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Dive into the research topics where Laurent R. Chiarelli is active.

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Featured researches published by Laurent R. Chiarelli.


Journal of Biological Chemistry | 2000

The Allosteric Regulation of Pyruvate Kinase.

Giovanna Valentini; Laurent R. Chiarelli; Riccardo Fortin; Maria Luisa Speranza; Alessandro Galizzi; Andrea Mattevi

Pyruvate kinase (PK) is critical for the regulation of the glycolytic pathway. The regulatory properties ofEscherichia coli were investigated by mutating six charged residues involved in interdomain salt bridges (Arg271, Arg292, Asp297, and Lys413) and in the binding of the allosteric activator (Lys382 and Arg431). Arg271 and Lys413 are located at the interface between A and C domains within one subunit. The R271L and K413Q mutant enzymes exhibit altered kinetic properties. In K413Q, there is partial enzyme activation, whereas R271L is characterized by a bias toward the T-state in the allosteric equilibrium. In the T-state, Arg292 and Asp297form an intersubunit salt bridge. The mutants R292D and D297R are totally inactive. The crystal structure of R292D reveals that the mutant enzyme retains the T-state quaternary structure. However, the mutation induces a reorganization of the interface with the creation of a network of interactions similar to that observed in the crystal structures of R-state yeast and M1 PK proteins. Furthermore, in the R292D structure, two loops that are part of the active site are disordered. The K382Q and R431E mutations were designed to probe the binding site for fructose 1,6-bisphosphate, the allosteric activator. R431E exhibits only slight changes in the regulatory properties. Conversely, K382Q displays a highly altered responsiveness to the activator, suggesting that Lys382 is involved in both activator binding and allosteric transition mechanism. Taken together, these results support the notion that domain interfaces are critical for the allosteric transition. They couple changes in the tertiary and quaternary structures to alterations in the geometry of the fructose 1,6-bisphosphate and substrate binding sites. These site-directed mutagenesis data are discussed in the light of the molecular basis for the hereditary nonspherocytic hemolytic anemia, which is caused by mutations in human erythrocyte PK gene.


Science Translational Medicine | 2012

Structural Basis for Benzothiazinone-Mediated Killing of Mycobacterium tuberculosis

João Neres; Florence Pojer; Elisabetta Molteni; Laurent R. Chiarelli; Neeraj Dhar; Stefanie Boy-Röttger; Silvia Buroni; Elizabeth Fullam; Giulia Degiacomi; Anna Paola Lucarelli; Randy J. Read; Giuseppe Zanoni; Dale E. Edmondson; Edda De Rossi; Maria Rosalia Pasca; John D. McKinney; Paul J. Dyson; Giovanna Riccardi; Andrea Mattevi; Stewart T. Cole; Claudia Binda

The crystal structure of the mycobacterial DprE1 reveals how the TB drug benzothiazinone BTZ043 blocks this microbial enzyme target. New TB Drug Snapped in Action Tuberculosis (TB) is a major global health problem that claimed 1.4 million lives in 2010. TB is becoming incurable with existing antibiotics, as infections with multidrug-resistant strains of the causative pathogen Mycobacterium tuberculosis continue to climb. To make matters worse, many patients with TB also suffer from HIV/AIDS, making both diseases even more difficult to treat. It has been more than 40 years since a new drug for TB was approved for clinical use. In 2009, a study published in Science described a promising new drug candidate, a synthetic organic molecule known as BTZ043, which is active in the low nanomolar range against mycobacteria. BTZ043 inhibits a bacterial epimerase enzyme that produces the sugar d-arabinose, the sole precursor for the synthesis of a polysaccharide that is an essential component of the bacterial cell wall. In a key follow-up study, Neres et al. use x-ray crystallography to obtain a picture of the epimerase at the atomic level. They demonstrate that the drug serves as a suicide substrate that is converted by the epimerase into a highly reactive species, and they present a snapshot that shows covalent binding of this species to the active site of the enzyme. Together with biochemical work, the three-dimensional structure explains why BTZ043 inactivates its target so effectively, thus killing the bacteria. By attaching a fluorescent probe to one side of the drug, the authors discovered that the epimerase enzyme becomes localized to the poles of live bacteria, thus pinpointing the site of action. The availability of the epimerase structure and a deeper understanding of its catalytic properties open a host of avenues for rational drug discovery that hopefully will result in new medicines for fighting TB. The benzothiazinone BTZ043 is a tuberculosis drug candidate with nanomolar whole-cell activity. BTZ043 targets the DprE1 catalytic component of the essential enzyme decaprenylphosphoryl-β-d-ribofuranose-2′-epimerase, thus blocking biosynthesis of arabinans, vital components of mycobacterial cell walls. Crystal structures of DprE1, in its native form and in a complex with BTZ043, reveal formation of a semimercaptal adduct between the drug and an active-site cysteine, as well as contacts to a neighboring catalytic lysine residue. Kinetic studies confirm that BTZ043 is a mechanism-based, covalent inhibitor. This explains the exquisite potency of BTZ043, which, when fluorescently labeled, localizes DprE1 at the poles of growing bacteria. Menaquinone can reoxidize the flavin adenine dinucleotide cofactor in DprE1 and may be the natural electron acceptor for this reaction in the mycobacterium. Our structural and kinetic analysis provides both insight into a critical epimerization reaction and a platform for structure-based design of improved inhibitors.


