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1.
Bioeng Transl Med ; 9(4): e10643, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39036093

ABSTRACT

Red blood cells (RBCs) become sickle-shaped and stiff under hypoxia as a consequence of hemoglobin (Hb) polymerization in sickle cell anemia. Distinguishing between sickle cell disease and trait is crucial during the diagnosis of sickle cell disease. While genetic analysis or high-performance liquid chromatography (HPLC) can accurately differentiate between these two genotypes, these tests are unsuitable for field use. Here, we report a novel microscopy-based diagnostic test called ShapeDx™ to distinguish between disease and trait blood in less than 1 h. This is achieved by mixing an unknown blood sample with low and high concentrations of a chemical oxygen scavenger and thereby subjecting the blood to slow and fast hypoxia, respectively. The different rates of Hb polymerization resulting from slow and fast hypoxia lead to two distinct RBC shape distributions in the same blood sample, which allows us to identify it as healthy, trait, or disease. The controlled hypoxic environment necessary for differential Hb polymerization is generated using an imaging microchamber, which also reduces the sickling time of trait blood from several hours to just 30 min. In a single-blinded proof-of-concept study conducted on a small cohort of clinical samples, the results of the ShapeDx™ test were 100% concordant with HPLC results. Additionally, our field studies have demonstrated that ShapeDx™ is the first reported microscopy test capable of distinguishing between sickle cell disease and trait samples in resource-limited settings with the same accuracy as a gold standard test.

2.
Drug Alcohol Rev ; 41(2): 406-409, 2022 02.
Article in English | MEDLINE | ID: mdl-34355446

ABSTRACT

Passive surveillance technology has the potential to increase safety through monitoring spaces where people are at risk of overdose. One key opportunity for the use of passive surveillance technology to prevent overdose fatality is in bathrooms where people may be using drugs. However, uncertainty remains with regards to how to attain informed consent, implications for data storage and privacy and potential negative socio-legal ramifications for people who use drugs. In addition, there are issues regarding responsibility and liability for the devices. Transparency with regards to data privacy and security may also be needed before bathroom users will feel comfortable with such solutions. In this article, we discuss these issues and offer recommendations to provide a foundation for future research and policy development.


Subject(s)
Privacy , Technology , Humans , Informed Consent
3.
Lab Chip ; 20(17): 3096-3103, 2020 08 26.
Article in English | MEDLINE | ID: mdl-32748936

ABSTRACT

A fundamental challenge to multiplexing microfluidic chemotaxis assays at scale is the requirement for time-lapse imaging to continuously track migrating cells. Drug testing and drug screening applications require the ability to perform hundreds of experiments in parallel, which is not feasible for assays that require continuous imaging. To address this limitation, end-point chemotaxis assays have been developed using fluid flow to align cells in traps or sieves prior to cell migration. However, these methods require precisely controlled fluid flow to transport cells to the correct location without undesirable mechanical stress, which introduce significant set up time and design complexity. Here, we describe a microfluidic device that eliminates the need for precise flow control by using centrifugation to align cells at a common starting point. A chemoattractant gradient is then formed using passive diffusion prior to chemotaxis in an incubated environment. This approach provides a simple and scalable approach to multiplexed chemotaxis assays. Centrifugal alignment is also insensitive to cell geometry, enabling this approach to be compatible with primary cell samples that are often heterogeneous. We demonstrate the capability of this approach by assessing chemotaxis of primary neutrophils in response to an fMLP (N-formyl-met-leu-phe) gradient. Our results show that cell alignment by centrifugation offers a potential avenue to develop scalable end-point multiplexed microfluidic chemotaxis assays.


Subject(s)
Chemotaxis , Microfluidic Analytical Techniques , Chemotactic Factors , Chemotaxis, Leukocyte , Lab-On-A-Chip Devices , Microfluidics , Neutrophils
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