Article(id=1246459848989237748, tenantId=1146029695717560320, journalId=1246415837536497731, issueId=1246459843930903036, articleNumber=null, orderNo=null, doi=10.12307/2025.749, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1722787200000, receivedDateStr=2024-08-05, revisedDate=1732896000000, revisedDateStr=2024-11-30, acceptedDate=1730304000000, acceptedDateStr=2024-10-31, onlineDate=1775108786099, onlineDateStr=2026-04-02, pubDate=1766851200000, pubDateStr=2025-12-28, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1775108786099, onlineIssueDateStr=2026-04-02, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1775108786099, creator=13701087609, updateTime=1775108786099, updator=13701087609, issue=Issue{id=1246459843930903036, tenantId=1146029695717560320, journalId=1246415837536497731, year='2025', volume='29', issue='36', pageStart='7701', pageEnd='7920', issueExtLink='null', onlineDate='null', pubDate='null', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=1, specialIssue=null, createTime=1775108784853, creator=13701087609, updateTime=1775108852483, updator=13701087609, preIssue=null, nextIssue=null, ext={EN=IssueExt(id=1246460127511991018, tenantId=1146029695717560320, journalId=1246415837536497731, issueId=1246459843930903036, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1246460127511991019, tenantId=1146029695717560320, journalId=1246415837536497731, issueId=1246459843930903036, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null}, startPage=7839, endPage=7847, ext={EN=ArticleExt(id=1246459853821076058, articleId=1246459848989237748, tenantId=1146029695717560320, journalId=1246415837536497731, language=EN, title=Regenerative effects of engineered extracellular vesicles on repairing bone defects, columnId=1246459847353459153, journalTitle=Chinese Journal of Tissue Engineering Research, columnName=Review, runingTitle=null, highlight=null, articleAbstract=
BACKGROUND: Extracellular vesicles have received extensive attention in the field of bone defect regeneration and repair in recent years. However, natural extracellular vesicles have deficiencies in sustained controlled release, tissue targeting, and drug loading capacity. Therefore, the introduction of engineering strategies to modify extracellular vesicles to enhance their therapeutic efficacy has become a research hotspot.
OBJECTIVE: To review the role and application progress of engineered extracellular vesicles in the regeneration and repair of bone defects.
METHODS: PubMed, Web of Science, CNKI, and WanFang databases were searched for relevant articles published in the past fifteen years. The search terms were “engineering, extracellular vesicles, exosomes, bone defect, bone regeneration, bone repair” in Chinese and English. After removal of poorly related, outdated, and duplicate studies by screening, 93 articles were finally included for review according to inclusion criteria.
RESULTS AND CONCLUSION: (1) Extracellular vesicles are primarily isolated based on their density, size, immunoaffinity, and surface charge. After isolation, extracellular vesicles are characterized using imaging techniques, size- and counting-based techniques, and flow cytometry. (2) Extracellular vesicles stimulate bone regeneration by regulating immunity, angiogenesis, and proliferation and differentiation of target cells. (3) The engineering strategies of extracellular vesicles include surface modification and cargo loading. (4) The introduction of bone morphogenetic protein 2, mutant hypoxia-inducible factor-1α, vascular endothelial growth factor, miRNA and other bioactive factors into extracellular vesicles through engineering strategies can enhance their regenerative repair ability for bone defects.
