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Items: 1 to 50 of 120

1.

Assessment of a coastal lagoon metal distribution through natural and anthropogenic processes (SE, Brazil).

Beraldi GQF, de Rezende CE, de Almeida MG, Carvalho C, de Lacerda LD, de Farias RN, Vidal M, Souza MDP, Molisani MM.

Mar Pollut Bull. 2019 Sep;146:552-561. doi: 10.1016/j.marpolbul.2019.07.007. Epub 2019 Jul 11.

PMID:
31426193
2.

Thyroid hormones induce doxorubicin chemosensitivity through enzymes involved in chemotherapy metabolism in lymphoma T cells.

Díaz Flaqué MC, Cayrol MF, Sterle HA, Del Rosario Aschero M, Díaz Albuja JA, Isse B, Farías RN, Cerchietti L, Rosemblit C, Cremaschi GA.

Oncotarget. 2019 Apr 30;10(32):3051-3065. doi: 10.18632/oncotarget.26890. eCollection 2019 Apr 30.

3.

Integrin αvβ3 acting as membrane receptor for thyroid hormones mediates angiogenesis in malignant T cells.

Cayrol F, Díaz Flaqué MC, Fernando T, Yang SN, Sterle HA, Bolontrade M, Amorós M, Isse B, Farías RN, Ahn H, Tian YF, Tabbò F, Singh A, Inghirami G, Cerchietti L, Cremaschi GA.

Blood. 2015 Jan 29;125(5):841-51. doi: 10.1182/blood-2014-07-587337. Epub 2014 Dec 8.

4.

Thyroid hormones-membrane interaction: reversible association of hormones with organized phospholipids with changes in fluidity and dipole potential.

Issé BA, Yunes Quartino P, Fidelio GD, Farías RN.

Chem Phys Lipids. 2013 Oct-Nov;175-176:131-7. doi: 10.1016/j.chemphyslip.2013.08.007. Epub 2013 Sep 30.

PMID:
24091073
5.

Macrophage environment turns otherwise MccJ25-resistant Salmonella into sensitive.

Pomares MF, Corbalán NS, Adler C, de Cristóbal R, Farías RN, Delgado MA, Vincent PA.

BMC Microbiol. 2013 May 1;13:95. doi: 10.1186/1471-2180-13-95.

6.

Cu(II)-reduction by Escherichia coli cells is dependent on respiratory chain components.

Volentini SI, Farías RN, Rodríguez-Montelongo L, Rapisarda VA.

Biometals. 2011 Oct;24(5):827-35. doi: 10.1007/s10534-011-9436-3. Epub 2011 Mar 10.

PMID:
21390523
7.

Cooperative nongenomic and genomic actions on thyroid hormone mediated-modulation of T cell proliferation involve up-regulation of thyroid hormone receptor and inducible nitric oxide synthase expression.

Barreiro Arcos ML, Sterle HA, Paulazo MA, Valli E, Klecha AJ, Isse B, Pellizas CG, Farias RN, Cremaschi GA.

J Cell Physiol. 2011 Dec;226(12):3208-18. doi: 10.1002/jcp.22681.

PMID:
21344381
8.

Redox-active tyrosine residue in the microcin J25 molecule.

Chalón MC, Wilke N, Pedersen J, Rufini S, Morero RD, Cortez L, Chehín RN, Farias RN, Vincent PA.

Biochem Biophys Res Commun. 2011 Mar 18;406(3):366-70. doi: 10.1016/j.bbrc.2011.02.047. Epub 2011 Feb 15.

PMID:
21329661
9.

Sensitization of microcin J25-resistant strains by a membrane-permeabilizing peptide.

Pomares MF, Delgado MA, Corbalán NS, Farías RN, Vincent PA.

Appl Environ Microbiol. 2010 Oct;76(20):6837-42. doi: 10.1128/AEM.00307-10. Epub 2010 Aug 27.

10.

Glyceraldehyde-3-phosphate dehydrogenase tetramer dissociation and amyloid fibril formation induced by negatively charged membranes.

