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Das Ziel der Arbeit war zu untersuchen, ob der Stoffwechsel kolorektaler Karzi-nomzellen geeignete Targetstrukturen für mögliche therapeutische Ansätze aufweist. In Krebszellen induziert sowohl der Warburg-Effekt bei Normoxie als auch die anaerobe Glykolyse bei Hypoxie eine massive Bildung von Laktat. Wird die Krebszelle dauerhaft daran gehindert, die für die Glykolyse notwendi-gen Reduktionsäquivalente NADH+H+ mit Hilfe der Laktatdehydrogenase zu reoxidieren und/oder Laktat über die Transporter MCT1 und MCT4 nach außen zu schleusen, dann löst diese Kombination aus Mangelsituation und intrazellulärer Ansäuerung den apoptotischen Zelltod aus. Für die Situation in vivo ist entscheidend, dass auch Zellen von Normalgeweben zwar Laktat in Hypoxie bilden, dies jedoch keine vorherrschende physiologische Situation darstellt.
Die Hemmstoffe Natriumoxamat (NaOx) für die Laktatdehydrogenase und α-Cyano-4-Hydroxycinnamat (αCHC) für MCT1 und MCT4 wurden an den sechs humanen kolorektalen Karzinomzelllinien Colo741, HCT116, HT29, LS174T, SW620 und WiDr untersucht. Zusätzlich wurde der Glukoseverbrauch und die Laktatbildung bestimmt und die Funktion der Atmungskette überprüft. Die IC50-Werte für 5-FU, NaOx und αCHC wurden bestimmt und danach NaOx in einer Konzentration von 40x10-3 mol/L, αCHC in einer Konzentration von 2x10-3 mol/L und 5-FU in einer Konzentration von 5x10-6 mol/L eingesetzt. Die Zellen wurden bei tumorphysiologischen Sauerstoffkonzentrationen von 5 % und 1 % Sauerstoff für bis zu 120 Stunden inkubiert.
Die Funktion der Atmungskette in den Mitochondrien der kolorektalen Karzi-nomzellen wurde u. a. durch Bestimmung wichtiger Kenngrößen wie dem P:O Quotienten und des respiratorischen Kontrollindex (RKI) nachgewiesen. Fünf der sechs Karzinomzelllinien wiesen im Vergleich zur Kontrollzelllinie J774 einen verringerten P:O-Quotienten und respiratorischen Kontrollindex (RKI) auf, was darauf hindeutet, dass die Funktion der Mitochondrien dieser Zellen im Vergleich zu Kontrollzellen zwar verringert war, aber nicht vollständig aufgehoben. Dieses Ergebnis stützt die allgemein akzeptierte Auffassung, dass die meisten Tumore über funktionelle Mitochondrien verfügen.
Durch die Analyse des Glukosestoffwechsels wurden die sechs kolorektalen Zelllinien, die einen unterschiedlich stark ausgeprägten glykolytischen Phänotyp aufwiesen, nach der Stärke der Laktatbildung bei 5 % Sauerstoff in drei Kategorien eingeordnet. Zudem wurde für jede der sechs Zelllinien die Expression von LDH-A, LDH-B sowie MCT-1 und MCT-4 auf Proteinebene nachgewiesen.
Wesentliches Ziel der Untersuchungen war die Überprüfung des antiprolife-rativen Potentials der beiden Inhibitoren NaOx und αCHC einzeln oder in Kombination mit 5-FU bei den tumorspezifischen Sauerstoffkonzentrationen von 5 % und 1 %. Die Kombination aus NaOx und αCHC induzierte bei 1 % Sauerstoff nach 9 Tagen in Kultur zytotoxische Effekte und war damit so wirksam wie 5x10-6 mol/L 5-FU. Die Zugabe von 5-FU zur Kombination aus NaOx und αCHC führte zu keiner Steigerung des zelltoxischen Effektes. Die beiden Inhibitoren NaOx und αCHC waren für SW620 Zellen weniger wirksam als für Zellen der anderen fünf Zelllinien. Das mehr „oxidative“ Profil von SW620 Zellen (bester P:O-Quotient, geringste Laktatbildung bei 5 % und 1 % Sauerstoff; zudem die höchsten IC50-Werte für NaOx und αCHC) könnte erklären, warum die beiden Stoffwechselinhibitoren, die einen glykolytischen Phänotyp (starke Bildung von Laktat) erfordern, für SW620 Zellen von geringerer Wirksamkeit waren.
