Multi-SIP Hydrogel · A multifunctional self-immolative hydrogel for accelerating the healing of chronic wounds
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-02-01 → 2019-01-31
- EU contribution
- €173,857
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
A multifunctional self-immolative hydrogel for accelerating the healing of chronic wounds
Approximately 1–2% of people in developed countries—particularly the elderly and sufferers of diabetes or obesity—will experience in their lifetime a chronic skin wound characterised by tissue loss without spontaneous healing. This represents a major public health concern and a burden of several billions of dollars to not only the European, but also the global economy. Unfortunately, this burden is likely to grow as the world’s population ages and as diabetes and obesity become increasingly prevalent. Considering the growing need for more effective wound treatment options, the objective of this MSCA Fellowship has been to develop a dynamic hydrogel system containing stimuli-degradable self-immolative polymers (SIPs) to act as ‘sense-and-deliver’ modules for releasing drugs into chronic wound environments. SIPs are ideally suited to this application because they undergo complete depolymerisation in response to biochemical cues, making them useful stimuli-responsive materials. This project has made significant progress toward a multi-responsive hydrogel for accelerating chronic wound healing. I have developed a modular platform for preparing synthetic block copolymers featuring self-immolative side-chains. In water, these polymers self-assemble into nanoparticles (‘SIPsomes’), which can be loaded with drugs for treating chronic skin wounds. Importantly, these SIPsomes can be degraded by biochemical signals present within the wound environment, thereby triggering the release of specific drugs at different stages of the wound healing process. As proof-of-concept, successful payload delivery in vitro from a peroxide-responsive SIPsome has been demonstrated. This SIPsome will be used to interrupt the chronic inflammatory cycle of chronic wounds by delivering an inhibitory drug in response to reactive oxygen species. Ongoing work seeks to expand the suite of SIPsomes to target other stages of wound healing (proliferation, remodelling) toward a multifunctional SIPsome hydrogel that dynamically addresses several wound healing stages. This highly ambitious project involved collaborations between the Karolinska Institute and Imperial College London to synthesise and study this complex new biomaterial. The cross-disciplinary expertise from these collaborations, and my placement within the world-renowned Stevens Group, facilitated the promising outcomes of this project. Ongoing international collaborations established during this project will further develop this system for future clinical applications.
Data: CORDIS, © European Union
Project objective
In this Marie Skłodowska-Curie Fellowship project entitled “Multi-SIP Hydrogel” I will design a modular synthetic platform for preparing multifunctional self-immolative polymer (SIP) hydrogels designed to accelerate tissue regeneration in chronic skin wounds. The hydrogels will contain multiple SIP components, each designed to rapidly degrade and deliver a therapeutic payload in response to a specific biochemical stimulus typical of a chronic wound (e.g., reactive oxygen species or enzymatic action). During the two years of this Fellowship, I aim to establish a proof-of-principle SIP-hydrogel system that will undergo sequential stimuli-responsive degradation and promote cell proliferation in vitro. This Fellowship will be undertaken under the supervision of Prof. Molly Stevens in the Division of Biomaterials and Regenerative Medicine at the Karolinska Institute (KI), which has the world-leading expertise in polymer chemistry, biomaterials engineering, cell biology and tissue engineering crucial to the objectives of the proposed work plan. Due to the modular design of the ""Multi-SIP Hydrogel"" platform, there is broad scope for designing SIP-hydrogels matched to different tissue types once a proof-of-principle is established. This will initiate new research areas at the cutting edge of biomaterials science, which will help me to establish my own independent research career following the proposed Fellowship.""
Original text from CORDIS.
Participants
- KAROLINSKA INSTITUTET · STOCKHOLMCoordinatorSweden
Links
Data: CORDIS, © European Union
