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Biomedical subjects

J T Sage

Publications and source records attributed to J T Sage.

6 recordsLinked to original sources

Conformational interconversion in protein crystals.

We present evidence that the structure of carbonmonoxy myoglobin crystals can be altered by lowering the pH. This structural change is monitored by the characteristic Fe-CO Raman modes at 508 and 491 cm-1 and is thought to involve a localized distal pocket transition from a "closed" conformation at pH 7 to a more "open" conformation at pH 4. These changes take place in the crystal without loss of intensity of a conformationally sensitive Raman mode at 252 cm-1 that signals a partial unfolding of the globin structure in solution. Quantitative studies, which monitor the open and closed populations as a function of laser photolysis, demonstrate that the interconversion rates (k+/-) in solution at 298 K are fast compared to the photolysis and CO entry rates (i.e. k+/- much greater than 10(3) s-1), while in frozen samples the interconversion is much slower than the experimental time scale (minutes). Since the open conformation is a minority species at pH 7, rapid exchange in aqueous solution is a necessary condition for this species to play a functional role. In the crystal, the interconversion rates are slowed compared to solution and begin to approach the photolysis rate (i.e. k+/- approximately 10(3) to 10(4) s-1). This indicates that the barriers for conformational exchange are increased in the crystal environment, compared to the solution, apparently due to the packing forces of the surrounding molecules. X-ray and neutron diffraction studies of MbCO crystals at high and low pH are needed to characterize the details of the structural changes and to test the hypothesis that closed and open distal pocket structures are associated with the 508 and 491 cm-1 Fe-CO modes.

Hydrogen-Ion Concentration

Low pH myoglobin photoproducts.

Recently, there has been interest in determining the conditions under which the iron-histidine bond ruptures in myoglobin at low pH, so that the effect of proximal heme ligation can be studied. A 220-cm-1 Raman mode, assigned to iron-histidine stretching, is clearly visible after photolysis of aqueous MbCO samples below pH4 at room temperature (Sage et al. Biochemistry. 30:1237-1247). In contrast, Iben et al. (Biophys. J. 59:908-919) do not observe this mode upon photolysis of a pH3 MbCO sample in a glycerol/water glass at low temperature. In order to account for both the low temperature and the room temperature experiments, Iben et al. suggest a scheme involving an unusual protonation state of the proximal histidine. Here, we discuss some inconsistencies in their explanation of the room temperature results and offer instead a simple modification of an earlier model. In addition, circular dichroism data are presented that indicate partial unfolding of MbCO in aqueous solution below pH4, and raise questions about the claim of Iben et al. that MbCO remains folded in 75% glycerol at pH3.

Biophysical Phenomena

Spectroscopic studies of myoglobin at low pH: heme structure and ligation.

We explore heme structure and ligation subsequent to a low-pH conformational transition in sperm whale myoglobin. Below pH 4.0, the iron-histidine bond breaks in metMb and deoxyMb. In MbCO, the majority of the iron-histidine bonds remain intact down to pH 2.6; however, the observation of a weak Fe-CO mode at 526 cm-1 indicates that a small fraction of the sample has the histidine replaced by a weak ligand, possibly water. The existence of a sterically hindered CO subpopulation in MbCO and the continued association of the four-coordinate heme with the protein in deoxyMb suggest that the heme pocket remains at least partially intact in the acid-induced conformation. The global pH-dependent conformational change described here is clearly distinguished from the local "closed" to "open" transition described previously in MbCO [Morikis et al. (1989) Biochemistry 28, 4791-4800]. Further observations of the four-coordinate heme state yield insights on the mechanism of heme photoreduction and the assignment of the 760-nm band in deoxyMb.

Animals

Spectroscopic studies of myoglobin at low pH: heme ligation kinetics.

On the basis of the characterization of heme structure and ligation in equilibrium, we explore both proximal and distal ligation kinetics of myoglobin below pH 4. Upon photolysis of MbCO, a significant five-coordinate heme population is observed, with an intact iron-histidine bond that persists on the time scale of CO rebinding. Incomplete CO photolysis is attributed to a rapidly exchanging minority population of four-coordinate hemes, which leads to fast (greater than 10(10) s-1) geminate recombination. The possible relevance of such a mechanism at pH 7 is also noted. Using a novel experimental protocol, we observe the resonance Raman spectrum of partially photolyzed MbCO as a function of continuous wave illumination time (tau). Under extended illumination (tau approximately 35 ms at pH 3.4), there is a loss of intensity in the nu 4 region of the Raman spectrum and the iron-histidine mode is bleached from the spectrum of the five-coordinate photoproduct. In the Fe-CO stretching region of the CO-bound fraction, the intensity of the 526-cm-1 mode increases with tau at the expense of the 491-cm-1 mode. These changes are interpreted as being due to replacement of the proximal histidine ligand under continuous illumination. Complete relaxation to the pure four-coordinate deoxy heme structure observed in equilibrium is not observed even as tau----infinity, presumably since CO rebinding leads to acidification of the iron and its complexation with histidine. We propose a kinetic model to account for our results and discuss the implications for previous low-pH kinetics measurements.

