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D R Winge

Publications and source records attributed to D R Winge.

At least 37 records · Page 2Linked to original sources

Copper-regulatory domain involved in gene expression.

Copper ion homeostasis in yeast is maintained through regulated expression of genes involved in copper ion uptake, Cu(I) sequestration, and defense against reactive oxygen intermediates. Positive and negative copper ion regulation is observed, and both effects are mediated by Cu(I)-sensing transcription factors. The mechanism of Cu(I) regulation is distinct for transcriptional activation versus transcriptional repression. Cu(I) activation of gene expression in S. cerevisiae and C. glabrata occurs through Cu-regulated DNA binding. The activation process involves Cu(I) cluster formation within the regulatory domain in Ace1 and Amt1. Cu(I) binding stabilizes a specific conformation capable of high-affinity interaction with specific DNA promoter sequences. Cu(I)-activated transcription factors are modular proteins in which the DNA-binding domain is distinct from the domain that mediates transcriptional activation. The all-or-nothing formation of the polycopper cluster permits a graded response of the cell to environmental copper. Cu(I) triggering may involve a metal exchange reaction converting Ace1 from a Zn(II)-specific conformer to a clustered Cu(I) conformer. The Cu(I) regulatory domain occurs in transcription factors from S. cerevisiae and C. glabrata. Sequence homologs are also known in Y. lipolytica and S. pombe, although no functional information is available for these candidate regulatory molecules. The presence of the Cu(I) regulatory domain in four distinct yeast strains suggests that this Cu-responsive domain may occur in other eukaryotes. Cu-mediated repression of gene expression in S. cerevisiae occurs through Cu(I) regulation of Mac1. Cu(I) binding to Mac1 appears to inhibit the transactivation domain. The Cu(I) specificity of this repression is likely to arise from formation of a polycopper thiolate cluster.

Amino Acid Sequence↗

Metal-ion regulation of gene expression in yeast.

Metal-responsive transcription factors exist in yeast to modulate expression of genes that encode proteins involved in cellular uptake of copper, iron and zinc ions. These signal transduction pathways function in the cellular regulation of the intracellular concentration of free metal ions. A second component of metal homeostasis is the regulation of metal-ion binding through protein-mediated metallation. Copper-specific chaperones exist in yeast that route copper ions to the site of biosynthesis of copper-metalloenzymes.

Copper↗

Solution structure of a zinc domain conserved in yeast copper-regulated transcription factors.

The three dimensional structure of the N-terminal domain (residues 1-42) of the copper-responsive transcription factor Amtl from Candida glabrata has been determined by two-dimensional 1H-correlated nuclear magnetic resonance (NMR) methods. The domain contains an array of zinc-binding residues (Cys-X2-Cys-X8-Cys-X-His) that is conserved among a family of Cu-responsive transcription factors. The structure is unlike those of previously characterized zinc finger motifs, and consists of a three-stranded antiparallel beta-sheet with two short helical segments that project from one end of the beta-sheet. Conserved residues at positions 16, 18 and 19 form a basic patch that may be important for DNA binding.

Amino Acid Sequence↗

Copper-mediated repression of the activation domain in the yeast Mac1p transcription factor.

The expression of a number of genes encoding products involved in copper ion uptake in yeast is specifically inhibited by copper ions. We show here that copper metalloregulation occurs through Cu-dependent repression of the transactivation activity of Mac1p. A segment of the yeast transcription factor Mac1p was identified that activated transcription in vivo in a heterologous system using fusion polypeptides with the yeast Gal4 DNA-binding domain. The Gal4/Mac1p hybrid exhibits transactivation activity that is repressed in cells cultured in the presence of copper salts and derepressed in cells with reduced copper uptake. The repressive effect is specific for copper ions. The concentration dependency of the Cu-inactivation of Gal4/Mac1p is similar to that of Cu-inhibition of CTR1 expression, a known Cu-regulated gene in vivo. Copper inhibition of gene expression is not observed with a Gal4/Mac1p chimera containing the MAC1(up1) substitution within the transactivation domain. Cells harboring the MAC1(up1) allele fail to attenuate FRE1 and CTR1 expression in a Cu-dependent manner. Additional MAC1(up) alleles exist within the first of two cysteine-rich sequence motifs adjacent to the His --> Gln MAC1(up1) encoded substitution. Thus, Cu-regulation of Mac1p function arises from a novel Cu-specific repression of the transactivation domain function. Models for the mechanism of Cu-repression of Mac1p function will be discussed.

