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Bee Ovum-Inspired Hydrogel Programs Microenvironment Remodeling for Diabetic Wound Healing

delete2026-08-09
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OA
AI
Y
Yanan Xue
陆莹 (Ying Lü)
Y
Yiran Lin
周军平 cover
周军平 (Junping Zhou)
K
Kan Zhan
C
Cheng Chen
H
Huiling Zhang
B
Bailin Chen
X
Xue Cai
Q
Qiuping Zhou
L
Lei Pan
Y
Yi Sun
S
Sufan Wu
Z
Zhiqiang Liu
L
Liqun Jin *
Y
Yuguo Zheng
DOI:10.1016/j.mtbio.2026.103542delete
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Abstract

Abstract

En 中文
Chronic diabetic wounds heal poorly due to a persistently imbalanced microenvironment involving inflammation and bacterial infection. Notably, oxidative stress, driven by mitochondrial damage, perpetuates inflammation and hinders repair. Existing therapeutic materials struggle to simultaneously address infection, inflammation, and oxidative stress through combined drug delivery and targeted activation of mitophagy. To tackle these intertwined challenges, we designed a bee ovum-inspired hydrogel (BOV) that mimics the parasitic wasp egg strategy, firm host adhesion and staged bioactive secretion, to programmatically remodel the wound microenvironment. The BOV consists of a borate-ester-crosslinked hyaluronic acid network providing robust wet adhesion and self-healing properties. It encapsulates gelatin-coated ZIF-8@Myricetin (Myr) nanoparticles and polyhexamethylene biguanide (PHMB), which are released sequentially in response to the wound’s acidic, high-reactive oxygen species (ROS), and high-matrix metalloproteinase-9 (MMP-9) microenvironment: PHMB first exerts antibacterial action to control infection, followed by Myricetin release to scavenge ROS and suppress inflammation. Beyond antioxidant effects, BOV further activates the SIRT1/FOXO3a/BNIP3 pathway to promote mitophagy, clearing damaged mitochondria and thereby mitigating oxidative stress at its source. In vivo, BOV reduced bacterial burden, alleviated inflammatory response, and enhanced collagen deposition, and re-epithelialization. This study translates a natural parasitic strategy into a programmable drug-delivery platform, offering a promising approach for refractory diabetic wound therapy through microenvironment-responsive sequential treatment and upstream mitochondrial homeostasis restoration.

Journal

Materials Today Bio cover
Materials Today Bio
IF:
10.2
Papers:
3.6K
Citations:
9.5K

Organization

Z
zhejiang university of technology
Scholars:
3.1W
Papers: 1.9W
Citations: 22
H
hangzhou medical college
Scholars:
1.3K
Papers: 411
Citations: 0
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