Distinct and overlapping roles of STAG1 and STAG2 in cohesin localization and gene expression in embryonic stem cells
EPIGENETICS & CHROMATIN
Authors: Arruda, Nicole L.; Carico, Zachary M.; Justice, Megan; Liu, Ying Frances; Zhou, Junjie; Stefan, Holden C.; Dowen, Jill M.
Abstract
Background The three-dimensional organization of the genome in the nucleus plays an integral role in many biological processes, including gene expression. The genome is folded into DNA loops that bring together distal regulatory elements and genes. Cohesin, a ring-shaped protein complex, is a major player in the formation of DNA loops. Cohesin is composed of a core trimer and one of two variant STAG subunits, STAG1 or STAG2. It is not understood whether variant STAG proteins give rise to cohesin complexes with distinct functions. Recent studies have begun to characterize the roles of STAG1 and STAG2, with partially contradictory results. Results Here, we generate stable single-knockout embryonic stem cell lines to investigate the individual contributions of STAG1 and STAG2 in regulating cohesin chromosomal localization and function. We report both overlapping roles for STAG1 and STAG2 in cohesin localization and somewhat distinct roles in gene expression. STAG1 and STAG2 occupy the same sites across the genome, yet do not exist together in a higher order complex. Despite their shared localization, STAG1 and STAG2 have both distinct and redundant effects on gene expression. Loss of both STAG1 and STAG2 causes widespread transcriptome dysregulation, altered cohesin DNA occupancy, and reduced cell proliferation. Conclusions Together, this work reveals the requirement of at least one STAG protein for proper cohesin function. STAG1 and STAG2 have independent roles in cohesin localization and both overlapping and distinct roles in gene expression. The roles of STAG1 and STAG2 in mouse embryonic stem cells may be somewhat different than in other cell types, due to their relative expression levels. These results advance our understanding of the link between mammalian genome organization and gene expression during development and disease contexts.
Recurrent mutations in multiple components of the cohesin complex in myeloid neoplasms
NATURE GENETICS
Authors: Kon, Ayana; Shih, Lee-Yung; Minamino, Masashi; Sanada, Masashi; Shiraishi, Yuichi; Nagata, Yasunobu; Yoshida, Kenichi; Okuno, Yusuke; Bando, Masashige; Nakato, Ryuichiro; Ishikawa, Shumpei; Sato-Otsubo, Aiko; Nagae, Genta; Nishimoto, Aiko; Haferlach, Claudia; Nowak, Daniel; Sato, Yusuke; Alpermann, Tamara; Nagasaki, Masao; Shimamura, Teppei; Tanaka, Hiroko; Chiba, Kenichi; Yamamoto, Ryo; Yamaguchi, Tomoyuki; Otsu, Makoto; Obara, Naoshi; Sakata-Yanagimoto, Mamiko; Nakamaki, Tsuyoshi; Ishiyama, Ken; Nolte, Florian; Hofmann, Wolf-Karsten; Miyawaki, Shuichi; Chiba, Shigeru; Mori, Hiraku; Nakauchi, Hiromitsu; Koeffler, H. Phillip; Aburatani, Hiroyuki; Haferlach, Torsten; Shirahige, Katsuhiko; Miyano, Satoru; Ogawa, Seishi
Abstract
Cohesin is a multimeric protein complex that is involved in the cohesion of sister chromatids, post-replicative DNA repair and transcriptional regulation. Here we report recurrent mutations and deletions involving multiple components of the cohesin complex, including STAG2, RAD21, SMC1A and SMC3, in different myeloid neoplasms. These mutations and deletions were mostly mutually exclusive and occurred in 12.1% (19/157) of acute myeloid leukemia, 8.0% (18/224) of myelodysplastic syndromes, 10.2% (9/88) of chronic myelomonocytic leukemia, 6.3% (4/64) of chronic myelogenous leukemia and 1.3% (1/77) of classical myeloproliferative neoplasms. Cohesin-mutated leukemic cells showed reduced amounts of chromatin-bound cohesin components, suggesting a substantial loss of cohesin binding sites on chromatin. The growth of leukemic cell lines harboring a mutation in RAD21 (Kasumi-1 cells) or having severely reduced expression of RAD21 and STAG2 (MOLM-13 cells) was suppressed by forced expression of wild-type RAD21 and wild-type RAD21 and STAG2, respectively. These findings suggest a role for compromised cohesin functions in myeloid leukemogenesis.