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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Bridging Radiation Rapidly and Effectively Cytoreduces High-Risk Relapsed/Refractory Aggressive B Cell Lymphomas Prior to Chimeric Antigen Receptor T Cell Therapy.
Bridging Radiation Rapidly and Effectively Cytoreduces High-Risk Relapsed/Refractory Aggressive B Cell Lymphomas Prior to Chimeric Antigen Receptor T Cell Therapy.
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在侵袭性非霍奇金淋巴瘤(NHL)患者中,CD19靶向CAR-T 细胞治疗前较大的肿瘤负荷预示较低的完全缓解率和较短的总生存期(OS)。近期的失败模式研究已确定病灶特征,包括大小、标准摄取值(SUV)和结外位置,与CAR-T 治疗后的失败相关。
在此,我们分析了含桥接放疗的治疗(BRT)对CAR-T 治疗前病灶层面和患者层面特征以及CAR-T 治疗后结局(包括失败模式)的影响。回顾了从白细胞分离术前30天至CAR-T 细胞输注期间接受放疗的连续NHL患者。代谢肿瘤体积(MTV)以SUV阈值4进行勾画。首次CAR-T 治疗后失败相对于CAR-T 治疗前疾病分为既存/新发/混合,相对于BRT分为野内/边缘/远处。共识别出41例弥漫性大B细胞淋巴瘤(DLBCL;n = 33)、套细胞淋巴瘤(n = 7)或伯基特淋巴瘤(n = 1)患者。BRT显著改善了已确立的CAR-T 治疗后进展高危参数,包括野内中位MTV(45.5 cc降至0.2 cc;P < .001)、最大SUV(18.1降至4.4;P < .001)、直径(5.5 cm降至3.2 cm;P < .001)和乳酸脱氢酶(LDH;312降至232;P = .025)。
BRT后LDH水平较低的DLBCL患者无进展生存期(PFS)改善(P = .001)。在DLBCL中,首次失败为19例患者中的7例新发、5例既存和7例混合;相对于BRT,19例中4例为野内,19例中4例为边缘。在初始 MTV 低和 BRT 后新发 MTV 低的患者中,CAR-T 治疗后生存相似,使用统计学确定的阈值 16 cc(PFS,26 个月 versus 31 个月;OS 两组均未达到)。BRT 在直径、SUV、MTV 和 LDH 方面产生了显著的细胞减灭,这些都是 CAR-T 治疗后不良结局的预测因素。初始 MTV 低的患者与 BRT 后达到新发 MTV 低的患者 PFS 和 OS 相似,提示 BRT 可能将高危患者“转化”为较低风险。未来,对 BRT 的反应可能有助于风险分层和桥接策略的个体化。
Greater tumor burden before CD19-targeted chimeric antigen receptor T cell (CAR-T) therapy predicts lower complete response rate and shorter overall survival (OS) in patients with aggressive non-Hodgkin lymphoma (NHL). Recent patterns of failure studies have identified lesion characteristics, including size, standard uptake value (SUV), and extranodal location, as associated with post-CAR-T therapy failure.
Here we analyzed the effect of bridging radiation-containing treatment (BRT) on pre-CAR-T therapy lesion- and patient-level characteristics and post-CAR-T therapy outcomes, including patterns of failure. Consecutive NHL patients who received radiation therapy from 30 days before leukapheresis until CAR T cell infusion were reviewed. Metabolic tumor volume (MTV) was contoured with a threshold SUV of 4. The first post-CAR-T therapy failures were categorized as preexisting/new/mixed with respect to pre-CAR-T therapy disease and in-field/marginal/distant with respect to BRT. Forty-one patients with diffuse large B cell lymphoma (DLBCL; n = 33), mantle cell lymphoma (n = 7), or Burkitt lymphoma (n = 1) were identified. BRT significantly improved established high-risk parameters of post-CAR-T therapy progression, including in-field median MTV (45. 5 cc to . 2 cc; P < . 001), maximum SUV (18. 1 to 4. 4; P < . 001), diameter (5. 5 cm to 3. 2 cm; P < .
001), and lactate dehydrogenase (LDH; 312 to 232; P = . 025). DLBCL patients with lower LDH levels post-BRT had improved progression-free survival (PFS; P = . 001). In DLBCL, first failures were new in 7 of 19 patients, preexisting in 5 of 19, and mixed in 7 of 19; with respect to BRT, 4 of 19 were in-field and 4 of 19 were marginal. Post-CAR-T therapy survival was similar in patients with initially low MTV and those with newly low MTV post-BRT using a statistically determined threshold of 16 cc (PFS, 26 months versus 31 months; OS unreached for both).
BRT produced significant cytoreductions in diameter, SUV, MTV, and LDH, all predictors of poor post-CAR-T therapy outcomes. Similar PFS and OS in patients with initially low MTV and those who achieved newly low MTV after BRT suggest that BRT may "convert" poor-risk patients to better risk. In the future, the response to BRT may allow for risk stratification and individualization of bridging strategies.
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