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Identification of FKBP25 as a pre-ribosome associated prolyl isomeraseGudavicius, Geoffrey 21 December 2016 (has links)
The FK506-binding proteins (FKBPs) are a class of peptidyl-prolyl isomerase enzyme (PPIs) that catalyze the cis-trans inter-conversion of peptidyl-prolyl bonds in proteins. This non-covalent post-translational modification is a reversible mechanism to modulate protein structure and function. PPIs have been implicated in a wide variety of processes from protein folding to signal transduction. Despite these enzymes being ubiquitous, the substrates and functions of most PPIs have yet to be described.
FKBP25 is a nuclear FKBP that has been shown to associate with transcription factors and chromatin modifying enzymes, however its functions and substrates remain largely unresolved. FKBP25 is the human ortholog of S. cerevisiae Fpr4, which has been shown to regulate the chromatin landscape by two distinct mechanisms: 1. Acting as a histone chaperone at ribosomal DNA, and 2. Isomerizing histone prolines. Based on these observations, I hypothesized FKBP25 regulates chromatin and/or ribosome biogenesis through isomerization of histone prolines and a discrete collection of substrate proteins.
While small molecule inhibitors exist for FKBPs, applying them to dissect the specific function(s) of any given FKBP is confounded by the fact that multiple FKBPs are found in each organism, and several are inhibited by these molecules. In Chapter 2, I biochemically and structurally characterize a set of FKBP25 loss-of-function mutants, yielding a toolset capable of distinguishing between catalytic and non-catalytic functions. These reagents provide the tools necessary to analyze potential substrates of FKBP25 identified in my research going forward. In Chapter 3, I present the first unbiased proteomic screen of FKBP25 associated proteins and show that it interacts with a large number of ribosomal proteins, ribosomal processing factors and a smaller subset of chromatin proteins. I focus on the interaction between FKBP25 and nucleolin, a multi-functional nucleolar protein, and show that FKBP25 interacts with nucleolin and the pre-60s ribosomal subunit in an RNA dependent fashion. In Chapter 4, I gain insight into the role of FKBP25 in ribosome biology, and demonstratex that FKBP25 regulates RNA binding activity of nucleolin, however this does not appear to involve cis-trans prolyl isomerization.
Collectively, my work establishes FKBP25 as the first human FKBP to be implicated in the maturation of the pre-60S ribosomal subunit in the nucleus. My data supports a model whereby FKBP25 associates with the assembling large ribosomal subunit, where it is likely to chaperone protein-RNA interactions. / Graduate
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Genetic Analysis of NifM Interaction with the Fe Protein of NitrogenaseRaja, Kumaraguru 02 May 2006 (has links)
No description available.
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Development of Bicyclic Peptidyl Inhibitors against Peptidyl-Prolyl Isomerase Pin1Jiang, Bisheng 19 May 2015 (has links)
No description available.
