Abstract

A class of gold(I) phosphane complexes have been identified as inhibitors of dihydrofolate reductase (DHFR) from E. coli, an enzyme that catalyzes the reduction of dihydrofolate (DHF) to tetrahydrofolate (THF), using NADPH as a coenzyme. In this work, to comprehend the nature of the interaction at the basis of these inhibitory effects, the binding properties of bis- and tris-phosphane gold(I) chloride compounds in regards to DHFR have been studied by emission spectroscopy and spectrophotometric assays. The lack of cysteine and seleno-cysteine residues in the enzyme active site, the most favorable sites of attack of Au(I) moieties, makes this work noteworthy. The interaction with the gold compounds results into the quenching of the DHFR tryptophan’s emissions and in an enhancement of their intrinsic emission intensities. Moreover, a modulating action of NADPH is highlighted by means of an increase of the gold compound affinity toward the enzyme; in fact, the dissociation constants calculated for the interactions between DHFR and each gold compound in the presence of saturating NADPH were lower than the ones observed for the apo-enzyme. The fluorimetric data afforded to Kd values ranged from 2.22 ± 0.25 µM for (PPh3)2AuCl in the presence of NADPH to 21.4 ± 3.85 µM for 4L3AuTf in the absence of NADPH. By elucidating the energetic aspects of the binding events, we have attempted to dissect the role played by the gold phosphane/protein interactions in the inhibitory activity, resulting in an exothermic enthalpy change and a positive entropic contribution (ΔH° = −5.04 ± 0.08 kcal/mol and ΔS° = 7.34 ± 0.005 cal/mol·K).

Highlights

  • Dihydrofolate reductase (DHFR) is a ubiquitous enzyme responsible for maintaining a pool of tetrahydrofolate in cells

  • A modulating action of NADPH is highlighted by means of an increase of the gold compound affinity toward the enzyme; the dissociation constants calculated for the interactions between dihydrofolate reductase (DHFR) and each gold compound in the presence of saturating NADPH were lower than the ones observed for the apo-enzyme

  • The synthesis of bis- and tris-phosphane gold(I) complexes with PPh3 has already been discussed in literature and it represents the inspiration for the preparation of 4L or 2L gold complexes [21]

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Summary

Introduction

Dihydrofolate reductase (DHFR) is a ubiquitous enzyme responsible for maintaining a pool of tetrahydrofolate (labelled as THF or H4F) in cells. GIonldo(rId)ecrotmo paoccuonmdsplwishere ttehsitseddeeaps eDnHinFgR, soinmheibgitoolrd;(In)epvheortshpehlaensse, caomstrpuocutunrdes awcetirveitryecroenlsaitdioenresdhiapn(dSAadRd)itwioansaldpifhfiocsuplthatonebe dgioslcdu(sI)secdomfopromunodnso‐waenred sbyins‐thpehsoizsepdhatoneevgaolluda(tIe) cthoemnpaotuurnedosfatnhde DsoHmFeRa/NnoAmDaPliHes/goonldthceomKip’souvnadluses sinotleicriatcetdioansf.uErxthpeloristitnugdtyheinemdeispstihv.eIpnroopredretrietsoofacthcoemtrypplitsohphthains gdreoeuppesniinnDg,HsFoRm,espgeocltdro(Ifl)upohriomspethraicne caonmd pUoVu-vnidssibwleesrpeecrtercoosncosipdyeraesdsayasnd[18a–d2d0i]tiwonerael ppehrofosrpmheadnetogoobldta(iIn) kcoinmetpicouannddsthweremreodsyynnathmeiscizdeadtato efovratluheatDeHthFeR/ngaotludrpehoofspthhaenDe HcoFmRp/NouAnDdsPaHd/dguocldts.cFoomr pthoius npdusrpionstee,rPacPthio3n(Ls.) Eanxdplaonitailnoggsthcoenetaminisinsigve properties of the tryptophan groups in DHFR, spectrofluorimetric and UV‐visible spectroscopy assays [18,19,20] were performed to obtain kinetic and thermodynamic data for the DHFR/gold phosphane compounds adducts. For this purpose, PPh3 (L) and analogs containing the COOH in. The COOH in ortho (2L)/para (4L) position, or the COOCH3 (4MeL) in para position of the phosphane ligand, were used to synthesize mononuclear bis- and tris-phosphane gold(I) compounds

Results and Discussion
Inhibition Studies
Fluorimetric Studies
Preparation of the NADPH Stock
Preparation of the DHFR Stock
Inhibition Studies on DHFR
Fluorimetric Analysis
ESI-MS Spectrometry
Conclusions
Full Text
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