The Therapeutic Potential of Exosomes in Ocular Surface Diseases
Abstract
1. Introduction
2. Search Strategy
3. Brief Overview of Exosomes
3.1. Exosomes and Extracellular Vesicles
3.2. Biological Characteristics and Functions of Exosomes
3.3. Exosome Isolation and Concentration
3.3.1. Differential Ultracentrifugation (DUC)
3.3.2. Density Gradient Ultracentrifugation (DGUC)
3.3.3. Polymer Precipitation
3.3.4. Size Exclusion Chromatography (SEC)
3.3.5. Immunological Affinity Capture (IAC)
3.3.6. Ultrafiltration
3.3.7. Other Methods
4. Therapeutic Effects of Exosomes on Dry Eye Disease
4.1. Non-Sjögren’s Syndrome-Related Dry Eye Disease
4.2. Dry Eye Disease Associated with Sjögren’s Syndrome
5. Therapeutic Effects of Exosomes on Corneal Injury
5.1. Corneal Epithelial Injury
5.2. Corneal Stromal Injury
5.3. Corneal Endothelial Injury
5.4. Corneal Injury and Intercellular Communication
5.5. Limbal Stem Cell Injury and Regeneration
5.6. Diabetes-Related Corneal Pathology
6. Therapeutic Effects of Exosomes on Other Ocular Surface Diseases
6.1. Keratoconus
6.2. Keratitis
6.2.1. Fungal Keratitis
6.2.2. Bacterial Keratitis
6.2.3. Viral Keratitis
6.2.4. Acanthamoeba Keratitis
6.3. Allergic Conjunctivitis
6.4. Pterygium
6.5. Transplant Rejection
7. Recent Advances in Optimizing Exosome-Based Drug Delivery Systems
8. Clinical Translation Challenges and Future Directions
8.1. Current Status of Clinical Translation of Exosomes in the Ocular Surface Field
8.2. Key Barriers to Clinical Translation
8.2.1. Scalability Challenges in Production
8.2.2. Quality Control and Standardization
8.2.3. Unknown Long-Term Safety and Mechanistic Ambiguity
8.2.4. Duration of Therapeutic Effect and Dosing Regimens
8.2.5. Challenges in Exosome Engineering
8.3. Future Directions and Perspectives
8.4. Current Limitations of Exosome-Based Therapies for Ocular Surface Diseases
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AK | acanthamoeba keratitis |
| AC | allergic conjunctivitis |
| APC | antigen-presenting cell |
| ADDE | aqueous-deficient dry eye |
| AF | aspergillus fumigatus |
| BC | bacillus coagulans |
| BAC | benzalkonium chloride |
| BMSC | bone marrow-derived MSC |
| CGCs | conjunctival goblet cells |
| CSSCs | corneal stromal stem cells |
| COMECs | cultured oral mucosal epithelial cells |
| DAMPs | damage-associated molecular patterns |
| DCs | dendritic cells |
| DGUC | density Gradient Ultracentrifugation |
| DUC | differential Ultracentrifugation |
| DEGMA | dimethylethylene glycol dimethacrylate |
| DHA | docosahexaenoic acid |
| DED | dry eye disease |
| ER | endoplasmic reticulum |
| ESCRT | endosomal sorting complex required for transport |
| EGF | epidermal growth factor |
| EMT | epithelial–mesenchymal transition |
| EDE | evaporative dry eye |
| ECM | extracellular matrix |
| EVs | extracellular vesicles |
| Fbxw7 | F-box and WD repeat domain-containing 7 |
| FAM | fluorescein amide |
| FECD | Fuchs’ endothelial corneal dystrophy |
| FK | fungal keratitis |
| FM | fungal metabolite |
| GelMA | gelatin methacrylate |
| HSK | herpes simplex keratitis |
| HSV-1 | herpes simplex virus type 1 |
| hADSC | human adipose-derived stem cell |
| HCEnCs | human corneal endothelial cells |
| HCECs | human corneal epithelial cells |
| HCFs | human corneal fibroblasts |
