Detection of Pathogens and Antimicrobial Resistance Genes at Low Concentration via Electrochemical Oligonucleotide Tags †
Abstract
:1. Introduction
2. Technologies
2.1. Electrochemically Detectable Oligonucleotide Tags
2.2. Magnetic Particle Conjugates
2.3. Filter Concentration and Magnetic Separation
3. Materials and Methods
4. Results and Discussion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Drummond, T.G.; Hill, M.G.; Barton, J.K. Electrochemical DNA sensors. Nat. Biotechnol. 2003, 21, 1192–1199. [Google Scholar] [CrossRef] [PubMed]
- Diculescu, A.C.; Chiorcea-Paquim, A.M.; Oliveira-Brett, A.M. Applications of a DNA-electrochemical biosensor. Trends Anal. Chem. 2016, 79, 23–36. [Google Scholar] [CrossRef]
- Labuda, J.; Oliveira-Brett, A.M.; Evtugynm, G.; Fojta, M.; Mascini, M.; Ozsoz, M.; Palchetti, I.; Palecek, E.; Wang, J. Electrochemical nucleic-acid-based biosensors: Concepts, terns, and methodology (IUPAC Technical Report). Pure Appl. Chem. 2010, 82, 1161–1187. [Google Scholar] [CrossRef]
- Palecek, E.; Jelen, F. Towards Electrochemical Sensors for Genomics and Proteomics. In Electrochemistry of Nucleic acids and Proteins; Palecek, E., Scheller, F., Wang, J., Eds.; Elsevier: Amsterdam, The Netherlands, 2005; pp. 74–174. [Google Scholar]
- Gordon, N. Bioanalyte Signal Amplification and Detection with Artificial Intelligence Diagnosis. U.S. Patent No. 11105801, 31 August 2021. [Google Scholar]
- Gordon, N.; Bawa, R.; Palmateer, G.; Rajabi, M.; Gordon, J.B.; Kotb, N.M.; Balasubramaniyam, R.; Gordon, B.R. Carbapenem-Resistant Enterobacteriaceae Testing in 45 Minutes Using Oligonucleotide Detection Tags. In Advances in Medical Imaging, Detection, and Diagnosis; Bawa, R., Audette, G.F., Patel, B., Bawa, S.R., Johnson, B.D., Eds.; Jenny Stanford Publishing Pte. Ltd.: Singapore, 2023; Volume 4, pp. 813–828. ISBN 978-981-4877-46-6. [Google Scholar]
- Gordon, N. Ultra-Sensitive Bioanalyte Quantification from Self-Assembled Quadruplex Tags. U.S. Patent No. 11175285, 16 November 2021. [Google Scholar]
- Jayamohan, H.; Gale, B.K.; Minson, B.J.; Lambert, C.J.; Gordon, N.; Sant, H.J. Highly sensitive bacteria quantification using immunomagnetic separation and electrochemical detection of guanine-labeled secondary beads. Sensors 2015, 15, 12034–12052. [Google Scholar] [CrossRef] [PubMed]
- Gordon, N. Ultra-Sensitive Detection of Extremely Low Level Biological Analytes Using Electrochemical Signal Amplification and Biosensor. U.S. Patent No. 9624532, 18 April 2017. [Google Scholar]
- Centers for Disease Control and Prevention. What Is Sepsis? Available online: https://www.cdc.gov/sepsis/what-is-sepsis.html (accessed on 1 May 2023).
- Carly, J.; Paoli, C.J.; Reynolds, M.A.; Sinha, M.; Gitlin, M.; Crouser, E. Epidemiology and Costs of Sepsis in the United States—An Analysis Based on Timing of Diagnosis and Severity Level. Crit. Care Med. 2018, 46, 1889–1897. [Google Scholar] [CrossRef]
- Liu, V.; Escobar, G.J.; Greene, J.D.; Soule, J.; Whippy, A.; Angus, D.C.; Iwashyna, T.J. Hospital deaths in patients with sepsis from 2 independent cohorts. JAMA 2014, 312, 90–92. [Google Scholar] [CrossRef] [PubMed]
- Martin, G.S. Sepsis, severe sepsis and septic shock: Changes in incidence, pathogens and outcomes. Expert Rev. Anti-Infect. Ther. 2012, 10, 701–706. [Google Scholar] [CrossRef] [PubMed]
- Hall, M.J.; Williams, S.N.; DeFrances, C.J.; Golosinskiy, A. Inpatient Care for Septicemia or Sepsis: A Challenge for Patients and Hospitals, 2000–2008. National Center for Health Sta-tistics. Data Brief No. 62; June 2011. Available online: http://www.cdc.gov/nchs/data/databriefs/db62.pdf (accessed on 1 May 2023).