Für die Hemmstoffe NaOx und αCHC wurden zytostatische bzw. zytotoxische Effekte in kolorektalen Karzinomzellen gezeigt. Dies deutet darauf hin, dass Krebszellen auf einen ungehinderten glykolytischen Stoffwechsel angewiesen sind. Für beide Hemmstoffe wurde ebenfalls gezeigt, dass sie auch bei tumorre-levanten Sauerstoffkonzentrationen von 5 % und 1 % wirksam sind.
Echinococcus multilocularis is the causative agent of alveolar echinococcosis (AE), a life-threatening disease with limited options of chemotherapeutic treatment. Anti-AE chemotherapy is currently based on a single class of drugs, the benzimidazoles. Although acting parasitocidic in vitro, benzimidazoles are merely parasitostatic during in vivo treatment of AE and cause severe site effects. In the case of operable lesions, the resection of parasite tissue needs to be supported by a prolonged chemotherapy. Thus, the current treatment options for AE are inadequate and require alternatives. In the present work, the flatworm signaling pathways were analyzed to establish potential targets for novel therapeutic approaches. I focused on factors that are involved in development and proliferation of E. multilocularis using molecular, biochemical and cell biological methods. Among the analysed factors were three MAP kinases of the parasite, EmMPK1, an Erk-1/2 orthologue, EmMPK2, a p38 orthologue and EmMPK3, an Erk7/8 orthologue. Further, I identified and characterized EmMKK2, a MEK1/2 orthologue of the parasite, which, together with the known kinases EmRaf and EmMPK1, forms an Erk1/2-like MAPK module. Moreover, I was able to demonstrate several influences of host growth factors such as EGF (epidermal growth factor) and insulin on worm signaling mechanisms and larval growth, including the phosphorylation of Elp, an ezrin-radixin-moesin like protein, EmMPK1, EmMPK3 and increased mitotic activity of Echinococcus cells. In addition, several substances were examined for their efficacy against the parasite including (i) general tyrosine kinase inhibitors (PP2, leflunamide), (ii) compounds designed to inhibit the activity of receptor tyrosine kinases, (iii) anti-neoplastic agents (miltefosine, perifosine), (iv) serine/threonine kinase inhibitors that have been designed to block the Erk1/2 MAPK cascade and (v) inhibitors of p38 MAPKs. In these studies, EmMPK2 proved to be a promising drug target for the following reasons. Amino acid sequence analysis disclosed several differences to human p38 MAPKs, which is likely to be the reason for the observed enhanced basal activity of recombinant EmMPK2 towards myelin basic protein in comparison to human recombinant p38 MAPK-α. In addition, the prominent auto-phosphorylation activity of the recombinant EmMPK2 protein together with the absence of an interaction with the Echinococcus MKKs suggest a different mechanism of regulation compared to the human enzyme. EmMPK2 activity could be effectively inhibited in vitro and in cultivated metacestode vesicles by treatment with SB202190 and ML3403, two ATP-competitive pyridinyl imidazole inhibitors of p38 MAPKs, in a concentration-dependent manner. Moreover, both compounds, in particular ML3403, caused parasite vesicle inactivation at concentrations which did not affect cultured mammalian cells. Likewise, during the cultivation of Echinococcus primary cells, the presence of ML3403 prevented the generation of new vesicles. Targeting members of the EGF signaling pathway, particulary of the Erk1/2-like MAPK cascade, with Raf and MEK inhibitors prevented the phosphorylation of EmMPK1 in metacestodes cultivated in vitro. However, although parasite growth was prevented under these conditions, the structural integrity of the metacestode vesicles maintained during long-term cultivation in the presence of the MAPK cascade inhibitors. Similar results were obtained when studying the effects of other drugs mentioned above. Taken together, several targets could be identified that reacted with high sensitivity to the presence of inhibitory substances, but did not cause the parasite’s death with one exception, the pyridinyl imidazoles. Based on the presented data, I suggest pyridinyl imidazoles as a novel class of anti-Echinococcus drugs and imply EmMPK2 as survival signal mediating factor, the inhibition of which could be used for the treatment of AE.