Amino Acid Sequence↗

Presence of a copper(I)-thiolate regulatory domain in the copper-activated transcription factor Amt1.

The Amt1 transcription factor from Candida glabrata is activated by the formation of a tetracopper-thiolate cluster. Recombinant Amt1 (residues 1-110) is isolated as a Cu,ZnAmt1 complex. Previous mapping studies [Farrell et al. (1996) Biochemistry 35, 1571-1580] revealed that the Zn(II) site is enfolded by an independent, N-terminal domain consisting of residues 1-40. One prediction from the mapping study is that the tetracopper cluster is enfolded by residues 41-110. A truncated Amt1 peptide consisting of residues 37-110 was expressed and isolated as a CuAmt1 complex with 4 mol equiv of Cu(I) bound. The bound Cu(I) ions in the truncated Amt1 complex were spectroscopically similar to Cu(I) ions bound in the 110-mer Amt1 molecule in the energies and intensities of the ultraviolet S-->Cu charge transfer transitions and luminescence. Copper K-edge extended X-ray absorption fine structure spectroscopy (EXAFS) of the truncated CuAmt1 complex revealed the same 2.26 A mean Cu-S bond distance as in the Cu,ZnAmt1 complex. A diagnostic feature of the polycopper-thiolate cluster in Cu,-ZnAmtl1 is the short 2.7 A Cu-Cu distance determined by Cu K-edge EXAFS. The truncated CuAmt1 complex had the same short 2.7 A Cu-Cu distance. The truncated CuAmt1 complex bound DNA specifically and with high affinity consistent with residues 41-110 being an independent domain stabilized by the tetracopper cluster. Thus, Amt1 consists of three independent and contiguous domains, an N-terminal Zn module (residues 1-40), an adjacent Cu regulatory domain (residues 41-110), and a C-terminal transcriptional activation domain. Cu(I) activation of Amt1 appears to consist of conversion of the 70-residue Cu regulatory domain from an inactive conformer to a structure containing the tetracopper cluster.

Base Sequence↗

Enhanced effectiveness of copper ion buffering by CUP1 metallothionein compared with CRS5 metallothionein in Saccharomyces cerevisiae.

The bakers' yeast Saccharomyces cerevisiae contains a metallothionein (MT) gene family comprised of the amplified CUP1 locus and the single copy CRS5 gene. We demonstrate that CUP1 plays the dominant role in copper detoxification. A single copy of CUP1 was far more effective in conferring copper resistance than was CRS5. The CUP1 promoter contributes to this resistance; in a promoter exchange experiment, the Crs5 MT conferred strong copper resistance when its expression was driven by the CUP1 promoter, and conversely, the CRS5 promoter reduced the effectiveness of Cup1 MT. Unlike CUP1, the CRS5 promoter appears to be refractory to high concentrations of copper. The CUP1 coding sequences also contribute to copper tolerance, presumably reflecting the enhanced binding avidity of Cup1 MT for Cu(I) ions. In studies with the bathocuproine Cu(I) chelator, the Cu(I) ions bound to Crs5 were kinetically more labile than the Cu(I) binding to Cup1. Our findings are consistent with the assembly of Crs5 into two metal-binding clusters, similar to mammalian MTs, but unlike Cup1. Overall, the striking differences in gene structure, regulation, and function of CUP1 and CRS5 are remarkably reminiscent of the MTI and MTII genes of the pathogenic yeast Candida glabrata.

Buffers↗

Structure of the cysteine-rich intestinal protein, CRIP.

