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Lee, P. C.

Publications and source records attributed to Lee, P. C..

3 recordsLinked to original sources

Data aggregation and mechanistic modeling enable dose-response analysis of SARS-CoV-1 in non-human primates

Dose-response modeling provides estimates of infectious and lethal doses, which can be used to inform control and prevention measures. Unfortunately, data from experimental challenge studies, which are needed to perform dose-response modeling, are often sparse. For example, non-human primate (NHP) challenge studies tend to have small samples sizes and little dose variation, often with only one or two dose levels per study. Thus, it is infeasible to apply traditional dose-response modeling approaches to data from single NHP studies. To address this challenge, we developed a mechanistic Bayesian model that aggregates and analyzes NHP pathogen load data across multiple studies. Our model links dose-infectivity to pathogen kinetics, which allows us to estimate the infectious dose and evaluate dose effects on within-host viral kinetics simultaneously. With this model, we obtained the first-ever ID50 estimate for SARS-CoV-1 in NHPs using data compiled from six NHP challenge studies. Our work demonstrates the value in reusing previous data from animal experiments. Our modeling framework can be applied to other pathogens, enabling robust dose-response inference when individual challenge studies are inconclusive. Author summaryDose-response models are used to estimate pathogen doses needed to cause infection in humans, so they are useful for informing outbreak control policies. Unfortunately, performing dose-response modeling can be difficult due to limitations in the available data. If the pathogen causes significant risk of severe disease or death in humans, then controlled human infections cannot be performed. Additionally, experimental challenge studies of relevant animal models, such as non-human primates (NHPs), often have small sample sizes and limited dose ranges, which make dose-response modeling unfeasible using data from single studies. We developed an approach to aggregate data across multiple challenge studies to enable dose-response modeling in the absence of dose-response experiments. We applied our approach to data from six NHP challenge studies to perform the first-ever dose-response analysis of SARS-CoV-1 in NHPs. Our approach also included a mechanistic, mathematical model of within-host pathogen kinetics, which allowed us to assess the effect of SARS-CoV-1 dosage on patterns of viral RNA shedding. The framework we developed can be readily applied to other host-pathogen systems, and the mechanistic components of our model contribute to a growing movement towards understanding dose effects beyond simple infectivity.

microbiology↗

Repurposing native non-homologous end joining for multicopy random integration in Wickerhamomyces ciferrii

Wickerhamomyces ciferrii is a non-model diploid yeast that naturally produces tetraacetyl phytosphingosine (TAPS), a sphingoid base used in cosmetic and dermatological applications. However, its strong preference for non-homologous end joining (NHEJ) over homologous recombination (HR) limits conventional genome editing, while disruption of LIG4, a core NHEJ gene, compromises cellular fitness. Here, we repurposed native NHEJ activity to develop a homology-independent multicopy genome integration platform for W. ciferrii. The platform combines three optimized donor-design features: telomeric end-shielding with two tandem copies of an 11 bp repeat to improve linear donor persistence, a defective URA5 auxotrophic marker to enrich multicopy integrants, and 5'-phosphorylated donor termini to enhance transformant recovery and integration output. These features were consolidated into the platform vector pTdmVU5. As a metabolic engineering demonstration, multicopy integration of LCB1 and LCB2, encoding the two subunits of serine palmitoyltransferase, increased TAPS titer by 2.7-fold. This work converts the native NHEJ bias of W. ciferrii from a barrier to precise genome editing into a practical tool for pathway amplification and establishes a framework for engineering NHEJ-dominant non-model yeasts.

synthetic biology↗

Development of a Multifunctional Extracorporeal Life Support (ECLS) System for Lung and Kidney Support: The Pneuma-K ECLS System

Multi-organ failure (MOF), particularly in the coexistence of acute kidney injury (AKI) and acute lung injury (ALI), presents a significant challenge in intensive care units (ICU) and is associated with exceedingly high mortality rates. Respiratory and renal failures are frequently managed by extracorporeal membrane oxygenation (ECMO) and continuous renal replacement therapy (CRRT), respectively. However, employing these therapies using separate devices requires specialized facilities, adds to complexity, and increases the risks of clotting due to the extensive artificial surface areas involved. Therefore, an integrated device capable of providing simultaneous respiratory and renal support is essential. This paper introduces the Pneuma-K ECLS system, which incorporates a multifunctional detoxifying filter (MDF) capable of performing gas exchange and renal replacement in a single cartridge. Ex-vivo blood tests confirmed the ability of the MDF to oxygenate blood, remove carbon dioxide, and eliminate uremic toxins. In addition, animal experiments demonstrated the considerable clinical potential of this novel integrated extracorporeal life support approach. Integrating respiratory and renal support into a singular device could mitigate risks, conserve resources, and enhance the survival rates of critically ill patients suffering from concurrent lung and kidney failure.

bioengineering↗