The WHO-designated neglected-disease pathogen Chlamydia trachomatis (CT) is a gram-negative bacterium responsible for the most frequently diagnosed sexually transmitted infection worldwide. CT infections can lead to infertility, blindness and reactive arthritis, among others. CT acts as an infectious agent by its ability to evade the immune response of its host, which includes the impairment of the NF-κB mediated inflammatory response and the Mcl1 pro-apoptotic pathway through its deubiquitylating, deneddylating and transacetylating enzyme ChlaDUB1 (Cdu1). Expression of Cdu1 is also connected to host cell Golgi apparatus fragmentation, a key process in CT infections.
Cdu1 may this be an attractive drug target for the treatment of CT infections. However, a lead molecule for the development of novel potent inhibitors has been unknown so far. Sequence alignments and phylogenetic searches allocate Cdu1 in the CE clan of cysteine proteases. The adenovirus protease (adenain) also belongs to this clan and shares a high degree of structural similarity with Cdu1. Taking advantage of topological similarities between the active sites of Cdu1 and adenain, a target-hopping approach on a focused set of adenain inhibitors, developed at Novartis, has been pursued. The thereby identified cyano-pyrimidines represent the first active-site directed covalent reversible inhibitors for Cdu1. High-resolution crystal structures of Cdu1 in complex with the covalently bound cyano-pyrimidines as well as with its substrate ubiquitin have been elucidated. The structural data of this thesis, combined with enzymatic assays and covalent docking studies, provide valuable insights into Cdu1s activity, substrate recognition, active site pocket flexibility and potential hotspots for ligand interaction. Structure-informed drug design permitted the optimization of this cyano-pyrimidine based scaffold towards HJR108, the first molecule of its kind specifically designed to disrupt the function of Cdu1. The structures of potentially more potent and selective Cdu1 inhibitors are herein proposed.
This thesis provides important insights towards our understanding of the structural basis of ubiquitin recognition by Cdu1, and the basis to design highly specific Cdu1 covalent inhibitors.
Mammalian phoshoglycolate phosphatase (PGP, also known as AUM) belongs to the ubiquitous HAD superfamily of phosphatases. As several other members of HAD phosphatases, the Mg2+-dependent dephosphorylation is conducted via a nucleophilic attack from a conserved aspartate residue in the catalytic cleft. The protein structure of PGP could not yet be solved entirely. Only a hybrid consisting of the PGP cap and the PDXP core (pyridoxal phosphatase, closest enzyme paralog) was crystallizable so far. PGP is able to efficiently dephosphorylate 2-phosphoglycolate, 2-phospho-L-lactate, 4-phospho-D-erythronate, and glycerol-3-phosphate in vitro which makes them likely physiological substrates. The first three substrates can be derived from metabolic side reactions (during glycolysis) and inhibit key enzymes in glycolysis and pentose phosphate pathway, the latter is situated at the intersection between glycolysis and lipogenesis. 2-phosphoglycolate can also be released in the context of repair of oxidative DNA damage. The activity of purified PGP can be reversibly inhibited by oxidation - physiologically likely in association with epidermal growth factor (EGF) signal transduction. In fact, an association between persistently lacking PGP activity (via downregulation) and the presence of hyperphosphorylated proteins after EGF stimulation has been identified. Reversible oxidation and transient inactivation of PGP may be particularly important for short-term and feedback regulatory mechanisms (as part of the EGF signaling). Furthermore, cellular proliferation in PGP downregulated cells is constantly reduced. Whole-body PGP inactivation in mice is embryonically lethal. Despite the many well-known features and functions, the knowledge about PGP is still incomplete.
In the present work the influence of reactive oxygen species (ROS) on PGP activity in cells und a possible connection between oxidative stress and the proliferation deficit of PGP downregulated cells was investigated. For the experiments, a spermatogonial cell line was used (due to the high PGP expression in testis). PGP activity can be reversibly inhibited in cellular lysates by H2O2 (as a ROS representative). Reversible oxidation could thus indeed be physiologically important. More oxidative DNA damage (by bleomycin) showed no PGP-dependent effects here. EGF stimulation (as an inducer of transient and well-controlled ROS production), low concentrations of menadione (as an oxidant) and N-acetylcysteine (as an antioxidant) were able to approximate the proliferation rate in PGP downregulated cells to that of control cells. The redox regulation of PGP could thus have an influence on cellular proliferation as a feedback mechanism - a mechanism that could not take place in PGP downregulated cells. However, the connections are probably even more complex and cannot be elucidated by a sole examination of the proliferation rate. The present results can thus only be regarded as preliminary experiments.