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Peptidyl-prolyl cis-trans Isomerases in the Chloroplast Thylakoid LumenEdvardsson, Anna January 2007 (has links)
The Sun is the ultimate energy source on Earth. Photosynthetic organisms are able to catalyze the conversion of solar energy to chemical energy by a reaction called photosynthesis. In plants, this process occurs inside a green organelle called the chloroplast. The protein complexes involved in the photosynthetic light reactions are situated in the thylakoid membrane, which encloses a tiny space called lumen. The Peptidyl-Prolyl cis-trans Isomerase (PPIase) family is the most abundant protein family in the thylakoid lumen. The three PPIase subfamilies, cyclophilins, FKBPs (FK506 binding proteins) and parvulins form a group by their enzymatic activity despite lack of sequence similarity between the subfamilies. Cyclophilins and FKBPs, collectively called immunophilins, were originally discovered as the targets of the immunosuppressive drugs cyclosporine A and FK506, respectively. By suppressing the immune response in humans, these immunophilin-drug complexes revolutionized the field of organ transplantation by preventing graft rejection. Cis-trans isomerization of peptide bonds preceding the amino acid proline is the rate-limiting step of protein folding and several immunophilins have been shown to be important for catalysis of protein folding in vivo. PPIases have been found to be part of large protein complexes as well as in functions such as signalling, protein secretion, RNA processing and cell cycle control. A picture is therefore emerging in which the actual interaction between the PPIase and its target is perhaps more important than the PPIase activity. In the present work, PPIases have been characterized in the chloroplast thylakoid lumen of Spinacia oleracea (spinach) and Arabidopsis thaliana (Arabidopsis). The most active PPIase in the spinach lumen was identified as the cyclophilin TLP20. AtCYP20-2, the Arabidopsis homologue of TLP20, was found to be upregulated at high light and attached to the thylakoid membrane, more precisely to the outer regions of photosystem II supercomplexes. In Arabidopsis, up to 5 cyclophilins and 11 FKBPs were predicted to reside in the lumen. Of these 16 immunophilins, only 2 were identified as active PPIases and significant differences were observed between the two plant species. AtCYP20-2, like TLP20, is an active isomerase although AtFKBP13 is the most active PPIase in the lumen of Arabidopsis. Mutant Arabidopsis plants deficient in AtCYP20-2 displayed no phenothypical changes or decrease in total lumenal PPIase activity. Being the only active PPIase in the mutants, the redox sensitive AtFKBP13 is proposed to compensate for the lack of AtCYP20-2 by oxidative activation. In agreement with the experimental data, the sequence analyses of catalytic domains of lumenal immunophilins demonstrate that only AtCYP20-2 and AtFKBP13 possess the amino acids found essential for PPIase activity in earlier studies of human cyclophilin A and FKBP12. It is concluded that with the exception of AtCYP20-2 and AtFKBP13 most immunophilins in the lumen of Arabidopsis lost their PPIase activity on peptide substrates and developed other specialized functions.
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Functional characterization of the nuclear prolyl isomerase FKBP25 : A multifunctional suppressor of genomic instabilityDilworth, David 28 August 2017 (has links)
The amino acid proline is unique – within a polypeptide chain, proline adopts either a cis or trans peptide bond conformation while all other amino acids are sterically bound primarily in the trans configuration. In proteins, the isomeric state of a single proline can have dramatic consequences on structure and function. Consequently, cis-trans interconversion confers both barrier and opportunity – on one hand, isomerization is a rate limiting step in de novo protein folding and on the other can be utilized as a post-translational regulatory switch. Peptidyl-prolyl isomerases (PPIs) are a ubiquitous superfamily that catalyzes the interconversion between conformers. Although pervasive, the functions and substrates of most PPIs are unknown. The two largest subfamilies, FKBPs and cyclophilins, are the intracellular receptors of clinically relevant immunosuppressant drugs that also show promise in the treatment of neurodegenerative disorders and cancer. Therefore, narrowing the knowledge gap has significant potential to benefit human health.
FKBP25 is a high-affinity binder of the PPI inhibitor rapamycin and is one of few nuclear-localized isomerases. While it has been shown to bind DNA and associate with chromatin, its function has remained largely uncharacterized. I hypothesized that FKBP25 targets prolines in nuclear proteins to regulate chromatin-templated processes. To explore this, I performed high-throughput transcriptomic and proteomic studies followed by detailed molecular characterizations of FKBP25’s function. Here, I discover that FKBP25 is a multifunctional protein required for the maintenance of genomic stability. In Chapter 2, I characterize the unique N-terminal Basic Tilted Helical Bundle (BTHB) domain of FKBP25 as a novel dsRNA binding module that recruits FKBP25’s prolyl isomerase activity to pre-ribosomal particles in the nucleolus. In Chapter 3, I show for the first time that FKBP25 associates with the mitotic spindle apparatus and acts to stabilize the microtubule cytoskeleton. In this chapter, I also present evidence that this function influences the stress response, cell cycle, and chromosomal stability. Additionally, I characterize the regulation of FKBP25’s localization and nucleic acid binding activity throughout the cell cycle. Finally, in Chapter 4, I uncover a role for FKBP25 in the repair of DNA double-stranded breaks. Importantly, this function requires FKBP25’s catalytic activity, identifying for the first time a functional requirement for cis-trans prolyl isomerization by FKBP25.
