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Multitarget, quantitative nanoplasmonic electrical field-enhanced resonating device (NE2RD) for diagnostics

Authors :
Hidemi S. Yamamoto
Chiara Filippini
Duane R. Wesemann
Priscilla L. Yang
Yuko Takagi
Michael Vetter
Franceline Juillard
Ping Ping Kuang
Margot Carocci
Daniel R. Kuritzkes
Murat Baday
Mehmet Ozgun Ozen
Emily Hanhauser
Demir Akin
Sanjiv S. Gambhir
Ronald W. Davis
Kristen S. Hobbs
Raina N. Fichorova
Umit Hakan Yildiz
Fatih Inci
Timothy J. Henrich
Lars M. Steinmetz
Naside Gozde Durmus
Amit Singhal
Steven C. Schachter
Utkan Demirci
ShuQi Wang
Kenneth M. Kaye
Semih Calamak
Max L. Nibert
Daryl T.-Y. Lau
Source :
Proceedings of the National Academy of Sciences of the United States of America, vol 112, iss 32
Publication Year :
2015

Abstract

Recent advances in biosensing technologies present great potential for medical diagnostics, thus improving clinical decisions. However, creating a label-free general sensing platform capable of detecting multiple biotargets in various clinical specimens over a wide dynamic range, without lengthy sample-processing steps, remains a considerable challenge. In practice, these barriers prevent broad applications in clinics and at patients' homes. Here, we demonstrate the nanoplasmonic electrical field-enhanced resonating device (NE(2)RD), which addresses all these impediments on a single platform. The NE(2)RD employs an immunodetection assay to capture biotargets, and precisely measures spectral color changes by their wavelength and extinction intensity shifts in nanoparticles without prior sample labeling or preprocessing. We present through multiple examples, a label-free, quantitative, portable, multitarget platform by rapidly detecting various protein biomarkers, drugs, protein allergens, bacteria, eukaryotic cells, and distinct viruses. The linear dynamic range of NE(2)RD is five orders of magnitude broader than ELISA, with a sensitivity down to 400 fg/mL This range and sensitivity are achieved by self-assembling gold nanoparticles to generate hot spots on a 3D-oriented substrate for ultrasensitive measurements. We demonstrate that this precise platform handles multiple clinical samples such as whole blood, serum, and saliva without sample preprocessing under diverse conditions of temperature, pH, and ionic strength. The NE(2)RD's broad dynamic range, detection limit, and portability integrated with a disposable fluidic chip have broad applications, potentially enabling the transition toward precision medicine at the point-of-care or primary care settings and at patients' homes.

Details

ISSN :
10916490
Volume :
112
Issue :
32
Database :
OpenAIRE
Journal :
Proceedings of the National Academy of Sciences of the United States of America
Accession number :
edsair.doi.dedup.....a4dd4dc02b92bfd0748e4c698fbeff44