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Sun Zhang, MM, Attending physician, Department of Stomatology, Affiliated Hongqi Hospital of Mudanjiang Medical University, Mudanjiang 157011, Heilongjiang Province, China
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背景: 近年来细胞外囊泡在骨缺损再生修复领域受到广泛关注。然而,天然细胞外囊泡在持续控释、组织靶向性和载药能力等方面存在不足。因此,引入工程化策略对细胞外囊泡进行改造,提高其治疗效果,成为当前研究的热点。
目的: 对工程化细胞外囊泡在骨缺损再生修复中的作用和应用进展做一综述。
方法: 检索PubMed、Web of Science、中国知网和万方数据库中近15年的相关文献,英文检索词为“engineering,extracellular vesicles,exosomes,bone defect,bone regeneration,bone repair”,中文检索词为“工程化,细胞外囊泡,外泌体,骨缺损,骨再生,骨修复”。经过筛选,排除相关性差、陈旧和重复的文献,对最终符合标准的93篇文献进行综述。
结果与结论: ①细胞外囊泡主要是基于密度、大小、免疫亲和力或表面电荷进行分离的,分离后依赖成像技术、基于尺寸测定和计数的技术以及流式细胞术进行表征;②细胞外囊泡通过调节免疫、血管生成、靶细胞的增殖与分化来刺激骨再生;③细胞外囊泡的工程化策略包括表面修饰和内容物装载2个方面;④利用工程化策略向细胞外囊泡引入骨形态发生蛋白2、突变缺氧诱导因子1α、血管内皮生长因子、miRNA和其他生物活性因子可以增强骨缺损再生修复能力。
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孙璋,硕士,主治医师,牡丹江医科大学附属红旗医院口腔科,黑龙江省牡丹江市 157011
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作者贡献:
文章设计和文章撰写为周洋,资料收集为刘可鑫和王得利,通讯作者孙璋负责审校。
Zhou Yang, MS, School of Stomatology, Mudanjiang Medical University, Mudanjiang 157011, Heilongjiang Province, China; Department of Stomatology, Affiliated Hongqi Hospital of Mudanjiang Medical University, Mudanjiang 157011, Heilongjiang Province, China
周洋,1986年生,黑龙江省牡丹江市人,汉族,硕士,主要从事口腔及骨生物医学材料和再生修复相关研究。
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Zhou Yang, MS, School of Stomatology, Mudanjiang Medical University, Mudanjiang 157011, Heilongjiang Province, China; Department of Stomatology, Affiliated Hongqi Hospital of Mudanjiang Medical University, Mudanjiang 157011, Heilongjiang Province, China
周洋,1986年生,黑龙江省牡丹江市人,汉族,硕士,主要从事口腔及骨生物医学材料和再生修复相关研究。
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周洋,1986年生,黑龙江省牡丹江市人,汉族,硕士,主要从事口腔及骨生物医学材料和再生修复相关研究。
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| 表面修饰 | 原理 | 优点 | 缺点 |
|---|
| 分离前表面修饰 | | | |
| 基因工程[54-55] | 使用细胞外囊泡膜结合蛋白赋予细胞外囊泡靶向特性 | 实现细胞外囊泡靶向或增加药物活性的潜力 | 细胞外囊泡富集的蛋白质结构域有限 |
