeation von FITC-Dextran (4 kDa und 40 kDa), Fluoreszein und Lucifer Yellow nachgewiesen wurde, stellt die BHS ebenfalls eine Barriere für den transzellulären Transport von Substanzen dar. Eine Beurteilung der Modelle hinsichtlich der Qualifikation für die Nutzung im Wirkstoffscreening wurde mit Hilfe von Transportversuchen unter dem Einsatz von BHS-relevanten Referenzsubstanzen durchgeführt. Die Klassifikation der Testsubstanzen erfolgte analog ihrer Permeationsgeschwindigkeiten: Diazepam und Koffein gelten als schnell transportierte Wirkstoffe, Ibuprofen, Celecoxib und Diclofenac werden mit einer mittleren Geschwindigkeit über die BHS transportiert und Loratadin sowie Rhodamin 123 sind langsam permeierende Substanzen. Innerhalb der Versuche mit den Quadrupelkulturen wurde diese Reihenfolge bestätigt, lediglich für Koffein wurde ein signifikant niedrigerer Permeationskoeffizient verglichen mit der Monokultur erzielt. Der Einsatz der hiPSC-Technologie ermöglicht es zudem, aus einer Stammzelllinie große Mengen an humanen somatischen Zelltypen zu generieren und für gezielte Anwendungen bereitzustellen. Es konnte im Rahmen dieser Arbeit gezeigt werden, dass mit Hilfe eines eigens für diese Zwecke konstruierten Rührreaktorsystems eine reproduzierbare Expansion der hiPSCs unter definierten Bedingungen ermöglicht wurde. Basierend auf dieser Grundlage ist nun ein Hochdurchsatz-Screening von Medikamenten denkbar. Die in dieser Arbeit präsentierten Daten belegen die Etablierung eines stammzellbasierten in vitro- Quadrupelmodels der humanen BHS, welches über in vivo-ähnliche Eigenschaften verfügt. Die Anforderungen, die an humane BHS-Modelle gestellt werden, wie die Reproduzierbarkeit der Ergebnisse, eine angemessene Charakterisierung, welche die Untersuchung der Permeabilität von Referenzsubstanzen einschließt, die Analyse der Expression von BHS-relevanten Transportermolekülen sowie die solide und physiologische Morphologie der Zellen, wurden erfüllt. Das etablierte BHS-Modell kann in der Pharmaindustrie für die Entwicklung von Medikamenten eingesetzt werden. Ausreichend qualifizierte Modelle können hier in der präklinischen Forschung genutzt werden, um Toxizitäts- und Transportstudien an neu entwickelten Substanzen durchzuführen und eine bessere in vitro-in vivo-Korrelation der Ergebnisse zu ermöglichen oder Mechanismen zu entwickeln, um die BHS-Barriere gezielt zu überwinden. N2 - The blood-brain barrier (BBB) presents one of the tightest and most important barriers between the blood circulation and the central nervous system (CNS). The BBB consists of specialized endothelial cells, which line the cerebral capillaries and are connected through very dense tight junctions (TJs). Together with pericytes, astrocytes, neurons, microglial cells and the extracellular matrix of the basal membrane of the brain capillaries, they form a dynamic and complex regulatory system, the so-called neurovascular unit (Hawkins and Davis 2005). The main functions of the BBB can be divided into three subgroups, the physical-, metabolic- and transport-barrier (Neuhaus and Noe 2010). The BBB mainly serves to maintain the homeostasis of the CNS and for protection against neurotoxical substances and pathogens, such as bacteria and viruses. Moreover, the BBB ensures the supply of neurons with nutrients and regulatory substances. Furthermore, it is responsible for the efflux of CNS metabolism waste products. For the development of drugs applied for the treatment of neurodegenerative diseases such as Alzheimer’s disease, Parkinson’s disease and Multiple Sclerosis or even brain tumors, the tightness of the BBB models towards substances and the high metabolic activity of the endothelial cells pose a problem. Numerous drugs cannot overcome the BBB in sufficient enough concentration to reach the target location or they are metabolized before transportation and thus become less effective. Moreover, defects of the BBB play a decisive role in the manipulation of the pathogenesis of numerous CNS diseases. Due to the high demand for test systems in basic and preclinical research of drug development and infection studies, a range of different BBB models have been developed. Besides the in silico, acellular in vitro and in vivo models, numerous cell-based BBB models have been developed. However, standardized models based on immortalized cell lines show only inhomogeneous TJ expression and possess low barrier integrity which is detected through transendothelial electrical resistance (TEER) below 150 · cm2 (Deli et al. 2005). In comparison, the TEER