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DOI 10.17219/acem/98916 Copyright © 2018 byWroclaw Medical University This isanarticle distributed under theterms ofthe Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc-nd/4.0/) Address for correspondence Marta Kepinska E-mail: zalew[email protected] Funding sources Study was supported bygrant No. Pbmn178 from Wroclaw Medical University and by the AZV (Czech Agency for Healthcare Research) AZV CR grant No. 14-28334a (Prague, Czech Republic). Conflict ofinterest None declared Received onJune 6, 2018 Reviewed onAugust 3, 2018 Accepted onOctober 11, 2018 Abstract Background. Metallothioneins (MTs) constitute afamily ofevolutionary conserved low molecular weight proteins with small variations intheir amino acid sequences. They play arole inthe regulation oftrace metals metabolism, inthe detoxification ofheavy metal ions and inmechanisms controlling growth, differentiation and proliferation ofcells. Objectives. Theaim ofthis study was toevaluate the human and rabbit MTs purity and characterization using advanced analytical approaches. Due tothe common use ofMT from rabbit liver as amodel protein, the properties ofthe rabbit and human MTs were compared. Material and methods. Capillary electrophoresis (CE), matrix-assisted laser desorption and ionization time-of-flight mass spectrometry (MALDI-TOF-MS) and Brdicka reaction were used for human and rabbit MTs characterization. Results. Inchip CE analysis, changes inthe range of5–8 kDa corresponding tothe MT monomer, as well as some peaks of13–14 kDa corresponding todimers inboth species, were observed. Using MALDI-MS, rabbit (MT-2D) and human (MT-1A, MT-1G, MT-1G + Cd and MT-2A) MTs were identified. Inthe Brdicka reaction analysis, alower concentration ofMTs from both organisms coincided with adecrease inthe signal corresponding toMT level (Cat2). However, human MT gave higher Cat2 peak than the same concentration (0.025mg/mL) ofrabbit MT. Conclusions. Theapplied methods allowed for the characterization ofMTs and gave complementary information about MT isoforms. Altered electrochemical activity ofhuman and rabbit MTs, despite the same number of–sulfhydryl (−SH) groups, was observed, which may be due todifferent availability ofMT cysteinyl groups. Key words: metallothionein, mass spectrometry, capillary electrophoresis, Brdicka reaction Original papers Theapplication ofcapillary electrophoresis, mass spectrometry andBrdicka reaction inhuman and rabbit metallothioneins analysis Marta Kepinska1,A–F, Sona Krizkova2,3,B,F, Ewelina Guszpit1,B,F, MiguelA. Merlos Rodrigo2,3,B,F, Halina Milnerowicz1,E,F 1 Department of Biomedical and Environmental Analysis, Faculty of Pharmacy with Division of Laboratory Medicine, Wroclaw Medical University, Poland 2 Department ofChemistry and Biochemistry, Faculty ofAgronomy, Mendel University inBrno, Czech Republic 3 Central European Institute ofTechnology, Brno University ofTechnology, Czech Republic A– research concept and design; B – collection and/orassembly ofdata; C – data analysis and interpretation; D – writing thearticle; E – critical revision ofthearticle; F – final approval ofthearticle Advances inClinical and Experimental Medicine, ISSN 1899-5276 (print), ISSN 2451-2680 (online) Adv Clin Exp Med. 2018;27(11):1601–1608
M. Kepinska, etal. Metallothioneins characterization 1602 Introduction Metallothioneins (MTs) make up alarge family ofevolutionarily conserved low molecular weight, thermostable proteins, found inpractically all life forms: invertebrates, invertebrates, fungi, and even inplants. Their sizes range from 25 (fungal) to84 (plant) amino acids.1 Asingle polypeptide chain ofmammalian MT iscomposed of61–68 mostly non-aromatic amino acids and contains 20 cysteinyl residues inhighly conserved locations along the peptide chain. High number ofcysteines inMTs explains their high capacity for binding metal ions through sulfhydryl groups, forming metal–thiolate complexes. Thus, their main proposed functions were derived from their role inthe homeostatic control ofanumber ofessential metals (copper –Cu, zinc –Zn), in detoxification oftoxic ones (e.g., cadmium –Cd, mercury –Hg), and inprotective actions against oxidative stress conditions.2–4 This known fact forms the basis ofMTs being used as possible biomarkers for metal exposure.5 Four isoforms ofmammalian MT (MT-1, MT-2, MT3, and MT-4) have been identified. Isoforms with minor differences, such as amino acid residue, have been detected as subgroups ofthe 2major isoforms (MT-1 and MT-2) and are termed subisoforms. These 2 main groups ofMT isoforms have been classified according tohuman MT elution order byanionic-exchange chromatography: MT-1 and MT-2.6 They are the most widely distributed MT isoforms, expressed inmany cell types indifferent tissues and organs. They can be induced bythe administration ofmetals such as Cd, Zn and Cu; byoxidative stress; byglucocorticoids; and bycytokines.7 MT-1 and MT-2 are present innearly all tissues and have been isolated from organs such as the liver, kidney and brain. MT-3 isexpressed mostly innervous tissue8 and MT-4has been detected inepithelial cells.9 Since various subisoforms are biosynthesized differentially, they could play aspecific biological role, but this aspect isstill being investigated. Theinteresting properties ofMTs are closely related to their structure. Inaddition toslight differences inamino acid sequences, MTs exist as amixture ofvarying metallic content.5 Itisnot a simple task todetect and quantify MT, also due toits high cysteine content and relatively low molecular mass. Thecharacteristics ofhuman MTs are not widely described because rabbit MTs are more often used instudies as amodel protein; thus, itisso valuable tocompare MTs from these organisms. Toanalyze MTs, many methods can be used that differ inthe analytical approach, usually based onthe metal ions detection, free thiol moieties or enzyme-linked immunosorbent assay (ELISA). Human and rabbit MTs have previously been analyzed bywestern blot, ELISA, capillary electrophoresis (CE), and high-performance liquid chromatography.10–15 Therefore, the purpose ofthe research was the comprehensive characterization ofhuman and rabbit MTs. Modern electrochemical and advanced analytical approaches such as the Brdicka reaction, chip CE and matrix-assisted laser desorption and ionization time-of-flight mass spectrometry (MALDI-TOF-MS) were used tocharacterize and compare human and rabbit MTs. Material and methods Material All chemicals used were commercially available. Rabbit liver MT-2 (M-5392), 2-mercaptoethanol, ammonia solution, ammonium bicarbonate, trifluoroacetic acid (TFA), and formic acid were purchased from Sigma–Aldrich (St. Louis, USA). Acetonitrile (ACN) and methanol were purchased from Fluka (Seelze, Germany). Acidic MALDI matrices α-cyano4-hydroxycinnamic acid (HCCA), 2,5-dihydroxobenzoic acid (DHB) and peptide calibration standard mixture were purchased from Bruker Daltonics (Bremen, Germany). All reagents were ofthe highest available purity. Doubly distilled deionized water was used throughout all the experiments. Preparation ofmetallothioneins from human liver Isoforms MT-1 and MT-2 were purified from human liver earlier at the Department ofBiomedical and Environmental Analysis, Faculty of Pharmacy with Division of Laboratory Medicine, Wroclaw Medical University, Poland, and the presence ofMTs was confirmed bysodium dodecyl sulfate–polyacrylamide gel electrophoresis (SDSPAGE) and western blot.10 Chip capillary electrophoresis Capillary electrophoresis experiments were performed onanautomated microfluidic Experion electrophoresis system (Bio-Rad, Hercules, USA), according tothe manufacturer’s instructions and with supplied chemicals (Experion Pro260 analysis kit, Cat. No.700-7101, Bio-Rad). Metallothioneins inaquantity of4µL (0.1 or 0.18µg/µl) were mixed with 2µL ofreducing sample buffer (30µL ofanonreducing sample buffer and 1µL ofβ-mercaptoethanol); after 4min ofboiling, 84μL ofwater were added. Theladder was also prepared inreducing conditions. After the priming ofthe chip with the gel and gel-staining solution inthe diluted priming station sample, 6µL ofthe mixture were loaded into the sample wells. ThePro260 Ladder included inthe kit was used as astandard. For operation and standard data analysis, Experion software v. 3.10 (Bio-Rad) was used. Mass spectrometry analysis Mass spectrometry analysis was performed using matrix-assisted laser desorption and ionization time-of-flight mass spectrometry (MALDI-TOF-MS). Working standard
