Guided immunotherapy for residual solid tumor: integrating platelets and CAR T cells to reduce post-surgical recurrence

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This review proposes a platelet-guided CAR-T platform that leverages endogenous wound biology to deliver precision immunotherapy to surgical beds, aiming to reduce postoperative recurrence of solid tumors by enhancing local effector retention and safety.

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This review proposes a platelet-guided CAR-T cell platform designed to eliminate microscopic residual disease following surgical resection of solid tumors. The authors suggest leveraging the transient, fibrin-rich postoperative microenvironment by using platelet membrane cloaking or conjugation to direct immunotherapeutic agents specifically to the surgical bed. Preclinical evidence indicates that this localized delivery enhances effector retention and reduces tumor dissemination while programmable safety features mitigate systemic toxicity and thrombo-inflammatory risks. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Postoperative recurrence remains a major obstacle to durable remission in patients with solid tumors, even after complete macroscopic resection. Growing evidence suggests that surgery creates a transient yet highly permissive biological window characterized by inflammatory signaling, coagulation activation, endothelial disruption, and systemic immune suppression. Together, these processes foster a protective niche that enables microscopic residual disease to evade immune surveillance and initiate metastatic outgrowth. Although modern adjuvant therapies have improved outcomes, their effectiveness is often limited by inadequate tumor-site specificity, systemic toxicity, poor immune cell trafficking, and tumor heterogeneity. Consequently, a critical unmet clinical need persists for biologically precise strategies capable of eliminating residual tumor cells at their point of vulnerability. Platelets, traditionally viewed as mediators of hemostasis, are now recognized as active regulators of tumor progression. By facilitating fibrin deposition, shielding circulating tumor cells from immune attack, and shaping inflammatory networks, platelets inadvertently support the survival of postoperative tumors. Paradoxically, these same wound-targeting properties create a compelling therapeutic opportunity: leveraging platelet-driven homing mechanisms to direct immunotherapy precisely to fibrin-rich surgical beds where recurrence often originates. In this review, we propose a platelet-guided CAR-T platform that leverages endogenous wound biology to create a precision immunotherapeutic delivery system. This strategy integrates platelet membrane cloaking or platelet-CAR-T conjugation with thrombin-responsive biomaterial depots to enhance local effector retention, amplify effector-to-target ratios, and prolong functional persistence. Programmable safety features, including affinity tuning, logic-gated activation, and inducible suicide switches, are used to reduce thrombo-inflammatory risk while preserving therapeutic efficacy. These mechanisms restrict activity to appropriate contexts and allow controlled shutdown in case of adverse events, improving overall safety. When coupled with minimal residual disease-guided patient selection using circulating biomarkers, this approach establishes a clinically actionable framework for perioperative intervention. Emerging preclinical evidence suggests that localized platelet-assisted delivery can reduce circulating tumor cell burden, enhance antigen presentation when combined with immune adjuvants, and suppress recurrence more effectively than systemic therapies. With rigorous safety validation, scalable manufacturing, and biomarker-enriched clinical trials, platelet-guided CAR-T therapy has the potential to transform the postoperative microenvironment from a sanctuary of tumor survival into a targeted domain for durable immune-mediated eradication.Clinical trial numberNot applicable.
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Abstract

