Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

We report size- and shape-controlled polymer brushes based on l-amino acid bioresource and study the role of polymer topology on the enzymatic biodegradation and deep-tissue penetration under in vitro and in vivo. For this purpose, l-tyrosine-based propargyl-functionalized monomer is tailor-made and polymerized via solvent-free melt polycondensation strategy to yield hydrophobic and clickable biodegradable poly(ester-urethane)s. Postpolymerization click chemistry strategy is applied to make well-defined amphiphilic one-dimensional rodlike and three-dimensional spherical polymer brushes by merely varying the lengths of PEG-azides in the reaction. These core-shell polymer brushes are found to be nontoxic and nonhemolytic and capable of loading clinical anticancer drug doxorubicin and deep-tissue penetrable near-infrared biomarker IR-780. In vitro enzymatic drug-release kinetics and lysotracker-assisted real-time live-cell confocal bioimaging revealed that the rodlike polymer brush is superior than its spherical counterparts for faster cellular uptake and enzymatic biodegradation at the endolysosomal compartments to release DOX at the nucleus. Further, in vivo live-animal bioimaging by IVIS technique established that the IR-780-loaded rodlike polymer brush exhibited efficient deep-tissue penetration ability and emphasized the importance of polymer brush topology control for biological activity. Polymer brushes exhibit good stability in the blood plasma for more than 72 h, they predominately accumulate in the digestive organs like liver and kidney, and they are less toxic to heart and brain tissues. IVIS imaging of cryotome tissue slices of organs confirmed the deep-penetrating ability of the polymer brushes. The present investigation opens opportunity for bioderived and biodegradable polymer brushes as next-generation smart drug-delivery scaffolds.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acs.biomac.4c00341DOI Listing

Publication Analysis

Top Keywords

polymer brushes
28
deep-tissue penetration
12
polymer brush
12
polymer
11
size- shape-controlled
8
biodegradable polymer
8
brushes based
8
based l-amino
8
l-amino acid
8
enzymatic biodegradation
8

Similar Publications

Background: Cleaning overdentures is challenging due to their complex metallic structures, which often create small and irregular areas that are difficult to clean. Thus, it is necessary to find an effective and safe method for their maintenance.

Objectives: The aim of the study was to evaluate the effects of hygiene methods on the dimensional changes and retention force of the O-ring system over a simulated two-year period.

View Article and Find Full Text PDF

Interfacial Behavior of PNIPAM Brushes under Shear and Thermal Stimuli: The Role of Grafting Density.

Langmuir

September 2025

School of Materials Science and Engineering, Sun Yat-sen University, Higher Education Megacenter, Guangzhou 510006, P. R. China.

The interface between grafted poly(-isopropylacrylamide) (PNIPAM) and fluid plays an important role in drug delivery, responsive nanomaterials, and separation technologies. However, under external shear, the transport at the interface is regulated by both the thermoresponsive behavior and grafting densities. This study combines equilibrium and nonequilibrium molecular dynamics simulations to investigate the synergistic effects of grafting density, temperature, and shear flow on the structural and dynamic properties of PNIPAM brushes in methanol-water solutions.

View Article and Find Full Text PDF

A simple model for the barrier properties of brushes with an arbitrary chain length distribution.

J Chem Phys

September 2025

Department of Materials - Faculty of Engineering, Imperial, London, United Kingdom.

Polymer brushes can form protective barriers on surfaces, reducing fouling and adsorption of foreign entities. Predicting how the properties of such surfaces depend on physical brush parameters has technological implications for the applications of these coatings. However, most theoretical models require in-depth knowledge or advanced mathematical and computational skills, which prevents their broad use.

View Article and Find Full Text PDF

Understanding the Effect of Surface-Grafted Polyethylene Glycol Chains on Scavenger Endothelial Cell Sequestration of Polymeric Nanoparticles via Quantitative Pharmacokinetic Analysis in Zebrafish Larvae.

ACS Appl Mater Interfaces

September 2025

Department of Materials Science and Engineering, The Pennsylvania State University, Steidle Building, 80 Pollock Road, University Park, Pennsylvania 16802, United States.

Scavenger endothelial cells (SECs) lining the liver sinusoids play a critical role in the rapid blood clearance of nanoparticle (NP)-based drug-delivery systems. However, how these cells recognize synthetic materials is largely unknown, which hampers the establishment of NP design criteria for prolonging their blood circulation time upon systemic administration. This study investigates how the surface-grafted chain conformation on the NPs affects their uptake by SECs.

View Article and Find Full Text PDF

Controlled PolyDMAEMA Functionalization of Titanium Surfaces via Graft-To and Graft-From Strategies.

Micromachines (Basel)

July 2025

Department of Industrial, Electronic and Mechanical Engineering, Roma Tre University, Via Vito Volterra 62, 00146 Rome, Italy.

Titanium is widely recognized as an interesting material for electrodes due to its excellent corrosion resistance, mechanical strength, and biocompatibility. However, further functionalization is often necessary to impart advanced interfacial properties, such as selective ion transport or stimuli responsiveness. In this context, the integration of smart polymers, such as poly(2-(dimethylamino)ethyl methacrylate) (PDMAEMA)-noted for its dual pH- and thermo-responsive behavior-has emerged as a promising approach to tailor surface properties for next-generation devices.

View Article and Find Full Text PDF