Adv Clin Exp Med. 2018;27(11):1601–1608 1603 solutions were prepared daily bydiluting the stock solutions. Amixture ofpeptide calibration standard (Bruker Daltonics) was used tocalibrate the instrument. All measurements were performed onthe UltrafleXtreme MALDITOF/TOF mass spectrometer (Bruker Daltonics) equipped with alaser operating at awavelength of355nm with anaccelerating voltage of25 kV, cooled with liquid nitrogen, at amaximum energy of36µJ with arepetition rate of2000Hz inreflector-positive ionization mode, and with software for data acquisition and processing ofmass spectra flexControl v. 3.4 and flexAnalysis v. 2.2. Thespectra were measured inthe range of0–20,000mass-to-change ratio (m/z). Laser power intensity was set to5% above the threshold, which determines the minimal intensity for suitable spectrum; itisset experimentally bymeasuring spectra with increasing laser power intensity. AMALDI MTP 384 target plate (polished steel) was used. Before MT analysis, acut-off filter (Amicon 3K; Merck Millipore, Burlington, USA) for desalinization ofthe MT sample and buffer exchange towater was used. Then, the samples were mixed with DHB or HCCA matrix solution in1:1 volume ratio and then 1µL ofthe mixture was deposited onthe target plate (dried-droplet method) and dried under atmospheric pressure and ambient temperature. Saturated solutions ofDHB or HCCA were prepared inTA30 (30% ACN and 0.1% TFA). Mass spectra were typically acquired byaveraging 20 subspectra from atotal of500 shots ofthe laser (Smartbeam 2 v. 1_0_38.5; Bruker Daltonics). Differential pulse voltammetry Differential pulse voltammetry (DPV) measurements were performed with a747 VA Stand instrument connected toa746 VA Trace Analyzer and a695 Autosampler (Metrohm, Herisau, Switzerland) using astandard cell with 3 electrodes and acooled sample holder (4°C). Ahanging mercury drop electrode (HMDE) with adrop area of0.4mm2 was used as the working electrode. An Ag/AgCl/3M KCl was the reference electrode and aglassy carbon electrode was the auxiliary electrode. TheGPES v. 4.9 software supplied byEcoChemie (Utrecht, the Netherlands) was employed for smoothing and baseline correction ofthe raw data. TheBrdicka supporting electrolyte containing 1mM Co(NH3)6Cl3 and 1 Mammonia buffer (NH3(aq) + NH4Cl, pH=9.6) was used. Theparameters ofthe measurement were as follows: initial potential of−0.7 V, end potential of−1.75 V, modulation time 0.057s, time interval 0.2s, step potential 2 mV, and modulation amplitude −250 mV. All experiments were carried out at 4°C employing aJulabo F12 thermostat (Julabo Labortechnik GmbH, Seelbach, Germany). Results and discussion Sequence differences inhuman and rabbit metallothioneins Most studies concerning mammalian MTs usually associate MT-1 with MT-2. These 2 isoforms are examined as equal peptides, mostly because they are the closest paralogs that have been found and purified together.16 They are commonly referred as MT-1/MT-2. However, the availability oftranscriptomic and proteomic techniques highlights differences inMT-1 and MT-2 that cannot be ignored, suggesting some degree offunctional differentiation between these isoforms both within the same species as well as between humans and rabbits. Amino acid sequences ofrabbit MT isoforms show differences when compared tothe sequences ofhuman MTs (Fig.1). Human MTs are controlled by17 genes located onchromosome 16, 10 of which are functional. Todate, 10 subisoforms ofhuman liver MT-1/2have been reported (MT-1A, MT-1B, MT-1E, MT-1F, MT-1G, MT-1H, MT-1M, MT-1L, MT-1X, and MT-2A)2; their amino acid sequences are shown inFig.1A. Subisoform MT-1G contains 62 amino acids, whereas the others display astructure of61 amino acids. Rabbit MT genes are located onchromosome 5. Six subisoforms ofrabbit liver MT-1/2have been reported so far (MT-1A, MT-2A, MT-2B, MT-2C, MT-2D, and MT-2E)17; their amino acid sequences are presented inFig.1B. Subisoforms MT-2A and MT-2C contain 62 amino acids, whereas the others display astructure of61 amino acids. Thereasons for the high diversity ofMT isoforms and their specific functional roles are still unclear. Thepotential biological significance ofeach isoform should not be neglected but the analytical techniques available cannot easily separate them.18 By ion-exchange chromatography, human MTs were separated into 2 charge-separable isoforms, designated as MT fractions 1 and 2.17 However, MT fractions from rabbit liver obtained withthe same ion-exchange chromatography cannot be separated into MT-1 and MT-2 subfractions. This conventional nomenclature division based oncharge differences refers tothe absence (MT-1) or presence (MT-2) ofanaspartic acid residue at position 11 or 12 (10 or 11) ofthe sequence (Fig.1) and itisnot based ontheir global charge.19 Amino acid sequences of6 rabbit MT isoforms show some differences compared tothe sequences ofhuman MTs (Fig.1). Owing tothe insertion ofanadditional amino acid at position 10, MT-2A and MT-2C sequences have atotal chain length of62 amino acids. MT-1G, having the same length and the same insertion, has also been identified inhuman liver. Thepresence ofdifferential expression ofMT-1G1 (with anadditional alanine) and MT-1G2 (without additional alanine) suggests tissueand cell-specific alternative splicing for the MT-1G isoform.20 Theinsertion ofthe alanine residue at position 10 ofthe sequence relates tothe location ofthe connection ofexons 1 and 2 ofthe rabbit