| HCKs | human corneal keratocytes |
| HCMs | human corneal myofibroblasts |
| hUCMSC | human umbilical cord mesenchymal stem cell |
| HA | hyaluronic acid |
| IAC | immunological Affinity Capture |
| iPSC | induced pluripotent stem cell |
| ILVs | intraluminal vesicles |
| KC | keratoconus |
| LESCs | limbal epithelial stem cells |
| LMs | limbal melanocytes |
| LNCs | limbal niche cells |
| LSCD | limbal stem cell deficiency |
| MMPs | matrix metalloproteinases |
| MSCs | mesenchymal stem cells |
| MISEV2023 | Minimal Information for Studies of Extracellular Vesicles |
| MAPK | mitogen-activated protein kinase |
| MWCO | molecular weight cut-offs |
| mADSC | mouse adipose-derived stem cell |
| mAF-MSC | mouse amniotic fluid-derived mesenchymal stem cell |
| MVBs | multivesicular bodies |
| MDSCs | myeloid-derived suppressor cells |
| NOD | non-obese diabetic |
| NF-κB | nuclear factor kappa B |
| OSDs | ocular surface diseases |
| OE | olfactory ecto |
| PDLSC | periodontal ligament stem cell |
| PEG | polyethylene glycol |
| PA | pseudomonas aeruginosa |
| ROS | reactive oxygen species |
| Treg | regulatory T cells |
| SEC | size Exclusion Chromatography |
| SS | Sjögren’s syndrome |
| sEVs | small extracellular vesicles |
| SPMs | specialized pro-resolving mediators |
| Tfh | T follicular helper cells |
| Th17 | T helper 17 cells |
| THH | thermosensitive hydrogel |
| TSP-1 | thrombospondin-1 |
| UPR | unfolded protein response |
| VEGFR1 | vascular endothelial growth factor receptor 1 |
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| Author & Year | Cell Type/Tissue-Origin of Exosomes * | Exosome Isolation # | Content Analyzed | Exosome Analysis Methods ^ | Disease Model | Level of Evidence | Main Finding | Animal Species | Administration Route | Administered Dose | Dosing Frequency | Treatment Duration | Follow-Up Period | Duration of Therapeutic Effect |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| (Lee and Dartt et al., 2024) [14] | HCjGC | PEG | Lipid mediators | TEM, NTA, WB | Allergic conjunctivitis | In vitro study | female CjGCs increase SPMs | |||||||
| (Buono et al., 2021) [15] | BMSC, serum | DUC | miRNA | FC, NTA, WB | Corneal endothelial dystrophy | In vitro study | protect against ER stress | |||||||
| (Altug et al., 2024) [16] | CSSC | DUC | miRNA, RNA | FC, TEM, DLS | Corneal injury | In vitro study | antifibrotic and promote regeneration | |||||||
| (An et al., 2023) [17] | BMSC | DUC | None | NTA | Corneal injury | In vitro study | mediate wound healing | |||||||
| (Bonelli et al., 2025) [18] | BMSC | SEC | None | NTA, TEM, WB, FC | Corneal injury | Observational study Ex vivo study | enhance epithelial repair | |||||||
| (Desjardins et al., 2022) [19] | HCEC, HCF, HCEnC | DUC | None | NTA, TEM, WB, DLS | Corneal injury | In vitro study | promote wound healing | |||||||
| (Donohoe et al., 2025) [20] | MSC | DUC, SEC | None | NTA, TEM, FC | Corneal injury | Animal model In vitro study | TGF-β1-licensed MSC-sEV reduce inflammation | mouse | topical/subconjunctival injection | Topical: 10 μL Subconjunctival: 30 μL | Topical: days 0, 1, 3 Subconjunctival: days 0, 3 | 3 days | 2 weeks | 2 weeks |
| (Escandon et al., 2022) [21] | Salivary | None | None | ExoView | Corneal injury | In vitro study | regulate wound healing | |||||||