Cortez LM, Avila CL, Bugeau CM, Farías RN, Morero RD, Chehín RN.

FEBS Lett. 2010 Feb 5;584(3):625-30. doi: 10.1016/j.febslet.2009.12.012. Epub 2009 Dec 13.

11.

Tyrosine 9 is the key amino acid in microcin J25 superoxide overproduction.

Chalon MC, Bellomio A, Solbiati JO, Morero RD, Farias RN, Vincent PA.

FEMS Microbiol Lett. 2009 Nov;300(1):90-6. doi: 10.1111/j.1574-6968.2009.01770.x. Epub 2009 Aug 28.

12.

Protective effect of 3,5,3'-triiodothyroacetic and 3,5,3',5'-tetraiodothyroacetic acids on serum albumin fibrillation.

Cortez LM, Farías RN, Chehín RN.

Eur Biophys J. 2009 Sep;38(7):857-63. doi: 10.1007/s00249-009-0448-7. Epub 2009 Apr 18.

PMID:
19381627
13.

Phosphate-enhanced stationary-phase fitness of Escherichia coli is related to inorganic polyphosphate level.

Schurig-Briccio LA, Farías RN, Rintoul MR, Rapisarda VA.

J Bacteriol. 2009 Jul;191(13):4478-81. doi: 10.1128/JB.00082-09. Epub 2009 Apr 17.

14.

Protection against oxidative stress in Escherichia coli stationary phase by a phosphate concentration-dependent genes expression.

Schurig-Briccio LA, Farías RN, Rodríguez-Montelongo L, Rintoul MR, Rapisarda VA.

Arch Biochem Biophys. 2009 Mar 1;483(1):106-10. doi: 10.1016/j.abb.2008.12.009. Epub 2008 Dec 27.

PMID:
19138658
15.

A critical phosphate concentration in the stationary phase maintains ndh gene expression and aerobic respiratory chain activity in Escherichia coli.

Schurig-Briccio LA, Rintoul MR, Volentini SI, Farías RN, Baldomà L, Badía J, Rodríguez-Montelongo L, Rapisarda VA.

FEMS Microbiol Lett. 2008 Jul;284(1):76-83. doi: 10.1111/j.1574-6968.2008.01188.x. Epub 2008 May 17.

16.

Protective action of ppGpp in microcin J25-sensitive strains.

Pomares MF, Vincent PA, Farías RN, Salomón RA.

J Bacteriol. 2008 Jun;190(12):4328-34. doi: 10.1128/JB.00183-08. Epub 2008 Apr 11.

17.

Microcin J25 has dual and independent mechanisms of action in Escherichia coli: RNA polymerase inhibition and increased superoxide production.

Bellomio A, Vincent PA, de Arcuri BF, Farías RN, Morero RD.

J Bacteriol. 2007 Jun;189(11):4180-6. Epub 2007 Mar 30.

18.

Linear array of conserved sequence motifs to discriminate protein subfamilies: study on pyridine nucleotide-disulfide reductases.

Avila CL, Rapisarda VA, Farías RN, De Las Rivas J, Chehín R.

BMC Bioinformatics. 2007 Mar 16;8:96.

19.

Efficacy of microcin J25 in biomatrices and in a mouse model of Salmonella infection.

Lopez FE, Vincent PA, Zenoff AM, Salomón RA, Farías RN.

J Antimicrob Chemother. 2007 Apr;59(4):676-80. Epub 2007 Mar 12.

PMID:
17353221
20.

Molecular view by fourier transform infrared spectroscopy of the relationship between lactocin 705 and membranes: speculations on antimicrobial mechanism.

Castellano P, Vignolo G, Farías RN, Arrondo JL, Chehín R.

Appl Environ Microbiol. 2007 Jan;73(2):415-20. Epub 2006 Oct 27.

21.

The Cu(II)-reductase NADH dehydrogenase-2 of Escherichia coli improves the bacterial growth in extreme copper concentrations and increases the resistance to the damage caused by copper and hydroperoxide.

