Li Haitao, Motamedi Mohammad R, Yip Calvin K, Wang Zhanxin, Walz Thomas, Patel Dinshaw J, Moazed Danesh
Structural Biology Program, Memorial Sloan-Kettering Cancer Center, New York, NY 10065, USA.
Mol Cell. 2009 Apr 24;34(2):155-67. doi: 10.1016/j.molcel.2009.02.032.
RNA interference (RNAi) plays a pivotal role in the formation of heterochromatin at the fission yeast centromeres. The RNA-induced transcriptional silencing (RITS) complex, composed of heterochromatic small interfering RNAs (siRNAs), the siRNA-binding protein Ago1, the chromodomain protein Chp1, and the Ago1/Chp1-interacting protein Tas3, provides a physical tether between the RNAi and heterochromatin assembly pathways. Here, we report the structural and functional characterization of a C-terminal Tas3 alpha-helical motif (TAM), which self-associates into a helical polymer and is required for cis spreading of RITS in centromeric DNA regions. Site-directed mutations of key residues within the hydrophobic monomer-monomer interface disrupt Tas3-TAM polymeric self-association in vitro and result in loss of gene silencing, spreading of RITS, and a dramatic reduction in centromeric siRNAs in vivo. These results demonstrate that, in addition to the chromodomain of Chp1 and siRNA-loaded Ago1, Tas3 self-association is required for RITS spreading and efficient heterochromatic gene silencing at centromeric repeat regions.
RNA干扰(RNAi)在裂殖酵母着丝粒处异染色质的形成中起关键作用。RNA诱导的转录沉默(RITS)复合物由异染色质小干扰RNA(siRNA)、siRNA结合蛋白Ago1、染色体结构域蛋白Chp1以及Ago1/Chp1相互作用蛋白Tas3组成,在RNAi和异染色质组装途径之间提供了物理连接。在此,我们报告了C端Tas3α螺旋基序(TAM)的结构和功能特征,该基序自组装成螺旋聚合物,是RITS在着丝粒DNA区域顺式扩散所必需的。疏水单体-单体界面内关键残基的定点突变在体外破坏了Tas3-TAM聚合物的自缔合,并导致体内基因沉默丧失、RITS扩散以及着丝粒siRNA显著减少。这些结果表明,除了Chp1的染色体结构域和装载siRNA的Ago1外,Tas3自缔合对于RITS在着丝粒重复区域的扩散和有效的异染色质基因沉默也是必需的。