| (Han et al., 2015) [22] | mCF | DGUC | Protein | SDS-PAGE | Corneal injury | In vitro study | MMP14-containing in angiogenesis | |||||||
| (Han et al., 2017) [23] | CEC | DUC, PEG | Protein | EM, DLS, WB, LC-MS/MS | Corneal injury | In vitro study | mediate corneal communication | |||||||
| (Han et al., 2019) [24] | mCF | DUC, PEG | Protein | TEM, NTA, WB | Corneal injury | In vitro study | MMP14-containing cleave VEGFR1 | |||||||
| (Han et al., 2025) [25] | ADSC | DUC | None | NTA, TEM, SEM, DLS | Corneal injury | In vitro study | OExo-NPs alleviate hypoxia | |||||||
| (Hefley et al., 2024) [26] | HCEC, HCF | DUC | Protein | ExoView | Corneal injury | Observational study Ex vivo study | diabetes alters composition | |||||||
| (Hu et al., 2022) [27] | HAEC | DUC | miRNA, protein | NTA, TEM, WB | Corneal injury | Animal model In vitro study | promote ECM reorganization | rabbit | topical/subconjunctival injection | Topical: 40 μL Subconjunctival: 100 μL | Topical: 3 times daily Subconjunctival: twice weekly | 2 weeks | 2 weeks | 2 weeks |
| (Lee et al., 2024) [28] | iPSC | PEG | miRNA | NTA, TEM, WB | Corneal injury | Animal model | hiPSC-RO enhance wound healing | mouse | topical instillation | 5 μL | 3 times (0, 10, 20 min post-injury) | / | 36 h | 36 h |
| (Lee et al., 2025) [29] | M1 macrophage, M2a macrophage | PEG | None | NTA | Corneal injury | In vitro study | M2a macrophage microenvironment promotes HCEC healing | |||||||
| (Liang et al., 2025) [30] | Salivary | None | None | None | Corneal injury | Animal model In vitro study | promote wound healing | mouse | topical instillation | 10 μg | twice daily | 3 days | 3 days | 3 days |
| (Liu et al., 2024) [31] | BMSC | DUC | miRNA | TEM, NTA, WB | Corneal injury | Animal model In vitro study | miR-29b-3p activates autophagy | mouse | topical/subconjunctival injection | 5 μL | Topical: 3 times daily (days 1–7) Subconjunctival: twice weekly (days 8–14) | 2 weeks | 2 weeks | 2 weeks |
| (Ma et al., 2025) [32] | ADSC | DUC | None | TEM, NTA | Corneal injury | Animal model In vitro study | inhibit apoptosis and scarring | rat | topical instillation | 7.5 μL | single dose | / | 2 weeks | 2 weeks |
| (Mckay et al., 2020) [33] | HCEC | DUC | Protein | TEM, WB, STED, IF, MS | Corneal injury | In vitro study | promote myofibroblast differentiation | |||||||
| (Meissner et al., 2024) [34] | ADSC | DUC | None | FC | Corneal injury | In vitro study | mitigate ER stress | |||||||
| (Nuzzi et al., 2021) [35] | BMSC | DUC | None | NTA | Corneal injury | In vitro study | promote HCEC regeneration | |||||||
| (Ong et al., 2023) [36] | ESC-MSC | TFF | None | NTA, WB, ELISA | Corneal injury | Animal model In vitro study | reduce corneal scarring | rat | topical instillation | 8 μL | 6 times daily | 5 days | 5 days | 5 days |
| (Ryu et al., 2023) [37] | ADSC | SEC | miRNA | IF, NGS | Corneal injury | In vitro study | promote CEC regeneration | |||||||
| (Saccu et al., 2022) [38] | BMSC | DUC | None | NTA, FC, TEM, WB, ExoView | Corneal injury | Animal model In vitro study | regulate inflammation and angiogenesis | mouse | topical instillation | 10 μL | twice daily for 5 days, then every other day | 2 weeks | 2 weeks | 2 weeks |