Journal of Biological Chemistry | 2002

Structure and Function of Human Erythrocyte Pyruvate Kinase. Molecular Basis of Nonspherocytic Hemolytic Anemia.

Giovanna Valentini; Laurent R. Chiarelli; Riccardo Fortin; Manuela Dolzan; Alessandro Galizzi; Donald J. Abraham; Changqing Wang; Paola Bianchi; Alberto Zanella; Andrea Mattevi

Deficiency of human erythrocyte isozyme (RPK) is, together with glucose-6-phosphate dehydrogenase deficiency, the most common cause of the nonspherocytic hemolytic anemia. To provide a molecular framework to the disease, we have solved the 2.7 Å resolution crystal structure of human RPK in complex with fructose 1,6-bisphosphate, the allosteric activator, and phosphoglycolate, a substrate analogue, and we have functionally and structurally characterized eight mutants (G332S, G364D, T384M, D390N, R479H, R486W, R504L, and R532W) found in RPK-deficient patients. The mutations target distinct regions of RPK structure, including domain interfaces and catalytic and allosteric sites. The mutations affect to a different extent thermostability, catalytic efficiency, and regulatory properties. These studies are the first to correlate the clinical symptoms with the molecular properties of the mutant enzymes. Mutations greatly impairing thermostability and/or activity are associated with severe anemia. Some mutant proteins exhibit moderate changes in the kinetic parameters, which are sufficient to cause mild to severe anemia, underlining the crucial role of RPK for erythrocyte metabolism. Prediction of the effects of mutations is difficult because there is no relation between the nature and location of the replaced amino acid and the type of molecular perturbation. Characterization of mutant proteins may serve as a valuable tool to assist with diagnosis and genetic counseling.


FEBS Journal | 2009

ThermoFAD, a Thermofluor®‐adapted flavin ad hoc detection system for protein folding and ligand binding

Federico Forneris; Roberto Orru; Daniele Bonivento; Laurent R. Chiarelli; Andrea Mattevi

In living organisms, genes encoding proteins that contain flavins as a prosthetic group constitute approximately 2–3% of the total. The fluorescence of flavin cofactors in these proteins is a property that is widely employed for biochemical characterisation. Here, we present a modified Thermofluor® approach called ThermoFAD (Thermofluor®‐adapted flavin ad hoc detection system), which simplifies identification of optimal purification and storage conditions as well as high‐affinity ligands. In this technique, the flavin cofactor is used as an intrinsic probe to monitor protein folding and stability, taking advantage of the different fluorescent properties of flavin‐containing proteins between the folded and denatured state. The main advantage of the method is that it allows a large amount of biochemical data to be obtained using very small amounts of protein sample and standard laboratory equipment. We have explored several cases that demonstrate the reliability and versatility of this technique when applied to globular flavoenzymes, membrane‐anchored flavoproteins, and macromolecular complexes. The information gathered from ThermoFAD analysis can be very valuable for any biochemical and biophysical analysis, including crystallisation. The method is likely to be applicable to other classes of proteins that possess endogenous fluorescent cofactors and prosthetic groups.


Biochemical and Biophysical Research Communications | 2008

Helicobacter pyloril-asparaginase: A promising chemotherapeutic agent

Donata Cappelletti; Laurent R. Chiarelli; Maria Valentina Pasquetto; Simona Stivala; Giovanna Valentini; Claudia Scotti

Bacterial L-asparaginases are amidohydrolases that catalyse the conversion of L-asparagine to L-aspartate and ammonia and are used as anti-cancer drugs. The current members of this class of drugs have several toxic side effects mainly due to their associated glutaminase activity. In the present study, we report the molecular cloning, biochemical characterisation and in vitro cytotoxicity of a novel L-asparaginase from the pathogenic strain Helicobacter pylori CCUG 17874. The recombinant enzyme showed a strong preference for L-asparagine over L-glutamine and, in contrast to most L-asparaginases, it exhibited a sigmoidal behaviour towards L-glutamine. The enzyme preserved full activity after 2 h incubation at 45 degrees C. In vitro cytotoxicity assays revealed that different cell lines displayed a variable sensitivity towards the enzyme, AGS and MKN28 gastric epithelial cells being the most affected. These findings may be relevant both for the interpretation of the mechanisms underlying H. pylori associated diseases and for biomedical applications.


