[肺泡软组织肉瘤--融合基因产物调控的血管生成机制]。

Q4 Medicine Japanese Journal of Cancer and Chemotherapy Pub Date : 2024-06-01
Takuro Nakamura, Miwa Tanaka
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引用次数: 0

摘要

肺泡软组织肉瘤(ASPS)是一种罕见的恶性肿瘤,起源不明,好发于深部软组织,好发于青少年和年轻人。ASPS的特点是其丰富的血管网络形成肺泡结构,并表现出频繁的血源性转移。在所有病例中都能检测到由t(X;17)染色体易位衍生的ASPSCR1-TFE3融合基因作为疾病基因,ASPSCR1-TFE3蛋白会导致转录调控异常。我们将 ASPSCR1-TFE3 导入小鼠胚胎间充质细胞,建立了 ASPS 小鼠模型。在该模型中,再现了人类ASPS的肿瘤血管生成和肺泡结构,显示了富含包膜的血管和肿瘤细胞巢被包膜包裹的转移过程。ASPSCR1-TFE3经常与活跃的增强子和超级增强子相关,血管生成相关的增强子因ASPSCR1- TFE3的缺失而显著减少。通过表观遗传学CRISPR筛选,发现了血管生成相关的增强子和重要的靶基因Rab27a、Sytl2、Pdgfb和Vwf。Rab27a和Sytl2促进了含有血管生成因子(如Pdgfb和Vwf)的细胞质囊泡的贩运,导致ASPS中出现了富含周细胞的血管结构。这些研究强调了Rab27/Sytl轴作为癌症新药靶点的重要性。
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[Alveolar Soft Part Sarcoma-The Angiogenic Mechanism Regulated by a Fusion Gene Product].

Alveolar soft part sarcoma(ASPS)is a rare malignant tumor whose origin is unidentified, arising from deep soft tissue and affecting adolescents and young adults. ASPS is characterized by its abundant vascular network forming alveolar structures, and demonstrates frequent hematogenous metastasis. An ASPSCR1-TFE3 fusion gene derived from t(X;17)chromosome translocation is detected as a disease gene in all cases, and the ASPSCR1-TFE3 protein causes abnormal transcriptional regulation. We generated a mouse model for ASPS by introducing ASPSCR1-TFE3 into mouse embryonic mesenchymal cells. In the model, tumor angiogenesis and alveolar structures of human ASPS were reproduced, revealing pericyte-rich blood vessels and metastatic processes with pericytic encapsulation of tumor cell nests. ASPSCR1-TFE3 is frequently associated with active enhancers and super-enhancers, and angiogenesis-related enhancers were significantly diminished by the loss of ASPSCR1- TFE3. Angiogenesis-associated enhancers and important target genes, Rab27a, Sytl2, Pdgfb and Vwf were identified by epigenetic CRISPR screening. Rab27a and Sytl2 facilitates trafficking of cytoplasmic vesicles containing angiogenic factors such as Pdgfb and Vwf, resulting in pericyte-rich vascular structures in ASPS. These studies highlight the importance of the Rab27/Sytl axis as a novel drug target in cancer.

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