| (Samaeekia et al., 2018) [39] | CSSC | DUC | None | TEM, DLS, WB | Corneal injury | Animal model In vitro study | accelerate wound healing | mouse | topical instillation | 5 μL | 4 times (0, 10, 20, 30 min post-injury) | / | 1 day | 1 day |
| (Saraf et al., 2024) [40] | Serum | SEC | Metabolite, protein | NTA, TEM, WB, LC-MS/MS, ELISA | Corneal injury | In vitro study | retain wound healing without inflammation | |||||||
| (Shojaati et al., 2019) [41] | CSSC | PEG, DUC | miRNA | TRPS, WB, TEM, FC, miRNA-Seq | Corneal injury | Animal model In vitro study | deliver anti-fibrotic miRNAs | mouse | topical administration | 109 particles/mL (in 1 μL fibrin gel) | single dose | / | 4 weeks | 4 weeks |
| (Sun et al., 2023) [42] | ADSC | DGUC | miRNA | TEM, FC, WB, NTA | Corneal injury | Animal model In vitro study | miRNA 24-3p-rich promote epithelial healing | rabbit | topical/subconjunctival injection | / | Decreasing frequency | 4 weeks | 4 weeks | 4 weeks |
| (Tao et al., 2019) [43] | hP-MSC | DUC | None | ELISA, TEM, DLS | Corneal injury | Animal model | promote corneal wound healing | mouse | topical instillation | 10 μL | 3 times daily | 2 weeks | 2 weeks | 2 weeks |
| (Tati et al., 2024) [44] | BMSC | PEG | None | TEM, SEM, NTA, WB, IF | Corneal injury | In vitro study | suppress apoptosis | |||||||
| (Tati et al., 2024) [45] | BMSC, HCEC | PEG | None | TEM, SEM, NTA, WB, IF | Corneal injury | In vitro study | outperform HCEC-EVs | |||||||
| (Verma et al., 2023) [46] | LESC | DUC | miRNA, protein | NTA, FC, WB, IF, NGS, LC-MS | Corneal injury | In vitro study | diabetic LEC-derived alter LSC function | |||||||
| (Villatoro et al., 2020) [47] | LESC | DUC | Protein | TEM, DLS, WB | Corneal injury | In vitro study | cLSC secretome inhibits fibroblast proliferation | |||||||
| (Wang et al., 2020) [48] | iPSC, hUC-MSC | DUC | None | TEM, NTA, WB | Corneal injury | Animal model In vitro study | iPSC-derived outperform MSC-derived | rat | topical instillation | 5 μL | 4 times daily | 2 days | 2 days | 2 days |
| (Wang et al., 2023) [49] | ADSC | DUC | None | NTA, TEM, WB | Corneal injury | Animal model In vitro study | activate NGF/TrkA pathway | mouse | topical instillation | 10 μL | 3 times daily | 2 weeks | 2 weeks | 2 weeks |
| (Wang et al., 2024) [50] | Milk | DUC | Loaded drug | TEM, FC, WB | Corneal injury | Animal model In vitro study | DXMS@EXO modulates Wnt pathway | mouse | topical instillation | 5 μL | twice daily | 1 week | 1 week | 1 week |
| (Wei et al., 2025) [51] | MSC | None | None | NTA, TEM, WB | Corneal injury | Animal model In vitro study | OGG/CMCS hydrogel promotes healing | rabbit | topical administration | 8.75 × 109 particles/mL | single dose | / | 8 weeks | 8 weeks |
| (Widyaningrum et al., 2022) [52] | Platelet | DUC | Protein | AFM, NTA, DLS, WB | Corneal injury | In vitro study | promote CEC regeneration | |||||||
| (Wu et al., 2023) [53] | BMSC | None | None | None | Corneal injury | Animal model | repair diabetic cornea | mouse | Subconjunctival injection | 20 μL | single dose | / | 3 days | 3 days |
| (Xu et al., 2024) [54] | mAF-MSC | DUC | mRNA, Protein | None | Corneal injury | Animal model In vitro study | deliver DNMT1 | mouse | injection in the corneal endothelium | 10 μL | single dose | / | 10 days | 10 days |