Molecular Microbiology | 2010

Biological and Structural Characterization of the Mycobacterium Smegmatis Nitroreductase Nfnb, and its Role in Benzothiazinone Resistance

Giulia Manina; Marco Bellinzoni; Maria Rosalia Pasca; João Neres; Anna Milano; Ana Luisa de Jesus Lopes Ribeiro; Silvia Buroni; Henrieta Škovierová; Petronela Dianišková; Katarína Mikušová; Jozef Marák; Vadim Makarov; David Giganti; Ahmed Haouz; Anna Paola Lucarelli; Giulia Degiacomi; Aurora Piazza; Laurent R. Chiarelli; Edda De Rossi; Elena G. Salina; Stewart T. Cole; Pedro M. Alzari; Giovanna Riccardi

Tuberculosis is still a leading cause of death in developing countries, for which there is an urgent need for new pharmacological agents. The synthesis of the novel antimycobacterial drug class of benzothiazinones (BTZs) and the identification of their cellular target as DprE1 (Rv3790), a component of the decaprenylphosphoryl‐β‐d‐ribose 2′‐epimerase complex, have been reported recently. Here, we describe the identification and characterization of a novel resistance mechanism to BTZ in Mycobacterium smegmatis. The overexpression of the nitroreductase NfnB leads to the inactivation of the drug by reduction of a critical nitro‐group to an amino‐group. The direct involvement of NfnB in the inactivation of the lead compound BTZ043 was demonstrated by enzymology, microbiological assays and gene knockout experiments. We also report the crystal structure of NfnB in complex with the essential cofactor flavin mononucleotide, and show that a common amino acid stretch between NfnB and DprE1 is likely to be essential for the interaction with BTZ. We performed docking analysis of NfnB‐BTZ in order to understand their interaction and the mechanism of nitroreduction. Although Mycobacterium tuberculosis seems to lack nitroreductases able to inactivate these drugs, our findings are valuable for the design of new BTZ molecules, which may be more effective in vivo.


ACS Chemical Biology | 2013

Protein recognition by short peptide reversible inhibitors of the chromatin-modifying LSD1/CoREST lysine demethylase.

Marcello Tortorici; Maria Teresa Borrello; Maria Tardugno; Laurent R. Chiarelli; Simona Pilotto; Giuseppe Ciossani; Nadeem A. Vellore; Sarah G. Bailey; Jonathan Cowan; Maria A. O'Connell; Simon J. Crabb; Graham Packham; Antonello Mai; Riccardo Baron; A. Ganesan; Andrea Mattevi

The combinatorial assembly of protein complexes is at the heart of chromatin biology. Lysine demethylase LSD1(KDM1A)/CoREST beautifully exemplifies this concept. The active site of the enzyme tightly associates to the N-terminal domain of transcription factors of the SNAIL1 family, which therefore can competitively inhibit the binding of the N-terminal tail of the histone substrate. Our enzymatic, crystallographic, spectroscopic, and computational studies reveal that LSD1/CoREST can bind to a hexapeptide derived from the SNAIL sequence through recognition of a positively charged α-helical turn that forms upon binding to the enzyme. Variations in sequence and length of this six amino acid ligand modulate affinities enabling the same binding site to differentially interact with proteins that exert distinct biological functions. The discovered short peptide inhibitors exhibit antiproliferative activities and lay the foundation for the development of peptidomimetic small molecule inhibitors of LSD1.


ACS Chemical Biology | 2015

2-Carboxyquinoxalines Kill Mycobacterium tuberculosis through Noncovalent Inhibition of DprE1

João Neres; Ruben C. Hartkoorn; Laurent R. Chiarelli; Ramakrishna Gadupudi; Maria Rosalia Pasca; Giorgia Mori; Alberto Venturelli; Svetlana Savina; Vadim Makarov; Gaëlle S. Kolly; Elisabetta Molteni; Claudia Binda; Neeraj Dhar; Stefania Ferrari; Priscille Brodin; Vincent Delorme; Valérie Landry; Ana Luisa de Jesus Lopes Ribeiro; Davide Salvatore Francesco Farina; Puneet Saxena; Florence Pojer; Antonio Carta; Rosaria Luciani; Alessio Porta; Giuseppe Zanoni; Edda De Rossi; Maria Paola Costi; Giovanna Riccardi; Stewart T. Cole

