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PHC3 SAM linker allows open-ended polymerization of PHC3 SAM

机译:pHC3 sam连接器允许pHC3 sam的开放式聚合

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摘要

Sterile alpha motifs (SAMs) are frequently found in eukaryotic genomes. An intriguing property of many SAMs is their ability to self-associate, forming an open-ended polymer structure whose formation has been shown to be essential for the function of the protein. What remains largely unresolved is how polymerization is controlled. Previously, we had determined that the stretch of unstructured residues N-terminal to the SAM of a Drosophila protein called Polyhomeotic (Ph), a member of the Polycomb Group (PcG) of gene silencers, plays a key role in controlling Ph SAM polymerization. Ph SAM with its native linker created shorter polymers compared to Ph SAM attached to either a random linker or no linker. Here, we show that the SAM linker for the human Ph ortholog, Polyhomeotic homolog 3 (PHC3), also controls PHC3 SAM polymerization but does so in the opposite fashion. PHC3 SAM with its native linker allows longer polymers to form compared to when attached to a random linker. Attaching the PHC3 SAM linker to Ph SAM also resulted in extending Ph SAM polymerization. Moreover, in the context of full-length Ph protein, replacing the SAM linker with PHC3 SAM linker, intended to create longer polymers, resulted in greater repressive ability for the chimera compared to wild-type Ph. These findings show that polymeric SAM linkers evolved to modulate a wide dynamic range of SAM polymerization abilities and suggest that rationally manipulating the function of SAM containing proteins through controlling their SAM polymerization may be possible.
机译:在真核基因组中经常发现无菌α基序(SAMS)。许多SAM的有趣性质是它们对自轴源的能力,形成已显示形成的开口聚合物结构对于蛋白质的功能是必不可少的。仍然很大程度上尚未得到解决的是如何控制聚合。以前,我们已经确定了非结构化的残留物N-末端向果蝇蛋白的SAM的延伸,称为多骨蛋白(pH),Gene沉默物的Polycomb组(PCG)的成员在控制pHAl族聚合中起着关键作用。与PH与随机接头或没有接头连接的pHAM相比,具有其天然连接器的pH am与其天然连接器创建较短的聚合物。在这里,我们表明,用于人pH ortholog,Poly obotic Homolog 3(PHC3)的SAM接头,也控制了PHC3 SAM聚合,但以相反的方式进行。与其天然连接器的PHC3 SAM允许相比,与随机接头连接时相比,形成较长的聚合物。将PHC3 SAM接头连接到pHAM SAM也导致pHAl SAM聚合延伸。此外,在全长pH蛋白的背景下,用PHC3 SAM接头替换SAM接头,旨在产生较长的聚合物,导致嵌合体与野生型pH相比更大的抑制能力。这些发现表明聚合物SAM接头演变为了调节SAM聚合能力的宽动态范围,并表明可以通过控制其SAM聚合来合理操纵含SAM含有蛋白质的功能。

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