Collectively, this work identifies FBKP25 as a multifunctional protein that is required for the maintenance of genomic stability. The knowledge gained contributes to the exploration of PPIs as important drug targets. / Graduate
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Phosphatases and prolyl-isomerase in the regulation of the C-terminal domain of eukaryotic RNA polymerase IIZhang, Mengmeng 29 January 2013 (has links)
In eukaryotes, the first step of interpreting the genetic information is the transcription of DNA into RNA. For protein-coding genes, such transcription is carried out by RNA polymerase II. A special domain of RNA polymerase II, called the C-terminal domain (CTD), functions as a master controller for the transcription process by providing a platform to recruit regulatory proteins to nascent mRNA (Chapter 1-2). The modifications and conformational states of the CTD, termed the 'CTD code', represent a critical regulatory checkpoint for transcription. The CTD, found only in eukaryotes, consists of 26--52 tandem heptapeptide repeats with the consensus sequence, Tyr₁Ser₂Pro₃Thr₄Ser₅Pro₆Ser₇. Phosphorylation of the serines and prolyl isomerization of the prolines represent two major regulatory mechanisms of the CTD. Interestingly, the phosphorylation sites are typically close to prolines, thus the conformation of the adjacent proline could impact the specificity of the corresponding kinases and phosphatases. Understanding how those modifying enzymes recognize and regulate the CTD is important for expanding our knowledge on the transcription regulation and deciphering the 'CTD code'. During my PhD study, I studied the function of CTD phosphatases and prolyl isomerase in the CTD regulation using Scp1, Ssu72 and Pin1 as model regulators. Scp1 and Ssu72 are both Ser5 phosphatases. However, Ssu72 is an essential protein and regulates the global transcription while Scp1 epigenetically silences the expression of specific neuronal genes. Pin1 is a highly conserved phosphorylation-specific prolyl isomerase that recognizes the phospho-Ser/Thr-Pro motif within the CTD as one of its primary substrates in vivo. Among these enzymes, Scp1 is the focal point of this dissertation, as it was studied from different angles, such as enzymatic mechanism (Chapter 3 describes the capture of phospho-aspartyl intermediate of Scp1 as a direct evidence for the proposed two-step mechanism), specific inhibition (Chapter 4 describes the identification and characterization of the first specific inhibitor of Scp1), and its non-active-site contact with the CTD (Chapter 5 describes the structural basis of this contact). These studies are of great importance towards understanding the molecular mechanism of the dephosphorylation process of the CTD by Scp1. / text
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Expression von Peptidyl-prolyl cis/trans isomerase NIMA-interacting 1 (PIN1) in Blasten von Patienten mit akuter myeloischer Leukämie / Expression of peptidyl-prolyl cis/trans isomerase NIMA-interacting 1 (PIN1) in blasts of patients with acute myeloid leukemiaHangen, Hanne 05 July 2011 (has links)
No description available.
