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Research Article

Measurement of the methemoglobin concentration using Raman spectroscopy

, , , , , , , , & show all
Pages 63-69 | Received 19 Jan 2013, Accepted 09 Feb 2013, Published online: 08 Mar 2013

References

  • Abe M, Kitagawa T, Kyogoku Y. 1978. Resonance Raman spectra of octaethylporphyrinato-Ni(lI) and meso-deuterated and 15N substituted derivatives. II. Anormal coordinate analysis. J Chem Phys. 69:4526–4534.
  • Ali A. 2001. Co-oximetry interference by hemoglobin-based blood substitutes. Anesth Analg. 92:863–869.
  • Ashton L, Boguslawa CMB, Blanch EW. 2006. Application of two-dimensional correlation analysis to Raman optical activity. J Mol Struct. 799:61–71.
  • Beilman GJ, Myers D, Cerra FB, Lazaron V, Dahms RA, Conroy MJ, Hammer BE. 2001. Near-infrared and nuclear magnetic resonance spectroscopic assessment of tissue energetics in an isolated, perfused canine hind limb model of dysoxia. Shock. 15:392–397.
  • Berger AJ, Itzkan I, Feld MS. 1997. Feasibility of measuring blood glucose concentration by near-infrared Raman spectroscopy. Spectrochim Acta A Mol Biomol Spectrosc. 53A:287–292.
  • Boyd S, Bertino MF, Seashols SJ. 2011. Raman spectroscopy of blood samples for forensic applications. Forensic Sci Int. 208:124–128.
  • Brazhe NA, Abdali S, Brazhe AR, Luneva OG, Bryzgalova NY, Parshina EY, et al. 2009. New insight into erythrocyte through in vivo surface-enhanced Raman spectroscopy. Biophys J. 97:3206–3214.
  • Buschman HP, Marple ET, Wach ML, Bennett B, Schut TC, Bruining HA, et al. 2000. In vivo determination of the molecular composition of artery wall by intravascular Raman spectroscopy. Anal Chem. 72:3771–3775.
  • Chance B, Wang NG, Maris M, Nioka S, Sevick E. 1992. Quantitation of tissue optical characteristics and hemoglobin desaturation by time- and frequency-resolved multi-wavelength spectrophotometry. Adv Exp Med Biol. 317:297–304.
  • Chen ZP, Lovett D, Morris J. 2011. Process analytical technologies and real time process control a review of some spectroscopic issues and challenges. J Process Control. 21:1467–1482.
  • Cruz-Landeira A, Bal MJ, Quintela O, Lopez-Rivadulla M. 2002. Determination of methemoglobin and total hemoglobin in toxicological studies by derivative spectrophotometry. J Anal Toxicol. 26:67–72.
  • Evelyn KA, Malloy HT. 1938. Microdetermination of oxyhemoglobin, methemoglobin, methemoglobin, and sulfhemoglobin in single sample of blood. J Biol Chem. 126:655–662.
  • Feiner JR, Bickler PE. 2010. Improved accuracy of methemoglobin detection by pulse CO-oximetry during hypoxia. Anesth Analg. 111:1160–1167.
  • Feiner JR, Bickler PE, Mannheimer PD. 2010. Accuracy of methemoglobin detection by pulse CO-oximetry during Hypoxia. Anesth Analg. 111:143–148.
  • Fleisch H. 1959. Quantitative determination of methemoglobin and of methemalbumin in the blood. Helvetica Physiol Et Pharmacol Acta. 17:318–328.
  • Hughes GS Jr, Francom SF, Antal EJ, Adams WJ, Locker PK, Yancey EP, Jacobs EE. 1996. Effects of a novel hemoglobin-based oxygen carrier on percent oxygen saturation as determined with arterial blood gas analysis and pulse oximetry. Ann Emerg Med. 27:164–169.
  • Iorio EED. 1981. Preparation and Characterization of Hemoglobin Derivatives. In: Antonini E, Rossi-Bernardi L, Chiancone E, Eds. Hemoglobins. Preparation and Characterization of Hemoglobin Derivatives. New York: Academic Press, p. 65.
  • Johjima T, Wariishi H, Tanaka H. 1996. The effect of ligand field strength on nonresonance Raman characteristics of hemoproteins. Biochem Biophys Res Commun. 226:601–606.
  • Joseph C, Fratantoni MD. 1991. Points to consider in the safety evaluation of hemoglobin-based oxygen carriers. Center for biologics evaluation and research. Transfusion. 31:369–371.
  • Kan X, You G, Zhao L, Zhou H. 2010. Advances in research on the method for methemoglobin determination (in Chinese). Bull Acad Mil Med Sci. 34:385–388.
  • Leahy T, Smith R. 1960. Notes on methemoglobin determination. Clin Chem. 6:148–152.
  • Linberg R, Conover CD, Shum KL, Shorr RGL. 1998. Hemoglobin based oxygen carriers: how much methemoglobin is too much?Artif Cells Blood Substit Immobil Biotechnol. 26:133–148.