LIM domains are Zn-binding arrays found in a number of proteins involved in the control of cell differentiation, including several developmentally regulated transcription factors and a human proto-oncogene product. The rat cysteine-rich intestinal protein, CRIP, is a 76-residue polypeptide which contains a LIM motif. The solution structure of CRIP has been determined by homonuclear and 1H-15N heteronuclear correlated nuclear magnetic resonance spectroscopy. Structures with individual distance violations of < or = 0.03 angstrom and penalties (squared sum of distance violations) of < or = 0.06 angstrom2 were generated with a total of 500 nuclear Overhauser effect (NOE)-derived distance restraints (averaging 15.6 restraints per refined residue). Superposition of backbone heavy atoms of ordered residues relative to mean atom positions is achieved with pairwise rms deviations of 0.54(+/-0.14) angstrom. As observed previously for a peptide with the sequence of the C-terminal LIM domain from the avian cysteine-rich protein, CRP (cCRP-LIM2), CRIP binds two equivalents of zinc, forming N-terminal CCHC (Cys3, Cys6, His24, Cys27) and C-terminal CCCC (Cys30, Cys33, Cys51, Cys55) modules. The CCHC and CCCC modules in CRIP contain two orthogonally-arrayed antiparallel beta-sheets. The C-terminal end of the CCHC module contains a tight turn and the C terminus of the CCCC module forms an alpha-helix. The modules pack via hydrophobic interactions, forming a compact structure that is similar to that observed for cCRP-LIM2. The most significant differences between the structures occur at the CCHC module-CCCC module interface, which results in a difference in the relative orientations of the modules, and at the C terminus where the alpha-helix appears to be packed more tightly against the preceding antiparallel beta-sheet. The greater abundance of NOE information obtained for CRIP relative to cCRP-LIM2, combined with the analysis of J-coupling and proton chemical shift data, have allowed a more detailed evaluation of the molecular level interactions that stabilize the fold of the LIM motif.

Amino Acid Sequence↗

Identification of the Zn(II) site in the copper-responsive yeast transcription factor, AMT1: a conserved Zn module.

The N-terminal metal-binding domains of the copper-activated yeast transcription factors, ACE1 and AMT1, bind to specific DNA sequences in a Cu-dependent fashion. Recombinant AMT1 and ACE1 metal-binding domains are isolated as Cu4Zn1-protein complexes. Site-directed mutagenesis of AMT1 was used in this study to map the ligands of the Cu(I) and Zn(II) ions. The results are consistent with the N-terminal halves of AMT1 and ACE1 consisting of two independent submodules, one binding a single Zn(II) ion and the second binding the tetracopper cluster. The basis of this conclusion is, first, that mutations of two cysteinyl codons and a histidyl codon in the first 42 residues of AMT1 do not alter DNA binding. In contrast, serine substitutions at four cysteine positions at codons 43, 61, 90, and 98 abolish DNA binding. We demonstrated previously that population of the Zn(II) site in AMT1 does not alter the ability of the protein to bind DNA but bound Cu(I) ions are essential for DNA binding [Thorvaldsen, J. L., et al. (1994) Biochemistry 33, 9566-9577]. Second, mutations in the N-terminal 42 residue segment reduce the Zn(II) content of purified mutant AMT1 molecules. Third, a synthetic peptide consisting of the N-terminal 42 residues in AMT1 forms a stable Zn(II) complex and substitution with Co(II) reveals an electronic spectrum identical to that of the Co-substituted intact Cu4AMT1 protein. 113Cd(II) NMR studies reveal that the divalent metal site consists of ligands provided by three cysteinyl thiolates and a single histydyl imidazole. The sequence homology between AMT1, ACE1, and MAC1 in the N-terminal 42 residues suggests that ACE1 and MAC1 will, likewise, contain N-terminal Zn modules. A 42-residue ACE1 synthetic peptide gives identical metal binding properties to the corresponding AMT1 synthetic peptide. Thus, AMT1 and likely ACE1 consist of two contiguous modules, residues 1-42 forming an independent Zn(II) module and residues 43-110 enfolding a tetracopper cluster.

Amino Acid Sequence↗

Separation of three mouse metallothionein isoforms by free-solution capillary electrophoresis.

We have used free-solution capillary electrophoresis (FSCE) to separate three distinct mouse metallothionein (MT) isoforms, MT-1, MT-2 and MT-3. FSCE was conducted in an uncoated fused-silica capillary (57 cm x 50 microns I.D., 50 cm to detector) using 50 mM sodium phosphate buffer adjusted to pH 7.0 or 2.0. At neutral pH, each of the three isoform peaks were well resolved from a mixture with the order of migration (MT-1 > MT-2 > MT-3) related to the net negative charge on the protein. At acidic pH, the migration order was reversed with MT-3 migrating fastest, suggesting MT-3 had a higher net positive charge than MT-2 or MT-1. UV absorbance spectra (190-300 nm) confirmed the presence of Zn in MT-1 and MT-2. MT-3, which was saturated with Cd to stabilize the protein, gave a spectrum characteristic of the Cd-S charge transfer (shoulder at ca. 250 nm). At pH 2.0, the absorbance spectra for all three mouse MTs were characteristic of the metal-free form of the protein (apothionein). Thus, FSCE conducted at neutral pH separates MT isoforms with their metals intact, whereas at pH 2.0, both the Zn and the Cd dissociate from the protein during the run.