M. Kepinska, etal. Metallothioneins characterization 1604 MT-2A and 2C gene and human MT-1G gene. Thepresence ofthe additional alanine does not seem toinfluence neither the tertiary structure nor the metal-binding properties ofthe protein.17,21 Thebiological consequence ofthat insertion remains undefined but its presence inmore than 1 species suggests acommon mechanism leading tothe same phenotype. Inrabbit MT-2D and MT-2E, there isasubstitution ofarginine (R) residue inposition 10/11 (Fig.1B). Theadditional positive charge may be involved incompensating for the net negative charge ofthe 3-metal-cluster and thus can increase the stability ofthe β-cluster.17 Even minor changes inthe sequence ofMT may induce structural changes that can alter the metal-binding properties or stability ofthe 3-metal-cluster. Theflexibility ofthe polypeptide chain as well as the charge environment ofthe coordinating sulfur atoms may greatly influence the feasibility and stability ofthe metal-thiolate bonds, and as aresult, ofthe final metal–MT complex. Aras etal. noticed aconserved PKC phosphorylation site at serine-32 (S32) ofMT, which was important inmodulating Zn2+-regulated gene expression.22 Itispresent inall rabbit and human MT isoforms shown inFig.1, except human MT-1B. Thepresence ofcysteine inplace ofserine can change the tertiary structure ofthe protein as well as change the function ofthe protein dependent onphosphorylation. Different expression patterns ofMT subisoforms are observed invarious types ofhuman malignancies; this fact can be useful inthe diagnosis and therapy oftumors.3 Theexact biological significance ofthe differences inamino acid sequences inhuman and rabbit MTs still remains unclear. Detection ofmetallothioneins usingcapillary gel electrophoresis Capillary electrophoresis isoften used toanalyze and separate MT isoforms from different organisms and tissues.11,23 Itcan also be used for monitoring MT concentration inbiological samples.23 Křížková etal. were the first topropose achip CE technique for the analysis ofMT, i.e., of the effect ofoxidation onthe structure ofMT and its ability toform aggregates and polymers.24 Unfortunately, due tothe presence ofsystem peaks, anaccurate analysis ofthe MT monomer isdifficult.12,25 Inthis study, changes inthe range of5–8 kDa corresponding tothe MT monomer were observed for both human and rabbit MTs. However, the monomers co-migrated with asystem peak, which made itdifficult tomeasure their correct size. InFig.2, the peak obtained for rabbit MT shifted toabigger mass (8.2 kDa) incomparison tohuman MTs (6.0 and 7.7 kDa for human MT-1, and 5.3 and 6.1 kDa for human MT-2). Anadditional peak was observed at about 23–24min, which may indicate the presence of13.4 and 14.0 kDa oligomers. Peaks corresponding toMT dimers were observed both for human and rabbit MTs. Mass spectrometry analysis Inthe majority ofMALDI-MS studies, DHB and HCCA were the constituents ofthe matrix used for the appropriate determination ofMTs.26 Inour study, utilization ofboth matrixes resulted indifferent types ofcrystals. While HCCA produced uniform crystals, DHB produced Fig.1. Comparison ofhuman and rabbit metallothionein (MT) isoforms 1 and 2 sequences (MT-1 and MT-2). Sequence comparison ofMT-1/2 from human (MT-1A, MT-1B, MT-1E, MT-1F, MT-1G, MT-1H, MT-1M, MT-1L, and MT-1X, MT-2A) and from rabbit (MT-1A, MT-2A, MT-2B, MT-2C, MT-2D, and MT-2E) was performed using ClustulX program.37 Thesequences were derived from the database SWISS PROT (http://www.expasy.org/sprot/) * indicates positions which have asingle, fully conserved residue; : indicates conservation between groups ofstrongly similar properties –scoring>0.5; indicates conservation between groups ofweakly similar properties –scoring≤0.5. Thered color indicates negative amino acid residues; the color green indicates positive amino acid residues; the pink color indicates cysteine residues; the blue color marks alanine –anadditional amino acid at position 10; substitution ofanaspartic acid residue at position 11/12 isindicated bythe frame.