Animals

Nitric oxide adducts of the binuclear iron site of hemerythrin: spectroscopy and reactivity.

Nitric oxide forms adducts with the binuclear iron site of hemerythrin (Hr) at [Fe(II),Fe(II)]deoxy and [Fe(II),Fe(III)]semimet oxidation levels. With deoxyHr our results establish that (i) NO binds reversibly, forming a complex which we label deoxyHrNO, (ii) NO forms a similar but distinct complex in the presence of fluoride, which we label deoxyHrFNO, (iii) NO is directly coordinated to one iron atom of the binuclear pair in these adducts, most likely in a bent end-on fashion, and (iv) the iron atoms in the binuclear sites of both deoxyHrNO and deoxyHrFNO are antiferromagnetically coupled, thereby generating unique electron paramagnetic resonance (EPR) detectable species. The novel EPR signal of deoxyHrNO (deoxyHrFNO) with g[[ = 2.77 (2.58) and g = 1.84 (1.80) is explained by the magnetic interaction of the Fe(II) (S' = 2) and [FeNO]7 (S = 3/2) centers observed by Mössbauer spectroscopy. Antiferromagnetic coupling leads to a ground state of Seff = 1/2. Analysis of the EPR parameters using the isotropic spin-exchange Hamiltonian, Hex = 2JS3/2.S2, and including zero-field splitting leads to a coupling constant, -J approximately 23 cm-1, for deoxyHrNO. The resonance Raman spectrum of deoxyHrNO shows features at 433 and 421 cm-1 that shift downward with 15N16O and that are assigned to stretching and bending modes, respectively, of the [FeNO]7 unit. Sensitivity of the bending mode to D2O suggests that bound NO participates in hydrogen bonding. We propose that the terminal oxygen atom of NO is hydrogen bonded to the proton of the mu-hydroxo bridge in the Fe-(OH)-Fe unit. A bent Fe-N-O geometry is supported by spectroscopic and structural comparisons to synthetic complexes and is consistent with a limiting [FeII,FeIIINO-] formulation for deoxyHrNO. Reversibility of NO binding to deoxyHr is demonstrated by bleaching of the optical and EPR spectra of deoxyHrNO upon additions of excess N3- or CNO-. DeoxyHrNO undergoes autoxidation under anaerobic conditions over the course of several hours. The product of this autoxidation appears to be an EPR-silent NO adduct of semimetHr. The formal one-electron oxidations of the binuclear iron site of deoxyHr by NO and by HNO2 can conceivably occur with no net change in charge on the iron site. In contrast, autoxidation of oxy- to metHr requires a change in net charge on the iron site, which may provide a kinetic barrier.

Animals

The interaction of phosphate with uteroferrin. Characterization of a reduced uteroferrin-phosphate complex.

The interaction of phosphate with reduced uteroferrin has been re-examined in light of disagreements on the oxidation state of the binuclear iron cluster (Keough, D. T., Beck, J. L., de Jersey, J., and Zerner, B. (1982) Biochem. Biophys. Res. Commun. 108, 1643-1648; Antanaitis, B. C., and Aisen, P. (1985) J. Biol. Chem. 260, 751-756). Our results based on Mossbauer observations and the kinetics of spectral change and activity loss show clearly that phosphate binds to reduced uteroferrin to form a reduced uteroferrin-phosphate complex. This complex exhibits a pair of quadrupole doublets at 119 K with parameters typical of a high spin ferric and a high spin ferrous center, respectively, but distinct from those of the native reduced enzyme. The reduced phosphate complex exhibits a pH-dependent visible absorption maximum ranging from 530 to 561 nm. In air, the reduced phosphate complex converts to the oxidized phosphate complex with a first order rate constant of 4 X 10(-3) min-1, as monitored by spectral changes and loss of enzyme activity.

Acid Phosphatase