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Updated: Aug 5, 2025

Quantification of Efferocytosis by Single-cell Fluorescence Microscopy
Published on: August 18, 2018
"Find-eat" strategy targeting endothelial cells via receptor functionalized apoptotic body nanovesicle
Shutong Qian1, Jiayi Mao1, Qiuyu Zhao1
1Department of Plastic and Reconstructive Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China.
Abstract:
Endothelial cell (EC) injury plays a key role in the chronic wound process. A long-term hypoxic microenvironment hinders the vascularization of ECs, thus delaying wound healing. In this study, CX3CL1-functionalized apoptotic body nanovesicles (nABs) were constructed. The "Find-eat" strategy was implemented through a receptor-ligand combination to target ECs that highly express CX3CR1 in the hypoxic microenvironment, therefore amplifying the "Find-eat" signal and promoting angiogenesis. Apoptotic bodies (ABs) were obtained by chemically inducing apoptosis of adipose-derived stem cells (ADSCs), and then functionalized nABs containing deferoxamine (DFO-nABs) were obtained through a series of steps, including optimized hypotonic treatment, mild ultrasound, drug mixing and extrusion treatment. In vitro experiments showed that nABs had good biocompatibility and an effective "Find-eat" signal via CX3CL1/CX3CR1 to induce ECs in the hypoxic microenvironment, thereby promoting cell proliferation, cell migration, and tube formation. In vivo experiments showed that nABs could promote the rapid closure of wounds, release the "Find-eat" signal to target ECs and realize the sustained release of angiogenic drugs to promote new blood vessel formation in diabetic wounds. These receptor-functionalized nABs, which can target ECs by releasing dual signals and achieve the sustained release of angiogenic drugs, may provide a novel strategy for chronic diabetic wound healing.
Insights
CX3CL1-functionalized nanovesicles target endothelial cells in hypoxic wounds, promoting healing. This "Find-eat" strategy enhances angiogenesis and diabetic wound closure.
Area of Science:
- Biomedical Engineering
- Regenerative Medicine
- Wound Healing Research
Background:
- Endothelial cell (EC) injury is central to chronic wound pathogenesis.
- Persistent hypoxia in wounds impairs EC vascularization, delaying healing.
- Targeted delivery systems are needed to overcome these challenges.
Purpose of the Study:
- To develop CX3CL1-functionalized apoptotic body nanovesicles (nABs) for chronic wound healing.
- To utilize a "Find-eat" strategy for targeted EC delivery in hypoxic environments.
- To promote angiogenesis and accelerate diabetic wound closure.
Main Methods:
- Constructed CX3CL1-functionalized nanovesicles from adipose-derived stem cell apoptotic bodies.
- Incorporated deferoxamine (DFO) into nanovesicles (DFO-nABs).
- Evaluated nABs in vitro for EC proliferation, migration, tube formation, and in vivo for diabetic wound healing.
Main Results:
- In vitro: nABs demonstrated biocompatibility and enhanced EC functions via CX3CL1/CX3CR1 targeting in hypoxia.
- In vivo: nABs promoted rapid wound closure and new blood vessel formation in diabetic models.
- Sustained release of angiogenic drugs from nABs was observed.
Conclusions:
- Receptor-functionalized nABs offer a novel strategy for chronic diabetic wound healing.
- The "Find-eat" targeting mechanism effectively promotes angiogenesis.
- Dual-signal release from nABs enhances therapeutic outcomes in complex wound environments.
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