Adv Clin Exp Med. 2018;27(11):1601–1608 1605 heterogeneous and robust crystals (Fig.3A). Furthermore, DHB exhibited asignificant rabbit MT-2 concentrationdependent increase inobserved signal intensity (expressed in a.u.), higher when compared tothat of HCCA (Fig.3B). Themain observed signal for rabbit MT-2 was 6211.07 m/z. Moreover, itwas estimated that the isolated MT-2 was highly pure, because each spectrum showed only 1 peak ofhigh intensity for the relevant protein. This peak showed amass similar torabbit MT-2D (6215.40 m/z).27 Theoccurrence ofthe MT-2D form has been also observed inMT-2 from Sigma lots27,28 and inMT-1 sample, as aremaining contaminant.28 Thesize of12342.11 Da corresponds tothe MT-2 dimer (Fig.3C inset). TheDHB was chosen as the most appropriate matrix interms ofsensitivity and reproducibility for human MTs; at given conditions (20mg/mL ofDHB in30% ACN and 1% TFA), homogeneous spots applicable for automated MALDI-TOF-MS were formed. Further, toverify the proper isolation ofMT-1 and MT-2 from humans, we analyzed their mass distribution. Themain observed signals for human MTs (hMTs) shown inFig.4 were quasimolecular ions assigned as follows: [hMT-1]+ (6145.23 m/z, 6176.46 m/z and 6220.12 m/z) (Fig.4A), and [hMT-2]+ (6066.24 m/z) (Fig.4B). Thesizes of12523.89 Da and 12329.89 Da correspond toMT-1 and MT-2 dimers. Themass spectra ofthe human MT-1 sample yielded amain peak, the most intense at 6176.46 Da. Peaks observed inthe spectra ofthese MT-1 samples can be attributed topotential subisoforms: MT-1A (6145.23 m/z), MT-1G (6176.46 m/z) and MT-1G+Cd (6240.12 m/z).29,30 Thetheoretical mass ofhuman MT-2A is6042.16 m/z and our results showed main signals at 6066.24 m/z, corresponding to[hMT-2A+Na]+. Theexposure ofMTs toacidic pH values causes metal depletion and unfolding ofthe protein structure, generating apothioneins or metal-free forms. Using these matrixes caused the coordinated metals ofthe proteins tobe removed, and the peaks obtained should be apothioneins, i.e., subisoforms without metal content. Metallothionein dimers were first detected as transient intermediate species during interprotein metal exchange, and longer-lived dimers have been isolated that were stabilized byintermolecular disulfide bonds.31 No transient intermediate dimers could be detected with mass spectrometry. However, astable dimeric complex ofMTs has been detected inthis work byMALDI-TOF-MS and chip CE, and itappears tobe stabilized bydisulfide bridging. Metallothioneins can dimerize through the oxidation oftheir cysteinyl residues toform aninterprotein Cys– Cys dithiol bridge; the experimental mass would decrease by2 Da for every oxidative thiol bridge formation event. Metallothionein analysis using the Brdicka reaction Metallothionein exhibits significant electrochemical activity owing toits high content ofsulfhydryl (SH) moieties. Themethod ofdetermining proteins which contain –SH groups inanammonia-buffered cobalt (III) solution was first described byBrdička.32 Brdicka reaction isone ofthe mostoften-used electrochemical methods for MT determination Fig.2. Metallothionein (MT) separation using chip capillary gel electrophoresis (CE). Electropherograms of: A) inred, MT-1 from human liver; inblue, MT-2 from human liver; and ingray, MT-2 from rabbit liver are shown; B) chip CE virtual gel output ofPro260 ladder, MT-2 from rabbit liver, MT-1 and MT-2 from human liver –10 10 30 50 70 90 23 23.524 24.525 me [min] fluorescence [a.u.] – 500 –250 0 250 500 750 1000 1250 1500 1750 2000 15 20 25 30 35 me [s] fluorescence [a.u.] MT-2, human, C = 0.18 mg/mL MT-2, rabbit, C = 0.1 mg/mL MT-1, human, C = 0.1 mg/mL lower marker 1.2 kDa system peak 6.1 kDa 7.6 kDa 5.3 kDa 6.0 kDa 7.7 kDa 8.2 kDa 14.0 kDa ladder MT-2, rabbit MT-1, human MT-2, human 1.2 kDa 10 20 25 37 50 75 AB 13.4 kDa