| 代谢工程[53,56] | 向亲本细胞培养基中添加叠氮化物标记的代谢物 | 轻松实现细胞外囊泡表面功能化 | 无法控制修饰位点的特异性和效率 |
| 直接母细胞膜工程[53,57] | 亲本细胞与叠氮化物修饰的脂质体融合 | 适用于设计具有各种功能的细胞外囊泡 | 可能导致潜在的毒性或免疫原性 |
| 分离后表面修饰 | | | |
| 膜融合[58-60] | 脂质体与细胞外囊泡膜融合以实现表面修饰 | 可针对特定的药物输送问题进行定制 | 纯化过程复杂且可能导致免疫原性 |
| 疏水插入[61-62] | 使用亲脂性分子进行表面修饰 | 操作简易且灵活可控 | 需评估疏水插入稳定性问题 |
| 表面吸附[63-64] | 利用细胞外囊泡一般特性通过吸附进行表面修饰 | 操作简便且可使用患者来源的细胞外囊泡 | 研究相对较少 |
| 点击化学[66-67] | 利用炔烃-叠氮化物环加成反应进行表面修饰 | 可赋予细胞外囊泡靶向性 | 炔烃修饰方法缺乏位点特异性 |
), ArticleFig(id=1246459867079270499, tenantId=1146029695717560320, journalId=1246415837536497731, articleId=1246459848989237748, language=CN, label=表1, caption=
细胞外囊泡表面修饰的工程化方法
, figureFileSmall=null, figureFileBig=null, tableContent=
| 表面修饰 | 原理 | 优点 | 缺点 |
|---|
| 分离前表面修饰 | | | |
| 基因工程[54-55] | 使用细胞外囊泡膜结合蛋白赋予细胞外囊泡靶向特性 | 实现细胞外囊泡靶向或增加药物活性的潜力 | 细胞外囊泡富集的蛋白质结构域有限 |
| 代谢工程[53,56] | 向亲本细胞培养基中添加叠氮化物标记的代谢物 | 轻松实现细胞外囊泡表面功能化 | 无法控制修饰位点的特异性和效率 |
| 直接母细胞膜工程[53,57] | 亲本细胞与叠氮化物修饰的脂质体融合 | 适用于设计具有各种功能的细胞外囊泡 | 可能导致潜在的毒性或免疫原性 |
| 分离后表面修饰 | | | |
| 膜融合[58-60] | 脂质体与细胞外囊泡膜融合以实现表面修饰 | 可针对特定的药物输送问题进行定制 | 纯化过程复杂且可能导致免疫原性 |
| 疏水插入[61-62] | 使用亲脂性分子进行表面修饰 | 操作简易且灵活可控 | 需评估疏水插入稳定性问题 |
| 表面吸附[63-64] | 利用细胞外囊泡一般特性通过吸附进行表面修饰 | 操作简便且可使用患者来源的细胞外囊泡 | 研究相对较少 |
| 点击化学[66-67] | 利用炔烃-叠氮化物环加成反应进行表面修饰 | 可赋予细胞外囊泡靶向性 | 炔烃修饰方法缺乏位点特异性 |
), ArticleFig(id=1246459867196711021, tenantId=1146029695717560320, journalId=1246415837536497731, articleId=1246459848989237748, language=EN, label=null, caption=null, figureFileSmall=null, figureFileBig=null, tableContent=
| 内容物装载 | 原理 | 优点 | 缺点 |
|---|
| 内源性内容物装载 |
| 亲本细胞转染[12,68-69] | 将核酸、蛋白质和肽转染到亲本细胞 | 内容物装载方便稳定 | 因基因改变和转染毒性导致细胞变化 |
| 亲本细胞共培养[70] | 将亲本细胞与装载分子共同孵育 | 操作简单 | 装载效率低且对亲本细胞有毒性 |
| 外源性内容物装载 |
| 细胞外囊泡共培养[71-72] | 将细胞外囊泡与装载分子共同孵育 | 操作简单,细胞外囊泡完整性不变 | 装载效率低且内容物分子范围有限 |
| 电穿孔[73] | 电脉冲处理使细胞外囊泡膜上产生孔隙 | 优化流程,装载效率高 | 存在细胞外囊泡和内容物分子聚集风险 |
| 超声波[74-75] | 超声波处理诱导细胞外囊泡膜损伤 | 装载效率高 | 不适用于核酸分子装载 |
| 冻融循环[76] | 多次冻融处理诱导细胞外囊泡膜损伤 | 操作简单 | 装载效率低且存在蛋白变性风险 |
| 挤压[77] | 挤压处理诱导细胞外囊泡膜损伤 | 装载效率高,细胞外囊泡大小均匀 | 改变细胞外囊泡膜结构并具有细胞毒性 |
| 活性剂辅助渗透[76,78] | 表面活性剂处理使细胞外囊泡膜上产生孔隙 | 装载效率高 | 载药后需进行彻底净化 |
