Skip to main content
ImmuneCited

Engineered Microalgal Extracellular Vesicles for Enhancing Mitochondrial Homeostasis in Radiodermatitis Prevention.

Jiarong Cui, Jia Dong, Yutong Lang, Xiaoyang Liu, Yuchen Qi et al.
Other ACS nano 2025 6 件の引用
PubMed DOI
<\/script>\n
`; }, get iframeSnippet() { const domain = 'immunecited.com'; const params = 'pmid\u003D40694433'; return ``; }, get activeSnippet() { return this.method === 'script' ? this.scriptSnippet : this.iframeSnippet; }, copySnippet() { navigator.clipboard.writeText(this.activeSnippet).then(() => { this.copied = true; setTimeout(() => { this.copied = false; }, 2000); }); } }" @keydown.escape.window="open = false" @click.outside="open = false">

Embed This Widget

Style



      
      
    

Widget powered by . Free, no account required.

Study Design

研究タイプ
In Vitro
対象集団
In vitro/in vivo radiodermatitis model
介入
Engineered Microalgal Extracellular Vesicles for Enhancing Mitochondrial Homeostasis in Radiodermatitis Prevention. None
比較対照
None
主要アウトカム
Protection against radiation-induced cellular damage
効果の方向
Positive
バイアスリスク
Unclear

Abstract

Radiodermatitis, one of the most prevalent side effects of cancer radiotherapy, is characterized by cellular oxidative stress, mitochondrial damage, and inflammatory responses. In this study, we isolated extracellular vesicles (EVs) from the natural microalgae Spirulina platensis (SP) and engineered them by loading astaxanthin (AST) into SP-EVs, resulting in the formation of SP-EVs@AST. This engineered system significantly enhanced the solubility and stability of AST while preserving the structural integrity and biological activity of SP-EVs, thereby enabling the complementary and synergistic effects of AST and SP-EVs. SP-EVs@AST demonstrated protective effects against radiation-induced cellular damage by alleviating oxidative stress, restoring mitochondrial function, and reducing inflammatory responses. To optimize topical administration, SP-EVs@AST were incorporated into a self-assembled hydrogel composed of aldehyde-functionalized hyaluronic acid (HA-CHO) and carboxymethyl chitosan (CMCS), forming a skin radiation protection dressing (SP-EVs@AST gel). This dressing effectively preserved the activity of SP-EVs@AST, facilitated its sustained release, protected the skin from progressive radiation-induced injury, and exhibited long-term biological safety. This system demonstrates the potential of engineered microalgal EVs as carriers for poorly soluble drugs, offering a promising strategy to expand their application as a targeted drug delivery platform in biomedical fields.

要約

SP-EVs@AST demonstrated protective effects against radiation-induced cellular damage by alleviating oxidative stress, restoring mitochondrial function, and reducing inflammatory responses, and exhibited long-term biological safety.

Used In Evidence Reviews

Similar Papers