| (Xu et al., 2025) [55] | BMSC | DUC | None | TEM, DLS, NTA | Corneal injury | Animal model In vitro study | 3D-derived deliver miR-150-5p targeting PDCD4 | rabbit | topical administration | / | single dose | / | 4 weeks | 4 weeks |
| (Yam et al., 2023) [56] | CSSC | PEG, DUC | miRNA | TRPS, FC | Corneal injury | Animal model In vitro study | miR-29a/381 identify healing CSSCs | mouse | topical administration | / | single dose | / | 10 days | 10 days |
| (Yeung et al., 2022) [57] | HCK, HCF, HCM | DUC | Protein | WB, NTA, TEM, MS | Corneal injury | In vitro study | promote epithelial migration | |||||||
| (Yeung et al., 2024) [58] | HCEC, HCK, HCF, HCM | DUC | Protein | WB, NTA, TEM, MS | Corneal injury | In vitro study | have distinct protein profiles | |||||||
| (Yu et al., 2022) [59] | BMSC | DGUC | None | TEM, NTA | Corneal injury | In vitro study | cornea-on-chip validates MSC-derived | |||||||
| (Yu et al., 2024) [60] | ADSC | DUC | Loaded drug | TEM, FC, IF, NTA, ELISA | Corneal injury | Animal model In vitro study | aT-Exo synergistically alleviates injury | mouse | topical instillation/topical administration/subconjunctival injection | 1 μg | once every 3 days | 2 weeks | 2 weeks | 2 weeks |
| (Zhao et al., 2023) [61] | MSC | PEG | siRNA | TEM | Corneal injury | Animal model | exosome-siRel accelerates wound healing | mouse | topical instillation | 1.25 μg | 3 times daily | 2 days | 2 days | 2 days |
| (Zhou et al., 2023) [62] | BMSC | PEG | None | TEM, WB, NTA | Corneal injury | Animal model In vitro study | activate p44/42 MAPK | mouse | subconjunctival injection | 100 μg | once daily | 1 or 2 weeks | 2 weeks | 2 weeks |
| (Chen et al., 2021) [63] | Plasma | SEC | Protein | WB, NTA, TEM, MS | Diabetic keratopathy | Observational study Ex vivo study | FLOT2 as DK biomarker | |||||||
| (Chan et al., 2025) [64] | hUC-MSC | TFF | None | NTA | Dry eye disease | Animal model | reduce inflammation | rat | topical instillation | 20–30 μL | twice daily | 2 weeks | 8 weeks | 8 weeks |
| (Chen et al., 2025) [65] | hUC-MSC | DUC | miRNA | IF | Dry eye disease | Animal model In vitro study | miR-146a targets SQSTM1 | mouse | topical instillation | 5 μL | twice daily | 1 week | 1 week | 1 week |
| (Cross et al., 2023) [66] | Tear | DUC | RNA | NTA, TEM, FC, WB | Dry eye disease | Observational study Ex vivo study | DED diagnostic biomarker | |||||||
| (Guo et al., 2022) [67] | hUC-MSC | DUC | None | TEM, NTA, WB | Dry eye disease | In vitro study | suppress ocular inflammation via DC-Th17 inhibition | |||||||
| (Lee et al., 2024) [68] | Limosilactobacillus fermentum | DUC | None | ElISA, NTA, TEM | Dry eye disease | In vitro study | probiotic-derived reduce conjunctival inflammation | |||||||
| (Ma et al., 2023) [69] | BMSC | DGUC | Loaded drug | TEM, NTA, WB | Dry eye disease | Animal model In vitro study | mExo@AA synergistically treats DED | mouse | topical instillation | 5 μL | twice daily | 1 week | 1 week | 1 week |
| (Pucker et al., 2022) [70] | Tear film | PEG | miRNA | ELISA, TEM, RNA-Seq | Dry eye disease | Observational study Ex vivo study | contain DED-associated miRNAs | |||||||
| (Ren et al., 2024) [71] | PDLSC | DUC | None | TEM, NTA, WB | Dry eye disease | In vitro study | protect goblet cells | |||||||