Phenotypic screening of a quinoxaline library against replicating Mycobacterium tuberculosis led to the identification of lead compound Ty38c (3-((4-methoxybenzyl)amino)-6-(trifluoromethyl)quinoxaline-2-carboxylic acid). With an MIC99 and MBC of 3.1 μM, Ty38c is bactericidal and active against intracellular bacteria. To investigate its mechanism of action, we isolated mutants resistant to Ty38c and sequenced their genomes. Mutations were found in rv3405c, coding for the transcriptional repressor of the divergently expressed rv3406 gene. Biochemical studies clearly showed that Rv3406 decarboxylates Ty38c into its inactive keto metabolite. The actual target was then identified by isolating Ty38c-resistant mutants of an M. tuberculosis strain lacking rv3406. Here, mutations were found in dprE1, encoding the decaprenylphosphoryl-d-ribose oxidase DprE1, essential for biogenesis of the mycobacterial cell wall. Genetics, biochemical validation, and X-ray crystallography revealed Ty38c to be a noncovalent, noncompetitive DprE1 inhibitor. Structure-activity relationship studies generated a family of DprE1 inhibitors with a range of IC50s and bactericidal activity. Co-crystal structures of DprE1 in complex with eight different quinoxaline analogs provided a high-resolution interaction map of the active site of this extremely vulnerable target in M. tuberculosis.


PLOS ONE | 2010

Cell-Cycle Inhibition by Helicobacter pylori L-Asparaginase

Claudia Scotti; Patrizia Sommi; Maria Valentina Pasquetto; Donata Cappelletti; Simona Stivala; Paola Mignosi; Monica Savio; Laurent R. Chiarelli; Giovanna Valentini; Victor M. Bolanos-Garcia; Douglas Scott Merrell; Silvia Franchini; Maria Luisa Verona; Cristina Bolis; Enrico Solcia; Rachele Manca; Diego Franciotta; Andrea Casasco; Paola Filipazzi; Elisabetta Zardini; Vanio Vannini

Helicobacter pylori (H. pylori) is a major human pathogen causing chronic gastritis, peptic ulcer, gastric cancer, and mucosa-associated lymphoid tissue lymphoma. One of the mechanisms whereby it induces damage depends on its interference with proliferation of host tissues. We here describe the discovery of a novel bacterial factor able to inhibit the cell-cycle of exposed cells, both of gastric and non-gastric origin. An integrated approach was adopted to isolate and characterise the molecule from the bacterial culture filtrate produced in a protein-free medium: size-exclusion chromatography, non-reducing gel electrophoresis, mass spectrometry, mutant analysis, recombinant protein expression and enzymatic assays. L-asparaginase was identified as the factor responsible for cell-cycle inhibition of fibroblasts and gastric cell lines. Its effect on cell-cycle was confirmed by inhibitors, a knockout strain and the action of recombinant L-asparaginase on cell lines. Interference with cell-cycle in vitro depended on cell genotype and was related to the expression levels of the concurrent enzyme asparagine synthetase. Bacterial subcellular distribution of L-asparaginase was also analysed along with its immunogenicity. H. pylori L-asparaginase is a novel antigen that functions as a cell-cycle inhibitor of fibroblasts and gastric cell lines. We give evidence supporting a role in the pathogenesis of H. pylori-related diseases and discuss its potential diagnostic application.


Applied Microbiology and Biotechnology | 2013

The DprE1 enzyme, one of the most vulnerable targets of Mycobacterium tuberculosis

Giovanna Riccardi; Maria Rosalia Pasca; Laurent R. Chiarelli; Giulia Manina; Andrea Mattevi; Claudia Binda

The re-emergence of tuberculosis in recent years led the World Health Organization (WHO) to launch the Stop TB Strategy program. Beside repurposing the existing drugs and exploring novel molecular combinations, an essential step to face the burden of tuberculosis will be to develop new drugs by identifying vulnerable bacterial targets. Recent studies have focused on decaprenylphosphoryl-d-ribose oxidase (DprE1) of Mycobacterium tuberculosis, an essential enzyme involved in cell wall metabolism, for which new promising molecules have proved efficacy as antitubercular agents. This review summarizes the state of the art concerning DprE1 in terms of structure, enzymatic activity and inhibitors. This enzyme is emerging as one of the most vulnerable target in M. tuberculosis.

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Elisa Fermo

Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico

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Paola Bianchi

Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico

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