For a better understanding of the features and functions of PGP, this work then focused on specific regulation of enzyme activity by pharmacologically applicable small molecules. Four potent inhibitors had previously been identified in a screening campaign. In this work, three of these four inhibiting compounds could be further characterized in experiments with highly purified, recombinant murine and human PGP. Compounds #2 and #9 showed competitive inhibition properties with a markedly rising KM value with little or no change in vmax. The results were consistent for all tested protein variants: the murine and the human PGP as well as a PGP/PDXP hybrid protein. Compound #1 was the most potent and interesting PGP-inhibitory molecule: less change in KM and a constant decrease in vmax as well as a lower impact on the PGP/PDXP hybrid hint at a mixed mode of inhibition as a combination of competitive and non-competitive inhibition. The characterization of the potential inhibitors can serve as a basis for further structural analysis and studies on the complex physiological role of PGP.
Aurora B is a mitotic kinase that is essential for cell division. Because it is mutated or overexpressed in a range of cancer types, it has been suggested as a novel therapeutic target. Currently chemical inhibitors against Aurora B are in various phases of clinical trials for treatment of solid tumors and leukemia. Information regarding the molecular requirements for the reported phenotypes of Aurora B inhibition such as cell cycle arrest, activation of the tumor suppressor p53 and its target p21 are not well understood.
In this study, I investigated the requirements for p21 induction after Aurora B inhibition. I found that p38 is phosphorylated and activated when Aurora B is inhibited. Experiments with chemical inhibitors against p38 indicate that p38 is required for p21 induction and cell cycle arrest in response to Aurora B inhibition. p53 induction after impairment of Aurora B function and the recruitment of p53 to its binding site in the p21 gene promoter occur independently of p38 signaling. Instead, I found that p38 is required for the enrichment of the elongating RNA Polymerase II in the coding region of the p21 gene. Furthermore, p38 is required for formation of the full-length p21 mRNA transcript. These data indicate that p38 promotes the transcriptional elongation of p21 gene in response to Aurora B inhibition. In further experiments I could show that the p21 causes cell cycle arrest due to a decrease in E2F-dependent transcription by promoting the dephosphorylation of the retinoblastoma protein.
Using synchronized cells I could show that the induction of p21 in response to Aurora B inhibition requires transition through an aberrant mitosis and does not occur in cells that are arrested in interphase. Interestingly, p38, p53 and p21 are already induced by partial inhibition of Aurora B, which results in aneuploidy but not in cytokinesis failure and in tetraploidy. This supports the notion that activation of p38-p53-p21 signaling correlates with aneuploidy but not with tetraploidy or binucleation. Partial inhibition of Aurora B also leads to increased generation of reactive oxygen species (ROS), which are required for the activation of p38, p21 and cell cycle arrest. Based on these observations I propose the following model: Inhibition of Aurora B leads to chromosome missegregation resulting in aneuploidy. This results in increased generation of ROS (reactive oxygen species) possibly through proteotoxic stress caused by an imbalance of protein synthesis in aneuploid cells. ROS triggers the activation of p38, which then stimulates the transcriptional elongation of p21 resulting in cell cycle arrest.
Aneuploidy, proteotoxic stress and oxidative stress are hallmarks of cancer cells. Based on my results reported in this study, I suggest that the combination of Aurora B inhibitors with drugs that specifically target aneuploid cells might be a novel strategy for cancer therapy, as this is a lethal combination for proliferation of cancer cells.