Postoperative recurrence remains a major obstacle to durable remission in patients with solid tumors, even after complete macroscopic resection. Growing evidence suggests that surgery creates a transient yet highly permissive biological window characterized by inflammatory signaling, coagulation activation, endothelial disruption, and systemic immune suppression. Together, these processes foster a protective niche that enables microscopic residual disease to evade immune surveillance and initiate metastatic outgrowth. Although modern adjuvant therapies have improved outcomes, their effectiveness is often limited by inadequate tumor-site specificity, systemic toxicity, poor immune cell trafficking, and tumor heterogeneity. Consequently, a critical unmet clinical need persists for biologically precise strategies capable of eliminating residual tumor cells at their point of vulnerability. Platelets, traditionally viewed as mediators of hemostasis, are now recognized as active regulators of tumor progression. By facilitating fibrin deposition, shielding circulating tumor cells from immune attack, and shaping inflammatory networks, platelets inadvertently support the survival of postoperative tumors. Paradoxically, these same wound-targeting properties create a compelling therapeutic opportunity: leveraging platelet-driven homing mechanisms to direct immunotherapy precisely to fibrin-rich surgical beds where recurrence often originates. In this review, we propose a platelet-guided CAR-T platform that leverages endogenous wound biology to create a precision immunotherapeutic delivery system. This strategy integrates platelet membrane cloaking or platelet–CAR-T conjugation with thrombin-responsive biomaterial depots to enhance local effector retention, amplify effector-to-target ratios, and prolong functional persistence. Programmable safety features, including affinity tuning, logic-gated activation, and inducible suicide switches, are used to reduce thrombo-inflammatory risk while preserving therapeutic efficacy. These mechanisms restrict activity to appropriate contexts and allow controlled shutdown in case of adverse events, improving overall safety. When coupled with minimal residual disease–guided patient selection using circulating biomarkers, this approach establishes a clinically actionable framework for perioperative intervention. Emerging preclinical evidence suggests that localized platelet-assisted delivery can reduce circulating tumor cell burden, enhance antigen presentation when combined with immune adjuvants, and suppress recurrence more effectively than systemic therapies. With rigorous safety validation, scalable manufacturing, and biomarker-enriched clinical trials, platelet-guided CAR-T therapy has the potential to transform the postoperative microenvironment from a sanctuary of tumor survival into a targeted domain for durable immune-mediated eradication. Clinical trial number Not applicable. Highlights Identifies the postoperative fibrin-rich niche as a transient, targetable reservoir for microscopic residual disease. Introduces platelet-guided CAR-T delivery via membrane cloaking or platelet–T cell conjugation with thrombin-responsive biomaterial depots. Enables spatially confined immune activation within the perioperative fibrin scaffold. Integrates programmable safety circuits (affinity tuning, logic gating, suicide switches) to limit systemic toxicity and thromboinflammation. Proposes MRD-guided perioperative stratification using ctDNA and circulating biomarkers. Demonstrates preclinical enhancement of local effector function, reduced tumor dissemination, and superior recurrence control. Defines a translational roadmap spanning GLP safety profiling, GMP platelet engineering, and biomarker-enriched adaptive trials. AbstractSection Graphical AbstractSimilar content being viewed by others Abbreviations - AhR: - Aryl hydrocarbon receptor - APC: - Antigen-presenting cell - ASS1: - Argininosuccinate synthase-1 - CAR: - Chimeric antigen receptor - CAR-T: - Chimeric antigen receptor T cells - CPT1: - Carnitine palmitoyltransferase-1 - CRS: - Cytokine release syndrome - CTC: - Circulating tumor cell - ctDNA: - Circulating tumor DNA - ECM: - Extracellular matrix - FAO: - Fatty-acid oxidation - FASN: - Fatty-acid synthase - FGF: - Fibroblast growth factor - GLP: - Good Laboratory Practice - GLS: - Glutaminase - GMP: - Good Manufacturing Practice - GM-CSF: - Granulocyte-macrophage colony-stimulating factor - HAP: - Hypoxia-activated prodrug - HER2: - Human epidermal growth factor receptor-2 - HIF: - Hypoxia-inducible factor - HK2: - Hexokinase-2 - ICI: - Immune checkpoint inhibitor - IDO1: - Indoleamine-2,3-dioxygenase-1 - IFN-γ: - Interferon-gamma - IL-6: - Interleukin-6 - LDH/LDHA: - Lactate dehydrogenase A - MCT: - Monocarboxylate transporter - MRD: - Minimal residual disease - NET: - Neutrophil extracellular trap - NK: - Natural killer - NSAID: - Non-steroidal anti-inflammatory drug - OXPHOS: - Oxidative phosphorylation - PD-1: - Programmed cell death protein-1 - PDGF: - Platelet-derived growth factor - PEV: - Platelet-derived extracellular vesicle - PHGDH: - Phosphoglycerate dehydrogenase - PMP: - Platelet-derived microparticle - PNP: - Platelet-membrane-coated nanoparticle - ROS: - Reactive oxygen species - SHMT: - Serine hydroxymethyltransferase - SSP: - Serine synthesis pathway - TCR: - T-cell receptor - TGF-β: - Transforming growth factor-beta - TIL: - Tumor-infiltrating lymphocyte - TME: - Tumor microenvironment - TPO: - Thrombopoietin - TRAIL: - TNF-related apoptosis-inducing ligand - VEGF: - Vascular endothelial growth factor - VWF: - Von Willebrand factor

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