values in animal tests reached more than 1500 · cm2 at the BBB (Butt et al. 1990; Crone and Olesen 1982). The availability of human primary BBB cells is highly limited. Moreover, using human primary BBB cells is an extremely serious matter, not only in respect of ethical aspects. Human brain cells can, for instance, be isolated from biopsy or autopsy material obtained from patients suffering epilepsy or brain cancer. However, there is the risk that the isolated cells are altered due to disease, which may significantly change the features of the BBB models. An alternative to avoid such problems and to provide standardized human BBB models by the use of reproducible conditions, is the application of human induced pluripotent stem cells (hiPSCs). In this context, it has been successful to differentiate hiPSCs in vitro – under established and reproducible methods – into endothelial cells of the BBB (hiPS-ECs), neural stem cells (hiPS-NSCs) as well as astrocytes (hiPS-A) (Lippmann et al. 2012; Lippmann et al. 2014; Wilson et al. 2015; Yan et al. 2013; Reinhardt et al. 2013) and to use them for model establishment. The endothelial cells were examined for the existence and the functionality of endothelial-specific markers as well as specific transporters by protein- and gene-based methods. Within this work, the croypreservation of hiPS-EC progenitors was established. This will allow an increase of the spatial and temporal flexibility while working with the stem cell based models as well as the establishment of standardized cell banks. Furthermore, multipotent NSCs, isolated from fetal brain biopsies (fNSCs), were used as a control population for hiPSC-NSCs and for BBB modelling. In order to imitate the in vivo BBB in the best possible way and to optimize model characteristics, a set of ten different BBB models based on primary cells, hiPSCs and fNSCs was analyzed. Model establishment was done by the use of transwell systems. By the systematically analysis of the influence of the different neurovascular unit cell types on barrier integrity and on endothelial cell gene expression, the quadruple culture with pericytes, astrocytes and hiPS-NSCs was identified demonstrating the most physiological properties. Due to the significant increase of TEER results up to 2500 · cm2 as well as the at least 1.5-fold increase in gene expression of BBB relevant transporter and TJ markers compared to the mono-cultures, this model was selected for further studies. The presence of a complex in vivo-like TJ network, based on occludin, claudin 1, 3, 4 and 5 was detected by quantitative reale time PCR, Western blot analyses as well as on ultrastructural level by freeze fracture electron microscopy and transmission electron microscopy. Beside the limitation of the paracellular permeability, proven by the low permeation of FITC dextran (4 kDa and 40 kDa), fluorescein and Lucifer yellow, the BBB represents also a barrier for transcellular transported substances. A model evaluation, to assess the models qualification to be used for drug screenings, was proven by transport studies based on BBB relevant reference substances. The classification of the test substances was made analog their permeation rates: diazepam and caffeine are classified as fast, ibuprofen, celecoxib and diclofenac as medium, and loratadine and rhodamine 123 as slow permeating substances. Within our tests, this ranking based on literature data could be confirmed by using the quadruple-culture models, only caffeine was transported with a significantly decreased permeation coefficient compared to the mono-cultures. Furthermore, the implementation of the hiPSC technology allows the generation of a large quantity of human somatic cell types form only one single stem cell line and their provision for specific applications. Within this work it was shown, that by the use of an in-house constructed stirred tank bio-reactor, providing defined culture conditions, a reproducible expansion of hiPSCs was enabled. On this basis, a high throughput drug screening might be possible. The data presented within this work demonstrate the establishment of a stem cell based in vitro quadruple-model of the human BBB with in vivo-like characteristics. All minimal requirements for human BBB modeling, including the reproducibility of the results, adequate characterization with regard on the permeability of reference components, expression of BBB transporters as well as the robust and physiological morphology are fulfilled. The established BBB model can be used in pharmaceutical drug