- HCUP National Inpatient Sample (NIS). Healthcare Cost and Utilization Project (HCUP); Agency for Healthcare Re-search and Quality: Rockville, MD, USA, 2013. Available online: www.hcup-us.ahrq.gov/nisoverview.jsp (accessed on 1 May 2023).
- Torio, C.M.; Moore, B.J. National Inpatient Hospital Costs: The Most Expensive Conditions by Payer, 2013; HCUP Statistical Brief #204 [Internet]; Agency for Healthcare Research and Quality: Rockville, MD, USA, May 2016. Available online: https://www.hcup-us.ahrq.gov/reports/statbriefs/sb204-Most-Expensive-Hospital-Conditions.jsp (accessed on 1 May 2023).
- Shankar-Hari, M.; Rubenfeld, G.D. Understanding Long-Term Outcomes Following Sepsis: Implications and Challenges. Curr. Infect. Dis. Rep. 2016, 18, 37. [Google Scholar] [CrossRef] [PubMed]
- Jones, S.L.; Ashton, C.M.; Kiehne, L.; Gigliotti, E.; Bell-Gordon, C.; Pinn, T.T.; Tran, S.K.; Nicolas, J.C.; Rose, A.L.; Shirkey, B.A.; et al. The Sepsis Early Recognition and Response Initiative (SERRI). Jt. Comm. J. Qual. Patient Saf. 2016, 42, 122–131. [Google Scholar] [CrossRef] [PubMed]
- Popp, P.L. Hiding in plain sight: Why are we worried about Ebola and not sepsis? J. Healthc. Risk Manag. 2016, 35, 22–27. [Google Scholar] [CrossRef] [PubMed]
- Sepsis Facts. Available online: http://www.world-sepsis-day.org/ (accessed on 1 May 2023).
- Dellinger, R.P.; Carlet, J.M.; Masur, H.; Gerlach, H.; Calandra, T.; Cohen, J.; Gea-Banacloche, J.; Keh, D.; Marshall, J.C.; Parker, M.M.; et al. Surviving sepsis: Campaign guidelines for management of severe sepsis and septic shock. Crit. Care Med. 2004, 32, 858–873. [Google Scholar] [CrossRef] [PubMed]
- Vincent, J.L.; Marshall, J.C.; Ñamendys-Silva, S.A.; François, B.; Martin-Loeches, I.; Lipman, J.; Reinhart, K.; Antonelli, M.; Pickkers, P.; Njimi, H.; et al. Assessment of the worldwide burden of critical illness: The intensive care over nations (ICON) audit. Lancet Respir. Med. 2014, 2, 380–386. [Google Scholar] [CrossRef] [PubMed]
Label-Free RNA | RNA Bound to 1.5 µm of Magnetic Microparticles with Electrochemical Polyguanine Tags | |
---|---|---|
Guanine molecules available for detection | 200 guanine molecules near electrode surface | ~1,000,000 guanine molecules near electrode surface and ~200,000 guanine molecules adsorbed to electrode surface |
Magnetic Particle Diameter | 8-oxoguanine Signal from 104 Targets/mL |
---|---|
500 nm | 0.4 µA |
750 nm | 0.6 µA |
1.5 µm | 1.2 µA |
Can go up to 20 µm | >1.2 µA |
Targets in 50 µL Sample @1000 Targets/mL | Targets in Filter-Concentrated 20 mL Sample @1000 Targets/mL with 90% Yield from Magnetic Separation | |
---|---|---|
No. of Targets | 50 | 18,000 |
True Outcomes | False Outcomes | ||
---|---|---|---|
Positive test prediction | 22 | 1 | PPV = 22/23 |
Negative test prediction | 0 | 5 | NPV = 5/5 |
TP = 22/22 | TN = 5/6 |
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Gordon, N.; Bawa, R.; Palmateer, G. Detection of Pathogens and Antimicrobial Resistance Genes at Low Concentration via Electrochemical Oligonucleotide Tags. Eng. Proc. 2023, 35, 28. https://doi.org/10.3390/IECB2023-14584
Gordon N, Bawa R, Palmateer G. Detection of Pathogens and Antimicrobial Resistance Genes at Low Concentration via Electrochemical Oligonucleotide Tags. Engineering Proceedings. 2023; 35(1):28. https://doi.org/10.3390/IECB2023-14584
Chicago/Turabian StyleGordon, Neil, Raj Bawa, and Garry Palmateer. 2023. "Detection of Pathogens and Antimicrobial Resistance Genes at Low Concentration via Electrochemical Oligonucleotide Tags" Engineering Proceedings 35, no. 1: 28. https://doi.org/10.3390/IECB2023-14584
APA StyleGordon, N., Bawa, R., & Palmateer, G. (2023). Detection of Pathogens and Antimicrobial Resistance Genes at Low Concentration via Electrochemical Oligonucleotide Tags. Engineering Proceedings, 35(1), 28. https://doi.org/10.3390/IECB2023-14584