Animals↗

Identification of SLF1 as a new copper homeostasis gene involved in copper sulfide mineralization in Saccharomyces cerevisiae.

In Saccharomyces cerevisiae, at least 12 genes are important for cells to propagate in medium containing elevated concentrations of copper salts (J. Welch, S. Fogel, C. Buchman, and M. Karin, EMBO J. 8:255-260, 1989). Complementation studies were carried out on a copper-sensitive mutation (cup14) from this group. A new yeast gene, designated SLF1, was identified as a multicopy suppressor of the cup14 mutation. Slf1 is important for the physiological process of copper sulfide (CuS) mineralization on the surface of cells cultured in medium containing copper salts. CuS mineralization causes the cells to turn brown. Disruption of SLF1, which is located close to the telomere region of chromosome IV, leads to limited copper sensitivity, and the resulting cells lack the normal brownish coloration when grown in CuSO4-containing medium. Overproduction of Slf1 in wild-type cells confers superresistance to CuSO4 and enhances the coloration of cells cultured in the presence of CuSO4. Upon addition of KCN to Cu-grown cells, the brownish coloration was bleached instantly, and copper ions were solubilized. These data are consistent with Slf1-dependent accumulation of CuS complexes on the cell surface. Disruption of SFL1 also results in loss of the ability of yeast cells to deplete Cu but not Cd ions from the growth medium, whereas overexpression enhances Ca depletion ability and the resulting deposition of CuS particles. It is proposed that Slfl participates in a copper homeostasis pathway, distinct from the Cup1 detoxification system, that leads to sulfide generation and CuS biomineralization on the cell surface. This process may coordinate with the Cup1 pathway at different copper concentrations to prevent copper-induced toxicity.

Amino Acid Sequence↗

Mutated yeast heat shock transcription factor exhibits elevated basal transcriptional activation and confers metal resistance.

Cadmium-resistant Saccharomyces cerevisiae strain 301N exhibits high basal as well as cadmium-induced expression of the CUP1 metallothionein gene. Since regulation of CUP1 is usually restricted to copper ions, our goal was to identify the factor responsible for the high metallothionein levels in strain 301N. The gene responsible for the observed phenotype is a spontaneously mutated heat shock transcription factor gene (HSF1). A double, semidominant HSF1 mutant with substitutions at codons 206 and 256 within the DNA-binding domain of the heat shock factor (HSF) confers two phenotypes. The first phenotype is elevated transcriptional activity of the HSF mutant (HSF301), which results in constitutive thermotolerance. A second HSF301 phenotype is enhanced binding affinity for the heat shock element (HSE) within the CUP1 5'-sequences, resulting in high basal transcription of metallothionein. The CUP1 HSE is a minimal heat shock element containing only two perfectly spaced inverted repeats of the basic nGAAn block. Cells containing HSF301 are resistant to cadmium salts. The single R206S mutation is responsible for the high affinity binding to the CUP1 HSE. In addition, the R206S HSF substitution exhibits constitutive transcriptional activation from a consensus HSE (HSE2). The F256Y substitution in HSF attenuates the effects of R206S on the consensus HSE2, but not on the CUP1 HSE.

Base Sequence↗

Distinct regions of Cu(I).ACE1 contact two spatially resolved DNA major groove sites.

The interaction between the Cu(I).ACE1 (CuACE1) transcription factor and its DNA binding site in the yeast metallothionein gene was studied by systematically altering the DNA sequence through base substitution, modification, and deletions as well as by altering the protein structure through chemical modification. We show here that CuACE1 is comprised of two distinct domains that contact DNA through minor groove interactions located between two major groove interaction sites. The minor groove interactions are shown to be critical for formation of a stable CuACE1.DNA complex. The NH2-terminal segment of ACE1 is shown to contact the 5'-most distal major groove site.

Base Sequence↗

Bioactivity of metallothionein-3 correlates with its novel beta domain sequence rather than metal binding properties.

