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Development of integrated microfluidic platform coupled with Surface-enhanced Raman Spectroscopy for diagnosis of COVID-19.
Jadhav, Siddhita A; Biji, Pullithadathil; Panthalingal, Manoj Kumar; Murali Krishna, C; Rajkumar, S; Joshi, Dattatraya S; Sundaram, Natarajan.
  • Jadhav SA; Aditya Jyot Foundation For Twinkling Little Eyes, Plot No. 153, Road No. 9, Major Parmeshwaran Road, Opposite S.I.W.S College, Wadala (West), Mumbai 400 031, Maharashtra, India. Electronic address: siddhita@adityajyotfoundation.org.
  • Biji P; PSG Institute of Advanced Studies, Post Box No 1609, Avinashi Road, Peelamedu, Coimbatore 641 004, Tamilnadu, India.
  • Panthalingal MK; PSG Institute of Technology and Applied Research, Post Box No 1609, Avinashi Road, Coimbatore 641 004, Tamilnadu, India.
  • Murali Krishna C; Advanced Centre for Treatment Research and Education in Cancer (ACTREC), Tata Memorial Centre (TMC) Sector 22, Kharghar Navi, Mumbai 410 2104, Maharashtra, India.
  • Rajkumar S; Aditya Jyot Foundation For Twinkling Little Eyes, Plot No. 153, Road No. 9, Major Parmeshwaran Road, Opposite S.I.W.S College, Wadala (West), Mumbai 400 031, Maharashtra, India.
  • Joshi DS; Aditya Jyot Foundation For Twinkling Little Eyes, Plot No. 153, Road No. 9, Major Parmeshwaran Road, Opposite S.I.W.S College, Wadala (West), Mumbai 400 031, Maharashtra, India.
  • Sundaram N; Aditya Jyot Foundation For Twinkling Little Eyes, Plot No. 153, Road No. 9, Major Parmeshwaran Road, Opposite S.I.W.S College, Wadala (West), Mumbai 400 031, Maharashtra, India.
Med Hypotheses ; 146: 110356, 2021 Jan.
Article in English | MEDLINE | ID: covidwho-926518
ABSTRACT
Corona Virus Disease 19 (COVID-19) pandemic has created an alarming situation across the globe. Varieties of diagnostic protocols are being developed for the diagnosis of COVID-19. Many of these diagnostic protocols however, have limitations such as for example unacceptable no of false-positive and false-negative cases, particularly during the early stages of infection. At present, the real-time (quantitative) reverse transcriptase-polymerase chain reaction (RT-PCR) is considered the gold standard for COVID-19 diagnosis. However, RT-PCR based tests are complex, expensive, time consuming and involve pre-processing of samples. A swift, sensitive, inexpensive protocol for mass screening is urgently needed to contain this pandemic. There is urgent need to harness new powerful technologies for accurate detection not only of Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) but also combating the emergence of pandemics of new viruses as well. To overcome the current challenges, the authors propose a diagnostic protocol based on Surface-enhanced Raman Spectroscopy (SERS) coupled with microfluidic devices containing integrated microchannels functionalized either with vertically aligned Au/Ag coated carbon nanotubes or with disposable electrospun micro/nano-filter membranes. These devices have the potential to successfully trap viruses from diverse biological fluids/secretions including saliva, nasopharyngeal, tear etc. These can thus enrich the viral titre and enable accurate identification of the viruses from their respective Raman signatures. If the device is successfully developed and proven to detect target viruses, it would facilitate rapid screening of symptomatic as well as asymptomatic individuals of COVID-19. This would be a valuable diagnostic tool not only for mass screening of current COVID-19 pandemic but also in viral pandemic outbreaks of future.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Spectrum Analysis, Raman / Lab-On-A-Chip Devices / COVID-19 Testing / COVID-19 Type of study: Diagnostic study Limits: Humans Language: English Journal: Med Hypotheses Year: 2021 Document Type: Article

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Spectrum Analysis, Raman / Lab-On-A-Chip Devices / COVID-19 Testing / COVID-19 Type of study: Diagnostic study Limits: Humans Language: English Journal: Med Hypotheses Year: 2021 Document Type: Article