| (Ren et al., 2025) [72] | Milk | DUC | None | TEM, NTA, DLS, WB | Dry eye disease | Animal model In vitro study | lyophilized retain therapeutic efficacy | rabbit | topical instillation | 50 μL | twice daily | 12 days | 12 days | 12 days |
| (Tian et al., 2023) [73] | BMSC | DUC | Loaded drug | TEM, EDS, NTA, ICP-MS | Dry eye disease | Animal model In vitro study | MSCExo-Ce scavenges ROS | mouse | topical instillation | 10 μL | twice daily | 1 week | 1 week | 1 week |
| (Wang et al., 2022) [74] | ADSC | DUC | None | TEM, NTA, WB | Dry eye disease | Animal model | inhibit NLRP3 | mouse | topical instillation | 5 μL | 3 times daily | 1 week | 1 week | 1 week |
| (Wang et al., 2023) [75] | hUC-MSC | DUC | miRNA | TEM, NTA, WB, miRNA-Seq | Dry eye disease | Animal model | target IRAK1/TAB2/NF-κB | mouse | topical instillation | 5 μL | 4 times daily | 3 weeks | 3 weeks | 3 weeks |
| (Xie et al., 2024) [76] | CEC | DUC | siRNA | DLS, NTA, TEM | Dry eye disease | Animal model In vitro study | hybrid deliver siRNA | mouse | topical instillation | 5 μL | 3 times daily | 1 week | 1 week | 1 week |
| (Yang et al., 2024) [77] | M2 macrophage | DUC | None | TEM, WB, NTA | Dry eye disease | Animal model | treat DED | mouse | topical instillation | 5 μL | twice daily | 10 days | 20 days | 20 days |
| (Yi et al., 2024) [78] | HAEC | DUC, IAC | None | TEM, NTA, SDS-PAGE | Dry eye disease | Animal model In vitro study | treat DED | mouse | topical instillation | 5 μL | 3 times daily | 2 weeks | 2 weeks | 2 weeks |
| (Yu et al., 2020) [79] | ADSC | PEG | None | TEM, WB | Dry eye disease | Animal model In vitro study | inhibit NLRP3 | mouse | topical instillation | 5 μL | 4 times daily | 5 days | 5 days | 5 days |
| (Zhao et al., 2024) [80] | BMSC | DUC | miRNA | TEM, NTA | Dry eye disease | Observational study Animal model Ex vivo study | deliver miR-21-5p | mouse | Intravenous injection (tail vein) | 50 μg | every other day | 2 weeks | 2 weeks | 2 weeks |
| (Zhou et al., 2022) [81] | hUC-MSC, BMSC | DUC | miRNA | TEM, NTA, WB, miRNA-Seq | Dry eye disease | Clinical trial Animal model | miR-204 reprograms M1 to M2 | mouse/human | topical instillation | mouse: 5 μL human: 50 μL | mouse: twice daily human: 4 times daily | mouse: 1 week human: 2 weeks | mouse: 1 week human: 2 weeks | mouse: 1 week human: 2 weeks |
| (Parekh et al., 2021) [82] | HCEnC | DUC | None | NTA, FC, IF | Fuchs’ endothelial corneal dystrophy | In vitro study | inhibit CEC proliferation | |||||||
| (Parekh et al., 2023) [83] | HCEC | DUC | miRNA | NGS | Fuchs’ endothelial corneal dystrophy | In vitro study | inhibiting miR-195-5p induces HCEC proliferation | |||||||
| (Ayilam Ramachandran et al., 2023) [84] | Pseudomonas aeruginosa | SEC | Protein | NTA, TEM, MS | Keratitis | In vitro study | disrupt innate immunity | |||||||
| (Ayilam Ramachandran et al., 2024) [85] | CEC | SEC | None | NTA, WB, TEM, SDS-PAGE | Keratitis | In vitro study | mediate neutrophil chemotaxis | |||||||
| (Ayilam Ramachandran et al., 2024) [86] | CEC | SEC | Metabolite | NTA, TEM, WB | Keratitis | In vitro study | exploited by PA to deplete PAMC | |||||||
| (Duan et al., 2024) [87] | Candida albicans | DUC | None | TEM, NTA, SDS-PAGE | Keratitis | Animal model In vitro study | protect against keratitis | mouse | subconjunctival injection | 10 μL | single dose | / | 5 days | 5 days |
