Volume 7, Issue 12
Communication
Full Access

A Magnetically Responsive Biomaterial System for Flexibly Regulating the Duration between Pro‐ and Anti‐Inflammatory Cytokine Deliveries

Anita E. Tolouei

Department of Chemical Engineering, University of Rhode Island, Kingston, RI, 02881 USA

Search for more papers by this author
Nihan Dülger

Department of Chemical Engineering, University of Rhode Island, Kingston, RI, 02881 USA

Search for more papers by this author
Rosa Ghatee

Department of Chemical Engineering, University of Rhode Island, Kingston, RI, 02881 USA

Search for more papers by this author
Stephen Kennedy

Corresponding Author

E-mail address: smkennedy@uri.edu

Department of Chemical Engineering, University of Rhode Island, Kingston, RI, 02881 USA

Department of Electrical, Computer and Biomedical Engineering, University of Rhode Island, Kingston, RI, 02881 USA

E‐mail: smkennedy@uri.eduSearch for more papers by this author
First published: 16 April 2018
Citations: 5

Abstract

While inflammation can be problematic, it is nonetheless necessary for proper tissue regeneration. However, it remains unclear how the magnitude and duration of the inflammatory response impacts regenerative outcome. This is partially due to the difficulty in temporally regulating macrophage phenotype at wound sites. Here, a magnetically responsive biomaterial system potentially capable of temporally regulating macrophage phenotypes through sequential, on‐demand cytokine deliveries is presented. This material system is designed to (i) rapidly recruit proinflammatory macrophages (M1) through initial cytokine deliveries and (ii) subsequently transition macrophages toward anti‐inflammatory phenotypes (M2s) through delayed, magnetically triggered cytokine release. Here, the ability of this system to initially deliver proinflammatory cytokines (i.e., monocyte chemoattractant protein‐1 and interferon gamma), recruit, and harbor an expanding macrophage population, and delay deliveries of anti‐inflammatory cytokines (i.e., IL‐4 and IL‐10) until the application of magnetic fields from simple hand‐held magnets is demonstrated. Critically, the timing and rate of these delayed deliveries can be remotely/magnetically controlled. This biomaterial system can provide a powerful tool in (i) understanding the relationship between inflammation and regenerative outcome, (ii) developing optimized cytokine delivery strategies, and (iii) clinically implementing those optimized delivery strategies with the on‐demand versatility needed to alter the course of therapies in real time.

Number of times cited according to CrossRef: 5

  • Ultrasonic Generation of Pulsatile and Sequential Therapeutic Delivery Profiles from Calcium-Crosslinked Alginate Hydrogels, Molecules, 10.3390/molecules24061048, 24, 6, (1048), (2019).
  • The role of biomaterials in stem cell-based regenerative medicine, Future Medicinal Chemistry, 10.4155/fmc-2018-0347, (2019).
  • Dynamic Titania Nanotube Surface Achieves UV-Triggered Charge Reversal and Enhances Cell Differentiation, ACS Applied Materials & Interfaces, 10.1021/acsami.9b11536, (2019).
  • Near-Infrared-Triggered Dynamic Surface Topography for Sequential Modulation of Macrophage Phenotypes, ACS Applied Materials & Interfaces, 10.1021/acsami.9b14808, (2019).
  • Injectable Biomimetic Hydrogels as Tools for Efficient T Cell Expansion and Delivery, Frontiers in Immunology, 10.3389/fimmu.2018.02798, 9, (2018).

The full text of this article hosted at iucr.org is unavailable due to technical difficulties.