4.6 Article

Design and clinical validation of a point-of-care device for the diagnosis of lymphoma via contrast-enhanced microholography and machine learning

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NATURE BIOMEDICAL ENGINEERING
卷 2, 期 9, 页码 666-674

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NATURE PORTFOLIO
DOI: 10.1038/s41551-018-0265-3

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资金

  1. V-Foundation for Cancer Research [5UH2CA202637, 4R00CA201248]
  2. MGH scholar fund
  3. Mac Erlaine Scholarship from the Academic Radiology Research Trust, St. Vincents Radiology Group, Dublin, Ireland
  4. Higher Degree Bursary from the Faculty of Radiologists at the Royal College of Surgeons in Ireland
  5. [R21-CA205322]
  6. [R01-HL113156]

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The identification of patients with aggressive cancer who require immediate therapy is a health challenge in low-and middle-income countries. Limited pathology resources, high healthcare costs and large caseloads call for the development of advanced stand-alone diagnostics. Here, we report and validate an automated, low-cost point-of-care device for the molecular diagnosis of aggressive lymphomas. The device uses contrast-enhanced microholography and a deep learning algorithm to directly analyse percutaneously obtained fine-needle aspirates. We show the feasibility and high accuracy of the device in cells, as well as the prospective validation of the results in 40 patients clinically referred for image-guided aspiration of nodal mass lesions suspicious of lymphoma. Automated analysis of human samples with the portable device should allow for the accurate classification of patients with benign and malignant adenopathy.

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