| (Huang et al., 2023) [88] | Tear | DUC | None | SDS-PAGE, WB, DLS, IF | Keratitis | Observational study Ex vivo study | tear exosomes spread HSV-1 | |||||||
| (Lin et al., 2019) [89] | Acanthamoeba castellanii | PEG | Protein | SDS-PAGE, TEM, NTA, LC-MS/MS | Keratitis | In vitro study | induce immune response | |||||||
| (Ma et al., 2024) [90] | Tear | DUC | Metabolite | NTA, TEM, WB | Keratitis | Observational study Ex vivo study | tear metabolites as HSK indicators | |||||||
| (Meng et al., 2024) [91] | Aspergillus fumigatus | DUC | None | TEM, NTA, WB, SDS-PAGE | Keratitis | Animal model In vitro study | mitigate fungal keratitis | mouse | subconjunctival injection | 10 μL | single dose | / | 3 days | 3 days |
| (Yu et al., 2025) [92] | HCEC | DUC | miRNA | TEM, NTA, WB | Keratitis | In vitro study | let-7b-5p promotes M1 activation | |||||||
| (Hadvina et al., 2023) [93] | HKC, HCF | DUC | miRNA, protein | NTA, TEM, IEM, WB | Keratoconus | Observational study Ex vivo study | altered miRNA/protein profile in KC | |||||||
| (Hefley et al., 2022) [94] | Tear | None | None | ExoView | Keratoconus | Observational study Ex vivo study | tEVs differ in KC | |||||||
| (Lozano et al., 2022) [95] | HCK, HKC | PEG | miRNA, protein | NTA, TEM, SDS-PAGE, LC-MS/MS, NGS | Keratoconus | Observational study Ex vivo study | alter stromal cell behavior | |||||||
| (Ergin et al., 2025) [96] | ADSC | DUC | None | DLS, NTA, TEM | Limbal stem cells deficiency | Animal model | treat LSCD | cat | topical instillation | 60 μL/3 mL | 4 times daily | 15 days | 30 days | 30 days |
| (Guo et al., 2022) [97] | Cultured oral mucosal epithelial cell | PEG | miRNA | NTA, TEM, WB | Limbal stem cells deficiency | In vitro study | miRNAs mediate angiogenesis inhibition | |||||||
| (Li et al., 2025) [98] | ADSC | DUC | miRNA | NTA, SEM, WB, RNA-Seq | Limbal stem cells deficiency | In vitro study | enhance LEC colony formation via miRNAs | |||||||
| (Ramos et al., 2022) [99] | HCjEC | DUC | miRNA | NTA, FC, NGS | Limbal stem cells deficiency | In vitro study | trigger epithelial transdifferentiation | |||||||
| (Wang et al., 2023) [100] | CSSC | DUC | miRNA | TEM, NTA, WB, miRNA-Seq | Limbal stem cells deficiency | In vitro study | enhance LESC stemness via Notch | |||||||
| (Hur et al., 2025) [101] | hUC-MSC | SEC | siRNA | TEM, NTA, WB | Neovascular ocular disease | In vitro study | VEGFA siRNA-loaded induce apoptosis | |||||||
| (Liu et al., 2025) [102] | Platelet | DUC | Loaded drug | TEM, DLS, NTA | Neovascular ocular disease | Animal model In vitro study | PEV-KM inhibits neovascularization | mouse | topical instillation | 5 μL | once daily | 1 week | 1 week | 1 week |
| (Kistenmacher et al., 2024) [103] | CSSC, LM | TFF, SEC | Protein | NTA, TEM, WB | None | In vitro study | niche cell sEVs regulate limbal stem cell niche | |||||||
| (Lee et al., 2024) [104] | M1 macrophage | PEG | Protein | NTA | Pterygium | Observational study Ex vivo study | EGF suppresses pterygium inflammation | |||||||
| (Cortes-Troncoso et al., 2020) [105] | T cell | DUC | miRNA | None | Sjögren’s syndrome | Observational study Ex vivo study | T cell-derived miR-142-3p impairs gland function | |||||||
