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This book addresses the important clinical problem of accurately
diagnosing osteoporosis, and analyzes how Bone Turnover Markers
(BTMs) can improve osteoporosis detection. In her research, the
author integrated microfluidic technology with electrochemical
sensing to embody a reaction/detection chamber to measure serum
levels of different biomarkers, creating a microfluidic proteomic
platform that can easily be translated into a biomarker diagnostic.
The Osteokit System, a result of the integration of electrochemical
system and microfluidic chips, is a unique design that offers the
potential for greater sensitivity. The implementation, feasibility,
and specificity of the Osteokit platform is demonstrated in this
book, which is appropriate for researchers working on bone biology
and mechanics, as well as clinicians.
This book addresses the important clinical problem of accurately
diagnosing osteoporosis, and analyzes how Bone Turnover Markers
(BTMs) can improve osteoporosis detection. In her research, the
author integrated microfluidic technology with electrochemical
sensing to embody a reaction/detection chamber to measure serum
levels of different biomarkers, creating a microfluidic proteomic
platform that can easily be translated into a biomarker diagnostic.
The Osteokit System, a result of the integration of electrochemical
system and microfluidic chips, is a unique design that offers the
potential for greater sensitivity. The implementation, feasibility,
and specificity of the Osteokit platform is demonstrated in this
book, which is appropriate for researchers working on bone biology
and mechanics, as well as clinicians.
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