development. In preclinical research adequate qualified models are asked for toxicity and transport studies with new developed substances in order to allow a better in vitro-in vivo correlation of the results. Moreover, the model can be used to develop mechanisms to selectively overcome the barrier. KW - Blut-Hirn-Schranke KW - Stammzelle KW - Zelldifferenzierung KW - In vitro KW - Endothelzelle KW - induziert pluripotente Stammzelle KW - multipotente Stammzelle KW - in vitro Modell KW - Neurovaskuläre Einheit KW - Neurale Stammzellen Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-134646 ER - TY - JOUR A1 - Markenstein, Lisa A1 - Appelt-Menzel, Antje A1 - Metzger, Marco A1 - Wenz, Gerhard T1 - Conjugates of methylated cyclodextrin derivatives and hydroxyethyl starch (HES): Synthesis, cytotoxicity and inclusion of anaesthetic actives JF - Beilstein Journal of Organic Chemistry N2 - The mono-6-deoxy-6-azides of 2,6-di-O-methyl-beta-cyclodextrin (DIMEB) and randomly methylated-beta-cyclodextrin (RAMEB) were conjugated to propargylated hydroxyethyl starch (HES) by Cu+-catalysed [2 + 3] cycloaddition. The resulting water soluble polymers showed lower critical solution temperatures (LCST) at 52.5 degrees C (DIMEB-HES) and 84.5 degrees C (RAMEB-HES), respectively. LCST phase separations could be completely avoided by the introduction of a small amount of carboxylate groups at the HES backbone. The methylated CDs conjugated to the HES backbone exhibited significantly lower cytotoxicities than the corresponding monomeric CD derivatives. Since the binding potentials of these CD conjugates were very high, they are promising candidates for new oral dosage forms of anaesthetic actives. KW - midazolam KW - supermolecular carrier systems KW - beta-cyclodextrin KW - pharmaceutical applications KW - gamma-cyclodextrin KW - anaesthetics KW - complexation KW - cyclodextrin KW - LCST KW - lower critical solution temperature KW - acid dissociation KW - drug KW - rat KW - cycloaddition KW - occupancy KW - polymer KW - sevoflurane KW - solubility KW - starch Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-114280 SN - 1860-5397 VL - 10 ER - TY - JOUR A1 - Schwedhelm, Ivo A1 - Zdzieblo, Daniela A1 - Appelt-Menzel, Antje A1 - Berger, Constantin A1 - Schmitz, Tobias A1 - Schuldt, Bernhard A1 - Franke, Andre A1 - Müller, Franz-Josef A1 - Pless, Ole A1 - Schwarz, Thomas A1 - Wiedemann, Philipp A1 - Walles, Heike A1 - Hansmann, Jan T1 - Automated real-time monitoring of human pluripotent stem cell aggregation in stirred tank reactors JF - Scientific Reports N2 - The culture of human induced pluripotent stem cells (hiPSCs) at large scale becomes feasible with the aid of scalable suspension setups in continuously stirred tank reactors (CSTRs). Innovative monitoring options and emerging automated process control strategies allow for the necessary highly defined culture conditions. Next to standard process characteristics such as oxygen consumption, pH, and metabolite turnover, a reproducible and steady formation of hiPSC aggregates is vital for process scalability. In this regard, we developed a hiPSC-specific suspension culture unit consisting of a fully monitored CSTR system integrated into a custom-designed and fully automated incubator. As a step towards cost-effective hiPSC suspension culture and to pave the way for flexibility at a large scale, we constructed and utilized tailored miniature CSTRs that are largely made from three-dimensional (3D) printed polylactic acid (PLA) filament, which is a low-cost material used in fused deposition modelling. Further, the monitoring tool for hiPSC suspension cultures utilizes in situ microscopic imaging to visualize hiPSC aggregation in real-time to a statistically significant degree while omitting the need for time-intensive sampling. Suitability of our culture unit, especially concerning the developed hiPSC-specific CSTR system, was proven by demonstrating pluripotency of CSTR-cultured hiPSCs at RNA (including PluriTest) and protein level. KW - Biomedical engineering KW - Stem-cell biotechnology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-202649 VL - 9 ER - TY - JOUR A1 - Gomes, Sara F. Martins A1 - Westermann, Alexander J. A1 - Sauerwein, Till A1 - Hertlein, Tobias A1 - Förstner, Konrad U. A1 - Ohlsen, Knut A1 - Metzger, Marco A1 - Shusta, Eric V. A1 - Kim, Brandon J. A1 - Appelt-Menzel, Antje A1 - Schubert-Unkmeir, Alexandra T1 - Induced pluripotent stem cell-derived brain endothelial cells as a cellular model to study Neisseria meningitidis infection JF - Frontiers