The Walter and Eliza Hall Institute of Medical Research (WEHI), 1G Royal Parade, Parkville, Melbourne, VIC, 3052, Australia.
Department of Medical Biology, The University of Melbourne, Melbourne, VIC, Australia.
Cell Death Differ. 2024 Feb;31(2):159-169. doi: 10.1038/s41418-023-01250-w. Epub 2023 Dec 18.
Transcriptional activation of target genes is essential for TP53-mediated tumour suppression, though the roles of the diverse TP53-activated target genes in tumour suppression remains poorly understood. Knockdown of ZMAT3, an RNA-binding zinc-finger protein involved in regulating alternative splicing, in haematopoietic cells by shRNA caused leukaemia only with the concomitant absence of the PUMA and p21, the critical effectors of TRP53-mediated apoptosis and cell cycle arrest respectively. We were interested to further investigate the role of ZMAT3 in tumour suppression beyond the haematopoietic system. Therefore, we generated Zmat3 knockout and compound gene knockout mice, lacking Zmat3 and p21, Zmat3 and Puma or all three genes. Pumap21Zmat3 triple knockout mice developed tumours at a significantly higher frequency compared to wild-type, PumaZmat3 or p21Zmat3deficient mice. Interestingly, we observed that the triple knockout and PumaZmat3 double deficient animals succumbed to lymphoma, while p21Zmat3 animals developed mainly solid cancers. This analysis suggests that in addition to ZMAT3 loss, additional TRP53-regulated processes must be disabled simultaneously for TRP53-mediated tumour suppression to fail. Our findings reveal that the absence of different TRP53 regulated tumour suppressive processes changes the tumour spectrum, indicating that different TRP53 tumour suppressive pathways are more critical in different tissues.
转录激活靶基因对于 TP53 介导的肿瘤抑制至关重要,尽管多样化的 TP53 激活靶基因在肿瘤抑制中的作用仍知之甚少。通过 shRNA 敲低参与调节可变剪接的 RNA 结合锌指蛋白 ZMAT3,在造血细胞中仅在同时缺乏 PUMA 和 p21 的情况下会导致白血病,PUMA 和 p21 分别是 TRP53 介导的细胞凋亡和细胞周期阻滞的关键效应物。我们有兴趣进一步研究 ZMAT3 在造血系统之外的肿瘤抑制作用。因此,我们生成了 Zmat3 敲除和复合基因敲除小鼠,缺乏 Zmat3 和 p21、Zmat3 和 Puma 或所有三个基因。与野生型、PumaZmat3 或 p21Zmat3 缺陷型小鼠相比,Pumap21Zmat3 三重敲除小鼠的肿瘤形成频率显著更高。有趣的是,我们观察到三重敲除和 PumaZmat3 双缺失动物死于淋巴瘤,而 p21Zmat3 动物主要发展为实体癌。这项分析表明,除了 ZMAT3 的缺失,还必须同时使其他 TRP53 调节的过程失活,才能导致 TRP53 介导的肿瘤抑制失败。我们的发现表明,不同的 TRP53 调节肿瘤抑制过程的缺失会改变肿瘤谱,表明不同的 TRP53 肿瘤抑制途径在不同组织中更为关键。