Pr Eric E. GabisonOphtalmologie · Cornée & réfractive · Paris
HomePro areaEditorial — graft rejection › Summary, conclusion & references
Editorial contents ▾
  1. Introduction
  2. A proven but ageing therapeutic arsenal
  3. Where the current arsenal falls short: high-risk keratoplasty
  4. Early pharmacological inflections
  5. Antisense and targeted biotherapies
  6. Harnessing endogenous tolerogenic pathways: PD-L1 and HLA-G
  7. The paradigm shift: from suppression to tolerance
  8. Regulatory T cells in keratoplasty
  9. Treg and CAR-Treg therapies: M. Miyara's program
  10. The acellular horizon: from cell therapy to vesicle therapy
  11. Summary table of anti-rejection strategies
  12. Conclusion
  13. References

Summary, conclusion & references

Summary table of anti-rejection strategies

Summary table of anti-rejection strategies

The table below brings together these approaches, from non-specific immunosuppression to tolerance-restoration strategies, with their target, mechanism, route of administration and level of evidence. Levels of evidence are deliberately noted: most of these strategies remain preclinical.

Anti-rejection strategies: target, mechanism, route and level of evidence
Target / classRepresentative agent(s)MechanismRouteLevel of evidence
CorticosteroidsDexamethasone, prednisolone, loteprednolNon-specific immunosuppressionTopical (± systemic)Standard of care
Calcineurin inhibitorsCiclosporine 2 % (CICLOGRAFT), tacrolimusInhibition of T-lymphocyte activationTopicalCommon use (high risk)
Co-stimulation blockadeAnti-CD40/CD154; anti-CD80/86 (CTLA-4-Ig)Blockade of the second T-cell activation signalSystemic/localPreclinical (murine models)
Anti-angiogenic / anti-lymphangiogenicAnti-VEGF; VEGFR-2/3 blockadeReduction of neovascularization (afferent pathway)Topical/subconjunctivalPreclinical to clinical
Anti-IRS-1 antisenseAganirsen (GS-101)Inhibition of IRS-1-dependent angiogenesisTopical (eye drops)Phase III (I-CAN); FDA orphan drug designation
B-lymphocyte depletionRituximab (anti-CD20)B-cell depletion; humoral desensitizationSystemicIndirect; caution (Breg depletion)
Sustained releaseNanoparticles, nanowafers, hydrogelsSustained delivery of immunosuppressant / anti-VEGFSubconjunctivalPreclinical
Endogenous tolerogenic checkpointsPD-L1 (B7-H1), FasL (CD95L)Apoptosis of effector T lymphocytes; inhibition of IFN-γEndogenous (to be reinforced)Established mechanism (immune privilege)
Tolerogenic HLA moleculeHLA-G (AAV-HLA-G gene therapy)Immunoregulation + inhibition of neovascularizationIntrastromal (AAV)Preclinical
Cellular immunomodulationMesenchymal stem cells (MSCs)Treg induction; immunomodulationSystemic/subconjunctivalPreclinical
Regulatory cell therapyTreg, CAR-TregActive restoration of toleranceSystemic/localClinical (other organs); preclinical for the cornea
Acellular approachTreg extracellular vesicles (Treg-EV)Contact-independent, stable toleranceTopical/subconjunctival (projected)Preclinical (transplantation)
Conclusion

Conclusion

Keratoplasty has profoundly renewed its surgery; its rejection pharmacology, by contrast, has changed little. The current arsenal retains its value in routine grafting, where outcomes are high. It shows its limits, however, precisely where the need is greatest, in high-risk grafting; the recent industrialization of 2% ciclosporin into room-temperature-stable single-dose units improves its quality and ease of use, without changing its nature. Pharmacological inflections and targeted biotherapies — co-stimulation blockade, control of (lymph)angiogenesis, anti-IRS-1 antisense, lymphocyte depletion, sustained release — refine immunosuppression and some may reach practice faster than tolerance therapies. The underlying prospect, to which the 2025 Nobel Prize has given new visibility, is nonetheless to restore peripheral tolerance: either by reinforcing the cornea’s own tolerogenic mechanisms, PD-L1 and HLA-G, or through regulatory T cells and their acellular extension, extracellular vesicles, particularly well suited to the ocular surface. These avenues remain, to date, largely preclinical, and it would be premature to announce their clinical translation. It is up to the corneal community to design the models and trials that will determine whether tolerance can complement, or even take over from, suppression in preventing rejection.