  • Mohorovic L. 2007. The role of methemoglobinemia in early and late complicated pregnancy. Med Hypotheses. 68:1114–1119.
  • Nighswander-Rempel SP, Kupriyanov VV, Shaw RA. 2005. Relative contributions of hemoglobin and myoglobin to near-infrared spectroscopic images of cardiac tissue. Appl Spectrosc. 59:190–193.
  • Noda I. 2004. Advances in two-dimensional correlation spectroscopy. Vib Spectrosc36:143–165.
  • O’Hara JF Jr, Colburn WA, Tetzlaff JE, Novick AC, Angermeier KW, Schubert A. 2001. Hemoglobin and methemoglobin concentrations after large-dose infusions of diaspirin cross-linked hemoglobin. Anesth Analg. 92:44–48.
  • Polakovs M, Mironova-Ulmane N, Kurjane N, Reinholds E, Grube M. 2008. Micro-Raman scattering and infrared spectra of hemoglobin. Sixth International Conference on Advanced Optical Materials and Devices (Aomd-6), 7142.
  • Power GG, Bragg SL, Oshiro BT, Dejam A, Hunter CJ, Blood AB. 2007. A novel method of measuring reduction of nitrite-induced methemoglobin applied to fetal and adult blood of humans and sheep. J Appl Physiol. 103:1359–1365.
  • Rieders F, Macherone AJ. 2001. Blood methemoglobin analysis. The Fredric Rieders Family Renaissance Foundation: Willow Grove, PA, USA.
  • Sasic S, Muszynski A, Ozaki Y. 2000. A new possibility of the generalized two-dimensional correlation spectroscopy. 1. Sample-sample correlation spectroscopy. J Phys Chem A. 104:6380–6387.
  • Spiro TG. 1975. Resonance Raman spectroscopic studies of heme proteins. Biochim Biophys Acta. 416:169–189.
  • Spiro TG, Strekas TC. 1972. Resonance Raman spectra of hemoglobin and cytochrome c: inverse polarization and vibronic scattering. Proc Natl Acad Sci U S A. 69:2622–2626.
  • Torres Filho IP, Terner J, Pittman RN, Proffitt E, Ward KR. 2008. Measurement of hemoglobin oxygen saturation using Raman microspectroscopy and 532-nm excitation. J Appl Physiol. 104: 1809–1817.
  • Torres Filho IP, Terner J, Pittman RN, Somera LG III, Ward KR. 2005. Hemoglobin oxygen saturation measurements using resonance Raman intravital microscopy. Am J Physiol Heart Circ Physiol. 289:H488–H495.
  • Torres Filho IP, Filler R, Proffitt EK, Torres LN, Terner J, Pittman RN, Ward KR. 2007. Raman micro-spectroscopy measurement of hemoglobin oxygen saturation using 532 nm excitation. Proceedings of the 8th World Congress for Microcirculation, pp. 221–225.
  • Umbreit J. 2007. Methemoglobin – It's not just blue: a concise review. Am J Hematol. 82:134–144.
  • Weiss JJ. 1964. Nature of the iron-oxygen bond in oxyhaemoglobin. Nature. 203:182–183.
  • Wood BR, Asghari-Khiavi M, Mechler A, Bambery KR, McNaughton D. 2009. A resonance Raman spectroscopic investigation into the effects of fixation and dehydration on heme environment of hemoglobin. J Raman Spectrosc. 40:1668–1674.
  • Wood BR, Caspers P, Puppels GJ, Pandiancherri S, McNaughton D. 2007. Resonance Raman spectroscopy of red blood cells using near-infrared laser excitation. Anal Bioanal Chem. 387:1691–1703.
  • Wood BR, Hammer L, Davis L, McNaughton D. 2005. Raman microspectroscopy and imaging provides insights into heme aggregation and denaturation within human erythrocytes. J Biomed Opt. 10:014005.
  • Wood BR, McNaughton D. 2002. Micro-Raman characterization of high- and low-spin heme moieties within single living erythrocytes. Biopolymers67:259–262.
  • Wood BR, Tait B, McNaughton D. 2001. Micro-Raman characterisation of the R to T state transition of haemoglobin within a single living erythrocyte. Biochim Biophys Acta. 1539:58–70.
  • Xu JZ, Zhao Y, Zhao B, Xu W, Wu Y, Zhao D, Xi S. 2002. Application of 2D Raman correlation spectroscopy to studing the effect of rare-earth Eu3 + on hemoglobin. Chem J Chin Univ Chin. 23: 1110–1112.
  • Yammoto T, Palmer G. 1973. The valence and spin state of iron in oxyhemoglobin as inferred from resonance Raman spectroscopy. J Biol Chem. 248:5211–5213.
  • Yu KH, Yoo YH, Rhee JM, Lee MH, Yu SC. 2003. Two-dimensional Raman correlation spectroscopy study of the pathway for the thermal imidization of poly(amic acid). Bull Korean Chem Soc. 24:357–362.

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