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Biomedical subjects

Noriaki Sato

Publications and source records attributed to Noriaki Sato.

2 recordsLinked to original sources

Causal assessment of Bayesian gene regulatory networks from single-cell transcriptomics.

Gene regulatory network (GRN) inference is an essential tool for revealing dysregulated relationships between genes in different cell types from single-cell transcriptomic (SCT) data. GRNs based on Bayesian networks (BNs) learned from SCT data can elucidate directed regulatory relationships representing complex disease mechanisms and their interplay through graphical modeling. However, software for learning BNs from SCT data is not widely available, nor is software for evaluating the BNs' structural accuracy in representing causal relationships between genes. Here, we describe the scstruc R package. This package provides a suite of BN structure learning algorithms specifically designed to handle SCT data, to evaluate the resulting networks based on the causal relationships they represent regardless of the availability of established molecular interaction networks, and to compare regulatory relationships between conditions. We demonstrated that scstruc can identify biologically relevant differential regulatory relationships between groups on a per-cell basis.

Bayesian networks

Binding capacity of Intravenous immunoglobulin G to BK polyomavirus determines its anti-BK polyomavirus activity in infected cultures.

BK polyomavirus (BKPyV) causes disease in immunocompromised individuals. This study tested the hypothesis that the antiviral efficacy of intravenous immunoglobulin (IVIG) against BKPyV depends on the relationship between its virus-binding capacity and the viral burden. We first quantified the BKPyV-binding capacity of IVIG and then characterized BKPyV replication in kidney-derived HK-2 and HEK293&#x202f;cells and in HEL cells under IVIG treatment. Subsequently, we analyzed the efficacy of IVIG at 0.03-10&#x202f;mg/mL against low-multiplicity of infection (MOI) and high-MOI infection in relation to the BKPyV-binding capacity of IVIG. BKPyV productively infected all three cell lines, with 14-day replication cycles of 2.2, 4.0, and 7.0 in HK-2, HEK293, and HEL cells, respectively, indicating that HEL cells were the most permissive. IVIG bound approximately 108 copies of BKPyV DNA per milligram. In the low-MOI infection model, where the total viral load remained within this estimated binding capacity, IVIG showed clear neutralizing activity, significantly reducing viral spread, viral DNA levels, and the number of VP1-positive cells in a dose-dependent manner (p&#x202f;<&#x202f;0.001). In contrast, in the high-MOI infection model, the viral load appeared to be high relative to the estimated IVIG binding capacity even at 10&#x202f;mg/mL, and IVIG showed little or no neutralizing effect on viral production or spread of infected cells. These findings identify an experimental relationship between IVIG binding capacity, viral burden, and antiviral efficacy and suggest that the antiviral effect of IVIG is greatest when administered early, thereby supporting further clinical evaluation of early or preemptive IVIG administration.

Humans