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A Review on: Analysis of Certain Drugs Used in Gout Treatment

Research Abstract
A comprehensive review with 129 references for the analysis of commonly prescribed antigout drugs is presented. The review covers most of the methods described for the analysis of Febuxostat (FBX), Colchicine (CLN), and Probenecid (PRD) in pure forms, in different pharmaceutical dosage forms and in biological fluids. The review covers the period from 2000 till now.
Research Authors
Noha M. Hosny, Noha N. Atia, Samia M. El-Gizawy
Research Journal
Microchemical Journal
Research Member
Research Publisher
Elsevier
Research Rank
1
Research Vol
Vol. 149, 103955
Research Website
https://doi.org/10.1016/j.microc.2019.05.055
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Highly Specific Electrochemical Sensing of Pseudomonas aeruginosa in Patients Suffering from Corneal Ulcers: A Comparative Study

Research Abstract
Pseudomonas aeruginosa is the most common pathogenic gram-negative bacteria causing corneal ulcers globally. In severe cases, often after trauma and eye injury, corneal destruction progresses rapidly and may be completed within 24–48 h causing blindness. In our preliminary work, we have established an ultrasensitive polyaniline (PANI)/gold nanoparticles (Au NPs)/indium tin oxide (ITO) modified sensor for rapid detection of pyocyanin (PYO) in P. aeruginosa infections with a linear range from 238 μM to 1.9 μM and a detection limit of 500 nM. In the present study, we evaluated the efficiency of the established modified electrochemical sensor in the diagnosis of P. aeruginosa in 50 samples collected from patients suffering from corneal ulcers. The obtained results were compared with the results gained by the screen-printed electrode, conventional techniques, automated identification method, and the amplification of the 16 s rRNA gene by PCR as a gold standard test for P. aeruginosa identification. We have found that the electrochemical detection of PYO by square wave voltammetry technique using PANI/Au NPs modified ITO electrode was the only technique showing 100% agreement with the molecular method in sensitivity, specificity, positive and negative predictive values when compared with the SPE, conventional and automated methods.
Research Authors
Marwa M. Khalifa, Amal A. Elkhawaga, Mona A. Hassan, Asmaa M. Zahran, Ahmed M. Fathalla, Waleed A. El-Said & Omnia El-Badawy
Research Journal
Scientific Reports
Research Publisher
NULL
Research Rank
1
Research Vol
Vol. 9, 18320
Research Website
https://doi.org/10.1038/s41598-019-54667-0
Research Year
2019

Rapid and Highly Sensitive Detection of Pyocyanin Biomarker in Different Pseudomonas aeruginosa Infections using Gold Nanoparticles Modified Sensor

Research Abstract
Successful antibiotic treatment of infections relies on accurate and rapid identification of the infectious agents. Pseudomonas aeruginosa is implicated in a wide range of human infections that mostly become complicated and life threating, especially in immunocompromised and critically ill patients. Conventional microbiological methods take more than three days to obtain accurate results. Pyocyanin is a distinctive electroactive biomarker for Pseudomonas aeruginosa. Here, we have prepared polyaniline/gold nanoparticles decorated ITO electrode and tested it to establish a rapid, diagnostic and highly sensitive pyocyanin sensor in a culture of Pseudomonas aeruginosa clinical isolates with high selectivity for traces of pyocyanin when measured in the existence of different interferences like vitamin C, uric acid, and glucose. The scanning electron microscopy and cyclic voltammetry techniques were used to characterize the morphology and electrical conductivity of the constructed electrode. The determined linear range for pyocyanin detection was from 238 μM to 1.9 μM with a detection limit of 500 nM. Compared to the screen-printed electrode used before, the constructed electrode showed a 4-fold enhanced performance. Furthermore, PANI/Au NPs/ITO modified electrodes have demonstrated the ability to detect pyocyanin directly in Pseudomonas aeruginosa culture without any potential interference with other species.
Research Authors
Amal A. Elkhawaga,Marwa M. Khalifa,Omnia El-badawy,Mona A. Hassan,Waleed A. El-Said
Research Journal
PLOS ONE
Research Publisher
NULL
Research Rank
1
Research Vol
NULL
Research Website
https://doi.org/10.1371/journal.pone.0216438
Research Year
2019

Rapid and Highly Sensitive Detection of Pyocyanin Biomarker in Different Pseudomonas aeruginosa Infections using Gold Nanoparticles Modified Sensor

Research Abstract
Successful antibiotic treatment of infections relies on accurate and rapid identification of the infectious agents. Pseudomonas aeruginosa is implicated in a wide range of human infections that mostly become complicated and life threating, especially in immunocompromised and critically ill patients. Conventional microbiological methods take more than three days to obtain accurate results. Pyocyanin is a distinctive electroactive biomarker for Pseudomonas aeruginosa. Here, we have prepared polyaniline/gold nanoparticles decorated ITO electrode and tested it to establish a rapid, diagnostic and highly sensitive pyocyanin sensor in a culture of Pseudomonas aeruginosa clinical isolates with high selectivity for traces of pyocyanin when measured in the existence of different interferences like vitamin C, uric acid, and glucose. The scanning electron microscopy and cyclic voltammetry techniques were used to characterize the morphology and electrical conductivity of the constructed electrode. The determined linear range for pyocyanin detection was from 238 μM to 1.9 μM with a detection limit of 500 nM. Compared to the screen-printed electrode used before, the constructed electrode showed a 4-fold enhanced performance. Furthermore, PANI/Au NPs/ITO modified electrodes have demonstrated the ability to detect pyocyanin directly in Pseudomonas aeruginosa culture without any potential interference with other species.
Research Authors
Amal A. Elkhawaga,Marwa M. Khalifa,Omnia El-badawy,Mona A. Hassan,Waleed A. El-Said
Research Journal
PLOS ONE
Research Publisher
NULL
Research Rank
1
Research Vol
NULL
Research Website
https://doi.org/10.1371/journal.pone.0216438
Research Year
2019
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