Als einer der ersten gegen HIV gerichteten Restriktionsfaktoren konnte die Cytidindeaminase APOBEC3G isoliert werden. Dieses zelluläre Enzym hemmt äußerst effizient die Replikation von HIV. Weiterführende Untersuchungen konnten demonstrieren, dass die Hemmung der Virusreplikation hauptsächlich auf einer Deaminase-katalysierten G zu A-Hypermutation des viralen Genoms während der Reversen Transkription beruht. Als Gegenstrategie zur antiretroviralen Wirkung von A3G kodiert HIV-1 das Protein Vif (virion infectivity factor), welches durch eine direkte Wechselwirkung den Ubiquitin-abhängigen proteasomalen Abbau von A3G bewirkt. Vor diesem Hintergrund wird der Inhibition des Vif induzierten A3G- Abbaus großes Potential als neuartiges Wirkstoffziel bei der Behandlung von HIV Infektionen vorhergesagt. Das Ziel der vorliegenden Arbeit bestand deshalb in der Etablierung von zellulären Screening-Assays für die Identifizierung von Inhibitoren des Vif induzierten A3G-Abbaus. Im Rahmen dieser Arbeit konnten insgesamt vier fluoreszenzbasierte zelluläre Assays erfolgreich entwickelt und als Screeningsysteme für die Wirkstoffsuche etabliert werden. Drei dieser Assays basieren auf stabilen Zelllinien, von denen eine Vif und ein mit EYFP markiertes A3G ko-exprimiert. Dieser sogenannte A3G-Abbauassay stellt den primären Assay für die Identifizierung von Inhibitoren des Vif induzierten A3G-Abbaus dar und wird durch zwei weitere Zelllinien-basierte Assays ergänzt. Diese sekundäre Assays erlauben die Detektion von Substanzen, die falsch-positive oder falsch-negative Signale im A3G-Abbauassays generieren. Zusammengenommen ermöglichen die drei Assays die präzise Identifizierung von Inhibitoren, die spezifisch auf den A3G-Abbau wirken und stellen damit eine wesentliche Verbesserung bereits existierender Screeningsysteme dar. Weiterhin wurde ein auf dem Prinzip der bimolekularen Fluoreszenzkomplementation (BiFC) basierendes Testsystem entwickelt. Besagtes System misst die direkte Interaktion zwischen Vif und ElonginC in lebenden Zellen und repräsentiert damit ein weiteres Testsystem für die Identifizierung von Inhibitoren der Vif induzierten A3G-Degradation. Den zweiten Teil dieser Arbeit umfasste die Analyse von Derivaten des Vif Antagonisten RN-18 und neu entwickelten niedermolekularen Inhibitoren der Vif-ElonginC- Interaktion. Als ein wichtiges Ergebnis der Derivat-Analyse ergab sich, dass RN-18 zytotoxisch wirkt und im hier etablierten A3G-Abbauassay ein falsch-positives Signal generiert. Unter den analysierten Vif-ElonginC-Interaktionsinhibitoren fand sich eine Verbindung, die in einem initialen Screening, unter Verwendung des A3G-Abbauassays, eine deutliche Inhibition der Vif induzierten A3G-Degradation bewirkte. Zusammenfassend konnten im Rahmen dieses Promotionsprojektes erfolgreich mehrere Screeningsysteme für die Identifizierung von spezifischen Inhibitoren des A3G-Abbaus etabliert werden. Diese Systeme werden zukünftig dazu beitragen, dass Auffinden von neuartigen Therapeutika für die Behandlung von HIV-Infektionen zu beschleunigen.
Design of novel IL-4 antagonists employing site-specific chemical and biosynthetic glycosylation
(2021)
The cytokines interleukin 4 (IL-4) and IL-13 are important mediators in the humoral immune response and play a crucial role in the pathogenesis of chronic inflammatory diseases, such as asthma, allergies, and atopic dermatitis. Hence, IL-4 and IL-13 are key targets for treatment of such atopic diseases.
For cell signalling IL-4 can use two transmembrane receptor assemblies, the type I receptor consisting of receptors IL-4R and γc, and type II receptor consisting of receptors IL-4R and IL-13R1. The type II receptor is also the functional receptor of IL-13, receptor sharing being the molecular basis for the partially overlapping effects of IL-4 and IL-13. Since both cytokines require the IL-4R receptor for signal transduction, this allows the dual inhibition of both IL-4 and IL-13 by specifically blocking the receptor IL-4R.
This study describes the design and synthesis of novel antagonistic variants of human IL-4. Chemical modification was used to target positions localized in IL-4 binding sites for γc and IL-13R1 but outside of the binding epitope for IL-4R. In contrast to existing studies, which used synthetic chemical compounds like polyethylene glycol for modification of IL-4, we employed glycan molecules as a natural alternative. Since glycosylation can improve important pharmacological parameters of protein therapeutics, such as immunogenicity and serum half-life, the introduced glycan molecules thus would not only confer a steric hindrance based inhibitory effect but simultaneously might improve the pharmacokinetic profile of the IL-4 antagonist.
