CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Immunization Strategies in Pediatric Patients Receiving Hematopoietic Cell Transplantation (HCT) and Chimeric Antigen Receptor T-Cell (CAR-T) Therapy: Challenges and Insights from a Narrative Review.
Immunization Strategies in Pediatric Patients Receiving Hematopoietic Cell Transplantation (HCT) and Chimeric Antigen Receptor T-Cell (CAR-T) Therapy: Challenges and Insights from a Narrative Review.
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有效的疫苗接种策略对于降低儿童造血干细胞移植(HCT)和 CAR-T 受者的感染相关发病率至关重要。
造血细胞移植(HCT)和CAR-T 细胞疗法显著提高了儿童血液系统恶性肿瘤患者的生存率。然而,这些治疗会造成严重免疫抑制,使患者易患疫苗可预防疾病(VPD),包括侵袭性肺炎球菌病和麻疹。及时且个体化的免疫接种策略,对于降低这一脆弱人群的感染风险至关重要。
我们对2000年至2024年的英文文献进行叙述性综述,纳入临床指南、调查和原始研究,评估接受HCT和CAR-T 治疗儿童患者的免疫重建及疫苗接种实践。检索PubMed、Scopus和Web of Science,采用疾病、治疗及病原体相关关键词。资料综合重点关注疫苗接种计划、免疫恢复指标和依从性障碍。
HCT和CAR-T 治疗后严重免疫缺陷会损害先天性及适应性免疫,患者常需重新接种疫苗。影响疫苗应答的关键因素包括距治疗的时间、移植物来源、免疫抑制治疗及慢性移植物抗宿主病。灭活疫苗通常可在HCT后3至6个月安全接种,而活疫苗在确认免疫恢复前仍属禁忌。CAR-T 治疗带来独特挑战,包括长期B细胞缺失和低丙种球蛋白血症,可导致疫苗应答延迟或减弱。尽管已有指南,现实中疫苗接种计划依从性仍不理想,原因包括机构、流程和患者相关障碍。
有效的疫苗接种策略对于降低儿童HCT和CAR-T 受者的感染相关疾病负担至关重要。个体化疫苗计划、免疫监测和多学科协作,是弥合指南与实践差距、改善免疫功能低下儿童长期结局的关键。
Hematopoietic cell transplantation (HCT) and chimeric antigen receptor T-cell (CAR-T) therapy have markedly improved survival in pediatric patients with hematological malignancies. However, these treatments cause profound immunosuppression, leading to significant susceptibility to vaccine-preventable diseases (VPDs), including invasive pneumococcal disease and measles. Timely and tailored immunization strategies are crucial to mitigate infectious risks in this vulnerable population.
We conducted a narrative review of the English-language literature from 2000 to 2024, including clinical guidelines, surveys, and original studies, to evaluate immune reconstitution and vaccination practices in pediatric patients undergoing HCT and CAR-T therapy. Literature searches in PubMed, Scopus, and Web of Science used disease-specific, therapy-specific, and pathogen-specific terms. Data synthesis focused on vaccine schedules, immune recovery markers, and adherence challenges.
Profound immune deficits post-HCT and CAR-T therapy compromise both innate and adaptive immunity, often necessitating revaccination. Key factors influencing vaccine responses include time since therapy, graft source, immunosuppressive treatments, and chronic graft-versus-host disease. Although inactivated vaccines are generally safe from three to six months post-HCT, live vaccines remain contraindicated until documented immune recovery. CAR-T therapy introduces unique challenges due to prolonged B-cell aplasia and hypogammaglobulinemia, leading to delayed or reduced vaccine responses. Despite established guidelines, real-world adherence to vaccination schedules remains suboptimal, driven by institutional, logistic, and patient-related barriers.
Effective vaccination strategies are essential for reducing infectious morbidity in pediatric HCT and CAR-T recipients. Personalized vaccine schedules, immune monitoring, and multidisciplinary coordination are critical to bridging gaps between guidelines and practice, ultimately improving long-term outcomes for immunocompromised children.
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