PO.BCS01.15 · 生物信息与计算

胰腺导管上皮中KRAS突变获得时机的研究

Study on acquisition timing of KRAS mutations in the pancreatic ductal epithelium

海报缩略图:胰腺导管上皮中KRAS突变获得时机的研究
编号 1494 展板 1 时间 4/20 09:00–12:00 区域 Section 6 主讲 Tomonori Hirano, MD
分会场 Sequence Analysis
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作者与单位 Authors & Affiliations

Tomonori Hirano1, Yasuhide Takeuch2, Kazuyuki Nagai3, Takayuki Anazawa4, Sachiko Minamiguchi5, Hiroshi Seno6, Seishi Ogawa1, Nobuyuki Kakiuchi1

1Department of Pathology and Tumor Biology, Graduate School of Medicine, Kyoto University, Kyoto, Japan,2Department of Diagnostic Pathology, Graduate School of Medicine, Kyoto University, Kyoto, Japan,3Department of Surgery, Graduate School of Medicine, Kyoto University, Kyoto, Japan,4Department of surgery, division of gastroenterological surgery, Sapporo Medical University, Hokkaido, Japan,5Department of Diagnostic Pathology, Fujita Health University School of Medicine, Aichi, Japan,6Department of Gastroenterology and Hepatology, Graduate School of Medicine, Kyoto University, Kyoto, Japan

摘要 Abstract

中文摘要
【引言】胰腺癌是一种高度侵袭性的恶性肿瘤,预后不良,这凸显了早期诊断的必要性。KRAS突变是胰腺癌发生过程中最早的遗传事件之一,但KRAS突变在胰腺导管上皮中获得的时机仍不明确。 【方法】我们从手术标本中采集远离肉眼可见肿瘤的非肿瘤性胰腺组织,并由此建立胰腺导管来源的类器官。提取配对的肿瘤/正常DNA并进行全外显子组测序(WES)。基于共享的体细胞突变重建系统发育树。在胰腺癌或导管内乳头状黏液性肿瘤(IPMN)患者中,还对福尔马林固定石蜡包埋(FFPE)肿瘤组织的DNA进行WES,以评估癌与非癌KRAS突变克隆之间的关系。在一部分批量类器官中,进一步建立单细胞来源的类器官以确定突变累积速率。 【结果】我们分析了来自有胰腺癌(n=25)和无胰腺癌(n=23)患者的430份类器官样本。每份样本鉴定出中位33个突变。在16例癌症患者中检测到18个KRAS突变,而在4例非癌症对照中仅检测到4个,表明KRAS突变克隆在癌症患者中具有更高的患病率和更广的分布。系统发育分析显示,22个KRAS突变中有13个映射到主干,这些突变通常扩散至多个(平均n=6)分支,而KRAS野生型克隆很少延伸至多个分支,提示其扩张更为局限。我们进一步分析了来自19个病例的56个单细胞来源类器官,其中7个携带KRAS突变。在KRAS野生型细胞中,突变负荷与年龄呈正相关,速率为每年每外显子组0.29个突变。KRAS突变细胞携带的突变显著多于野生型细胞,提示KRAS激活后突变率增加。基于该突变率,我们估计这些KRAS突变是在21至44岁之间获得的。在16例携带KRAS突变PDAC或IPMN的病例中,我们分析了8个FFPE肿瘤。在一例异时性导管内乳头状黏液癌患者中,原发肿瘤、复发肿瘤和KRAS突变类器官克隆均源自一个共同的祖先克隆。系统发育分析表明,原发和复发肿瘤共享的克隆首先从该祖先分支出来,随后产生了这两处病灶。在其他病例中,非肿瘤性导管中的KRAS突变克隆在系统发育上独立于癌克隆,提示多个KRAS突变谱系的平行进化。 【结论】我们阐明了非癌性胰腺导管上皮中克隆的进化史。这些发现增进了我们对胰腺癌发生早期事件的理解。
查看英文原文 English abstract
[Introduction] Pancreatic cancer is a highly aggressive malignancy with a poor prognosis, underscoring the need for early diagnosis KRAS mutations are among the earliest genetic events in pancreatic carcinogenesis, but the timing of KRAS mutation acquisition in the pancreatic ductal epithelium remains unclear. [Methods] From surgical specimens, we collected non-neoplastic pancreatic tissues distant from the macroscopic tumor, from which pancreatic duct-derived organoids were established. Paired tumor/normal DNA was extracted and subjected to whole-exome sequencing (WES). Phylogenetic trees were reconstructed based on shared somatic mutations. In patients with pancreatic cancer or intraductal papillary mucinous neoplasm (IPMN), WES was also performed on DNA from formalin-fixed, paraffin-embedded (FFPE) tumor tissue to assess relationships between cancer and non-cancerous KRAS -mutant clones. In a subset of bulk organoids, single cell-derived organoids were further established to determine mutation accumulation rates. [Results] We analyzed 430 organoid samples from patients with (n=25) and without (n=23) pancreatic cancer. A median of 33 mutations per sample was identified. Eighteen KRAS mutations were detected in 16 cancer patients compared with four in four non-cancer controls, indicating a higher prevalence and wider distribution of KRAS -mutant clones in cancer patients. Phylogenetic analysis showed that 13 of 22 KRAS mutations mapped to the major trunk, which typically spread into multiple (n=6 on average) branches, whereas KRAS -wild-type clones rarely extended to multiple branches, suggesting more localized expansion. We further analyzed 56 single-cell-derived organoids from 19 cases, of which 7 harbored KRAS mutations. In KRAS -wild-type cells, the mutational burden positively correlated with age with a rate of 0.29 mutations per exome per year. KRAS-mutant cells carried significantly more mutations than wild-type cells, suggesting an increased mutation rate after KRAS activation. Based on this mutation rate, we estimated that these KRAS mutations were acquired between 21 and 44 years of age. Among 16 cases with KRAS -mutant PDAC or IPMN, we analyzed 8 FFPE tumors. In one patient with metachronous intraductal papillary mucinous carcinoma, the primary tumor, recurrent tumor, and KRAS -mutant organoid clone all arose from a common ancestral clone. Phylogenetic analysis indicated that a clone shared by the primary and recurrent tumors first branched from this ancestor and subsequently gave rise to both lesions. In other cases, KRAS -mutant clones in non-neoplastic ducts were phylogenetically independent of the cancer clone, indicating parallel evolution of multiple KRAS-mutant lineages. [Conclusions] We elucidated the evolutionary history of clones in non-cancerous pancreatic ductal epithelium. These findings improve our understanding of the early events in pancreatic carcinogenesis.
利益披露 Disclosure
T. Hirano, None.. Y. Takeuch, None.. K. Nagai, None.. T. Anazawa, None.. S. Minamiguchi, None.. H. Seno, None. S. Ogawa, Eisai Co., Ltd. g., Board of Directors, non-salaried role), ). Chordia Therapeutics, Inc. g., Board of Directors, non-salaried role), ). Montage Bio, INC. g., Board of Directors, non-salaried role). Asahi Genomics Co., Ltd. Stock. The Mitsubishi Foundation Other, Honoraria (lecture fee). Nakatani Foundation Other, Honoraria (lecture fee). Nippon Shinyaku Co., Ltd. ). Nanpuh Hospital ). N. Kakiuchi, None.

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