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High-definition Fourier Transform Infrared FT-IR Spectroscopic Imaging of Human Tissue Sections towards Improving Pathology
Published on: January 21, 2015
Cellular injury evidenced by impedance technology and infrared microspectroscopy
K le Roux1, L C Prinsloo2, D Meyer1
1Department of Biochemistry, University of Pretoria, Pretoria 0002, South Africa.
Abstract:
Fourier Transform Infrared (FTIR) spectroscopy is finding increasing biological application, for example in the analysis of diseased tissues and cells, cell cycle studies and investigating the mechanisms of action of anticancer drugs. Cancer treatment studies routinely define the types of cell-drug responses as either total cell destruction by the drug (all cells die), moderate damage (cell deterioration where some cells survive) or reversible cell cycle arrest (cytostasis). In this study the loss of viability and related chemical stress experienced by cells treated with the medicinal plant, Plectranthus ciliatus, was investigated using real time cell electronic sensing (RT-CES) technology and FTIR microspectroscopy. The use of plants as medicines is well established and ethnobotany has proven that crude extracts can serve as treatments against various ailments. The aim of this study was to determine whether FTIR microspectroscopy would successfully distinguish between different types of cellular injury induced by a potentially anticancerous plant extract. Cervical adenocarcinoma (HeLa) cells were treated with a crude extract of Pciliatus and cells monitored using RT-CES to characterize the type of cellular responses induced. Cell populations were then investigated using FTIR microspectroscopy and statistically analysed using One-way Analysis of Variance (ANOVA) and Principal Component Analysis (PCA). The plant extract and a cancer drug control (actinomycin D) induced concentration dependent cellular responses ranging from nontoxic, cytostatic or cytotoxic. Thirteen spectral peaks (915cm(-)(1), 933cm(-)(1), 989cm(-)(1), 1192cm(-)(1), 1369cm(-)(1), 1437cm(-)(1), 1450cm(-)(1), 1546cm(-)(1), 1634cm(-)(1), 1679cm(-)(1) 1772cm(-)(1), 2874cm(-)(1) and 2962cm(-)(1)) associated with cytotoxicity were significantly (p value<0.05, one way ANOVA, Tukey test, Bonferroni) altered, while two of the bands were also indicative of early stress related responses. In PCA, poor separation between nontoxic and cytostatic responses was evident while clear separation was linked to cytotoxicity. RT-CES detected morphological changes as indicators of cell injury and could distinguish between viable, cytostatic and cytotoxic responses. FTIR microspectroscopy confirmed that cytostatic cells were viable and could still recover while also describing early cellular stress related responses on a molecular level.
Insights
Fourier Transform Infrared (FTIR) spectroscopy and real-time cell electronic sensing (RT-CES) technology were used to analyze cellular responses to the medicinal plant Plectranthus ciliatus. FTIR successfully distinguished cytotoxic effects from cytostatic ones, aiding in understanding plant-based anticancer drug mechanisms.
Area of Science:
- Biophysics
- Cell Biology
- Spectroscopy
Background:
- Fourier Transform Infrared (FTIR) spectroscopy is increasingly applied in biological research, including cancer studies.
- Understanding cellular responses to anticancer agents is crucial for drug development.
- Medicinal plants are a source of potential anticancer compounds.
Purpose of the Study:
- To investigate cellular damage and stress induced by Plectranthus ciliatus extract using FTIR microspectroscopy and RT-CES.
- To determine if FTIR can differentiate between various cellular injury types caused by plant extracts.
- To correlate spectroscopic data with cell viability and response to treatment.
Main Methods:
- Cervical adenocarcinoma (HeLa) cells were treated with Plectranthus ciliatus crude extract.
- Real-time cell electronic sensing (RT-CES) monitored cellular responses.
- FTIR microspectroscopy analyzed cell populations.
- Statistical analysis included One-way Analysis of Variance (ANOVA) and Principal Component Analysis (PCA).
Main Results:
- Plectranthus ciliatus extract induced concentration-dependent responses: non-toxic, cytostatic, or cytotoxic.
- Thirteen spectral peaks significantly altered in cytotoxic responses (p<0.05).
- PCA showed clear separation for cytotoxicity but poor separation for non-toxic vs. cytostatic responses.
- RT-CES distinguished between viable, cytostatic, and cytotoxic cells based on morphology.
Conclusions:
- FTIR microspectroscopy, combined with RT-CES, can effectively differentiate cytotoxic effects from cytostatic effects.
- FTIR identified molecular-level stress responses in cells treated with Plectranthus ciliatus extract.
- This approach aids in characterizing the anticancer potential of plant-derived compounds and understanding their mechanisms of action.
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