bioRxiv Science⌕ Search

Biology subjects

Nelson, V. L.

Publications and source records attributed to Nelson, V. L..

2 recordsLinked to original sources

Turmeric Phyto-nanoparticle: enhanced cellular bioavailability and anti-inflammatory effect in human monocyte / macrophage model

The poor bioavailability of curcuminoids remains a major challenge to therapeutic use. This is largely due to their hydrophobicity, poor absorption, rapid metabolism, and short circulating half-life--limitations that are now being addressed through advances in nano- and micro-emulsion technologies. Curcuminoids and other water-insoluble phyto-polyphenols offer significant putative health benefits as anti-inflammatory, antioxidant, anticancer, radioprotective, and neuroprotective agents. Conventional emulsion-based delivery systems, such as liposomes, micelles, or solid lipid particles, rely on various emulsifying surfactants and/or excipients, some of which may themselves pose health risks. Here, we establish a novel class of all-natural, additive-free, oil-free, and emulsion-free Turmeric Phyto-NanoParticles (TPNPs) formulated directly from turmeric rhizomes and tested in a human monocyte/macrophage cell model to assess bioavailability kinetics and the efficacy of antioxidant and anti-inflammatory potential. TPNPs are enriched with curcuminoids (24.85% by mass), form a homogeneous nanoparticle distribution, exhibit higher antioxidant capacity, and demonstrate significantly improved cellular uptake in both monocytes and macrophages compared to conventionally purified curcuminoids. Favourable cellular pharmacodynamic anti-inflammatory effect of TPNPs was shown by increased levels of the cytoprotective enzyme heme oxygenase-1 (HMOX1), and a more effective reduction in lipopolysaccharide (LPS)-induced tumor necrosis factor (TNF) secretion compared to conventional curcuminoids. TPNPs could thus serve as a stable, non-synthetic, excipient-free formulation for safe and effective delivery of curcuminoids by nanocarriers for inflammatory conditions.

pharmacology and toxicology↗

Yap is a Nutrient Sensor Sensitive to the Amino Acid L-Isoleucine and Regulates Expression of Ctgf in Cardiomyocytes.

Myocardial infarction and reperfusion is a complex injury consisting of many distinct molecular stress patterns that influence cardiomyocyte survival and adaptation. Cell signalling that is essential to cardiac development also presents potential disease-modifying opportunities to recover and limit myocardial injury or maladaptive remodelling. Here we hypothesized that Yap signalling could be sensitive to one or more molecular stress patterns associated with early acute ischemia. Yap, not Taz, patterns of expression differ in post-myocardial infarct compared to peri-infarct tissue suggesting cell-specificity that would be challenging to resolve for causation in vivo. Using H9c2 ventricular myotubes in vitro as a model, Yap levels were most sensitive to nutrient deprivation compared to other stress patterns typified by ischemia within the first hour of stress. Moreover, this is mediated by amino acid availability, dominantly L-isoleucine, and influences the expression of Ctgf--a major determinant of myocardial adaptation after injury. These findings present novel opportunities for future therapeutic development and risk assessment for myocardial injury and adaptation.

pharmacology and toxicology↗