), ArticleFig(id=1246459867305762932, tenantId=1146029695717560320, journalId=1246415837536497731, articleId=1246459848989237748, language=CN, label=表2, caption=
细胞外囊泡的内容物装载的工程化方法
, figureFileSmall=null, figureFileBig=null, tableContent=
| 内容物装载 | 原理 | 优点 | 缺点 |
|---|
| 内源性内容物装载 |
| 亲本细胞转染[12,68-69] | 将核酸、蛋白质和肽转染到亲本细胞 | 内容物装载方便稳定 | 因基因改变和转染毒性导致细胞变化 |
| 亲本细胞共培养[70] | 将亲本细胞与装载分子共同孵育 | 操作简单 | 装载效率低且对亲本细胞有毒性 |
| 外源性内容物装载 |
| 细胞外囊泡共培养[71-72] | 将细胞外囊泡与装载分子共同孵育 | 操作简单,细胞外囊泡完整性不变 | 装载效率低且内容物分子范围有限 |
| 电穿孔[73] | 电脉冲处理使细胞外囊泡膜上产生孔隙 | 优化流程,装载效率高 | 存在细胞外囊泡和内容物分子聚集风险 |
| 超声波[74-75] | 超声波处理诱导细胞外囊泡膜损伤 | 装载效率高 | 不适用于核酸分子装载 |
| 冻融循环[76] | 多次冻融处理诱导细胞外囊泡膜损伤 | 操作简单 | 装载效率低且存在蛋白变性风险 |
| 挤压[77] | 挤压处理诱导细胞外囊泡膜损伤 | 装载效率高,细胞外囊泡大小均匀 | 改变细胞外囊泡膜结构并具有细胞毒性 |
| 活性剂辅助渗透[76,78] | 表面活性剂处理使细胞外囊泡膜上产生孔隙 | 装载效率高 | 载药后需进行彻底净化 |
), ArticleFig(id=1246459868857655419, tenantId=1146029695717560320, journalId=1246415837536497731, articleId=1246459848989237748, language=EN, label=null, caption=null, figureFileSmall=null, figureFileBig=null, tableContent=
| 工程化策略 | 发表年份 | 第一作者 | 细胞外囊泡来源 | 模型选择 | 结果 |
|---|
| 表面修饰 | 表面吸附 | 2020 | LIANG[81] | 骨髓间充质干细胞 | 兔股骨髁缺损 | 骨形态发生蛋白2修饰的骨髓间充质干细胞来源细胞外囊泡通过联合脱钙骨基质支架可增强骨诱导能力并促进骨修复 |
| | 疏水插入 | 2022 | WU[91] | 脂肪间充质干细胞 | 大鼠股骨缺损 | CREKA修饰的细胞外囊泡通过靶向纤维蛋白可增强骨修复 |
| | 化学修饰 | 2022 | SU[89] | 修复性施万细胞 | 大鼠颅骨缺损 | 磷脂酰丝氨酸靶向适体修饰的细胞外囊泡通过JNK3/MAPK通路促进神经、血管和骨骼再生 |
| 内容物装载 | 亲本细胞转染 | 2017 | LI[87] | 骨髓间充质干细胞 | 兔类固醇诱发的股骨头缺血性坏死 | 突变缺氧诱导因子1α修饰的骨髓间充质干细胞来源细胞外囊泡通过增强成骨和血管生成来促进股骨头缺血性坏死修复 |
| | 亲本细胞共培养 | 2019 | WEI[80] | 巨噬细胞 | 人骨髓间充质干细胞 | 骨形态发生蛋白2修饰的巨噬细胞来源细胞外囊泡通过自噬依赖性途径可增强人骨髓间充质干细胞成骨分化 |
| | 亲本细胞转染 | 2020 | HUANG[79] | 人骨髓来源基质细胞 | 大鼠颅骨缺损 | 骨形态发生蛋白2修饰的人骨髓基质细胞来源细胞外囊泡通过增强骨形态发生蛋白2信号级联促进骨再生 |
| | 亲本细胞转染 | 2020 | YING[88] | 骨髓间充质干细胞 | 大鼠颅骨缺损 | 突变缺氧诱导因子1α修饰的骨髓间充质干细胞来源细胞外囊泡通过联合β-磷酸三钙支架可促进骨再生和血管生成 |
| | 电穿孔 | 2021 | ZHA[90] | 小鼠软骨祖细胞系 | 大鼠桡骨缺损 | 负载血管内皮生长因子的细胞外囊泡可增强大节段骨缺损的成骨和血管重塑 |
| | 细胞外囊泡共培养 | 2023 | YU[93] | 牛奶 | 小鼠颅骨缺损 | 负载淫羊藿苷的细胞外囊泡通过促进STAT5a与GJA1启动子结合可增强骨修复 |
