| Literature DB >> 23029070 |
Rekha Gautam1, Bhagawat Chandrasekar, Mukta Deobagkar-Lele, Srabanti Rakshit, Vinay Kumar B N, Siva Umapathy, Dipankar Nandi.
Abstract
Acetaminophen is a widely prescribed drug used to relieveEntities:
Mesh:
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Year: 2012 PMID: 23029070 PMCID: PMC3446881 DOI: 10.1371/journal.pone.0045521
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1A schematic representation of the experimental strategy and analysis performed in this study.
Band assignments for the IR spectra [26], [27].
| Wavenumber (cm–1) | Spectral assignments |
| 966 | C-O stretch deoxyribose and C-N+-C stretch (mainly from DNA) |
| 996 | C-O stretch ribose (mainly from RNA) |
| 1030 | C–O stretch (mainly from glycogen) |
| 1080 | PO2 – symmetric stretch in glycogen and nucleic acids |
| 1152 | CO–O–C asymmetric stretch (mainly from glycogen) |
| 1171 | CO-O-C asymmetric stretch from ester bonds in cholesteryl esters |
| 1238 | PO2 – asymmetric stretch (mainly nucleic acids) |
| 1397 | COO- symmetric stretch in fatty acids and amino acids |
| 1451 | CH2 bending (mainly from lipids) |
| 1542 | N–H bending and C–N stretch in proteins (Amide II) |
| 1648 | C═O stretch in proteins (Amide I) |
| 1741 | C═O stretch in triglycerides and cholesterol esters |
| 2856 | CH2 symmetric stretch (mainly from lipids) |
| 2875 | CH2 symmetric stretch (mainly from lipids) |
| 2926 | CH2 asymmetric stretch (mainly from lipids) |
| 2956 | CH3 asymmetric stretch (mainly from lipids) |
| 3012 | = C-H stretch (mainly from unsaturated lipids) |
Figure 2FTIR analysis of APAP induced liver damage in BALB/c mice.
FTIR spectra (950 cm 1 to 1200 cm 1) of control and APAP treated mice livers at indicated time points. Arrows indicate the wave numbers where differences were observed (A). Kinetic changes in the liver glycogen (B), Cholesteryl ester (C), DNA (D) and ALT (E) amounts in APAP treated mice. The extent of necrosis in control and APAP treated mice livers at indicated time points was quantified after Hematoxylin and eosin staining (F). All the data are shown as mean ± S.E. with n = 3 mice or more.
Figure 3Kinetic analysis of spleen post oral dosing with APAP in mice using FTIR.
Changes in glycogen (1030 cm 1/1080 cm 1; A), cholesteryl ester (1171 cm 1/1152 cm 1; B) and DNA (966 cm 1/996 cm 1; C) in sera from APAP treated BALB/c mice. All the data are represented as mean ± S.E. with n = 3 mice.
Figure 4Biochemical and histological analysis of APAP induced liver damage in BALB/c mice.
Total GSH amounts (A), malonaldehyde amounts (B) and hematoxylin and eosin staining (C) of livers upon APAP treatment in BALB/c mice. Arrows indicate necrotic lesions (C). Each panel represents data from experiments with n = 3 mice.
Figure 5Studies with pre and post L-methionine treatment in APAP treated BALB/c mice.
Changes in ALT amounts in sera upon pre and post L-methionine treatment in APAP treated mice (A). FTIR spectra (950 cm 1 to 1200 cm 1) of pre- and post- L-methionine treatment in APAP treated mice livers (B). Changes in glycogen (C), cholesteryl ester (D) and DNA (E) amounts upon pre and post L-methionine treatment of APAP treated mice livers. All data are represented as mean ± S.E. with n = 5 or more mice.
Figure 6Changes in sera ALT (A), liver GSH (B) and liver malonaldehyde amounts (C) from APAP treated C57BL/6 and Nos2 mice.
All the data are represented as mean ± S.E. with n = 3 or more mice.
Figure 7Comparative kinetic analysis of livers from APAP treated C57BL/6 and Nos2 mice.
Changes in glycogen (A & D), cholesteryl ester (B & E) and DNA (C & F) from APAP treated C57BL/6 (top panel) and Nos2 (bottom panel) mice livers are shown. All the data are represented as mean ± S.E. with n = 6 mice.
Figure 8FTIR Analysis of sera from APAP treated BALB/c mice.
Changes in the glycogen (1030 cm 1/1080 cm 1; A), Cholesteryl ester (1171 cm 1/1152 cm 1; B) and DNA (966 cm 1/996 cm 1; C) amounts in APAP treated and untreated mice sera. All the data are shown as mean ± S.E. with n = 5 mice or more.
Figure 9FTIR Analysis of sera from APAP treated C57BL/6 and Nos2 −/− mice.
Changes in the glycogen (A, D), Cholesteryl ester (B, E) and DNA (C, F) amounts from C57BL/6 (top panel) and Nos2 (bottom panel) mice with time in APAP treated and untreated mice sera. All the data are shown as mean ± S.E. with n = 7 mice.
Figure 10Cytokine analysis in sera of BALB/c mice during APAP-induced liver damage.
Fold changes in the levels of Ifnγ (A), Tnfα (B), Il6 (C) and Il10 (D) with time in APAP treated with respect to untreated mice sera. All the data are shown as mean ± S.E. with n = 5 mice or more.
Figure 11Nos2 modulates the amounts of Il6 and Il10 during APAP induced liver damage.
Fold changes in the levels of Ifnγ (A), Tnfα (B), Il6 (C), and Il10 (D) in sera from APAP treated and controls of C57BL/6 and Nos2 mice. All the data are represented as means ± S.E. with n = 5 or more mice.