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Chen, B. T.

Publications and source records attributed to Chen, B. T..

2 recordsLinked to original sources

Development of a novel, pan-variant aerosol intervention for COVID-19

To develop a universal strategy to block SARS-CoV-2 cellular entry and infection represents a central aim for effective COVID-19 therapy. The growing impact of emerging variants of concern increases the urgency for development of effective interventions. Since ACE2 is the critical SARS-CoV-2 receptor and all tested variants bind to ACE2, some even at much increased affinity (see accompanying paper), we hypothesized that aerosol administration of clinical grade soluble human recombinant ACE2 (APN01) will neutralize SARS-CoV-2 in the airways, limit spread of infection in the lung and mitigate lung damage caused by deregulated signaling in the renin-angiotensin (RAS) and Kinin pathways. Here we show that intranasal administration of APN01 in a mouse model of SARS-CoV-2 infection dramatically reduced weight loss and prevented animal death. As a prerequisite to a clinical trial, we evaluated both virus binding activity and enzymatic activity for cleavage of Ang II following aerosolization. We report successful aerosolization for APN01, retaining viral binding as well as catalytic RAS activity. Dose range-finding and IND-enabling repeat-dose aerosol toxicology testing were conducted in dogs. Twice daily aerosol administration for two weeks at the maximum feasible concentration revealed no notable toxicities. Based on these results, a Phase I clinical trial in healthy volunteers can now be initiated, with subsequent Phase II testing in individuals with SARS-CoV-2 infection. This strategy could be used to develop a viable and rapidly actionable therapy to prevent and treat COVID-19, against all current and future SARS-CoV-2 variants. One Sentence SummaryPreclinical development and evaluation of aerosolized soluble recombinant human ACE2 (APN01) administered as a COVID-19 intervention is reported.

pharmacology and toxicology

Longitudinal preclinical imaging characterization of drug delivery potential after radiotherapy in the healthy and leukemic bone marrow vascular microenvironment

ObjectivesRadiotherapy improves blood perfusion and cellular chemotherapy uptake in mice with acute lymphoblastic leukemia (ALL). However, its ability to influence drug delivery and permeation through the bone marrow vasculature (BMV) is unknown, due in part to a lack of methodology. This study developed longitudinal quantitative multiphoton (L-QMPM) imaging and used it to characterize drug delivery potential and the BMV before and after radiotherapy in mice bearing leukemia. MethodsWe developed a longitudinal window implant for L-QMPM imaging of the calvarium BMV before, 2 days after, and 5 days after radiotherapy. Live time-lapsed images of a fluorescent drug surrogate were used to obtain measurements including tissue wash-in slope (WIStissue) to measure drug delivery potential. We performed L-QMPM imaging using 2 Gy and 10 Gy total body irradiation (TBI) on C57/B6 (WT) mice, mice bearing ALL, and acute myeloid leukemia (AML). ResultsImplants had no effects on calvarium dose, and parameters for WT untreated mice were stable during imaging. We observed increased angiogenesis, decreased single-vessel blood flow, and decreased WIStissue with the onset of AML and ALL. 2Gy and 10Gy TBI increased WIStissue 2 days after radiotherapy in all 3 groups of mice and increased single-vessel blood flow in mice bearing ALL and AML. Significant increases in WIStissue were observed 2 days after 2Gy TBI compared to 5 days. Morphological and functional alterations in the BMV were sustained for a significantly longer time period after 10Gy TBI (5 days post-treatment) compared to 2Gy TBI (2 days post-treatment). ConclusionL-QMPM provides stable functional assessments of the BMV. TBI increases the drug delivery potential of the leukemic BMV 2-5 days post-treatment, likely through improved blood perfusion and drug exchange from the BMV to the extravascular tissue. Our data show that neo-adjuvant 2Gy and 10Gy TBI condition the BMV for increased drug delivery.

cancer biology