References

References

  1. Gain P, Jullienne R, He Z, Aldossary M, Acquart S, Cognasse F, et al. Global survey of corneal transplantation and eye banking. JAMA Ophthalmol. 2016;134(2):167–173.
  2. Liu S, Wong YL, Walkden A. Current perspectives on corneal transplantation. Clin Ophthalmol. 2022;16:631–646.
  3. Azevedo Magalhaes O, Shalaby Bardan A, Zarei-Ghanavati M, Liu C. Literature review and suggested protocol for prevention and treatment of corneal graft rejection. Eye (Lond). 2020;34(3):442–450.
  4. Corneal transplantation and immunosuppressants: topical and systemic agents in the post-transplantation period. Florence Nightingale J Transplant. 2019;4(1–2).
  5. Ciclosporine 2 % en collyre unidose (CICLOGRAFT 20 mg/mL, code ATC S01XA18) : formulation de la pharmacie du CHU d’Amiens-Picardie, développée au stade industriel par Alept, fabriquée par Unither Pharmaceuticals et commercialisée par les Laboratoires KÔL. Récipients unidoses conservables à température ambiante ; accès compassionnel (ANSM). Résumé des caractéristiques du produit, ANSM.
  6. Regulatory T cell modulation of cytokine and cellular networks in corneal graft rejection (revue ; auteur senior R. Dana). Curr Ophthalmol Rep. 2018;6.
  7. Khosravi Mirzaei S, Bayat K, Feizi S. Medical and surgical approaches to prevent corneal graft rejection in high-risk recipients. Surv Ophthalmol. 2025.
  8. Tan X, Zeng H, Jie Y, Zhang Y, Xu Q, Pan Z. CD154 blockade modulates the ratio of Treg to Th1 cells and prolongs the survival of allogeneic corneal grafts in mice. Exp Ther Med. 2014;7(4):827–834.
  9. Combined blockade of VEGFR-2 and VEGFR-3 inhibits inflammatory lymphangiogenesis in early and middle stages. Invest Ophthalmol Vis Sci. 2011.
  10. Role of endogenous regulators of hem- and lymphangiogenesis in corneal transplantation (revue). 2020.
  11. Meng T, Zheng J, Shin CS, Gao N, Bande D, Sudarjat H, Chow W, Halquist MS, Yu FS, Acharya G, Xu Q. Combination nanomedicine strategy for preventing high-risk corneal transplantation rejection. ACS Nano. 2024;18(31):20679–20693.
  12. Development and effects of tacrolimus-loaded nanoparticles on the inhibition of corneal allograft rejection. 2019.
  13. Cursiefen C, Bock F, Horn FK, Kruse FE, Seitz B, Borderie V, et al. GS-101 antisense oligonucleotide eye drops inhibit corneal neovascularization: interim results of a randomized phase II trial. Ophthalmology. 2009;116(9):1630–1637.
  14. Cursiefen C, et al. Aganirsen antisense oligonucleotide eye drops inhibit keratitis-induced corneal neovascularization and reduce need for transplantation: the I-CAN study. Ophthalmology. 2014;121(9):1683–1692.
  15. Aganirsen (GS-101). US FDA Orphan Drug Designation for the prevention of corneal graft rejection, 2016 ; European orphan designation, 2014.
  16. B cell depletion with anti-CD20 mAb exacerbates anti-donor CD4+ T cell responses in highly sensitized transplant recipients. Sci Rep. 2021;11.
  17. Anti-CD80/86 antibodies inhibit inflammatory reaction and improve graft survival in a high-risk murine corneal transplantation rejection model. Sci Rep. 2022.
  18. Treacy O, O’Flynn L, Ryan AE, Morcos M, Lohan P, Schu S, et al. Mesenchymal stem cell therapy promotes corneal allograft survival in rats by local and systemic immunomodulation. Am J Transplant. 2014;14(9):2023–2036.
  19. Hori J, Wang M, Miyashita M, et al. B7-H1-induced apoptosis as a mechanism of immune privilege of corneal allografts. J Immunol. 2006;177(9):5928–5935.