Human and mouse metallothionein-3 (MT-3) molecules exhibit the same metal binding stoichiometry with Zn(II), Cd(II), or Cu(I) as MT-1 or MT-2 molecules, suggesting that MT-3 consists of two domains enfolding separate polymetallic clusters. The kinetic reactivities of Zn(II) complexes of MT-3 with the chelator ethylenediaminetetraacetic acid (EDTA) or the thiol reagent dithiobis(2-nitrobenzoic acid) (DTNB) resembles the reactivity of ZnMT-1. Furthermore, the candidate alpha and beta domain peptides of human MT-3 are very similar to MT-1 domain peptides in the reactivity of Zn(II) complexes. Zn(II) complexes of human and mouse MT-3 inhibit the survival of rat cortical neurons cultured in the presence of an Alzheimer's disease brain extract. Inhibitory activity is unique to the MT-3 isoform and is a property of the N-terminal beta domain. The inhibitory activity of the 32-residue MT-3 beta domain is abolished by a double mutation within the beta domain resulting in the conversion of the C-P-C-P sequence to either C-S-C-A or C-T-C-T. Thus, the bioactivity arises from a novel structure of the N-terminal beta domain of MT-3 and not any unusual metal-binding properties.

Amino Acid Sequence↗

Analysis of copper-induced metallothionein expression using autonomously replicating plasmids in Candida glabrata.

Candida glabrata strains and a stable plasmid were developed that were suitable for analysis of copper-inducible expression from promoters of the three metallothionein (MT) genes. The two homologous MTII genes, MTIIa and MTIIb, encode the same polypeptide but are differentially induced by copper salts. MTIIb is more highly inducible than MTIIa and cells harboring a single MTIIb exhibit a greater resistance to copper salts compared to cells harboring a single MTIIa. The differential copper inducibility was mapped to sequences between -03 and -292 upstream of the MT coding sequences. Expression of MTI is highly Cu-regulated, but this MT gene confers much less resistance than MTII genes.

Base Sequence↗

Dominance of metallothionein in metal ion buffering in yeast capable of synthesis of (gamma EC)nG isopeptides.

The relationship of yeast metallothionein (MT) and (gamma EC)nG isopeptides (phytochelatins) in metal ion buffering was assessed. The effect of constitutive expression of yeast metallothionein (MT) genes on accumulation of metal-(gamma EC)nG isopeptide (phytochelatin) complexes was analyzed in Candida glabrata and Schizosaccharomyces pombe cultures incubated in the presence of cadmium salts. Constitutive expression of the Saccharomyces cerevisiae MT (CUP1) gene inhibited the accumulation of metal-phytochelatin complexes in both C. glabrata and S. pombe. Intracellular Cd(II) sequestration occurred by formation of CdMT complexes. Phytochelatin (gamma EC)nG complexes appear to function in metal buffering in cells when MT genes are not present or expressed. A third condition in which metal-(gamma EC)nG complexes are observed is when constitutively expressed MT does not accumulate. We observed that C. glabrata lacking the AMT1 gene necessary for copper induction of the MT genes expressed MTII constitutively, but this expression does not lead to CdMTII accumulation. Only Cd-(gamma EC)nG complexes accumulate. Likewise, metal exposed cultures of S. cerevisiae (cup1) transformed with C. glabrata MTII under the constitutive ADH1 promoter resulted in constitutive expression of MTII and accumulation of CuMTII complexes but no CdMTII complexes. The inability of constitutively expressed C. glabrata MTII to buffer Cd(II) ions may arise in part from an inherent kinetic lability of CdMTII complexes. Incubation of ZnMTII with a metallochromic chelator, 4-(2-pyridylazo)resorcinol resulted in greater Zn(II) loss than Zn(II) complexes with CUP1 MT and C. glabrata MTI. C. glabrata MTII appears to be the first MT described which forms an unstable Cd(II) complex.

Binding Sites↗

Mixed Cu+ and Zn2+ coordination in the DNA-binding domain of the AMT1 transcription factor from Candida glabrata.

