Department of Biochemistry and Biophysics, 2011 Ag and Life Sciences Building, Oregon State University, Corvallis, OR 97331, USA.
J Mol Biol. 2010 Nov 26;404(2):232-46. doi: 10.1016/j.jmb.2010.09.034. Epub 2010 Oct 1.
Formally annotated π-helices are rare in protein structures but have been correlated with functional sites. Here, we analyze protein structures to show that π-helices are the same as structures known as α-bulges, α-aneurisms, π-bulges, and looping outs, and are evolutionarily derived by the insertion of a single residue into an α-helix. This newly discovered evolutionary origin explains both why π-helices are cryptic, being rarely annotated despite occurring in 15% of known proteins, and why they tend to be associated with function. An analysis of π-helices in the diverse ferritin-like superfamily illustrates their tendency to be conserved in protein families and identifies a putative π-helix-containing primordial precursor, a "missing link" intermediary form of the ribonucleotide reductase family, vestigial π-helices, and a novel function for π-helices that we term a "peristaltic-like shift." This new understanding of π-helices paves the way for this generally overlooked motif to become a noteworthy feature that will aid in tracing the evolution of many protein families, guide investigations of protein and π-helix functionality, and contribute additional tools to the protein engineering toolkit.
形式上已注释的π-螺旋在蛋白质结构中很少见,但与功能部位相关。在这里,我们分析蛋白质结构表明,π-螺旋与已知的α-凸起、α-动脉瘤、π-凸起和环出结构相同,是通过在α-螺旋中插入单个残基而进化而来的。这种新发现的进化起源解释了为什么π-螺旋是隐式的,尽管它们存在于已知蛋白质的 15%中,但很少被注释,以及为什么它们往往与功能相关。对多样性铁蛋白样超家族中的π-螺旋的分析说明了它们在蛋白质家族中保守的趋势,并确定了一个假定的含有π-螺旋的原始前体,一种核酶还原酶家族的“缺失环节”中间形式,退化的π-螺旋,以及我们称之为“蠕动样移位”的π-螺旋的新功能。对π-螺旋的这种新理解为这个通常被忽视的基序开辟了道路,使其成为一个值得注意的特征,这将有助于追踪许多蛋白质家族的进化,指导对蛋白质和π-螺旋功能的研究,并为蛋白质工程工具包提供更多的工具。