Submitted:
21 December 2025
Posted:
22 December 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
- GvHD risk: donor T cells recognize host alloantigens via the endogenous TCR unless the TCR is eliminated or functionally silenced.
- HvG rejection: recipient immunity (T cells, NK cells, macrophages, antibodies/complement) removes the infused allogeneic cells.
2. Immune Rejection Mechanisms in Allogeneic CAR-T
2.1. Cellular HvG: Host T Cells, NK Cells, and Macrophages
2.2. Humoral HvG: DSA, Complement, and Fcγ Receptor Effector Killing
- Complement-dependent cytotoxicity (CDC) initiated by C1q binding to antibody-decorated cells, culminating in membrane attack complex (MAC) formation.
- Fcγ receptor–dependent effector mechanisms, including antibody-dependent cellular cytotoxicity (ADCC) by NK cells and antibody-dependent cellular phagocytosis (ADCP) by macrophages.
2.3. The “B2M Paradox”: Evading T Cells Can Invite NK Killing
3. Engineering Strategies: The Contemporary Design Playbook
3.1. Preventing GvHD: Eliminating Donor TCR Activity
3.2. Extending Persistence: Managing Cellular HvG Without Losing Fitness
- HLA class I reduction (e.g., B2M knockout) to reduce host CD8 recognition, balanced against NK risk.
- NK-evasion add-ons, such as expression of minimally polymorphic inhibitory ligands (e.g., HLA-E) that can engage inhibitory NK receptors and suppress missing-self killing.
- Macrophage-evasion elements (e.g., CD47), often discussed as part of “hypoimmune” designs that aim to address both innate and adaptive rejection.
3.3. Countering Humoral Rejection: An Emerging Frontier
3.4. Lymphodepletion as an Enabling Layer
4. Clinical Landscape: Where the Field Stands
- Feasibility and safety: Multiple genome-edited allogeneic CAR-T products have demonstrated manageable safety profiles and antitumor activity in heavily pretreated patients.
- Persistence is variable and often limited: Detectable expansion is common, but long-term persistence frequently falls short of autologous benchmarks, consistent with HvG rejection biology.
- Durability can still be clinically meaningful: Even time-limited persistence may be sufficient to induce deep remissions in some contexts (e.g., as a bridge to transplant), as reflected in longer-term outcome analyses of universal CAR19 approaches.
5. A practical Framework for “Next” Allogeneic CAR-T Design
6. Manufacturing and Translational Considerations
- Donor selection and banking (consistent phenotype, viral status, HLA considerations).
- Genome editing QC (on-/off-target assessment, karyotype/genomic stability where relevant, residual nuclease, product heterogeneity).
- Batch release comparability across large runs and extended storage (cryopreservation stability).
- Immunogenicity risk management, especially for non-CD19 targets where B cells remain intact and DSA/anti-CAR antibodies can emerge.
7. Conclusions and Outlook
Funding
Conflicts of Interest
References
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| Barrier (Figure 1 mapping) | Mechanistic driver | Typical mitigation concept |
|---|---|---|
| GvHD | Donor TCR recognizes host alloantigens | TRAC/TCR disruption; TCRαβ depletion (platform-dependent) |
| Host T-cell rejection | Recipient T cells recognize donor HLA | HLA class I reduction (e.g., B2M KO) ± adjunct edits |
| NK rejection after HLA loss (“missing self”) | NK activation against HLA-deficient graft | Add inhibitory ligands (e.g., HLA-E); “hypoimmune” combinations |
| Macrophage clearance | Innate phagocytosis, especially with opsonization | CD47-based approaches; innate-evasion layers |
| DSA-mediated CDC | Antibody → C1q → MAC | Reduce immunogenic targets; Fc/complement shielding concepts |
| DSA-mediated ADCC/ADCP | FcγR effector killing/phagocytosis | Fc shielding or decoy strategies; control of anti-CAR/anti-HLA responses |
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