Rodríguez-Montelongo L, Volentini SI, Farías RN, Massa EM, Rapisarda VA.

Arch Biochem Biophys. 2006 Jul 1;451(1):1-7. Epub 2006 May 17.

PMID:
16759635
22.

Microcin J25 uptake: His5 of the MccJ25 lariat ring is involved in interaction with the inner membrane MccJ25 transporter protein SbmA.

de Cristóbal RE, Solbiati JO, Zenoff AM, Vincent PA, Salomón RA, Yuzenkova J, Severinov K, Farías RN.

J Bacteriol. 2006 May;188(9):3324-8.

23.
24.

YojI of Escherichia coli functions as a microcin J25 efflux pump.

Delgado MA, Vincent PA, Farías RN, Salomón RA.

J Bacteriol. 2005 May;187(10):3465-70.

25.

MccJ25 C-terminal is involved in RNA-polymerase inhibition but not in respiration inhibition.

Vincent PA, Bellomio A, de Arcuri BF, Farías RN, Morero RD.

Biochem Biophys Res Commun. 2005 Jun 3;331(2):549-51.

PMID:
15850794
26.

The microcin J25 beta-hairpin region is important for antibiotic uptake but not for RNA polymerase and respiration inhibition.

Bellomio A, Vincent PA, de Arcuri BF, Salomón RA, Morero RD, Farías RN.

Biochem Biophys Res Commun. 2004 Dec 24;325(4):1454-8.

PMID:
15555591
27.

Rapid nongenomic effects of 3,5,3'-triiodo-L-thyronine on the intracellular pH of L-6 myoblasts are mediated by intracellular calcium mobilization and kinase pathways.

D'Arezzo S, Incerpi S, Davis FB, Acconcia F, Marino M, Farias RN, Davis PJ.

Endocrinology. 2004 Dec;145(12):5694-703. Epub 2004 Sep 2.

PMID:
15345678
28.

Inhibition of Salmonella enterica serovars by microcin J25.

Vincent PA, Delgado MA, Farías RN, Salomón RA.

FEMS Microbiol Lett. 2004 Jul 1;236(1):103-7.

29.

Thyroid hormones affect the membrane dipolar organization. Is it a general event in their non-genomic action?

Isse B, Fidelio G, Farías RN.

J Membr Biol. 2003 Feb 1;191(3):209-13.

PMID:
12571755
30.

Mutations of bacterial RNA polymerase leading to resistance to microcin j25.

Yuzenkova J, Delgado M, Nechaev S, Savalia D, Epshtein V, Artsimovitch I, Mooney RA, Landick R, Farias RN, Salomon R, Severinov K.

J Biol Chem. 2002 Dec 27;277(52):50867-75. Epub 2002 Oct 24.

31.

Raman spectroscopic study of the conformational changes of thyroxine induced by interactions with phospholipid.

Alvarez RM, Della Védova CO, Mack HG, Farías RN, Hildebrandt P.

Eur Biophys J. 2002 Oct;31(6):448-53. Epub 2002 Jul 3.

PMID:
12355254
32.

Evidence for Cu(I)-thiolate ligation and prediction of a putative copper-binding site in the Escherichia coli NADH dehydrogenase-2.

Rapisarda VA, Chehín RN, De Las Rivas J, Rodríguez-Montelongo L, Farías RN, Massa EM.

Arch Biochem Biophys. 2002 Sep 1;405(1):87-94.

PMID:
12176061
33.

Quenching of bathocuproine disulfonate fluorescence by Cu(I) as a basis for copper quantification.

Rapisarda VA, Volentini SI, Farías RN, Massa EM.

Anal Biochem. 2002 Aug 1;307(1):105-9.

PMID:
12137786
34.

The antibacterial action of microcin J25: evidence for disruption of cytoplasmic membrane energization in Salmonella newport.

Rintoul MR, de Arcuri BF, Salomón RA, Farías RN, Morero RD.