  20. Shen L, et al. Function of donor versus recipient programmed death-ligand 1 in corneal allograft survival. J Immunol. 2007;179(6):3672–3679.
  21. Niederkorn JY, Larkin DF. Immune privilege of corneal allografts. Ocul Immunol Inflamm. 2010;18(3):162–171.
  22. Le Discorde M, Moreau P, Sabatier P, Legeais JM, Carosella ED. Expression of HLA-G in human cornea, an immune-privileged tissue. Hum Immunol. 2003;64(11):1039–1044.
  23. Hirsch ML, Conatser LM, Smith SM, Salmon JH, Wu J, Buglak NE, Davis R, Gilger BC. AAV vector-mediated expression of HLA-G reduces injury-induced corneal vascularization, immune cell infiltration and fibrosis. Sci Rep. 2017;7:17840. Voir aussi : A chimeric anti-vascularization immunomodulator prevents high-risk corneal transplantation rejection via ex vivo gene therapy. Mol Ther. 2024.
  24. The Nobel Assembly at Karolinska Institutet. The Nobel Prize in Physiology or Medicine 2025 (Brunkow, Ramsdell, Sakaguchi). nobelprize.org. 2025.
  25. Bluestone JA. The 2025 Nobel Prize in Physiology or Medicine — a bridge to peripheral immune tolerance. J Clin Invest. 2025. doi:10.1172/JCI202216.
  26. Sakaguchi S, Sakaguchi N, Asano M, Itoh M, Toda M. Immunologic self-tolerance maintained by activated T cells expressing IL-2 receptor α-chains (CD25). J Immunol. 1995;155(3):1151–1164.
  27. Coco G, Foulsham W, Nakao T, Yin J, Amouzegar A, Taketani Y, Chauhan SK, Dana R. Regulatory T cells promote corneal endothelial cell survival following transplantation via interleukin-10. Am J Transplant. 2020;20(2):389–398.
  28. Miyara M, Yoshioka Y, Kitoh A, Shima T, Wing K, Niwa A, et al. ; Sakaguchi S. Functional delineation and differentiation dynamics of human CD4+ T cells expressing the FoxP3 transcription factor. Immunity. 2009;30(6):899–911.
  29. Wing K, Onishi Y, Prieto-Martin P, Yamaguchi T, Miyara M, Fehervari Z, Nomura T, Sakaguchi S. CTLA-4 control over Foxp3+ regulatory T cell function. Science. 2008;322(5899):271–275.
  30. Miyara M, Chader D, Burlion A, Goldstein J, Sterlin D, Norol F, et al. ; Gorochov G. Combination of IL-2, rapamycin, DNA methyltransferase and histone deacetylase inhibitors for the expansion of human regulatory T cells. Oncotarget. 2017;8(62):104733–104744.
  31. Treg cell therapy in liver and kidney transplantation (M. Miyara, investigateur principal). ClinicalTrials.gov NCT04661254.
  32. Rojas C, Campos-Mora M, Cárcamo I, et al. T regulatory cells-derived extracellular vesicles and their contribution to the generation of immune tolerance. J Leukoc Biol. 2020;108(3):813–824.
  33. Lin C, Guo J, Jia R. Roles of regulatory T cell-derived extracellular vesicles in human diseases. Int J Mol Sci. 2022;23(19):11206.
  34. Tung SL, Boardman DA, Sen M, Letizia M, Peng Q, Cianci N, et al. ; Lechler R, Lombardi G, Smyth LA. Regulatory T cell-derived extracellular vesicles modify dendritic cell function. Sci Rep. 2018;8:6065.
  35. Tung SL, Fanelli G, Matthews RI, Bazoer J, Letizia M, Vizcay-Barrena G, et al. ; Lombardi G, Smyth LA. Regulatory T cell extracellular vesicles modify T-effector cell cytokine production and protect against human skin allograft damage. Front Cell Dev Biol. 2020;8:317.
  36. Imai S, Yamano T, Hanayama R, et al. Antigen-presenting extracellular vesicles induce antigen-specific regulatory T cells in vivo. Drug Deliv. 2025. doi:10.1080/10717544.2025.2586305.