6 resultados para coumermycin


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Janus kinase 2 (Jak2) protein tyrosine kinase plays an important role in interleukin-3– or granulocyte–macrophage colony-stimulating factor–mediated signal transduction pathways leading to cell proliferation, activation of early response genes, and inhibition of apoptosis. However, it is unclear whether Jak2 can activate these signaling pathways directly without the involvement of cytokine receptor phosphorylation. To investigate the specific role of Jak2 in the regulation of signal transduction pathways, we generated gyrase B (GyrB)–Jak2 fusion proteins, dimerized through the addition of coumermycin. Coumermycin induced autophosphorylation of GyrB–Jak2 fusion proteins, thus bypassing receptor activation. Using different types of chimeric Jak2 molecules, we observed that although the kinase domain of Jak2 is sufficient for autophosphorylation, the N-terminal regions are essential for the phosphorylation of Stat5 and for the induction of short-term cell proliferation. Moreover, coumermycin-induced activation of Jak2 can also lead to increased levels of c-myc and CIS mRNAs in BA/F3 cells stably expressing the Jak2 fusion protein with the intact N-terminal region. Conversely, activation of the chimeric Jak2 induced neither phosphorylation of Shc or SHP-2 nor activation of the c-fos promoter. Here, we showed that the GyrB–Jak2 system can serve as an excellent model to dissect signals of receptor-dependent and -independent events. We also obtained evidence indicating a role for the N-terminal region of Jak2 in downstream signaling events.

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Les produits biologiques représentent une avenue thérapeutique très prometteuse pour diverses maladies actuellement sans traitement, dont le cancer. La demande pour ces produits est donc très forte et des bioprocédés industriels efficaces et fiables doivent être mis en place pour y répondre. Le système inductible au cumate (CR5) développé par le groupe de Bernard Massie permet d’exprimer des protéines d’intérêt de façon finement régulable et à haut niveau dans les cellules CHO. Un travail d’optimisation est toutefois nécessaire afin de maximiser l’expression tout en améliorant l’étanchéité du système. Dans cette optique, diverses constructions du promoteur comportant des configurations différentes d’espacement entre ses constituants, des transactivateurs comportant des domaines d’activation différents, et une séquence opératrice synthétique ont été testées pour évaluer leur capacité à améliorer le rendement et l’étanchéité du CR5. Ainsi, un protomoteur comportant trois séquences opératrices avec six paires de bases entre chacune de ces dernières s’est montré plus efficace en termes de rendement et d’étanchéité que la configuration actuelle du CR5. De plus, une nouvelle configuration du CR5 où le transactivateur est régulé par le système inductible à la coumermycine a été étudiée et a montré une régulation très fine. Le travail d’optimisation effectué dans ce projet s’applique seulement dans le but d’optimiser un procédé dans des conditions spécifiques. Son application à d’autres lignées cellulaires et d’autres promoteurs reste à démontrer.

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Many physiological and pathological processes are mediated by the activity of proteins assembled in homo and/or hetero-oligomers. The correct recognition and association of these proteins into a functional complex is a key step determining the fate of the whole pathway. This has led to an increasing interest in selecting molecules able to modulate/inhibit these protein-protein interactions. In particular, our research was focused on Heat Shock Protein 90 (Hsp90), responsible for the activation and maturation and disposition of many client proteins [1], [2] [3]. Circular Dichroism (CD) spectroscopy, Surface Plasmon Resonance (SPR) and Affinity Capillary Electrophoresis (ACE) were used to characterize the Hsp90 target and, furthermore, its inhibition process via C-terminal domain driven by the small molecule Coumermycin A1. Circular Dichroism was used as powerful technique to characterize Hsp90 and its co-chaperone Hop in solution for secondary structure content, stability to different pHs, temperatures and solvents. Furthermore, CD was used to characterize ATP but, unfortunately, we were not able to monitor an interaction between ATP and Hsp90. The utility of SPR technology, on the other hand, arises from the possibility of immobilizing the protein on a chip through its N-terminal domain to later study the interaction with small molecules able to disrupt the Hsp90 dimerization on the C-terminal domain. The protein was attached on SPR chip using the “amine coupling” chemistry so that the C-terminal domain was free to interact with Coumermycin A1. The goal of the experiment was achieved by testing a range of concentrations of the small molecule Coumermycin A1. Despite to the large difference in the molecular weight of the protein (90KDa) and the drug (1110.08 Da), we were able to calculate the affinity constant of the interaction that was found to be 11.2 µm. In order to confirm the binding constant calculated for the Hsp90 on the chip, we decided to use Capillary Electrophoresis to test the Coumermycin binding to Hsp90. First, this technique was conveniently used to characterize the Hsp90 sample in terms of composition and purity. The experimental conditions were settled on two different systems, the bared fused silica and the PVA-coated capillary. We were able to characterize the Hsp90 sample in both systems. Furthermore, we employed an application of capillary electrophoresis, the Affinity Capillary Electrophoresis (ACE), to measure and confirm the binding constant calculated for Coumermycin on Optical Biosensor. We found a KD = 19.45 µM. This result compares favorably with the KD previously obtained on biosensor. This is a promising result for the use of our novel approach to screen new potential inhibitors of Hsp90 C-terminal domain.