| (Kakan et al., 2020) [106] | Serum | DUC | miRNA | TEM, WB, NTA, NGS | Sjögren’s Syndrome | Animal model | serum miRNAs as SS biomarkers | |||||||
| (Li et al., 2022) [107] | hUC-MSC | DUC | miRNA | NTA, TEM, WB | Sjögren’s Syndrome | Animal model In vitro study | miR-100-5p promotes M2 polarization | rabbit | subconjunctival injection | / | Preventive: days −7, −5, −3 Therapeutic: twice weekly | Preventive: 7 days Therapeutic: 4 weeks | 4 weeks | 4 weeks |
| (Liu et al., 2025) [108] | Plasma | SEC, PEG | miRNA | TEM, NTA, WB, miRNA-Seq | Sjögren’s Syndrome | Observational study Ex vivo study | promote Tfh expansion | |||||||
| (Ma et al., 2023) [109] | hUC-MSC | DUC | None | TEM, NTA, WB | Sjögren’s Syndrome | Observational study Ex vivo study | modulate CD4+ T cells | |||||||
| (Ogata et al., 2024) [110] | iPSC | DUC | miRNA | TEM, WB | Sjögren’s Syndrome | Animal model In vitro study | contain let-7 family miRNAs | mouse | Intravenous injection (tail vein) | 300 μg/mL | single dose | / | 4 weeks | 4 weeks |
| (Rui et al., 2021) [111] | OE-MSC, BMSC | DUC | Protein | NTA, TEM, SEM, WB, LC-MS/MS | Sjögren’s Syndrome | Animal model In vitro study | enhance MDSC function | mouse | Intravenous injection (tail vein) | 100 μg | days 18, 25 | / | 6 weeks | 6 weeks |
| (Xie et al., 2025) [112] | LG | DGUC | miRNA | TEM, NTA, WB, miRNA-Seq | Sjögren’s Syndrome | Animal model In vitro study | let-7f-5p suppresses Th17 cells | mouse | Intravenous injection (tail vein) | 100 μg | three times weekly | 2 weeks | 8 weeks | 8 weeks |
| (Zhou et al., 2023) [113] | MDSC | DUC, PEG | miRNA | NTA, WB | Sjögren’s Syndrome | Animal model | MDSC-derived deliver miR-10a-5p | mouse | Intravenous injection (tail vein) | 100 μg | days 18, 25 | / | 35 days | 35 days |
| (Zou et al., 2024) [114] | hUC-MSC | DUC | None | EM, WB | Sjögren’s Syndrome | Animal model | regulate gut microbiota and Treg/Th17 | mouse | Intravenous injection (tail vein) | / | single dose | / | 8 weeks | 8 weeks |
| (Jia et al., 2022) [115] | BMSC | DUC | None | TEM, WB | Transplant rejection | Animal model | prolong graft survival | rat | subconjunctival injection | 10 μg/100 μL | days 0, 2 | / | until graft rejection (max ~20 days) | / |
| (Lee et al., 2024) [116] | Serum | SEC | Protein | NTA, WB | Transplant rejection | Animal model | serum protein profiles predict rejection |
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Hu, L.; Duan, H.; Zhang, Y.; Yang, L.; Yoon, K.C.; Shen, Z.; Li, Z.; Ma, B.; Qi, H. The Therapeutic Potential of Exosomes in Ocular Surface Diseases. Biomolecules 2026, 16, 512. https://doi.org/10.3390/biom16040512
Hu L, Duan H, Zhang Y, Yang L, Yoon KC, Shen Z, Li Z, Ma B, Qi H. The Therapeutic Potential of Exosomes in Ocular Surface Diseases. Biomolecules. 2026; 16(4):512. https://doi.org/10.3390/biom16040512
Chicago/Turabian StyleHu, Lanxin, Hongyu Duan, Yu Zhang, Liang Yang, Kyung Chul Yoon, Zihan Shen, Zekai Li, Baikai Ma, and Hong Qi. 2026. "The Therapeutic Potential of Exosomes in Ocular Surface Diseases" Biomolecules 16, no. 4: 512. https://doi.org/10.3390/biom16040512
APA StyleHu, L., Duan, H., Zhang, Y., Yang, L., Yoon, K. C., Shen, Z., Li, Z., Ma, B., & Qi, H. (2026). The Therapeutic Potential of Exosomes in Ocular Surface Diseases. Biomolecules, 16(4), 512. https://doi.org/10.3390/biom16040512