in Microbiology N2 - Meningococcal meningitis is a severe central nervous system infection that occurs when Neisseria meningitidis (Nm) penetrates brain endothelial cells (BECs) of the meningeal blood-cerebrospinal fluid barrier. As a human-specific pathogen, in vivo models are greatly limited and pose a significant challenge. In vitro cell models have been developed, however, most lack critical BEC phenotypes limiting their usefulness. Human BECs generated from induced pluripotent stem cells (iPSCs) retain BEC properties and offer the prospect of modeling the human-specific Nm interaction with BECs. Here, we exploit iPSC-BECs as a novel cellular model to study Nm host-pathogen interactions, and provide an overview of host responses to Nm infection. Using iPSC-BECs, we first confirmed that multiple Nm strains and mutants follow similar phenotypes to previously described models. The recruitment of the recently published pilus adhesin receptor CD147 underneath meningococcal microcolonies could be verified in iPSC-BECs. Nm was also observed to significantly increase the expression of pro-inflammatory and neutrophil-specific chemokines IL6, CXCL1, CXCL2, CXCL8, and CCL20, and the secretion of IFN-γ and RANTES. For the first time, we directly observe that Nm disrupts the three tight junction proteins ZO-1, Occludin, and Claudin-5, which become frayed and/or discontinuous in BECs upon Nm challenge. In accordance with tight junction loss, a sharp loss in trans-endothelial electrical resistance, and an increase in sodium fluorescein permeability and in bacterial transmigration, was observed. Finally, we established RNA-Seq of sorted, infected iPSC-BECs, providing expression data of Nm-responsive host genes. Altogether, this model provides novel insights into Nm pathogenesis, including an impact of Nm on barrier properties and tight junction complexes, and suggests that the paracellular route may contribute to Nm traversal of BECs. KW - Neisseria meningitidis KW - meningococcus KW - bacteria KW - stem cells KW - blood-cerebrospinal fluid barrier KW - blood-brain barrier KW - brain endothelial cells Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201562 VL - 10 IS - 1181 ER - TY - JOUR A1 - Appelt-Menzel, Antje A1 - Cubukova, Alevtina A1 - Günther, Katharina A1 - Edenhofer, Frank A1 - Piontek, Jörg A1 - Krause, Gerd A1 - Stüber, Tanja A1 - Walles, Heike A1 - Neuhaus, Winfried A1 - Metzger, Marco T1 - Establishment of a Human Blood-Brain Barrier Co-culture Model Mimicking the Neurovascular Unit Using Induced Pluri- and Multipotent Stem Cells JF - Stem Cell Reports N2 - In vitro models of the human blood-brain barrier (BBB) are highly desirable for drug development. This study aims to analyze a set of ten different BBB culture models based on primary cells, human induced pluripotent stem cells (hiPSCs), and multipotent fetal neural stem cells (fNSCs). We systematically investigated the impact of astrocytes, pericytes, and NSCs on hiPSC-derived BBB endothelial cell function and gene expression. The quadruple culture models, based on these four cell types, achieved BBB characteristics including transendothelial electrical resistance (TEER) up to 2,500 Ω cm\(^{2}\) and distinct upregulation of typical BBB genes. A complex in vivo-like tight junction (TJ) network was detected by freeze-fracture and transmission electron microscopy. Treatment with claudin-specific TJ modulators caused TEER decrease, confirming the relevant role of claudin subtypes for paracellular tightness. Drug permeability tests with reference substances were performed and confirmed the suitability of the models for drug transport studies. KW - blood-brain barrier (BBB) model KW - human induced pluripotent stem cells (hiPSCs)human induced pluripotent stem cells (hiPSCs) KW - multipotent fetal neural stem cells (fNSCs) KW - neurovascular unit in vitro Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170982 VL - 8 IS - 4 ER - TY - JOUR A1 - Hofmann, Julian A1 - Fayez, Shaimaa A1 - Scheiner, Matthias A1 - Hoffmann, Matthias A1 - Oerter, Sabrina A1 - Appelt‐Menzel, Antje A1 - Maher, Pamela A1 - Maurice, Tangui A1 - Bringmann, Gerhard A1 - Decker, Michael T1 - Sterubin: Enantioresolution and Configurational Stability, Enantiomeric Purity in Nature, and Neuroprotective Activity in Vitro and in Vivo JF - Chemistry – A European Journal N2 - Alzheimer′s disease (AD) is a neurological disorder with still no preventive or curative treatment. Flavonoids are phytochemicals with potential therapeutic value. Previous studies described the flavanone sterubin