肿瘤细胞治疗研究
英文原题:Rituximab potentially improves clinical outcomes of CAR-T therapy for r/r B-ALL via sensitizing leukemia cells to CAR-T-mediated cytotoxicity and reducing CAR-T exhaustion.
Rituximab potentially improves clinical outcomes of CAR-T therapy for r/r B-ALL via sensitizing leukemia cells to CAR-T-mediated cytotoxicity and reducing CAR-T exhaustion.
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利妥昔单抗联合 CAR-T 疗法可有效改善多线治疗失败的 B-ALL 患者的长期预后。
尽管嵌合抗原受体(CAR)T 细胞疗法近年来进展显著,约 50% 接受 CAR-T 治疗的复发/难治性 B 细胞急性淋巴细胞白血病(r/r B-ALL)患者会在治疗后 6 个月内复发。30%–50% 的 B-ALL 表达 CD20,因此 CD20 单克隆抗体可能通过降低肿瘤负荷改善 CAR-T 疗效。既往已证明,在化疗方案中加入利妥昔单抗可改善 CD20 阳性 ALL 的结局,但鲜有研究探讨利妥昔单抗联合 CAR-T 的影响。
回顾性分析 20 例接受 CAR-T 治疗且多线治疗失败的 r/r B-ALL 患者。CAR-T 输注前,对 10 例 CD20 高表达患者给予单日利妥昔单抗 375 mg/m²;同期选择 10 例特征相近、未用利妥昔单抗的 CAR-T 患者作为对照。体外采用流式细胞术检测利妥昔单抗处理的 B-ALL 细胞表面分子表达,并评估其与 CAR-T 共培养后的杀伤情况。
利妥昔单抗组和对照组中位随访时间分别为 29.27 和 9.83 个月。与对照组相比,加入利妥昔单抗可能改善预后。利妥昔单抗组 2 年 OS 和无白血病生存率(LFS)均较高(分别为 90% 对 26.7%,P=0.0342;41.7% 对 25%,P=0.308)。体外实验显示,利妥昔单抗处理的肿瘤细胞对 CAR-T 杀伤更敏感;利妥昔单抗处理的 Nalm-6 细胞与 19-22CAR-T 共培养时,可产生多种细胞因子和趋化因子,如干扰素-γ(IFN-γ)、肿瘤坏死因子-α(TNF-α)和 IL-2。为研究利妥昔单抗对 CAR-T 持久性的影响,研究者在体外用利妥昔单抗处理的 Nalm-6 细胞反复刺激 CAR-T,并在不同时间评估其表面耗竭分子变化。利妥昔单抗组 CAR-T 细胞上的 LAG-3、PD-1 和 TIM-3 等耗竭分子表达显著低于对照组。
利妥昔单抗联合 CAR-T 可改善多线治疗失败 B-ALL 患者的长期预后。体外结果提示,利妥昔单抗可能通过提高 ALL 对 CAR-T 介导细胞毒作用的敏感性并减轻 CAR-T 耗竭来改善疗效。
Despite chimeric antigen receptor (CAR) T-cell therapy has achieved great advances in recent year, approximately 50% of relapsed/refractory B cell acute lymphoblastic leukemia (r/r B-ALL) patients treated with CAR-T experience relapse 6 months post CAR-T treatment. CD20 express on 30 to 50% of B-ALL, which makes CD20 Monoclonal Antibody as one of the potential therapy strategies to decrease the tumor burden and improve the efficacy of CAR-T therapy. Adding Rituximab to chemotherapy protocol had been demonstrated to improve the outcome for CD20-positive ALL. However, rare study explored the influence of Rituximab combined with CAR-T therapy.
We retrospectively analyzed 20 r/r B-ALL patients who received CAR-T therapy, all of whom had failed multiple lines of therapy. Before CAR-T infusion, we administered Rituximab to 10 patients with high CD20 expression at a dose of 375 mg/m 2 for 1 day. Meanwhile, we selected 10 patients with the comparable features who underwent CAR-T treatment without Rituximab in the same period as the control group. In vitro, the surface molecule expression and killing of CAR-T post Rituximab-treated B-ALL cells co-incubated with CAR-T cells were detected by flow cytometry.
The median follow-up of Rituximab and Control groups were 29.27 and 9.83 months. We found that adding Rituximab may confer a favorable prognosis compared with Control group. The 2-year overall survival (OS) and leukemia-free survival (LFS) rates both were longer in the Rituximab group (90% vs. 26.7%, p = 0.0342; 41.7% vs. 25%, p = 0.308). In vitro, we observed that Rituximab-treated tumour cells are more sensitive to CAR-T killing and a broad range of cytokines and chemokines were produced when Rituximab-treated Nalm-6 cells co-cultured with 19-22CAR-T cells, such as interferon- (IFN- ), tumor necrosis factor- (TNF- ) and interleukin-2 (IL-2). To investigate whether Rituximab has an effect on CAR-T persistence, we stimulated CAR-T cells repeatedly in vitro with Rituximab-treated Nalm-6 to evaluate the changes in CAR-T surface exhaustion molecules at different times. We found that the expression of exhaustion molecules (LAG-3, PD-1, TIM-3) on CAR-T cells were significantly lower in the Rituximab group than in the Control group.
Rituximab combined with CAR-T therapy is effective for improving the long-term prognosis of B-ALL patients who have failed multiple lines of therapy. In vitro, we observed that rituximab potentially improves CAR-T efficacy by sensitizing ALL to CART-mediated cytotoxicity and reducing CAR-T exhaustion.
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