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Etude des modifications post-traductionnelles des histones : l’analyse structuro-fonctionnelle d'une peptidyl-prolyl isomérase et la production semi-synthétique d’une protéine acétylée / Study of histone post-translational modification : structure-function analysis of a peptidyl-prolyl isomerase and a semi-synthetic production of an acetylated proteinMonneau, Yoan 12 December 2011 (has links)
L'unité structurale de la chromatine, nommée nucléosome, est composée d'un double brin d'ADN enroulé autour d'un octamère d'histone, et subit une pléthore de modifications post-traductionnelles. Les conséquences biologiques de l’acétylation des lysines et de l’isomérisation des liaisons peptidyl-prolyl ont été étudiées à travers une analyse à l’échelle atomique par RMN de systèmes d'intérêt reconstitués in vitro. Les liaisons peptidyl-prolyl du domaine N-terminal de l'histone H3 sont substrats in vitro d’une isomérase chez S. cerevisiae nommée Fpr4p, laquelle exerce un contrôle catalyse-dépendant de la transcription. La résolution de la structure du domaine catalytique de Fpr4p, à partir de contraintes géométriques mesurées par RMN, révéla un domaine canonique de la famille FKBP (FK506-binding protein). Grâce à l'analyse de la séquence primaire et aux expériences RMN, nous proposons un modèle structural préliminaire de Fpr4p entière. L'analyse fonctionnelle est réalisée grâce à trois décapeptides construits à partir de la séquence primaire de H3 chez S. cerevisiae. Ils sont tous substrats de Fpr4p et la catalyse est équivalente pour Pro16 et Pro30. La proportion à l'équilibre du conformère cis fut déterminée pour les trois peptides et celle-ci n'est pas affectée par l'activité catalytique de Fpr4p. Les structures en solution des substrats en conformation trans ont été résolues par spectroscopie RMN, et seront utilisées pour des appariements moléculaires in silico sur le domaine catalytique de Fpr4p. Pour étudier le rôle biologique de l'acétylation des histones, une méthodologie de production de protéines acétylées a été développée. Le protocole repose sur la mutation d'une lysine en cystéine d'une protéine recombinante, suivie d'une alkylation contrôlée exploitant la nucléophilie du groupe thiol préalablement introduit. La production de l'agent alkylant adéquat est simple, rapide, réalisable dans un laboratoire de biologie et permet différents marquages isotopiques du groupe acétyle. L'alkylation d'une protéine repliée fut réalisée avec succès en conditions natives. Le dimère d'histone H2A-H2B, un intermédiaire de l'assemblage du nucléosome et siège d'acétylation in vivo, fut reconstruit in vitro. Les déplacements chimiques des domaines N et C-terminaux de H2A sont cohérents avec un état intrinsèquement déstructuré bien que leurs dynamiques moléculaires ne soient pas équivalentes. / The structural unit of chromatin, the nucleosome, is composed of double-stranded DNA wrapped around a histone octamer and is subject to a plethora of post-translational modifications. The biological consequences of peptidyl-prolyl isomerization and lysine acetylation were investigated at atomic scale through analysis of in vitro reconstituted systems by NMR. Peptidyl-prolyl bonds of histone H3 N-terminal domain are substrates in vitro of an isomerase from S. cerevisiae named Fpr4p, which underlies transcriptional control dependent on its catalytic activity. The solution structure of the catalytic domain of Fpr4p was calculated based on restraints from NMR spectroscopy, and reveals a canonical catalytic domain belonging to the FK506-binding protein (FKBP) family. Based on primary sequence analysis and NMR experiments, a preliminary structural model of full length Fpr4p is also presented. Functional analyses were performed with three decapeptides designed from the primary sequence from the N-terminal tail of S. cerevisiae histone H3. All three constitute substrates of Fpr4p, with equivalent catalysis observed for Pro16 and Pro30. The equilibrium proportion of the cis-proline conformer has been determined for all three decapeptides, and these populations are unaffected by Fpr4p catalytic activity. Structural ensembles of the substrates with proline in the trans conformation were determined by using NMR spectroscopy, and will be subsequently used for in silico molecular docking onto Fpr4p. To study a second form of histone regulation, a semi-synthetic method to produce acetylated protein was developed. The protocol relies on the site-specific mutation of lysine to cysteine in recombinant proteins followed by controlled alkylation thanks to nucleophilicity of the introduced thiol. The production of the required alkylation reagent is easy, quick, and suitable for biology laboratory and allows diverse isotopic labeling within the acetyl group. Alkylation of folded proteins has also been achieved in native conditions. As one target of acetylation in vivo, the histone H2A-H2B dimer is an intermediate of nucleosome assembly and was reconstituted in vitro. Chemical shift values of the N- and C-terminal domains of H2A are in agreement with an intrinsically disordered state although they display differences in dynamic mobility.
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