Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 2 de 2
Filter
Add more filters










Database
Language
Publication year range
1.
Mar Pollut Bull ; 193: 115193, 2023 Aug.
Article in English | MEDLINE | ID: mdl-37399735

ABSTRACT

Near-shore coral reefs are at high-risk of exposure to pollution from terrestrial activities. Pollution impacts can vary with site-specific factors that span sources, rainfall and oceanographic characteristics. To effectively manage pollution, we need to understand how these factors interact. In this study, we detect terrestrially derived nutrient inputs on near-shore reefs at Norfolk Island, South Pacific by analysis of dissolved inorganic nitrogen (DIN) and stable isotopes. When compared to a reef site with predominantly oceanic inputs, we found that both the lagoon and a small reef adjacent to a catchment have signatures of human-derived DIN shown through depleted δ15N signatures in macroalgae. We find pollution exposure of reef sites is associated with known and unknown sources, rainfall and mixing of water with the open ocean. In characterising exposure of reef sites we highlight the role of site-specific context in influencing pollution exposure for benthic communities even in remote island systems.


Subject(s)
Anthozoa , Coral Reefs , Humans , Animals , Water Quality , Isotopes , Nitrogen , Oceans and Seas
2.
Biomaterials ; 27(16): 3084-95, 2006 Jun.
Article in English | MEDLINE | ID: mdl-16460796

ABSTRACT

A dextran-modified poly(vinyl amine) comb-like surfactant polymer, poly(N-vinyl dextran aldonamide-co-N-vinyl hexanamide), that can surface-adsorb on hydrophobic polymeric substrates, was designed to improve the interfacial blood-compatibility of polymeric biomaterials. Medical-grade polycarbonate was selected as a model substrate because of its extensive use in blood-contacting biomedical devices like hemodialyzers, blood pumps and oxygenators. The surfactant polymer was physisorbed from aqueous solution onto the polycarbonate substrate. The surfactant coating was stable under dynamic shear conditions in whole blood, as confirmed by fluorescence microscopy and total internal reflection fluorescence (TIRF) experiments with fluorescein-labeled surfactant polymer. The coated disks and uncoated control disks were exposed to platelet-rich plasma (PRP) and whole human blood in a rotating disk system (RDS) to study platelet-adhesion under dynamic shear stress environments. Adhered platelets were stained with fluorescein isothiocyante (FITC)-tagged anti-CD41a monoclonal antibody and imaged by epifluorescence microscopy. Complimentary images were obtained by phase-contrast microscopy. Platelet adhesion on the surfactant-coated disks was reduced by approximately 90%, compared with uncoated disks. The images also showed a concomitant reduction in platelet-derived microparticles on surfactant-coated disks, compared with uncoated disks. The results suggest potential application of carbohydrate-modified surfactant polymers as a glycocalyx-mimetic non-thrombogenic interfacial coating for blood-contacting biomaterials.


Subject(s)
Biomimetic Materials/pharmacology , Dextrans/chemistry , Glycocalyx/chemistry , Platelet Adhesiveness/drug effects , Polycarboxylate Cement/chemistry , Polyvinyls/chemistry , Adult , Biomimetic Materials/chemistry , Blood Platelets/cytology , Blood Platelets/drug effects , Blood Platelets/physiology , Humans , Microscopy, Fluorescence , Microscopy, Phase-Contrast , Molecular Structure , Polymers/chemistry , Shear Strength , Surface Properties , Surface-Active Agents/chemistry , Surface-Active Agents/pharmacology
SELECTION OF CITATIONS
SEARCH DETAIL
...