AMT1 is the transcription factor required for Cu-induced expression of metallothionein genes in the yeast Candida glabrata. The copper-binding, DNA-binding domain of AMT1 has been purified after expression of an AMT1 synthetic gene in bacteria and was confirmed as active in a gel shift assay. The Cu-activated AMT1 was shown to contain a Cu(+)-thiolate tetracopper center and a single Zn2+ site. AMT1 is purified as a Cu-Zn protein from bacterial cultures grown in the presence of CuSO4. Chemical analysis suggested that 4.2 +/- 0.2 and 1.2 +/- 0.2 molar equiv copper and zinc ions bound, respectively. Electrospray mass spectrometry was used to verify that a uniform species was present with 4 Cu+ ions and 1 Zn2+ ion bound per AMT1 molecule. Cu+ binding to form a tetracopper center occurs cooperatively as shown by electrospray MS of apoAMT1 samples reconstituted with increasing equivalency of Cu+. Copper-thiolate coordination was indicated by Cu-S charge-transfer transitions in the ultraviolet, luminescence typical of Cu-thiolate clusters and EXAFS. Analysis of the EXAFS of CuZnAMT1 revealed predominantly trigonal Cu+ coordination and the presence of a polycopper cluster by virtue of a short Cu-Cu distance of 2.7 A. Zn K-edge EXAFS of Cu4Zn1AMT1 and electronic spectroscopy of AMT1 with Co2+ substituted for the single Zn2+ ion are consistent with tetrahedral Zn2+ coordination with thiolate ligands. The Cu-activated AMT1 exhibited a conformation distinct from that of metal-free AMT1 as shown by circular dichroism. DNA binding by AMT1 was dependent on the tetracopper center but was independent of occupancy of the Zn2+ site. This is the first report of a single, uniform tetracopper center in a metal-activated transcription factor.

Amino Acid Sequence↗

Enhanced neurotrophic activity in Alzheimer's disease cortex is not associated with down-regulation of metallothionein-III (GIF).

Alzheimer's disease (AD) is a chronic neurodegenerative disorder for which the pathogenic mechanisms are not well understood. Previous studies demonstrated that extracts prepared from AD brains could increase the survival of rat cortical neurons in vitro. Additional studies indicated that this enhanced neurotrophic activity of AD brain was due to a reduction of a growth inhibitory factor (GIF) that was subsequently shown to be a new member of the metallothionein (MT) gene family, and designated MT-III. The study presented here examined the association between neurotrophic activity and MT-III expression in frontal cortices from eight AD and five control brains, and further characterized the inhibitory activity of MT-III. On average, AD extracts stimulated the survival of approximately 2-fold more rat cortical neurons than control extracts, demonstrating that AD brain possesses elevated neurotrophic activity. When recombinant MTs were added to cultures grown in the presence of brain extract, MT-III but not MT-I had an inhibitory effect on neuron survival, confirming that MT-III is a specific inhibitory factor in this assay. However, in contrast to previous reports, neither MT-III mRNA nor MT-III protein levels were significantly decreased in the AD group. Therefore, the difference in neurotrophic activity between the AD and control brain samples examined in this study is probably not directly mediated by MT-III. These results suggest that MT-III down-regulation is not an important pathogenic event in some cases of AD.

Alzheimer Disease↗

Mutational analysis of the metal sites in an LIM domain.

Site-directed mutagenesis was carried out to map the residues that form the two Zn(II) sites within a LIM domain. The C-terminal LIM domain derived from the cysteine-rich protein was utilized for this analysis and is referred to as LIM2. Seven cysteinyl residues and a single histidyl residue in the LIM2 sequence, CX2CX17HX2CX2CX2CX17CX2C, comprise the conserved residues in the LIM consensus that are potential Zn(II) ligands. Two Zn(II) binding sites exhibiting tetrathiolate (S4) and S3N1 Zn(II) coordination are displayed by LIM2 (Kosa, J. L., Michelsen, J. W., Louis, H. A., Olsen, J. I., Davis, D. R., Beckerle, M. C., and Winge, D. R. (1994) Biochemistry 33, 468-477). Site-directed mutagenesis was employed to generate three mutant LIM2 proteins with conversions of the second conserved cysteine to histidine (C2H), the fifth conserved cysteine to histidine (C5H), and the last conserved cysteine to aspartate (C8D). Metal coordination by the mutant proteins was evaluated by atomic absorption spectroscopy, Co(II) electronic spectroscopy, and 113Cd NMR spectroscopy. The results permit discrimination between various models of metal ion binding and suggest that the LIM domain is comprised of a S3N1 site generated from the four N-terminal candidate ligands (CX2CX17HX2C) and a S4 site generated from the four C-terminal candidate ligands (CX2CX17CX2C).

Amino Acid Sequence↗