Cancer Science Institute of Singapore, National University of Singapore, Singapore.
Cancer Science Institute of Singapore, National University of Singapore, Singapore; Department of Medicine, Yong Loo Lin School of Medicine, National University of Singapore, Singapore.
Haematologica. 2022 Mar 1;107(3):680-689. doi: 10.3324/haematol.2020.260562.
Recurrent loss-of-function mutations of spliceosome gene, ZRSR2, occur in myelodysplastic syndromes (MDS). Mutation/loss of ZRSR2 in human myeloid cells primarily causes impaired splicing of the U12-type introns. In order to further investigate the role of this splice factor in RNA splicing and hematopoietic development, we generated mice lacking ZRSR2. Unexpectedly, Zrsr2-deficient mice developed normal hematopoiesis with no abnormalities in myeloid differentiation evident in either young or ≥1-year old knockout mice. Repopulation ability of Zrsr2-deficient hematopoietic stem cells was also unaffected in both competitive and non-competitive reconstitution assays. Myeloid progenitors lacking ZRSR2 exhibited mis-splicing of U12-type introns, however, this phenotype was moderate compared to the ZRSR2-deficient human cells. Our investigations revealed that a closely related homolog, Zrsr1, expressed in the murine hematopoietic cells, but not in human cells contributes to splicing of U12-type introns. Depletion of Zrsr1 in Zrsr2 KO myeloid cells exacerbated retention of the U12-type introns, thus highlighting a collective role of ZRSR1 and ZRSR2 in murine U12-spliceosome. We also demonstrate that aberrant retention of U12-type introns of MAPK9 and MAPK14 leads to their reduced protein expression. Overall, our findings highlight that both ZRSR1 and ZRSR2 are functional components of the murine U12-spliceosome, and depletion of both proteins is required to accurately model ZRSR2-mutant MDS in mice.
剪接体基因 ZRSR2 的功能缺失性突变在骨髓增生异常综合征(MDS)中频繁发生。在人类髓系细胞中,ZRSR2 的突变/缺失主要导致 U12 型内含子的剪接受损。为了进一步研究该剪接因子在 RNA 剪接和造血发育中的作用,我们构建了 ZRSR2 缺失的小鼠。出乎意料的是,Zrsr2 缺陷小鼠的造血发育正常,在年轻或≥1 岁的敲除小鼠中均未观察到髓系分化异常。在竞争性和非竞争性重建实验中,Zrsr2 缺陷造血干细胞的重建能力也未受影响。缺乏 ZRSR2 的髓系祖细胞表现出 U12 型内含子的错误剪接,但与 ZRSR2 缺陷的人类细胞相比,这种表型较为温和。我们的研究表明,在鼠造血细胞中表达但在人细胞中不表达的密切相关同源物 Zrsr1 有助于 U12 型内含子的剪接。在 Zrsr2 KO 髓系细胞中耗尽 Zrsr1 会加剧 U12 型内含子的保留,从而突出了 ZRSR1 和 ZRSR2 在鼠 U12 剪接体中的共同作用。我们还证明,MAPK9 和 MAPK14 的 U12 型内含子异常保留导致其蛋白表达减少。总之,我们的研究结果表明,ZRSR1 和 ZRSR2 都是鼠 U12 剪接体的功能性组成部分,并且需要同时耗尽这两种蛋白才能在小鼠中准确模拟 ZRSR2 突变型 MDS。