diabetic wound

Magnetic Dressing Improves Diabetic Wound Healing

Researchers at the National University of Singapore have developed a magneto-responsive hydrogel wound dressing that also contains two different regenerative cell types. The hydrogel is also embedded with magnetic particles that can be stimulated using an external magnetic field. The action of the magnetic field on the gel-encapsulated particles causes mechanical stresses within the gel […]




diabetic wound

MoS2-functionalized chitosan hydrogel with antibacterial and antioxidant functions promotes healing of infected diabetic wounds

Mater. Chem. Front., 2024, 8,3770-3789
DOI: 10.1039/D4QM00562G, Research Article
Yingjie He, Jiahe Guo, Hua Li, Jiaxi Jiang, Jing Chen, Guichun Yang, Xiaofan Yang, Zhenbing Chen, Cuifen Lu
Construction and application of a MoS2-based injectable self-healing composite hydrogel with antibacterial and antioxidant dual functions for promoting infected diabetic wound healing.
The content of this RSS Feed (c) The Royal Society of Chemistry




diabetic wound

Skin-adhesive and self-healing diagnostic wound dressings for diabetic wound healing recording and electrophysiological signal monitoring

Mater. Horiz., 2024, 11,1997-2009
DOI: 10.1039/D3MH02064A, Communication
Zishuo Hou, Tengjiao Wang, Lei Wang, Junjie Wang, Yong Zhang, Qian Zhou, Zhengheng Zhang, Peng Li, Wei Huang
A diagnostic wound dressing was fabricated, which could record the diabetic wounds healing and monitor electrophysiological signals. The flexible substrate of dressings shows excellent tissue adhesive, self-healing, and antibacterial properties.
The content of this RSS Feed (c) The Royal Society of Chemistry




diabetic wound

Efficient healing of diabetic wounds by MSC-EV-7A composite hydrogel via suppression of inflammation and enhancement of angiogenesis

Biomater. Sci., 2024, 12,1750-1760
DOI: 10.1039/D3BM01904G, Paper
Xinyi Long, Qian Yuan, Rui Tian, Wanting Zhang, Lang Liu, Minghui Yang, Xin Yuan, Zhujie Deng, Quanjiang Li, Ronghui Sun, Yuyi Kang, Yingying Peng, Xiubin Kuang, Lingfang Zeng, Zhengqiang Yuan
An alginate hydrogel loaded with mesenchymal stem-cell-derived extracellular vesicles (EVs) and a 7-amino-acid peptide (7A) constitutes a novel dressing for efficient healing of diabetic wounds with anti-inflammation and pro-angiogenesis mechanisms.
The content of this RSS Feed (c) The Royal Society of Chemistry




diabetic wound

TWIST1-Reprogrammed Endothelial Cell Transplantation Potentiates Neovascularization-Mediated Diabetic Wound Tissue Regeneration

Hypo-vascularised diabetic non-healing wounds are due to reduced number and impaired physiology of endogenous endothelial progenitor cell (EPC) population that, limits their recruitment and mobilization at the wound site. To enrich the EPC repertoire from non-endothelial precursors, abundantly available mesenchymal stromal cells (MSCs) were reprogrammed into induced-endothelial cells (iECs). We identified cell signaling molecular targets by meta-analysis of microarray datasets. BMP-2 induction leads to the expression of inhibitory Smad 6/7-dependent negative transcriptional regulation of ID1, rendering the latter's reduced binding to TWIST1 during transdifferentiation of WJ-MSC into iEC. TWIST1, in turn, regulates endothelial genes transcription, positively of pro-angiogenic-KDR and negatively, in part, of anti-angiogenic-SFRP4. Twist1 reprogramming enhanced the endothelial lineage commitment of WJ-MSC, increased the vasculogenic potential of reprogrammed EC (rEC). Transplantation of stable TWIST1-rECs into full-thickness type 1 and 2 diabetic-splinted wound healing murine model enhanced the microcirculatory blood flow and accelerated the wound tissue regeneration. An increased or decreased co-localization of GFP with KDR/SFRP4 and CD31 in the regenerated diabetic wound bed with TWIST1 overexpression or silencing (piLenti-TWIST1-shRNA-GFP), respectively further confirmed improved neovascularization. This study depicted the reprogramming of WJ-MSCs into rECs using unique transcription factors, TWIST1 for an efficacious cell transplantation therapy to induce neovascularization–mediated diabetic wound tissue regeneration.