M. Kepinska, etal. Metallothioneins characterization 1606 Fig.4. Mass spectrum ofhuman metallothionein (MT). Spectrum ofMT-1 (A) and MT-2 (B) from human measured bymatrix-assisted laser desorption and ionization time-of-flight mass spectrometry (MALDI-TOF-MS) with the 2,5-dihydroxybenzoic acid (DHB) matrix inlinear positive mode inamass range of4–16 kDa prepared inTA30 with repetition rate of2000Hz Fig.3. Mass spectrum ofrabbit metallothionein (MT). A) Spectrum ofMT-2 from rabbit liver measured bymatrix-assisted laser desorption and ionization time-of-flight mass spectrometry (MALDI-TOF-MS) with (A.1) α-cyano-4-hydroxycinnamic (HCCA) and (A.2) 2,5-dihydroxybenzoic acid (DHB) matrix. B) Graphs ofsignal intensity ofdifferent concentrations ofrabbit MT-2 inDHB and HCCA matrices. 1–2µL ofsample/matrix mixture (1:1) deposited onMALDI plate and dried at room temperature (dried-droplet method). Analysis byaMALDI-TOF-MS mass spectrometer was performed inlinear and reflector mode. Dimerization ofMT analyzed byMALDI-TOF-MS isshown inthe inset ofFig. C) Spectrum ofrabbit MT-2 measured byMALDI-TOF-MS with the DHB matrix inlinear positive mode inamass range of4–17 kDa prepared inTA30 with repetition rate of2000Hz B A + 1.00 4 ×1025,000 DHB A.1 0.25 0.50 0.75 intensity [a.u.] 15,000 20,000 HCCA [M+H]+ 0.00 6,211.492 1.5 5 ×10 10,000 A.2 0.5 1.05,000 0.0 4,0006,000 [m/z]7,0005,000 0 1.5 3.5612 24 µg of MT 6,211.072 6,000 8,000 12,342.10 Da dimer_MT-2 [M+H]+ C rabbit MT-2 4,000 0 2,000 4,0006,000 8,000 10,000 12,000 14,000 16,000 [m/z] 6,211.021 intensity [a.u.] intensity [a.u.] intensity [a.u.] [M+H] 2.0 4 ×10 12,523.89 Da 6,176.465 A human MT-1 1.5 dimer_MT-1 6,145.236,220.12 0.5 1.0 6,066.238 4 4 ×10 Bhuman MT-2 3 412,329.89 Da dimer_MT-2 1 2 intensity [a.u.] intensity [a.u.] 04,000 6,000 8,00010,000 12,000 14,00016,000 [m/z]
Adv Clin Exp Med. 2018;27(11):1601–1608 1607 inbiological samples.33 Itisbased onthe reduction ofhydrogen at the mercury electrode catalyzed bythe –SH groups inthe ammonia-buffered cobalt(III) solution.34 TheBrdicka reaction has potential for monitoring the differences ofvarious MT isoforms, both rabbit and human.26 During MT analysis, changes inCat2 signal (−1.55 V, which represents the current response ofthe MT complex with components ofthe Brdicka electrolyte), Co2+ (−1.25 V) and Cat1 (−1.40 V) corresponding tohydrogen evolution from the supporting electrolyte catalyzed bythe MT were observed.35 Thepresence ofthe Cat2 peak isclosely connected with the quantification of–SH groups occurring inthe Brdicka solution,36 thus corresponding tothe MT level. Thevoltammograms ofhuman and rabbit MT are shown inFig.5. Itcan be observed that the character ofthe mentioned MT signals changes with different MT concentration both for rabbit and human MT (Fig.5). Concentrations ofMT 0.025 and 0.05mg/mL were analyzed. With alower concentration ofrabbit MT, the Co2+ signal decreases and shifts toaless negative potential, whereas itslightly increases with adecreasing concentration ofhuman MT (Fig.5). Cat1 and Cat2 signals are more exposed inalower concentration ofMTs. With alower rabbit MT