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SUV39H1 orchestrates temporal dynamics of centromeric methylation essential for faithful chromosome segregation in mitosis Free
Lingluo Chu1,†, Tongge Zhu1,2,†, Xing Liu1,4, Ruoying Yu1, Methode Bacanamwo4, Zhen Dou1,2, Youjun Chu1,2, Hanfa Zou3, Gary H. Gibbons4, Dongmei Wang1, Xia Ding2,4,*, and Xuebiao Yao1,*
1Anhui Key Laboratory for Cellular Dynamics and Chemical Biology, University of Science & Technology of China School of Life Sciences, Anhui 230026, China
2Beijing University of Chinese Medicine, Beijing 100027, China
3CAS Key Laboratory of Separation Sciences for Analytical Chemistry, Dalian Institute of Physical Chemistry, Dalian 116023, China
4Department of Physiology, Morehouse School of Medicine, Atlanta, GA 30310, USA *Correspondence to:Xia Ding, E-mail: dingx@bucm.edu.cn; Xuebiao Yao, E-mail: yaoxb@ustc.edu.cn
J Mol Cell Biol, Volume 4, Issue 5, October 2012, 331-340,  https://doi.org/10.1093/jmcb/mjs023
Keyword: mitosis, SUV39H1, methylation, MARC, syntelin
Histone methylation performs multiple functions such as DNA replication, transcription regulation, heterochromatin formation, and chromatin condensation. How this methylation gradient is orchestrated in the centromere during chromosome segregation is not known. Here we examine the temporal dynamics of protein methylation in the centromere by SUV39H1 methyltransferase, a key mitotic regulator, using fluorescence resonance energy transfer-based sensors in living HeLa cells and immunofluorescence of native SUV39H1 substrates. A quantitative analysis of methylation dynamics, using centromere-targeted sensors, reveals a temporal change during chromosome segregation. These dynamics result in an accurate chromosome congression to and alignment at the equator as an inhibition of methylation dynamics using SUV39H1 inhibitor perturbs chromosome congression in living HeLa cells. Surprisingly, this inhibition of methylation results in a brief increase in Aurora B kinase activity and an enrichment of microtubule depolymerase MCAK in the centromere with a concomitant kinetochore–microtubule destabilization and a reduced tension across the sister kinetochores with ultimate chromosome misalignments. We reason that SUV39H1 generates a gradient of methylation marks at the kinetochore that provides spatiotemporal information essential for accurate chromosome segregation in mitosis.