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Biology subjects

Chang, C. B.

Publications and source records attributed to Chang, C. B..

3 recordsLinked to original sources

Effects of inactivation method on SARS-CoV-2 virion proteins and structure

The risk posed by Severe Acute Respiratory Syndrome Coronavirus -2 (SARS-CoV-2) dictates that live-virus research is conducted in a biosafety level 3 (BSL3) facility. Working with SARS-CoV-2 at lower biosafety levels can expedite research yet requires the virus to be fully inactivated. In this study, we validated and compared two protocols for inactivating SARS-CoV-2: heat treatment and ultraviolet irradiation. The two methods were optimized to render the virus completely incapable of infection while limiting destructive effects of inactivation. We observed that 15 minutes of incubation at 65{degrees}C completely inactivates high titer viral stocks. Complete inactivation was also achieved with minimal amounts of UV power (70,000 J/cm2), which is 100-fold less power than comparable studies. Once validated, the two methods were then compared for viral RNA quantification, virion purification, and antibody recognition. We observed that UV irradiation resulted in a 2-log reduction of detectable genomes compared to heat inactivation. Protein yield following virion enrichment was equivalent for all inactivation conditions, but the resulting viral proteins and virions were negatively impacted by inactivation method and time. We outline the strengths and weaknesses of each method so that investigators might choose the one which best meets their research goals.

microbiology

Metabolomic Profiling and Mechanotransduction of Single Chondrocytes Encapsulated in Alginate Microgels

Human articular cartilage is comprised of two main components, the extracellular matrix (ECM) and the pericellular matrix (PCM). The PCM helps to protect chondrocytes in the cartilage from mechanical loads, but in patients with osteoarthritis, the PCM is weakened resulting in increased chondrocyte stress. As chondrocytes are responsible for cartilage synthesis and maintenance, it is important to understand how mechanical loads affect cellular responses of chondrocytes. Many studies have examined the chondrocyte response to in vitro mechanical loading by embedding in stiff agarose. However, these experiments are mostly performed in the absence of PCM which may obscure important responses to mechanotransduction. Here, we demonstrate that drop-based microfluidics allows culture of single chondrocytes in alginate microgels for cell-directed PCM synthesis that closely mimics the in vivo microenvironment. Chondrocytes form PCM over 10 days in these single cell microenvironments. Single cell microgels and monolayer controls were encapsulated in high stiffness agarose to mimic the cartilage PCM. After physiological dynamic compression in a custom-built bioreactor, microgels exhibited distinct metabolomic profiles from both uncompressed and monolayer controls. These results demonstrate the potential of single cell encapsulation in alginate microgels to advance cartilage tissue engineering and basic chondrocyte mechanobiology.

bioengineering

Screening of additives for droplet qRT-PCR thermocycling enables single influenza A virus genome quantification

The miniaturization of real time quantitative polymerase chain reaction (qPCR) using drop-based microfluidics, or droplet qPCR, allows for quantification of single nucleic acids. The nucleic acids are compartmentalized into aqueous microdroplets, picoliters in volume, separated by an immiscible oil, and stabilized by a surfactant. In droplet qPCR, accurate data can only be obtained if the drops remain stable to coalescence upon thermocycling and drop contents do not diffuse to neighboring drops. In this work, we present a droplet qRT-PCR assay for quantifying influenza A virus (IAV) following systematic testing of different PCR additives, resulting in the optimal combination of Tween-20 / BSA / betaine to maintain drop stability and limit dye diffusion. We use a standard qPCR machine to generate real time amplification curves of hundreds of thousands of drops and correlate this data with constructed amplification curves obtained from hundreds of drops sampled at various cycle numbers and imaged using epifluorescence microscopy. To demonstrate the utility of our method, we tested a range of in vitro transcribed M gene and IAV viral supernatant from infected cells. We directly amplified IAV genomes from infected supernatant without an RNA extraction step. Our droplet qPCR assay enables detection of IAV down to 0.274 cpd, or a single viral genome per drop, establishing the high sensitivity and precision of our method.

bioengineering