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Multiparametric Magneto-fluorescent Nanosensors for the Ultrasensitive Detection of Escherichia coli O157:H7.
Banerjee, Tuhina; Sulthana, Shoukath; Shelby, Tyler; Heckert, Blaze; Jewell, Jessica; Woody, Kalee; Karimnia, Vida; McAfee, James; Santra, Santimukul.
Affiliation
  • Banerjee T; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Sulthana S; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Shelby T; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Heckert B; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Jewell J; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Woody K; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Karimnia V; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • McAfee J; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
  • Santra S; Department of Chemistry, Kansas Polymer Research Center, Pittsburg State University , 1701 South Broadway Street, Pittsburg, Kansas 66762, United States.
ACS Infect Dis ; 2(10): 667-673, 2016 10 14.
Article in En | MEDLINE | ID: mdl-27737552
Enterohemorrhagic Escherichia coli O157:H7 presents a serious threat to human health and sanitation and is a leading cause in many food- and waterborne ailments. While conventional bacterial detection methods such as PCR, fluorescent immunoassays and ELISA exhibit high sensitivity and specificity, they are relatively laborious and require sophisticated instruments. In addition, these methods often demand extensive sample preparation and have lengthy readout times. We propose a simpler and more sensitive diagnostic technique featuring multiparametric magneto-fluorescent nanosensors (MFnS). Through a combination of magnetic relaxation and fluorescence measurements, our nanosensors are able to detect bacterial contamination with concentrations as little as 1 colony-forming unit (CFU). The magnetic relaxation property of our MFnS allow for sensitive screening at low target CFU, which is complemented by fluorescence measurements of higher CFU samples. Together, these qualities allow for the detection and quantification of broad-spectrum contaminations in samples ranging from aquatic reservoirs to commercially produced food.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Escherichia coli O157 / Nanotechnology / Magnetite Nanoparticles Type of study: Diagnostic_studies / Evaluation_studies Limits: Animals Language: En Journal: ACS Infect Dis Year: 2016 Type: Article Affiliation country: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Escherichia coli O157 / Nanotechnology / Magnetite Nanoparticles Type of study: Diagnostic_studies / Evaluation_studies Limits: Animals Language: En Journal: ACS Infect Dis Year: 2016 Type: Article Affiliation country: United States