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Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities
by
Garrett, Alice
, Adriko, Moses
, Rowell, Candia
, Xu, Gaolian
, Cooper, Jonathan M.
, Reboud, Julien
, Tukahebwa, Edridah M.
, Yang, Zhugen
in
Adolescent
/ Assaying
/ Biochemistry
/ Biological Sciences
/ Blood
/ Child
/ Deoxyribonucleic acid
/ Diagnosis
/ Diagnostic systems
/ DNA
/ DNA testing
/ DNA, Protozoan - analysis
/ Engineering
/ Health Resources
/ Humans
/ Industry standards
/ Infectious diseases
/ Innovations
/ Laboratories
/ Light microscopy
/ Low cost
/ Malaria
/ Malaria, Falciparum - blood
/ Malaria, Falciparum - diagnosis
/ Malaria, Falciparum - parasitology
/ Medically Underserved Area
/ Microfluidics
/ Microfluidics - methods
/ Molecular Diagnostic Techniques - methods
/ Optical microscopy
/ Patients
/ Physical Sciences
/ PNAS Plus
/ Polymerase Chain Reaction
/ Reproducibility of Results
/ Rural areas
/ Rural communities
/ Rural Population
/ Sample preparation
/ Schools
/ Underserved populations
/ Vector-borne diseases
/ Vertical flow
2019
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Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities
by
Garrett, Alice
, Adriko, Moses
, Rowell, Candia
, Xu, Gaolian
, Cooper, Jonathan M.
, Reboud, Julien
, Tukahebwa, Edridah M.
, Yang, Zhugen
in
Adolescent
/ Assaying
/ Biochemistry
/ Biological Sciences
/ Blood
/ Child
/ Deoxyribonucleic acid
/ Diagnosis
/ Diagnostic systems
/ DNA
/ DNA testing
/ DNA, Protozoan - analysis
/ Engineering
/ Health Resources
/ Humans
/ Industry standards
/ Infectious diseases
/ Innovations
/ Laboratories
/ Light microscopy
/ Low cost
/ Malaria
/ Malaria, Falciparum - blood
/ Malaria, Falciparum - diagnosis
/ Malaria, Falciparum - parasitology
/ Medically Underserved Area
/ Microfluidics
/ Microfluidics - methods
/ Molecular Diagnostic Techniques - methods
/ Optical microscopy
/ Patients
/ Physical Sciences
/ PNAS Plus
/ Polymerase Chain Reaction
/ Reproducibility of Results
/ Rural areas
/ Rural communities
/ Rural Population
/ Sample preparation
/ Schools
/ Underserved populations
/ Vector-borne diseases
/ Vertical flow
2019
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Do you wish to request the book?
Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities
by
Garrett, Alice
, Adriko, Moses
, Rowell, Candia
, Xu, Gaolian
, Cooper, Jonathan M.
, Reboud, Julien
, Tukahebwa, Edridah M.
, Yang, Zhugen
in
Adolescent
/ Assaying
/ Biochemistry
/ Biological Sciences
/ Blood
/ Child
/ Deoxyribonucleic acid
/ Diagnosis
/ Diagnostic systems
/ DNA
/ DNA testing
/ DNA, Protozoan - analysis
/ Engineering
/ Health Resources
/ Humans
/ Industry standards
/ Infectious diseases
/ Innovations
/ Laboratories
/ Light microscopy
/ Low cost
/ Malaria
/ Malaria, Falciparum - blood
/ Malaria, Falciparum - diagnosis
/ Malaria, Falciparum - parasitology
/ Medically Underserved Area
/ Microfluidics
/ Microfluidics - methods
/ Molecular Diagnostic Techniques - methods
/ Optical microscopy
/ Patients
/ Physical Sciences
/ PNAS Plus
/ Polymerase Chain Reaction
/ Reproducibility of Results
/ Rural areas
/ Rural communities
/ Rural Population
/ Sample preparation
/ Schools
/ Underserved populations
/ Vector-borne diseases
/ Vertical flow
2019
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Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities
Journal Article
Paper-based microfluidics for DNA diagnostics of malaria in low resource underserved rural communities
2019
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Overview
Rapid, low-cost, species-specific diagnosis, based upon DNA testing, is becoming important in the treatment of patients with infectious diseases. Here, we demonstrate an innovation that uses origami to enable multiplexed, sensitive assays that rival polymerase chain reactions (PCR) laboratory assays and provide high-quality, fast precision diagnostics for malaria. The paper-based microfluidic technology proposed here combines vertical flow sample-processing steps, including paper folding for whole-blood sample preparation, with an isothermal amplification and a lateral flow detection, incorporating a simple visualization system. Studies were performed in village schools in Uganda with individual diagnoses being completed in <50 min (faster than the standard laboratory-based PCR). The tests, which enabled the diagnosis of malaria species in patients from a finger prick of whole blood, were both highly sensitive and specific, detecting malaria in 98% of infected individuals in a double-blind first-in-human study. Our method was more sensitive than other field-based, benchmark techniques, including optical microscopy and industry standard rapid immunodiagnostic tests, both performed by experienced local healthcare teams (which detected malaria in 86% and 83% of cases, respectively). All assays were independently validated using a real-time double-blinded reference PCR assay. We not only demonstrate that advanced, low-cost DNA-based sensors can be implemented in underserved communities at the point of need but also highlight the challenges associated with developing and implementing new diagnostic technologies in the field, without access to laboratories or infrastructure.
Publisher
National Academy of Sciences
Subject
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