| | 亲本细胞转染 | 2023 | HUANG[83] | 人骨髓来源基质细胞 | 大鼠颅骨缺损 | 负载miR-424的人骨髓基质细胞来源细胞外囊泡通过激活SMAD1/5/8磷酸化可增强骨修复 |
| | 亲本细胞转染 | 2023 | LAI[84] | 骨髓间充质干细胞 | 小鼠牙周炎 | 负载miR-26a的骨髓间充质干细胞来源细胞外囊泡可促进实验性牙周炎的成骨能力并抑制骨质流失 |
| | 亲本细胞转染 | 2023 | SUN[82] | 小鼠胚胎成纤维细胞 | 小鼠颅骨缺损模型 | 骨形态发生蛋白2修饰的细胞外囊泡可促进骨髓间充质干细胞的增殖和成骨分化,改善原位骨再生 |
| 表面修饰联合内容物装载 | 基因工程、亲本细胞转染 | 2023 | LUO[85] | 293T/17细胞 | 大鼠牙周炎 | 负载miR-126的细胞外囊泡可有效减少骨吸收和破骨细胞生成,并抑制牙周炎进展 |
), ArticleFig(id=1246459868983484548, tenantId=1146029695717560320, journalId=1246415837536497731, articleId=1246459848989237748, language=CN, label=表3, caption=
工程化细胞外囊泡在骨缺损再生中的应用
, figureFileSmall=null, figureFileBig=null, tableContent=
| 工程化策略 | 发表年份 | 第一作者 | 细胞外囊泡来源 | 模型选择 | 结果 |
|---|
| 表面修饰 | 表面吸附 | 2020 | LIANG[81] | 骨髓间充质干细胞 | 兔股骨髁缺损 | 骨形态发生蛋白2修饰的骨髓间充质干细胞来源细胞外囊泡通过联合脱钙骨基质支架可增强骨诱导能力并促进骨修复 |
| | 疏水插入 | 2022 | WU[91] | 脂肪间充质干细胞 | 大鼠股骨缺损 | CREKA修饰的细胞外囊泡通过靶向纤维蛋白可增强骨修复 |
| | 化学修饰 | 2022 | SU[89] | 修复性施万细胞 | 大鼠颅骨缺损 | 磷脂酰丝氨酸靶向适体修饰的细胞外囊泡通过JNK3/MAPK通路促进神经、血管和骨骼再生 |
| 内容物装载 | 亲本细胞转染 | 2017 | LI[87] | 骨髓间充质干细胞 | 兔类固醇诱发的股骨头缺血性坏死 | 突变缺氧诱导因子1α修饰的骨髓间充质干细胞来源细胞外囊泡通过增强成骨和血管生成来促进股骨头缺血性坏死修复 |
| | 亲本细胞共培养 | 2019 | WEI[80] | 巨噬细胞 | 人骨髓间充质干细胞 | 骨形态发生蛋白2修饰的巨噬细胞来源细胞外囊泡通过自噬依赖性途径可增强人骨髓间充质干细胞成骨分化 |
| | 亲本细胞转染 | 2020 | HUANG[79] | 人骨髓来源基质细胞 | 大鼠颅骨缺损 | 骨形态发生蛋白2修饰的人骨髓基质细胞来源细胞外囊泡通过增强骨形态发生蛋白2信号级联促进骨再生 |
| | 亲本细胞转染 | 2020 | YING[88] | 骨髓间充质干细胞 | 大鼠颅骨缺损 | 突变缺氧诱导因子1α修饰的骨髓间充质干细胞来源细胞外囊泡通过联合β-磷酸三钙支架可促进骨再生和血管生成 |
| | 电穿孔 | 2021 | ZHA[90] | 小鼠软骨祖细胞系 | 大鼠桡骨缺损 | 负载血管内皮生长因子的细胞外囊泡可增强大节段骨缺损的成骨和血管重塑 |
| | 细胞外囊泡共培养 | 2023 | YU[93] | 牛奶 | 小鼠颅骨缺损 | 负载淫羊藿苷的细胞外囊泡通过促进STAT5a与GJA1启动子结合可增强骨修复 |
| | 亲本细胞转染 | 2023 | HUANG[83] | 人骨髓来源基质细胞 | 大鼠颅骨缺损 | 负载miR-424的人骨髓基质细胞来源细胞外囊泡通过激活SMAD1/5/8磷酸化可增强骨修复 |
| | 亲本细胞转染 | 2023 | LAI[84] | 骨髓间充质干细胞 | 小鼠牙周炎 | 负载miR-26a的骨髓间充质干细胞来源细胞外囊泡可促进实验性牙周炎的成骨能力并抑制骨质流失 |
| | 亲本细胞转染 | 2023 | SUN[82] | 小鼠胚胎成纤维细胞 | 小鼠颅骨缺损模型 | 骨形态发生蛋白2修饰的细胞外囊泡可促进骨髓间充质干细胞的增殖和成骨分化,改善原位骨再生 |
| 表面修饰联合内容物装载 | 基因工程、亲本细胞转染 | 2023 | LUO[85] | 293T/17细胞 | 大鼠牙周炎 | 负载miR-126的细胞外囊泡可有效减少骨吸收和破骨细胞生成,并抑制牙周炎进展 |
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