Chen Jiamin, Wang Yemin, McMonechy Melissa K, Anglesio Michael S, Yang Winnie, Senz Janine, Maines-Bandiera Sarah, Rosner Jamie, Trigo-Gonzalez Genny, Grace Cheng S W, Kim Jaeyeon, Matzuk Martin M, Morin Gregg B, Huntsman David G
Department of Pathology and Laboratory Medicine, University of British Columbia, Vancouver, BC, Canada.
Center for Translational and Applied Genomics, BC Cancer Agency, Vancouver, BC, Canada.
J Pathol. 2015 Oct;237(2):215-25. doi: 10.1002/path.4569. Epub 2015 Jul 6.
DICER1 plays a critical role in microRNA (miRNA) biogenesis. Recurrent somatic 'hotspot' mutations at the four metal-binding sites within the RNase IIIb domain of DICER1 were identified in ovarian sex cord-stromal tumours and have since been described in other paediatric tumours. In this study, we screened the RNase IIIb domain of DICER1 in 290 endometrial tumours and identified six cases with hotspot mutations, including two cases affected by an atypical G1809R mutation directly adjacent to a metal-binding site. Using Illumina and Sanger targeted resequencing, we observed and validated biallelic DICER1 mutations in several cases with hotspot mutations. Through in vitro DICER1 cleavage assays, small RNA deep sequencing and real-time PCR, we demonstrated that mutations adding a positively charged side chain to residue 1809 have similar detrimental effects on 5p miRNA production to mutations at the metal-binding sites. As expected, 5p miRNAs were globally reduced in tumours and cell lines with hotspot mutations. Pathway analysis of gene expression profiles indicated that genes de-repressed due to loss of 5p miRNAs are strongly associated with pathways regulating the cell cycle. Using a Dicer1-null mouse cell line model, we found that expression of DICER1 hotspot mutants promoted cell proliferation, whereas wild-type (WT) DICER1 inhibited cell proliferation. Furthermore, targets of let-7 family miRNAs are enriched among the up-regulated genes, suggesting that loss of let-7 may be impacting downstream pathways. Our results reveal that DICER1 hotspot mutations are implicated in common malignancies and may constitute a unique oncogenic pathway.
DICER1在微小RNA(miRNA)生物合成中起关键作用。在卵巢性索间质肿瘤中发现了DICER1核糖核酸酶IIIb结构域内四个金属结合位点的复发性体细胞“热点”突变,此后在其他儿科肿瘤中也有描述。在本研究中,我们对290例子宫内膜肿瘤的DICER1核糖核酸酶IIIb结构域进行了筛查,发现6例有热点突变,其中2例受紧邻金属结合位点的非典型G1809R突变影响。通过Illumina和Sanger靶向重测序,我们在几例有热点突变的病例中观察并验证了双等位基因DICER1突变。通过体外DICER1切割试验、小RNA深度测序和实时PCR,我们证明在第1809位残基上添加带正电荷侧链的突变对5p miRNA产生的有害影响与金属结合位点的突变相似。正如预期的那样,在有热点突变的肿瘤和细胞系中,5p miRNAs总体上减少。基因表达谱的通路分析表明,由于5p miRNAs缺失而解除抑制的基因与调节细胞周期的通路密切相关。使用Dicer1基因敲除的小鼠细胞系模型,我们发现DICER1热点突变体的表达促进细胞增殖,而野生型(WT)DICER1抑制细胞增殖。此外,let-7家族miRNAs的靶标在上调基因中富集,这表明let-7的缺失可能影响下游通路。我们的结果表明,DICER1热点突变与常见恶性肿瘤有关,可能构成一条独特的致癌途径。