| Literature DB >> 27258275 |
Cédric Tarayre1, Huu-Thanh Nguyen2,3, Alison Brognaux4, Anissa Delepierre5, Lies De Clercq6, Raphaëlle Charlier7, Evi Michels8, Erik Meers9, Frank Delvigne10,11.
Abstract
Entities:
Keywords: PAO; detection; polyphosphate; single cell technologies
Year: 2016 PMID: 27258275 PMCID: PMC4934223 DOI: 10.3390/s16060797
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Anaerobic metabolism of phosphorus in phosphate accumulating bacteria.
Figure 2Aerobic metabolism of phosphorus in phosphate accumulating bacteria.
Inventory of techniques applied to the detection of PAOs and Poly-P.
| Technique | Information |
|---|---|
| Light and fluorescence microscopy coupled with specific staining (LEM) | Presence/absence of Poly-P |
| Flow cytometry (FC) | Location and quantification of Poly-P granules, cell sorting |
| FISH analysis (FISH) | Detection of PAOs |
| Extraction procedures and phosphate quantification (EXT) | Quantification of Poly-P |
| Polyacrylamide gel electrophoresis (PAGE) | Detection of Poly-P, determination of DP |
| Electron microscopy (EM) | Presence/absence of Poly-P, location and composition of Poly-P granules |
| X-ray analysis (X-RAY) | Composition of Poly-P granules, possible quantification |
| Nuclear Magnetic Resonance Spectroscopy (NMRS) | Detection of Poly-P, study of Poly-P structure |
| RAMAN microscopy (RAM) | Detection and quantification of Poly-P |
| Enzyme assays (EA) | Detection and quantification of Poly-P |
| Cryoelectron tomography and spectroscopic imaging (CTSI) | Detection of Poly-P, study of Poly-P structure |
| Mass spectrometry (MS) | Detection of Poly-P, study of Poly-P structure |
| Proteic affinity (PA) | Detection of Poly-P, location of Poly-P granules |
| “Omics techniques” (OMICS) | Study of PAOs in complex communities |
Specificities of techniques applied to the detection of PAOs and Poly-P.
| Technique | Investment | Advantages | Disadvantages |
|---|---|---|---|
| LFM-MB | low | Simplicity, rapidity | Not adapted to visualize small granules |
| LFM-NR | low | Simplicity, rapidity | Technique targeting acidic vacuoles and not Poly-P itself |
| LFM-DAPI | low | Possibility to visualize polyhydroxyalkanoate | Expensive staining reagent |
| FC | high | Possibility to visualize polyhydroxyalkanoate | Same disadvantages as LFM-DAPI |
| FISH-A | low | Possibility to combine with FC and FISH-A | Complexity of sample preparation |
| EXT | low | Possibility to measure phosphate resulting from the hydrolysis by diversified techniques | Efficiency depending on the association of Poly-P with other molecules |
| PAGE | low | Possibility to measure the size and the DP of Poly-P | The technique requires a step of Poly-P extraction |
| EM | high | Possibility to locate Poly-P inside the cells | Complexity of sample preparation |
| X-RAY | high | Powerful combination with EM | Possible loss of Poly-P during the preparation protocol |
| NMRS | high | Global assessment of phosphorus metabolism inside the cells | Tagged substrates required |
| RAM | high | Simplicity of preparation protocol | Weakness of RAMAN signal which requires an adapted device |
| EA | low | Quantitative technique | Complexity of preparation of samples to avoid an inactivation of enzymes due to impurities |
| CTSI | high | Possibility to measure the diameter of Poly-P granules with a high accuracy | Complexity of sample preparation |
| MS | high | Possibility to characterize different Poly-P fractions | Destructive technique |
| PA | low | Quantitative technique | Complexity of sample preparation |
| OMICS | high | Global overview of microbial consortia | Not adapted to measure the Poly-P content |