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The use of low molecular weight organic compounds to induce dimerization or oligomerization of engineered proteins has wide-ranging utility in biological research as well as in gene and cell therapies. Chemically induced dimerization can be used to activate intracellular signal transduction pathways or to control the activity of a bipartite transcription factor. Dimerizer systems based on the natural products cyclosporin, FK506, rapamycin, and coumermycin have been described. However, owing to the complexity of these compounds, adjusting their binding or pharmacological properties by chemical modification is difficult. We have investigated several families of readily prepared, totally synthetic, cell-permeable dimerizers composed of ligands for human FKBP12. These molecules have significantly reduced complexity and greater adaptability than natural product dimers. We report here the efficacies of several of these new synthetic compounds in regulating two types of protein dimerization events inside engineered cells—–induction of apoptosis through dimerization of engineered Fas proteins and regulation of transcription through dimerization of transcription factor fusion proteins. One dimerizer in particular, AP1510, proved to be exceptionally potent and versatile in all experimental contexts tested.

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Escherichia coli muk mutants are temperature-sensitive and produce anucleate cells. A spontaneously occurring mutation was found in a ΔmukB∷kan mutant strain that suppressed the temperature-sensitive phenotype and mapped in or near topA, the gene that encodes topoisomerase I. Previously characterized topA mutations, topA10 and topA66, were found to be general suppressors of muk mutants: they suppressed temperature sensitivity and anucleate cell production of cells containing null or point mutations in mukB and null mutations in mukE or mukF. The suppression correlated with excess negative supercoiling by DNA gyrase, and the gyrase inhibitor, coumermycin, reversed it. Defects in topA allow 99% of cell division events in muk null mutants to proceed without chromosome loss or loss of cell viability. This observation imposes important limitations on models for Muk activity and is consistent with a role for MukBEF in chromosome folding and DNA condensation.

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Les produits biologiques représentent une avenue thérapeutique très prometteuse pour diverses maladies actuellement sans traitement, dont le cancer. La demande pour ces produits est donc très forte et des bioprocédés industriels efficaces et fiables doivent être mis en place pour y répondre. Le système inductible au cumate (CR5) développé par le groupe de Bernard Massie permet d’exprimer des protéines d’intérêt de façon finement régulable et à haut niveau dans les cellules CHO. Un travail d’optimisation est toutefois nécessaire afin de maximiser l’expression tout en améliorant l’étanchéité du système. Dans cette optique, diverses constructions du promoteur comportant des configurations différentes d’espacement entre ses constituants, des transactivateurs comportant des domaines d’activation différents, et une séquence opératrice synthétique ont été testées pour évaluer leur capacité à améliorer le rendement et l’étanchéité du CR5. Ainsi, un protomoteur comportant trois séquences opératrices avec six paires de bases entre chacune de ces dernières s’est montré plus efficace en termes de rendement et d’étanchéité que la configuration actuelle du CR5. De plus, une nouvelle configuration du CR5 où le transactivateur est régulé par le système inductible à la coumermycine a été étudiée et a montré une régulation très fine. Le travail d’optimisation effectué dans ce projet s’applique seulement dans le but d’optimiser un procédé dans des conditions spécifiques. Son application à d’autres lignées cellulaires et d’autres promoteurs reste à démontrer.