Related Experiment Video
Updated: Oct 7, 2025

Native Cell Membrane Nanoparticles System for Membrane Protein-Protein Interaction Analysis
Published on: July 16, 2020
Bioinspired Membrane-Disruptive Macromolecules as Drug-Free Therapeutics
Abstract:
Membrane-disruptive, drug-free macromolecular therapeutics may help overcome cancer drug-resistance. Their inability to distinguish cancerous from normal cells, however, results in significant off-target toxicity. Note that the tumor has a slightly acidic microenvironment (pH 6.5-6.8) in contrast to the alkaline microenvironment in normal tissues (pH 7.4) and that host-defense peptides (HDPs) and their synthetic mimetics need to be net cationic to be membrane-disruptive. We herein endow polymer mimetics of HDPs with acid-triggered cationicity, to make them membrane-disruptive at only tumor pH. For these polymer mimetics, there exists a maximal threshold of chain length that determines whether the micelle of a mimetic inherits its pH-sensitive activity. Using the most and least active micelles as representatives, we find that their distinct potency in disrupting membranes arises because of their striking tendency to dissociate upon exposure to tumor pH. As expected, these micelles exhibit in vitro cytotoxicity profiles that correlate with their membrane-disruptive activity profiles. When administered intravenously, these micelles-irrespective of their distinct activity profiles-unanimously exhibit long systemic circulation as do PEGylated micelle nanoparticles, despite of their lacking stealth materials, owing to the zwitterionic nature of their surfaces at blood pH. Nevertheless, the pH-sensitive micelle achieves significantly higher tumor uptake and strikingly better therapeutic efficacy than its completely inactive analogue. More important, the pH-sensitive micelle exhibits undetectable off-target toxicity, owing to its pH-sensitivity. Clearly, making HDPs and their mimetics sensitive to tumor-characteristic cues (e.g., acidic pH) is efficient in minimizing their off-target toxicity, thereby offering membrane-disruptive, drug-free macromolecular therapeutics for fighting against cancer drug-resistance.
Insights
New polymer mimetics of host-defense peptides (HDPs) are designed to be disruptive only in acidic tumor environments. This pH-sensitivity minimizes off-target toxicity, offering a promising drug-free cancer therapy.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Cancer Therapeutics
Background:
- Cancer drug resistance is a major challenge, often necessitating novel therapeutic strategies.
- Current membrane-disruptive therapeutics lack specificity, leading to significant off-target toxicity.
- Tumors exhibit a distinct acidic microenvironment (pH 6.5-6.8) compared to normal tissues (pH 7.4).
Purpose of the Study:
- To develop pH-sensitive polymer mimetics of host-defense peptides (HDPs) that are selectively membrane-disruptive at tumor pH.
- To investigate the relationship between polymer chain length, micelle dissociation, and membrane-disruptive activity.
- To evaluate the in vivo efficacy and toxicity of these pH-sensitive micelles as a drug-free cancer therapeutic.
Main Methods:
- Synthesized polymer mimetics of HDPs engineered with acid-triggered cationicity.
- Investigated micelle dissociation and membrane disruption at varying pH levels.
- Assessed in vitro cytotoxicity and in vivo tumor uptake, circulation time, and therapeutic efficacy in a cancer model.
Main Results:
- Polymer micelles demonstrated pH-dependent membrane disruption, dissociating more readily at tumor pH.
- Micelles exhibited long systemic circulation due to their zwitterionic nature at physiological pH.
- pH-sensitive micelles showed significantly enhanced tumor uptake and therapeutic efficacy with undetectable off-target toxicity compared to inactive analogues.
Conclusions:
- Engineering HDP mimetics with pH-sensitivity effectively targets the acidic tumor microenvironment.
- This approach minimizes off-target toxicity, presenting a viable strategy for drug-free macromolecular cancer therapeutics.
- pH-sensitive micelles offer a promising avenue for overcoming cancer drug resistance with improved safety profiles.
More Related Videos
08:31Biosensor-based High Throughput Biopanning and Bioinformatics Analysis Strategy for the Global Validation of Drug-protein Interactions
Published on: December 1, 2020
08:46Cell-Free Production of Proteoliposomes for Functional Analysis and Antibody Development Targeting Membrane Proteins
Published on: September 22, 2020
Related Concept Videos
Targets for Drug Action: Overview
Receptors are either membrane-spanning or intracellular proteins, which upon binding a ligand, get activated and transmit the signal downstream to elicit a response. Drugs bind receptors, either mimicking the action of endogenous ligands or blocking the receptor activity to bring about a modified response. Nearly 35% of approved drugs target the G...
Bioavailability Enhancement: Drug Permeability Enhancement
Cellular Membranes and Drug Transport
Phospholipids arrange themselves into a bilayer, with hydrophilic heads oriented outward and hydrophobic tails facing inward.
Principles of Drug Action
Drugs can be agonists or antagonists. Like the endogenous ligands, agonists always bind and activate the target to produce a cellular response. Agonist binding induces a conformational change which in turn...
Drug Biotransformation: Overview
Drug Discovery: Overview