isolated from the Californian plant Eriodictyon californicum as a potent neuroprotectant in several in vitro assays. Herein, the resolution of synthetic racemic sterubin (1) into its two enantiomers, (R)‐1 and (S)‐1, is described, which has been performed on a chiral chromatographic phase, and their stereochemical assignment online by HPLC‐ECD coupling. (R)‐1 and (S)‐1 showed comparable neuroprotection in vitro with no significant differences. While the pure stereoisomers were configurationally stable in methanol, fast racemization was observed in the presence of culture medium. We also established the occurrence of extracted sterubin as its pure (S)‐enantiomer. Moreover, the activity of sterubin (1) was investigated for the first time in vivo, in an AD mouse model. Sterubin (1) showed a significant positive impact on short‐ and long‐term memory at low dosages. KW - Alzheimer′s disease KW - chiral resolution KW - circular dichroism KW - Eriodictyon californicum KW - flavonoids KW - sterubin Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215993 VL - 26 IS - 32 SP - 7299 EP - 7308 ER - TY - JOUR A1 - Appelt‐Menzel, Antje A1 - Oerter, Sabrina A1 - Mathew, Sanjana A1 - Haferkamp, Undine A1 - Hartmann, Carla A1 - Jung, Matthias A1 - Neuhaus, Winfried A1 - Pless, Ole T1 - Human iPSC‐Derived Blood‐Brain Barrier Models: Valuable Tools for Preclinical Drug Discovery and Development? JF - Current Protocols in Stem Cell Biology N2 - Translating basic biological knowledge into applications remains a key issue for effectively tackling neurodegenerative, neuroinflammatory, or neuroendocrine disorders. Efficient delivery of therapeutics across the neuroprotective blood‐brain barrier (BBB) still poses a demanding challenge for drug development targeting central nervous system diseases. Validated in vitro models of the BBB could facilitate effective testing of drug candidates targeting the brain early in the drug discovery process during lead generation. We here review the potential of mono‐ or (isogenic) co‐culture BBB models based on brain capillary endothelial cells (BCECs) derived from human‐induced pluripotent stem cells (hiPSCs), and compare them to several available BBB in vitro models from primary human or non‐human cells and to rodent in vivo models, as well as to classical and widely used barrier models [Caco‐2, parallel artificial membrane permeability assay (PAMPA)]. In particular, we are discussing the features and predictivity of these models and how hiPSC‐derived BBB models could impact future discovery and development of novel CNS‐targeting therapeutics. KW - blood‐brain barrier (BBB) KW - CNS disease KW - drug permeability screening KW - human‐induced pluripotent stem cells (hiPSC) KW - preclinical drug discovery Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-218509 VL - 55 IS - 1 ER - TY - JOUR A1 - Koenig, Leopold A1 - Ramme, Anja Patricia A1 - Faust, Daniel A1 - Mayer, Manuela A1 - Flötke, Tobias A1 - Gerhartl, Anna A1 - Brachner, Andreas A1 - Neuhaus, Winfried A1 - Appelt-Menzel, Antje A1 - Metzger, Marco A1 - Marx, Uwe A1 - Dehne, Eva-Maria T1 - A human stem cell-derived brain-liver chip for assessing blood-brain-barrier permeation of pharmaceutical drugs JF - Cells N2 - Significant advancements in the field of preclinical in vitro blood-brain barrier (BBB) models have been achieved in recent years, by developing monolayer-based culture systems towards complex multi-cellular assays. The coupling of those models with other relevant organoid systems to integrate the investigation of blood-brain barrier permeation in the larger picture of drug distribution and metabolization is still missing. Here, we report for the first time the combination of a human induced pluripotent stem cell (hiPSC)-derived blood-brain barrier model with a cortical brain and a liver spheroid model from the same donor in a closed microfluidic system (MPS). The two model compounds atenolol and propranolol were used to measure permeation at the blood–brain barrier and to assess metabolization. Both substances showed an in vivo-like permeation behavior and were metabolized in vitro. Therefore, the novel multi-organ system enabled not only the measurement of parent compound concentrations but also of metabolite distribution at the blood-brain barrier. KW - blood-brain barrier (BBB) model KW - human induced pluripotent stem cells (hiPSCs) KW - microphysiological systems (MPS) KW - multi-organ chip KW - brain–liver chip Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-290375 SN - 2073-4409 VL - 11 IS - 20 ER -