concentration, Cat1 and Cat2 signals decreased and shifted toamore positive potential. These signals inthe lower concentration ofhuman MT had anegligible potential shift. Thecharacter ofthe mentioned MT signals changed with MTs concentrations. Alower concentration ofMTs from both organisms coincided with adecrease inthe Cat2 signal. Lower, but more distinct signals were observed for human and rabbit MTs when alower concentration was used (0.025mg/mL). Thesame concentration ofhuman MT gave higher Cat2 peak than rabbit MT. Metallothioneins isolated inboth organisms behave differentially despite the same number of–SH groups. Conclusions Thestructure ofMTs isconstantly being studied due totheir dynamic nature, lack ofsecondary structural features when metals are not present, and the absence ofspectroscopically active aromatic residues. Thus, different methods have been used for the analysis ofhuman MT-1 and MT-2 isoforms and rabbit MT-2 isoforms. Both inrabbit and human MTs, mainly monomers were detected with chip CE and MALDI-TOF-MS. Additionally, distinctly lower signals from the dimers were observed. When MALDI-TOF-MS isemployed, the main observed signal for rabbit MT-2 corresponds tothe mass ofMT-2D. Inhuman, MT-1A, MT-1G, MT-1G+Cd and MT-2A were detected. Metallothionein subisoforms, except inthe case ofhuman MT-1G+Cd, have been identified without metals, which can be due tothe use ofacidic matrixes that cause arelease ofless bound metals. Inthe Brdicka reaction, signals are different for MTs isolated from rabbit and human liver, meaning that they behave differentially inelectrochemistry despite the same Fig.5. Metallothioneins (MTs) from rabbit and human liver analysis using the Brdicka reaction. Different concentrations ofMT were used: 0.025mg/mL and 0.05mg/mL. –1100 rabbit MT-2, C = 0.05 mg/mL A Cat 1 Cat 2 human MT-2, C = 0.05 mg/mL C 900 700 500 Cat 1 Cat 2 500 nA Cat1 Cat2 300 100 100 current [nA] Co2+ scan peak 100 Co2+ scan T peak 100 300 –1.70–1.50–1.30–1.10–0.90–0.70 MT 100 300 M T D B –300 human MT-2, C = 0.025 mg/mL D Cat1 Cat2 –300 - rabbit MT-2, C = 0.025 mg/mL B 0 Co2+ –100 0 Cat1 Cat2 Co2+ 0 100 200 scan 0 100 200 scan M T peak M T peak 200 200 –1.70–1.50–1.30–1.10–0.90–0.70 M M potenal [V] – – – – – –200 –200 –100 –1.70–1.50–1.30–1.10–0.90–0.70 –1.70–1.50–1.30–1.10–0.90–0.70 current [nA] current [nA] current [nA] –1100 900 700 500 300 100 – – – – – potenal [V] potenal [V] potenal [V]
M. Kepinska, etal. Metallothioneins characterization 1608 number of–SH groups. This may be due todifferent availability ofMT cysteinyl groups indifferent organisms. These methods used together allow for the identification and characterization ofMT and give complementary information about MT forms. Furthermore, MALDI-TOF-MS iscapable ofdirectly resolving more than just the main MT isoforms inthe sample, which makes itthe best ofthese techniques toidentify isoforms ofMT. References 1. Osobová M, Urban V, Jedelský PL, etal. Three metallothionein isoforms and sequestration ofintracellular silver inthe hyperaccumulator Amanita strobiliformis. New Phytol. 2011;190(4):916–926. 2. Zalewska M, Trefon J, MilnerowiczH. Therole ofmetallothionein interactions with other proteins. Proteomics. 2014;14(11):1343–1356. 3. Křížková S, Kepinska M, Emri G, etal. Aninsight into the complex roles ofmetallothioneins inmalignant diseases with emphasis on(sub)isoforms/isoforms and epigenetics phenomena. 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