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Technology Report

Fourier-Transform Infrared Spectroscopy for Rapid Screening and Live-Cell Monitoring: Application to Nanotoxicology

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Pages 145-156 | Published online: 20 Dec 2012

References

  • Oberdörster G , OberdörsterE, OberdörsterJ. Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles. Environ. Health Pers.113(7), 823–839 (2005).
  • US EPA. Air Quality Criteria for Particulate Matter Vol (3 600/P-95-001cFUS). Environmental Protection Agency, Office of Research and Development, DC, USA (2004).
  • Sanhai WR , SakamotoJH, CanadyR, FerrariM. Seven challenges for nanomedicine. Nat. Nanotechnol.3, 242–244 (2008).
  • Ferrari M . The mathematical engines of nanomedicine. Small4, 20–25 (2008).
  • Service RF . Nanoparticle trojan horses gallop from the lab into the clinic. Science330, 314–315 (2010).
  • Thomas K , SayreP. Research strategies for safety evaluation of nanomaterials, part I: evaluating the human health implications of exposure to nanoscale materials. Toxicol. Sci.87(2), 316–321 (2005).
  • Holsapple MP , FarlandWH, LandryTDet al. Research strategies for safety evaluation of nanomaterials, part II: toxicological and safety evaluation of nanomaterials, current challenges and data needs. Toxicol. Sci. 88(1), 12–17 (2005).
  • Balshaw DM , PhilbertM, SukWA. Research strategies for safety evaluation of nanomaterials, part III: nanoscale technologies for assessing risk and improving public health. Toxicol. Sci.88(2), 298–306 (2005).
  • Tsuji JS , MaynardAD, HowardPCet al. Research strategies for safety evaluation of nanomaterials, part IV: risk assessment of nanoparticles. Toxicol. Sci. 89(1), 42–50 (2005).
  • Borm P , KlaessigFC, LandryTDet al. Research strategies for safety evaluation of nanomaterials, part V: role of dissolution in biological fate and effects of nanoscale particles. Toxicol. Sci. 90(1), 23–32 (2006).
  • Powers KV , BrownSC, KrishnaVB, WasdoSC, MoudgilBM, RobertsSM. Research strategies for safety evaluation of nanomaterials. Part VI. Characterization of nanoscale particles for toxicological evaluation. Toxicol. Sci.90(2), 296–303 (2006).
  • Thomas T , ThomasK, SadriehN, SavageN, AdairP, BronaughR. Research strategies for safety evaluation of nanomaterials, part VII: evaluating consumer exposure to nanoscale materials. Toxicol. Sci.91(1), 14–19 (2006).
  • Thomas K , AguarP, KawasakiH, MorrisJ, NakanishiJ, SavageN. Research strategies for safety evaluation of nanomaterials, part VIII: international efforts to develop risk-based safety evaluations for nanomaterials. Toxicol. Sci.92(1), 23–32 (2006).
  • Stern ST , McNeilSE. Nanotechnology safety concerns revisited. Toxicol. Sci.101(1), 4–21 (2008).
  • Borm PJ , RobbinsD, HauboldSet al. The potential risks of nanomaterials: a review carried out for ECETOC. Part. Fibre Toxicol. 3, 11 (2006).
  • Nel A , XiaT, MädlerL, LiN. Toxic potential of materials at the nanolevel. Science311, 622–627 (2006).
  • Sundaram SK , WeberTJ. Special issue on nanotoxicity. Int. J. Nanotechnol.5(1), 1–160 (2008).
  • Warheit DB . How meaningful are the results of nanotoxicity studies in the absence of adequate material characterization? Toxicol. Sci.101(2), 183–185 (2008).
  • Dunn WB , BaileyNJ, JohnsonHE. Measuring the metabolome: current analytical technologies. Analyst130, 606–625 (2005).
  • Robertson DG . Metabonomics in toxicology: a review. Toxicol. Sci.85(2), 809–822 (2005).
  • Kell DB . Metabolomics and systems biology: making sense of the soup. Curr. Opin. Microbiol.7(3), 296–307 (2004).
  • Movasaghi Z , RehmanS, RehmanI. Fourier transform infrared (FTIR) spectroscopy of biological tissues. Appl. Spectroscopy Rev.43(2), 134–179 (2008).
  • Manor J , MukerjeeP, LinYSet al. Gating mechanism of the influenza A M2 channel revealed by 1D and 2D IR spectroscopies. Structure 17, 247–254 (2009).
  • Ellis DI , GoodcareR. Metabolic fingerprinting in disease diagnosis: biomedical applications of infrared and Raman spectroscopy. Analyst131, 875–885 (2006).
  • Grdadolnik J . ATR-FTIR spectroscopy: its advantages and limitations. Acta Chim. Slovenica49, 631–642 (2002).
  • Griffiths PR , de Haseth JA. Fourier Transform Infrared Spectroscopy. John Wiley & Sons, NY, USA (1986).
  • Hancer M , SperlineRP, MillerJD. Anomalous dispersion effects in the IR-ATR spectroscopy. Appl. Spectroscopy54(1), 138–143 (2000).
  • Goldberg ME , ChaffotteAF. Undistorted structural analysis of soluble proteins by attenuated total reflectance spectroscopy. Protein Sci.14(1), 2782–2792 (2005).
  • Chittur KK . FTIR/ATR for protein adsorption to biomaterial surfaces. Biomaterials19, 357–369 (1998).
  • Xie J , RileyC, KumarM, ChitturKK. FTIR/ATR study of protein adsorption and brushite transformation to hydroxyapatite. Biomaterials23, 3609–3616 (2002).
  • Vigano C , ManciuL, BuyseF, GoormaghtighE, RuysschaertJM. Attenuated total reflection IR spectroscopy as a tool to investigate the structure, orientation and tertiary structure changes in peptides and membrane proteins. Biopolymers (Peptide Science)55, 373–380 (2000).
  • Dutta D , SundaramSK, TeeguardenJGet al. Adsorbed proteins influence the biological activity and molecular targeting of nanomaterials. Toxicol. Sci. 100(1), 303–315 (2007).
  • Handbook of Optical Constants of Solids. Palik ED (Ed.). Elsevier, Amsterdam, Holland (1998).
  • Harris DC . Materials for Infrared Windows and Domes. SPIE-The International Society for Optical Engineering, WA, USA (1999).
  • Riley MR , LucasP, Le Cog D et al. Lung cell fiber evanescent wave spectroscopic biosensing of inhalation health hazards. Biotechnol. Bioeng.95(4), 599–612 (2006).
  • Lee-Montiel FT , ReynoldsKA, RileyMR. Detection and quantification of poliovirusinfection using FTIR spectroscopy and cell culture. J. Biol. Eng.5(16), 1–12 (2011).
  • Lasch P , ChiribogaL, YeeH, DiemM. Infrared spectroscopy of human cells and tissue: detection of disease. Technol. Cancer Res. Treat.1(1), 1–7 (2002).
  • Matthäus C , Boydston-WhiteS, MiljkovićM, RomeoM, DiemM. Raman and infrared microspectral imaging of mitotic cells. Appl. Spectrosc.60(1), 1–8 (2006).
  • Holtom GR , ThrallBD, ChinBY, WileyHS, ColsonSD. Achieving molecular selectivity in imaging using multiphoton Raman spectroscopy techniques. Traffic2(11), 781–788 (2001).
  • Handbook of Chemistry and Physics (90th Edition). Lide DR (Ed.). CRC Press, FL, USA (2009).

Patent

  • Sundaram SK, Riley BJ, Weber TJ, Sacksteder CA, Addleman AR: US7956328B2 (2011).

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