For chemical conjugation of glycan molecules, IL-4 variants containing additional cysteine residues were produced employing prokaryotic, as well as eukaryotic expression systems. The thiol-groups of the engineered cysteines thereby allow highly specific modification. Different strategies were developed enabling site-directed coupling of amine- or thiol- functionalized monosaccharides to introduced cysteine residues in IL-4. A linker-based coupling procedure and an approach requiring phenylselenyl bromide activation of IL-4 thiol-groups were hampered by several drawbacks, limiting their feasibility. Surprisingly, a third strategy, which involved refolding of IL-4 cysteine variants in the presence of thiol- glycans, readily allowed synthesis of IL-4 glycoconjugates in form of mixed disulphides in milligram amount. This approach, therefore, has the potential for large-scale synthesis of IL-4 antagonists with highly defined glycosylation. Obtaining a homogenous glycoconjugate with exactly defined glycan pattern would allow using the attached glycan structures for fine-tuning of pharmacokinetic properties of the IL-4 antagonist, such as absorption and metabolic stability.
The IL-4 glycoconjugates generated in this work proved to be highly effective antagonists inhibiting IL-4 and/or IL-13 dependent responses in cell-based experiments and in in vitro binding studies. Glycoengineered IL-4 antagonists thus present valuable alternatives to IL-4 inhibitors used for treatment of atopic diseases such as the neutralizing anti-IL-4R antibody Dupilumab.
The haloacid dehalogenase (HAD) family of phosphatases is an ancient, ubiquitous group of enzymes, and their emerging role in human health and disease make them attractive targets for detailed analyses.
This thesis comprises the biochemical and structural characterization of chronophin, an HAD-type
phosphatase, which has been shown to act on Ser3-phosphorylated cofiln-1, a key regulator of actin dynamics, and on the Ser/Thr-phosphorylated steroid receptor co-activator 3 (SRC-3). Besides being a specific phosphoprotein phosphatase, chronophin also acts on the small molecule pyridoxal 5'-phosphate (PLP, vitamin B6), implying that chronophin serves as a regulator of a variety important physiological pathways. The analysis of chronophin was performed on different levels, ranging from intrinsic regulatory mechanisms, such as the allosteric regulation via dimerization or the characterization of specificity determinants, to modes of extrinsic modulation, including the association with putative interacting proteins or the generation of chronophin-specific inhibitors.
The association of the previously identified putative chronophin interactors calcium- and integrinbinding protein 1 (CIB1) and calmodulin was investigated using recombinantly expressed and purified proteins. These studies revealed that the interaction of chronophin with CIB1 or calmodulin is mutually exclusive and regulated by calcium. Neither CIB1 nor calmodulin had an effect on the in vitro chronophin phosphatase activity towards PLP or phospho-cofilin-1, but might regulate other functions of this important phosphatase.
The role of chronophin dimerization was studied by generating a constitutively monomeric variant,
which showed reduced PLP hydrolyzing activity. X-ray crystallographic studies revealed that dimerization is essential for the positioning of the substrate specificity loop in chronophin, unraveling a previously unknown mechanism of allosteric regulation through a homophilic interaction. This mechanism potentially applies to other enzymes of the C2a subfamily of HAD-type phosphatases, as all structurally characterized members show a conserved mode of dimerization.
The general determinants of substrate specificity in the C2a subfamily of HAD phosphatases were
investigated by performing domain swapping experiments with chronophin and its paralog AUM and
subsequent biochemical analyses of the hybrid proteins. The X-ray crystallographic structure
determination of the chronophin catalytic domain equipped with the AUM capping domain revealed the first partial structure of AUM. This structural information was then used in subsequent studies that analyzed the divergent substrate specificities of AUM and chronophin in an evolutionary context.
Finally, a set of four chronophin inhibitors were generated based on the structure of PLP and
characterized biochemically, showing moderate inhibitory effects with IC50-values in the micromolar range. These compounds nevertheless constitute valuable tools for future in vitro experiments, such as studies concerning the structure-function relationship of chronophin as a PLP phosphatase. In addition, the crystal structure of one inhibitor bound to chronophin could be solved. These results provide the basis for the further development of competitive chronophin inhibitors with increased specificity and potency.