TY - JOUR
T1 - Attenuated total reflection fourier transform infrared spectroscopic investigation of the postmortem metabolic process in rat and human kidney cortex
AU - Tuo, Y. A.
AU - Huang, Ping
AU - Ke, Yong
AU - Fan, Shuanliang
AU - Lu, Qinyang
AU - Xin, Bo
AU - Wang, Zhenyuan
PY - 2010/3
Y1 - 2010/3
N2 - Attenuated total reflection (ATR) Fourier transform infrared (FT-IR) spectroscopy has been applied to study the short and long term postmortem metabolic processes in rat and human kidney cortexes. The goals of this project were as follows: (1) to investigate the changes of ATR spectra In different rat and human tissues after death, (2) to explore the best mathematical model with different band absorption ratio changes to determine the postmortem interval (PMI), and (3) to establish a preliminary human postmortem ATR spectra database. There were three different types of metabolic changes after death based on the spectral results: (1) the intensities of some bands increased continuously (e. g., C-H stretching region), (2) the intensities of other bands decreased continuously (e.g., PO2- symmetric stretching), and (3) other bands remained relatively stable (e.g., C-OH bending, CO-O-C antisymmetric stretching The band absorbance ratios for rats were found to display either a significant increase or decrease with increasing time after death. Of the absorbance ratios of the various bands investigated to find the best fit with the cubic model function in rats, the A1652M1396 ratio showed the strongest correlation (X2=0.937 Comparison of the rat kidney cortex spectra with selected human postmortem cases showed similar postmortem metabolic changes. In conclusion, ATR FT-IR spectroscopy was shown to be a convenient and reliable method of determining short and long term postmortem intervals by simultaneously monitoring several specific parameters, although these observations have yet to be applied at forensic scenes by further field studies.
AB - Attenuated total reflection (ATR) Fourier transform infrared (FT-IR) spectroscopy has been applied to study the short and long term postmortem metabolic processes in rat and human kidney cortexes. The goals of this project were as follows: (1) to investigate the changes of ATR spectra In different rat and human tissues after death, (2) to explore the best mathematical model with different band absorption ratio changes to determine the postmortem interval (PMI), and (3) to establish a preliminary human postmortem ATR spectra database. There were three different types of metabolic changes after death based on the spectral results: (1) the intensities of some bands increased continuously (e. g., C-H stretching region), (2) the intensities of other bands decreased continuously (e.g., PO2- symmetric stretching), and (3) other bands remained relatively stable (e.g., C-OH bending, CO-O-C antisymmetric stretching The band absorbance ratios for rats were found to display either a significant increase or decrease with increasing time after death. Of the absorbance ratios of the various bands investigated to find the best fit with the cubic model function in rats, the A1652M1396 ratio showed the strongest correlation (X2=0.937 Comparison of the rat kidney cortex spectra with selected human postmortem cases showed similar postmortem metabolic changes. In conclusion, ATR FT-IR spectroscopy was shown to be a convenient and reliable method of determining short and long term postmortem intervals by simultaneously monitoring several specific parameters, although these observations have yet to be applied at forensic scenes by further field studies.
KW - ATR
KW - Attenuated total reflection
KW - FT-IR spectroscopy
KW - Fourier transform infrared spectroscopy
KW - Kidney cortex
KW - Model functions
KW - Postmortem interval
UR - https://www.scopus.com/pages/publications/77950236438
U2 - 10.1366/000370210790918382
DO - 10.1366/000370210790918382
M3 - 文章
AN - SCOPUS:77950236438
SN - 0003-7028
VL - 64
SP - 268
EP - 274
JO - Applied Spectroscopy
JF - Applied Spectroscopy
IS - 3
ER -