FEMS Microbiol Lett. 2001 Nov 13;204(2):265-70.

35.

Escherichia coli RNA polymerase is the target of the cyclopeptide antibiotic microcin J25.

Delgado MA, Rintoul MR, Farías RN, Salomón RA.

J Bacteriol. 2001 Aug;183(15):4543-50.

36.

Effect of fragarin on the cytoplasmic membrane of the phytopathogen Clavibacter michiganensis.

Filippone MP, Diaz-Ricci JC, Castagnaro AP, Farías RN.

Mol Plant Microbe Interact. 2001 Jul;14(7):925-8.

37.

Growth-phase-dependent expression of the cyclopeptide antibiotic microcin J25.

Chiuchiolo MJ, Delgado MA, Farías RN, Salomón RA.

J Bacteriol. 2001 Mar;183(5):1755-64.

38.

Characterization of an NADH-linked cupric reductase activity from the Escherichia coli respiratory chain.

Rapisarda VA, Montelongo LR, Farías RN, Massa EM.

Arch Biochem Biophys. 1999 Oct 15;370(2):143-50.

PMID:
10510271
39.

Isolation and purification of a 316 Da preformed compound from strawberry (Fragaria ananassa) leaves active against plant pathogens.

Filippone MP, Diaz Ricci J, Mamaní de Marchese A, Farías RN, Castagnaro A.

FEBS Lett. 1999 Oct 1;459(1):115-8.

40.

Sequence analysis of the four plasmid genes required to produce the circular peptide antibiotic microcin J25.

Solbiati JO, Ciaccio M, Farías RN, González-Pastor JE, Moreno F, Salomón RA.

J Bacteriol. 1999 Apr;181(8):2659-62.

41.

The cyclic structure of microcin J25, a 21-residue peptide antibiotic from Escherichia coli.

Blond A, Péduzzi J, Goulard C, Chiuchiolo MJ, Barthélémy M, Prigent Y, Salomón RA, Farías RN, Moreno F, Rebuffat S.

Eur J Biochem. 1999 Feb;259(3):747-55.

42.

Escherichia coli outer membrane protein TolC is involved in production of the peptide antibiotic microcin J25.

Delgado MA, Solbiati JO, Chiuchiolo MJ, Farías RN, Salomón RA.

J Bacteriol. 1999 Mar;181(6):1968-70.

43.

Differential transmembrane diffusion of triiodothyronine and thyroxine in liposomes: regulation by lipid composition.

Chehín RN, Issé BG, Rintoul MR, Farías RN.

J Membr Biol. 1999 Feb 1;167(3):251-6.

PMID:
9929377
44.
45.

Spectrophotometric determination of the positional specificity of nonspecific and 1,3-specific lipases.

Farias RN, Torres M, Canela R.

Anal Biochem. 1997 Oct 1;252(1):186-9.

PMID:
9324958
46.

Purification and N-terminal amino acid sequence of Enterocin CRL 35, a 'pediocin-like' bacteriocin produced by Enterococcus faecium CRL 35.

Farías ME, Farías RN, de Ruiz Holgado AP, Sesma F.

Lett Appl Microbiol. 1996 Jun;22(6):417-9.

PMID:
8695065
47.

Genetic analysis of plasmid determinants for microcin J25 production and immunity.

Solbiati JO, Ciaccio M, Farías RN, Salomón RA.

J Bacteriol. 1996 Jun;178(12):3661-3.

48.

Sites of electron transfer to membrane-bound copper and hydroperoxide-induced damage in the respiratory chain of Escherichia coli.

Rodríguez-Montelongo L, Farías RN, Massa EM.

Arch Biochem Biophys. 1995 Oct 20;323(1):19-26.

PMID:
7487066
49.

Differential effect of triiodothyronine and thyroxine on liposomes containing cholesterol: physiological speculations.

Chehin RN, Rintoul MR, Morero RD, Farias RN.

J Membr Biol. 1995 Sep;147(2):217-21.

PMID:
8568857
50.

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