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Biology subjects

Waterman, A.

Publications and source records attributed to Waterman, A..

2 recordsLinked to original sources

Enhanced Zika Virus Suppression by Coupling Ribavirin with Biodegradable Drug Delivery

Advancement and implementation of nanoparticle-based systems for enhanced drug delivery have become essential for the suppression of viral pathogens due to lack of viable treatment options. This study focuses on characterization and application of mPEG-PCL co-polymers for development of pH-responsive, biodegradable micellar nanoparticles (MNPs) for the delivery of the antiviral drug ribavirin against Zika virus. Synthesis of mPEG-PCL diblock copolymers was confirmed through FTIR and 1H NMR, which validated the formation of ester functional groups and accurate structure of copolymers. mPEG-PCL MNPs, loaded with ribavirin, exhibited a mean diameter of approximately 34.29 {+/-} 5.214 nm and a zeta potential of -3.28 {+/-} 0.718 mV, suitable for evading immune detection and facilitating cellular entry. The ribavirin-loaded mPEG-PCL MNPs demonstrated pH-dependent release, with approximately 88% of ribavirin released at pH 5.5, compared to 20% at pH 7.4. This pH-responsive release is crucial for targeted drug delivery within the endosomal pathway. In vitro studies using JEG-3 cells infected with Zika virus showed that ribavirin-loaded mPEG-PCL MNPs achieved an EC50 of 0.22nM, significantly enhancing drug efficacy compared to unencapsulated ribavirin, which required micromolar concentrations to achieve similar effects. The MTT assay results indicated minimal cytotoxicity of the ribavirin-loaded mPEG-PCL MNPs, with approximately 80% cell viability at the highest concentration evaluated. Confocal microscopy and RT-PCR analysis further confirmed the efficient cellular uptake and potent antiviral activity of the ribavirin-loaded MNPs. These findings highlight the potential of mPEG-PCL MNPs as an effective delivery system for broad-spectrum antivirals like ribavirin, enhancing their therapeutic efficacy while minimizing cytotoxicity.

microbiology↗

Early transatlantic movement of horses and donkeys at Jamestown

Domestic horses and donkeys played a key role in the initial colonization of the Atlantic seaboard of the Americas, a process partially chronicled by historical records. While Spanish colonists brought horses to the Caribbean and southern latitudes earlier, the transport of domestic horses to the English colony at Jamestown, Virginia in 1606 was among the first dispersals to the eastern seaboard. Archaeozoological analysis, isotope analysis, and radiocarbon dating of identifiable domestic equid remains from two contexts associated with the initial occupation of Jamestown demonstrate intense processing and consumption of the first Jamestown horses during the "Starving Time" winter of 1609, while paleopathological data show evidence of their use in transport. Osteological, genetic, and isotopic study of these equid remains reveal the presence of at least one adult domestic donkey with mixed European and West African ancestry, possibly supplied through undocumented exchange during a trans-Atlantic stopover. These results reveal the importance of equids in the survival of early European settlers and the global connectivity of early trans-Atlantic exchange in horses and donkeys, showing Caribbean and African links in the founding livestock populations and pointing towards an important and ecologically-anchored role for donkeys in the early colonial lifeways along the Eastern seaboard.

genetics↗