Bao Xiaomin, Siprashvili Zurab, Zarnegar Brian J, Shenoy Rajani M, Rios Eon J, Nady Natalie, Qu Kun, Mah Angela, Webster Daniel E, Rubin Adam J, Wozniak Glenn G, Tao Shiying, Wysocka Joanna, Khavari Paul A
Program in Epithelial Biology, Stanford University, 269 Campus Drive, Room 2145, Stanford, CA 94305, USA; Departments of Molecular Biosciences and Dermatology, Northwestern University, 2205 Tech Drive, Hogan 2-100, Evanston, IL 60208, USA.
Program in Epithelial Biology, Stanford University, 269 Campus Drive, Room 2145, Stanford, CA 94305, USA.
Dev Cell. 2017 Oct 23;43(2):227-239.e5. doi: 10.1016/j.devcel.2017.08.021. Epub 2017 Sep 21.
Somatic progenitors sustain tissue self-renewal while suppressing premature differentiation. Protein arginine methyltransferases (PRMTs) affect many processes; however, their role in progenitor function is incompletely understood. PRMT1 was found to be the most highly expressed PRMT in epidermal progenitors and the most downregulated PRMT during differentiation. In targeted mouse knockouts and in long-term regenerated human mosaic epidermis in vivo, epidermal PRMT1 loss abolished progenitor self-renewal and led to premature differentiation. Mass spectrometry of the PRMT1 protein interactome identified the CSNK1a1 kinase, which also proved essential for progenitor maintenance. CSNK1a1 directly bound and phosphorylated PRMT1 to control its genomic targeting to PRMT1-sustained proliferation genes as well as PRMT1-suppressed differentiation genes. Among the latter were GRHL3, whose derepression was required for the premature differentiation seen with PRMT1 and CSNK1a1 loss. Maintenance of the progenitors thus requires cooperation by PRMT1 and CSNK1a1 to sustain proliferation gene expression and suppress premature differentiation driven by GRHL3.
体细胞祖细胞维持组织自我更新,同时抑制过早分化。蛋白质精氨酸甲基转移酶(PRMTs)影响许多过程;然而,它们在祖细胞功能中的作用尚未完全明确。研究发现,PRMT1是表皮祖细胞中表达量最高的PRMT,也是分化过程中下调程度最大的PRMT。在靶向基因敲除小鼠和体内长期再生的人嵌合表皮中,表皮PRMT1缺失消除了祖细胞的自我更新,并导致过早分化。对PRMT1蛋白相互作用组进行质谱分析鉴定出CSNK1a1激酶,该激酶对祖细胞维持也至关重要。CSNK1a1直接结合并磷酸化PRMT1,以控制其对PRMT1维持的增殖基因以及PRMT1抑制的分化基因的基因组靶向。后者包括GRHL3,PRMT1和CSNK1a1缺失导致的过早分化需要GRHL3去抑制。因此,祖细胞的维持需要PRMT1和CSNK1a1协同作用,以维持增殖基因表达并抑制由GRHL3驱动的过早分化。