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抗 CD19CAR-T 细胞治疗小鼠模型神经毒性期间的脑毛细血管阻塞

英文原题:Brain capillary obstruction during neurotoxicity in a mouse model of anti-CD19 chimeric antigen receptor T-cell therapy.

查看英文原题

Brain capillary obstruction during neurotoxicity in a mouse model of anti-CD19 chimeric antigen receptor T-cell therapy.

PubMed 2021/12/31(内容时间) Brain Commun Q1 · IF 4.5(JCR 2025)

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中文摘要

CD19 靶向CAR-T 细胞免疫治疗血液系统恶性肿瘤在清除肿瘤方面非常成功,但约 40% 的患者会出现急性神经毒性。这种神经毒性与全身性细胞因子释放综合征、内皮激活和内皮完整性破坏相关,但这些机制如何相互作用以及如何导致神经功能障碍仍不清楚。

我们假设神经血管单元功能障碍是神经毒性发生的关键步骤。为重现完整免疫系统与血脑屏障的相互作用,我们首先开发了一种具有免疫活性的CAR-T 细胞治疗相关神经毒性小鼠模型。

我们用环磷酰胺进行淋巴细胞清除,随后给予递增剂量的鼠源 CD19 靶向CAR-T 细胞治疗野生型小鼠。在CAR-T 细胞输注后 3-5 天内,这些小鼠出现全身性细胞因子释放,并通过每日神经系统筛查检查和旷场测试评估发现行为异常。组织学检查显示广泛的脑出血、弥漫性血管外免疫球蛋白沉积、毛细血管周细胞覆盖缺失以及串珠状毛细血管增多。为测量脑微血管血流的任何相关变化,我们通过薄颅骨颅窗进行了体内双光子成像。出乎意料的是,我们发现CAR-T 细胞治疗后第 6 天,11.9% 的皮质毛细血管被堵塞,而接受模拟转导 T 细胞治疗的对照组为 1.1%。毛细血管堵塞物由 CD45+ 白细胞组成,其中一部分为 CD3+ T 细胞。这种严重程度的阻塞预计会损害脑灌注。实际上,我们通过hypoxyprobe免疫标记发现了广泛分布的斑片状缺氧。血清可溶性ICAM-1和VCAM-1水平升高支持了白细胞-内皮黏附增加的推测机制。这些数据揭示,脑毛细血管阻塞可能造成足够的微血管损害,从而解释CAR-T 细胞神经毒性的临床表型。

我们的小鼠模型密切近似于人类患者中所见CAR-T 细胞神经毒性综合征的动力学和组织学表现,这一事实加强了该发现的转化意义。全身免疫激活与神经血管单元损伤之间的这一新联系可能适合治疗干预。

展开英文摘要原文

Immunotherapy for haematologic malignancies with CD19-directed chimeric antigen receptor T cells has been highly successful at eradicating cancer but is associated with acute neurotoxicity in ∼40% of patients. This neurotoxicity correlates with systemic cytokine release syndrome, endothelial activation and disruption of endothelial integrity, but it remains unclear how these mechanisms interact and how they lead to neurologic dysfunction.

We hypothesized that dysfunction of the neurovascular unit is a key step in the development of neurotoxicity. To recapitulate the interaction of the intact immune system with the blood-brain barrier, we first developed an immunocompetent mouse model of chimeric antigen receptor T-cell treatment-associated neurotoxicity.

We treated wild-type mice with cyclophosphamide lymphodepletion followed by escalating doses of murine CD19-directed chimeric antigen receptor T cells. Within 3-5 days after chimeric antigen receptor T-cell infusion, these mice developed systemic cytokine release and abnormal behaviour as measured by daily neurologic screening exams and open-field testing. Histologic examination revealed widespread brain haemorrhages, diffuse extravascular immunoglobulin deposition, loss of capillary pericyte coverage and increased prevalence of string capillaries. To measure any associated changes in cerebral microvascular blood flow, we performed in vivo two-photon imaging through thinned-skull cranial windows. Unexpectedly, we found that 11. 9% of cortical capillaries were plugged by Day 6 after chimeric antigen receptor T-cell treatment, compared to 1. 1% in controls treated with mock transduced T cells.

The capillary plugs comprised CD45+ leucocytes, a subset of which were CD3+ T cells. Plugging of this severity is expected to compromise cerebral perfusion. Indeed, we found widely distributed patchy hypoxia by hypoxyprobe immunolabelling. Increased serum levels of soluble ICAM-1 and VCAM-1 support a putative mechanism of increased leucocyte-endothelial adhesion.

These data reveal that brain capillary obstruction may cause sufficient microvascular compromise to explain the clinical phenotype of chimeric antigen receptor T-cell neurotoxicity. The translational impact of this finding is strengthened by the fact that our mouse model closely approximates the kinetics and histologic findings of the chimeric antigen receptor T-cell neurotoxicity syndrome seen in human patients. This new link between systemic immune activation and neurovascular unit injury may be amenable to therapeutic intervention.

论文信息

作者
Faulhaber LD、Phuong AQ、Hartsuyker KJ、Cho Y、Mand KK、Harper SD、Olson AK、Garden GA
第一作者单位
Center for Developmental Biology and Regenerative Medicine, Seattle Children's Research Institute, Seattle, WA 98101, USA.United States
通讯作者单位
Center for Integrative Brain Research, Seattle Children's Research Institute, Seattle, WA 98101, USA.United States
期刊
Brain communications2022
原文标识
PubMed 35169706 · DOI 10.1093/braincomms/fcab309