Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Nanoplastic-induced Disruption of DPPC and Palmitic Acid Monolayers: Implications for Membrane Integrity

View through CrossRef
Nanoplastics are generated from the fragmentation of microplastics under various environmental conditions in the atmosphere. These tiny pollutants are widespread and can enter the human body through the air we breathe and the food and water we consume. Understanding how nanoplastics interact with different membrane lipids is paramount to discerning the kind of threat they pose in terms of lung alveolar destabilization, impaired cell communication, cell wall disruption, diminished nutrient delivery, and neurotoxicity. In this research, we examined the interaction of polystyrene nanoplastics with palmitic acid and phosphatidylcholine at the air-aqueous interface to identify individual lipid response. Employing a comprehensive experimental approach that includes infrared-reflection absorption spectroscopy (IRRAS), Langmuir isotherms and Brewster angle microscopy (BAM), we investigated chemical and physical changes of lipid monolayer systems with nanoplastics dispersed within the water solution phase. Increasing concentration of the polystyrene nanoplastics in the solution phase led to enhanced interfacial activity; the nanoplastics were observed to incorporate into the monolayer driven by lipid adsorption/complexation to the nanoplastics. The findings in this research aid in understanding the physical mechanisms through which nanoplastics may alter and impact biophysical interfaces.
Title: Nanoplastic-induced Disruption of DPPC and Palmitic Acid Monolayers: Implications for Membrane Integrity
Description:
Nanoplastics are generated from the fragmentation of microplastics under various environmental conditions in the atmosphere.
These tiny pollutants are widespread and can enter the human body through the air we breathe and the food and water we consume.
Understanding how nanoplastics interact with different membrane lipids is paramount to discerning the kind of threat they pose in terms of lung alveolar destabilization, impaired cell communication, cell wall disruption, diminished nutrient delivery, and neurotoxicity.
In this research, we examined the interaction of polystyrene nanoplastics with palmitic acid and phosphatidylcholine at the air-aqueous interface to identify individual lipid response.
Employing a comprehensive experimental approach that includes infrared-reflection absorption spectroscopy (IRRAS), Langmuir isotherms and Brewster angle microscopy (BAM), we investigated chemical and physical changes of lipid monolayer systems with nanoplastics dispersed within the water solution phase.
Increasing concentration of the polystyrene nanoplastics in the solution phase led to enhanced interfacial activity; the nanoplastics were observed to incorporate into the monolayer driven by lipid adsorption/complexation to the nanoplastics.
The findings in this research aid in understanding the physical mechanisms through which nanoplastics may alter and impact biophysical interfaces.

Related Results

Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
An Investigation into Hydrophobic Membrane Fouling in Desalination Using Membrane Distillation Technology
An Investigation into Hydrophobic Membrane Fouling in Desalination Using Membrane Distillation Technology
Demand for freshwater supplies is continuously increasing globally to the extent where some parts of the world became highly water stressed. In particular, the Arabian Gulf states ...
Sputum dipalmitoylphosphatidylcholine level as a novel airway inflammatory marker in asthmatic children
Sputum dipalmitoylphosphatidylcholine level as a novel airway inflammatory marker in asthmatic children
AbstractIntroduction:  Pulmonary surfactant is a unique mixture of lipids and surfactant‐specific proteins. Phosphatidylcholine comprises almost 80% of the total surfactant lipids,...
Imaging and identification of single nanoplastic particles and agglomerates
Imaging and identification of single nanoplastic particles and agglomerates
AbstractPollution by nanoplastic is a growing environmental and health concern. Currently the extent of nanoplastic in the environment can only be cumbersomely and indirectly estim...
Cyclodextrins permeabilize DPPC liposome membranes: a focus on cholesterol content, cyclodextrin type, and concentration
Cyclodextrins permeabilize DPPC liposome membranes: a focus on cholesterol content, cyclodextrin type, and concentration
Cyclodextrins (CDs) are known for their ability to extract lipid components from synthetic and biological membranes and therefore to induce an increase of membrane permeability. Ho...
Regulation of platelet-activating factor synthesis in human monocytes by dipalmitoyl phosphatidylcholine
Regulation of platelet-activating factor synthesis in human monocytes by dipalmitoyl phosphatidylcholine
Abstract Platelet-activating factor (PAF) has a major role in inflammatory responses within the lung. This study investigates the effect of pulmonary surfactant on t...
Developing guidelines for research institutions
Developing guidelines for research institutions
As introduced in Chapter 1, in this thesis, I developed guidelines to research institutions on how to foster research integrity. I did this by exploring how research institutions c...

Back to Top