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Biology subjects

Lee, G. U.

Publications and source records attributed to Lee, G. U..

2 recordsLinked to original sources

Social context modulates multibrain broadband dynamics and functional brain-to-brain coupling in the group of mice

Although mice are social animals, studies that explore the simultaneously recorded neural activities of multiple mice, especially in a social setting, are still lacking. In this study, we simultaneously recorded local field potential (LFP) signals in the dorsomedial prefrontal cortex (dmPFC) from up to four mice. The brain activities of the mice were measured in two contradicting conditions - freely interacting in a group or being individually separated. We found that social context and the locomotive states predominately modulate the entire LFP structure. Power spectral density (PSD) estimate and spectrogram of LFP signals showed a broadband modulation; lower frequency bands--delta (<4Hz), theta (4-7Hz), and alpha (8-12Hz) power were highly correlated to each other and anti-correlated with gamma and high gamma (>30Hz) power. We calculated the high-to-low-power ratio (HLR) and found that HLR was higher when the mice were in a group than were separated. The HLR was also higher when they were active--whether or not they were moving. The mice in the group showed higher HLR in any locomotive states. We then analyzed whether social context can be divided into sub-contexts. Notably, the aggregation of animals, called huddling, decreased social context-induced increase in HLR. Multibrain analyses of HLR indicated that the mice in the group displayed high cross-correlation to each other, indicating interbrain synchrony. Then we examined whether there is any directional relationship between HLR from pairs of mice. A majority of dyad selected within the group of mice showed unilateral precedence of HLR by Granger causality analysis, comprising a hierarchical social structure based on a directionality of influence. Overall, this study shows the importance of the social environment in brain dynamics and emphasizes the value of simultaneous multibrain recording for researching social behaviors and their neural correlates. One-sentence summaryCoexistence modulates overall brain activities with unilateral causal relationship.

neuroscience↗

Influence of viral transport media and freeze-thaw cycling on the sensitivity of qRT-PCR detection of SARS-CoV-2 nucleic acids

The events of the last year have highlighted the complexity of implementing large-scale molecular diagnostic testing for novel pathogens. The purpose of this study was to determine the chemical influences of sample collection media and storage on the stability and detection of viral nucleic acids by qRT-PCR. We studied the mechanism(s) through which viral transport media (VTM) and number of freeze-thaw cycles influenced the analytical sensitivity of qRT-PCR detection of SARS-CoV-2. Our goal is to reinforce testing capabilities and identify weaknesses that could arise in resource-limited environments that do not have well-controlled cold chains. The sensitivity of qRT-PCR analysis was studied in four VTM for synthetic single-stranded RNA (ssRNA) and double-stranded DNA (dsDNA) simulants of the SARS-CoV-2 genome. The sensitivity and reproducibility of qRT-PCR for the synthetic ssRNA and dsDNA were found to be highly sensitive to VTM with the best results observed for ssRNA in HBSS and PBS-G. Surprisingly, the presence of epithelial cellular material with the ssRNA increased the sensitivity of the qRT-PCR assay. Repeated freeze-thaw cycling decreased the sensitivity of the qRT-PCR with two noted exceptions. The choice of VTM is critically important to defining the sensitivity of COVID-19 molecular diagnostics assays and this study suggests they can impact upon the stability of the SARS-CoV-2 viral genome. This becomes increasingly important if the virus structure is destabilised before analysis, which can occur due to poor storage conditions. This study suggests that COVID-19 testing performed with glycerol-containing PBS will produce a high level of stability and sensitivity. These results are in agreement with clinical studies reported for patient-derived samples.

molecular biology↗