决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Case report: Tisagenlecleucel for treatment of relapsed B- acute lymphoblastic leukemia in a patient with CHEK2 mutation.
由于传统化疗和放疗可能增加DNA损伤及继发恶性肿瘤的风险,对于携带胚系CHEK2突变的患者,CD19 CAR-T疗法(tisagenlecleucel)可作为强化再诱导化疗和HCT的替代方案。
背景:胚系检查点激酶2基因(CHEK2)突变可增加实体瘤风险,近期也被确定为血液系统恶性肿瘤危险因素。据我们所知,尚无报道将B细胞急性淋巴细胞白血病(B-ALL)作为胚系CHEK2突变的首发临床表现。靶向CD19抗原的CAR-T(CAR-T)细胞疗法tisagenlecleucel是一种治疗复发/难治性(R/R)B-ALL的新型细胞疗法,但尚无CHEK2突变患者使用tisagenlecleucel的报道。病例报告:我们介绍一名携带杂合致病性胚系CHEK2突变(c.1100delC;p.Thr367Metfs*15)的儿童患者。为避免造血细胞移植(HCT),该患儿接受tisagenlecleucel治疗复发B-ALL并取得成功。这名12岁男孩确诊为美国国家癌症研究所(NCI)高危B-ALL(白细胞计数>50,000/μL),无髓外病变。细胞遗传学分析显示核型正常,但荧光原位杂交(FISH)检测CRLF2::P2RY8重排阳性率为93%。患儿按儿童肿瘤协作组(COG)AALL1131方案治疗,达到完全缓解。确诊7个月后发现乳头状甲状腺癌,无转移证据。患者接受全甲状腺切除、中央区淋巴结活检及放射性碘治疗。其生物学母亲和异卵双胞胎兄弟携带相同胚系CHEK2突变,但无恶性肿瘤病史;生物学父亲该家族突变检测阴性。患者基因面板还发现3个意义不明变异:CDKN2A(c.37 C>T;p.Arg124Cys)、FLCN(c.62G>A;p.Cys21Tyr)和SDHAF2(c.139A>G;p.Met47Val)。扩展家族史还发现,患者舅舅44岁时被诊断为未分化甲状腺癌。确诊15个月后,患者B-ALL复发(髓内和髓外均有病变,脑脊液中检出原始细胞),经tisagenlecleucel治疗成功。接受tisagenlecleucel治疗3年后,患者仍维持缓解。结论:传统化疗和放疗可能增加DNA损伤及继发恶性肿瘤风险,因此,对胚系CHEK2突变患者,可使用CD19 CAR-T细胞疗法tisagenlecleucel替代强化再诱导化疗和HCT。
BACKGROUND: Germline Checkpoint Kinase 2 gene ( CHEK2) mutations can increase the risk of solid tumors. Recently, they have been identified as risk factors for hematologic malignancies. However, to the best of our knowledge, B-acute lymphoblastic leukemia (B-ALL) has never been described as a presenting manifestation of germline CHEK2 mutation. Chimeric antigen receptor-T (CAR-T) cell therapy directed against CD19 antigen (tisagenlecleucel) is a novel cellular therapy for treatment of relapsed/refractory (R/R) B-ALL. The use of tisagenlecleucel has not been described in patients with CHEK2 mutation. CASE PRESENTATION: We describe a case of a pediatric patient with a heterozygous pathogenic germline CHEK2 mutation (c.1100delC; p.Thr367Metfs*15) successfully treated with tisagenlecleucel for relapsed B-ALL to avoid hematopoietic cell transplant (HCT). The twelve-year-old boy was diagnosed with National Cancer Institute (NCI) high-risk B-ALL (white blood cell count >50,000/mcL), with no extramedullary disease. Cytogenetic analysis revealed normal karyotype but fluorescent in situ hybridization (FISH) showed 93% positivity for CRLF2::P2RY8 rearrangement. He was treated as per Children's Oncology Group (COG) AALL1131 therapy and achieved a complete remission. Seven months after diagnosis, he was found to have papillary thyroid carcinoma with no evidence of metastatic disease. The patient underwent a total thyroidectomy with central lymph node biopsy and radioactive iodine therapy. The patient's biological mother and fraternal twin brother carry the same germline CHEK2 mutation with no history of malignancy. The biological father tested negative for the familial mutation. The patient's genetic panel also identified three variants of unclear significance: CDKN2A (c.37 C > T; p.Arg124Cys), FLCN (c.62G > A; p.Cys21Tyr) and SDHAF2 (c.139A > G; p.Met47Val). Extended family history also revealed a diagnosis of anaplastic thyroid cancer in maternal uncle at the age of 44 years. Fifteen months after diagnosis the patient had a relapse of B-ALL (both medullary and extramedullary with blasts in CSF), which was successfully treated with tisagenlecleucel. The patient remains in remission 3 years after receiving tisagenlecleucel. CONCLUSION: As conventional chemotherapy and radiation can potentially increase the risk of DNA damage and development of secondary malignancies, CD19 CAR-T therapy (tisagenlecleucel) can be used as a substitute for intensive re-induction chemotherapy and HCT in patients with a germline CHEK2 mutation.
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