Back to Search Start Over

Motility-based label-free detection of parasites in bodily fluids using holographic speckle analysis and deep learning.

Authors :
Zhang Y
Ceylan Koydemir H
Shimogawa MM
Yalcin S
Guziak A
Liu T
Oguz I
Huang Y
Bai B
Luo Y
Luo Y
Wei Z
Wang H
Bianco V
Zhang B
Nadkarni R
Hill K
Ozcan A
Source :
Light, science & applications [Light Sci Appl] 2018 Dec 12; Vol. 7, pp. 108. Date of Electronic Publication: 2018 Dec 12 (Print Publication: 2018).
Publication Year :
2018

Abstract

Parasitic infections constitute a major global public health issue. Existing screening methods that are based on manual microscopic examination often struggle to provide sufficient volumetric throughput and sensitivity to facilitate early diagnosis. Here, we demonstrate a motility-based label-free computational imaging platform to rapidly detect motile parasites in optically dense bodily fluids by utilizing the locomotion of the parasites as a specific biomarker and endogenous contrast mechanism. Based on this principle, a cost-effective and mobile instrument, which rapidly screens ~3.2 mL of fluid sample in three dimensions, was built to automatically detect and count motile microorganisms using their holographic time-lapse speckle patterns. We demonstrate the capabilities of our platform by detecting trypanosomes, which are motile protozoan parasites, with various species that cause deadly diseases affecting millions of people worldwide. Using a holographic speckle analysis algorithm combined with deep learning-based classification, we demonstrate sensitive and label-free detection of trypanosomes within spiked whole blood and artificial cerebrospinal fluid (CSF) samples, achieving a limit of detection of ten trypanosomes per mL of whole blood (~five-fold better than the current state-of-the-art parasitological method) and three trypanosomes per mL of CSF. We further demonstrate that this platform can be applied to detect other motile parasites by imaging Trichomonas vaginalis , the causative agent of trichomoniasis, which affects 275 million people worldwide. With its cost-effective, portable design and rapid screening time, this unique platform has the potential to be applied for sensitive and timely diagnosis of neglected tropical diseases caused by motile parasites and other parasitic infections in resource-limited regions.<br />Competing Interests: A.O., Y.Z., and H.C.K. have a pending patent application on the presented technique. The remaining authors declare that they have no conflict of interest

Details

Language :
English
ISSN :
2047-7538
Volume :
7
Database :
MEDLINE
Journal :
Light, science & applications
Publication Type :
Academic Journal
Accession number :
30564314
Full Text :
https://doi.org/10.1038/s41377-018-0110-1