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Intermolecular Forces03:13

Intermolecular Forces

Atoms and molecules interact through bonds (or forces): intramolecular and intermolecular. The forces are electrostatic as they arise from interactions (attractive or repulsive) between charged species (permanent, partial, or temporary charges) and exist with varying strengths between ions, polar, nonpolar, and neutral molecules. The different types of intermolecular forces are ion–dipole, dipole–dipole, hydrogen bonds, and dispersion; among these, dipole–dipole, hydrogen bonds, and dispersion...
Cationic Chain-Growth Polymerization: Mechanism00:57

Cationic Chain-Growth Polymerization: Mechanism

The cationic polymerization mechanism consists of three steps: initiation, propagation, and termination. In the initiation step of the polymerization process, the π bond of a monomer gets protonated by the Lewis acid catalyst, which is formed from boron trifluoride and water. The protonation of the π bond generates a carbocation stabilized by the electron‐donating group. In the propagation step, the π bond of the second monomer acts as a nucleophile and attacks the generated carbocation,...
Anionic Chain-Growth Polymerization: Mechanism01:04

Anionic Chain-Growth Polymerization: Mechanism

The mechanism for anionic chain-growth polymerization involves initiation, propagation, and termination steps. In the initiation step, a nucleophilic anion, such as butyl lithium, initiates the polymerization process by attacking the π bond of the vinylic monomer. As a result, a carbanion, stabilized by the electron‐withdrawing group, is generated. The resulting carbanion acts as a Michael donor in the propagation step and attacks the second vinylic monomer, which acts as a Michael acceptor.
Anionic Chain-Growth Polymerization: Overview01:20

Anionic Chain-Growth Polymerization: Overview

The polymerization process that involves carbanion as an intermediate is called anionic polymerization. It is also a type of addition or chain-growth polymerization. Anionic polymerization gets initiated by a strong nucleophile such as an organolithium or a Grignard reagent. The most commonly used initiator for anionic polymerization is butyl lithium. Monomers involved in anionic polymerization must possess a vinyl group bonded to one or two electron-withdrawing groups. For instance,...
Asymmetric Lipid Bilayer01:35

Asymmetric Lipid Bilayer

Biological membranes show uneven distribution of different types of lipids in the inner and outer layers, resulting in transverse asymmetric membranes. The treatment of the erythrocyte membrane with the enzyme phospholipase confirmed the asymmetric nature of the lipid bilayer. The enzyme hydrolyzes lipids into fatty acids and hydrophilic groups. The phospholipase acts only on the outer layer of the membrane, while the inner layer remains intact. The phospholipase treatment resulted in 80%...

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Related Experiment Video

Updated: May 9, 2026

Preparation and In Vitro Characterization of Dendrimer-based Contrast Agents for Magnetic Resonance Imaging
11:27

Preparation and In Vitro Characterization of Dendrimer-based Contrast Agents for Magnetic Resonance Imaging

Published on: December 4, 2016

Interactions between grafted cationic dendrimers and anionic bilayer membranes.

Thomas Lewis1, Venkat Ganesan

  • 1Department of Chemical Engineering, University of Texas at Austin, Austin, Texas 78712, United States.

The Journal of Physical Chemistry. B
|July 19, 2013
PubMed
Summary

Charged dendrimers can cross anionic lipid bilayers, with neutral grafts and pH changes influencing interactions. Grafts enhance pH sensitivity, making dendrimers potential drug delivery vectors.

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Area of Science:

  • Biophysics
  • Materials Science
  • Polymer Chemistry

Background:

  • Lipid bilayer membranes are crucial biological barriers.
  • Dendrimer molecules offer unique structural properties for potential applications.
  • Understanding dendrimer-membrane interactions is key for drug delivery systems.

Purpose of the Study:

  • To investigate the physics of charged dendrimer permeation across anionic lipid bilayers.
  • To analyze the impact of dendrimer shape, neutral grafts, and pH on membrane interactions.
  • To explore the potential of grafted dendrimers as pH-sensitive delivery vectors.

Main Methods:

  • Utilizing polymer self-consistent field theory.
  • Simulating charged dendrimer molecules and anionic lipid bilayer membranes.
  • Examining conformational rearrangements, grafting effects, and pH variations.

Main Results:

  • Dendrimer conformational changes significantly influence membrane interactions.
  • At neutral pH, grafted dendrimers are repelled by anionic bilayers.
  • Lowering pH to endosomal conditions can induce attractive dendrimer-membrane interactions.
  • Dendrimer insertion reduces membrane rupture tension, an effect amplified by grafts.

Conclusions:

  • Dendrimer shape deformation is critical for membrane interaction.
  • Grafted dendrimers exhibit pH-dependent membrane interactions, transitioning from repulsion to attraction.
  • Dendrimer insertion destabilizes membranes, lowering rupture tension.
  • Neutral polymer-grafted dendrimers show promise as effective pH-sensitive delivery vectors.