Ke Changhong, Loksztejn Anna, Jiang Yong, Kim Minkyu, Humeniuk Michael, Rabbi Mahir, Marszalek Piotr E
Department of Mechanical Engineering and Materials Science, Center for Biologically Inspired Materials and Material Systems, Duke University, Durham, North Carolina, USA.
Biophys J. 2009 Apr 8;96(7):2918-25. doi: 10.1016/j.bpj.2008.12.3939.
We report the results of direct measurements by atomic force microscopy of solvent-driven structural transitions within polyadenylic acid (poly(A)). Both atomic force microscopy imaging and pulling measurements reveal complex strand arrangements within poly(A) induced by acidic pH conditions, with a clear fraction of double-stranded molecules that increases as pH decreases. Among these complex structures, force spectroscopy identified molecules that, upon stretching, displayed two distinct plateau features in the force-extension curves. These plateaus exhibit transition forces similar to those previously observed in native double-stranded DNA (dsDNA). However, the width of the first plateau in the force-extension curves of poly(A) varies significantly, and on average is shorter than the canonical 70% of initial length corresponding to the B-S transition of dsDNA. Also, similar to findings in dsDNA, stretching and relaxing elasticity profiles of dspoly(A) at forces below the mechanical melting transition overlap but reveal hysteresis when the molecules are stretched above the mechanical melting transition. These results strongly suggest that under acidic pH conditions, poly(A) can form duplexes that are mechanically stable. We hypothesize that under acidic conditions, similar structures may be formed by the cellular poly(A) tails on mRNA.
我们报告了通过原子力显微镜对聚腺苷酸(poly(A))内溶剂驱动的结构转变进行直接测量的结果。原子力显微镜成像和拉伸测量均揭示了酸性pH条件下poly(A)内复杂的链排列,双链分子的比例明显增加,且随着pH降低而升高。在这些复杂结构中,力谱鉴定出在拉伸时力-伸长曲线中显示出两个不同平台特征的分子。这些平台表现出的转变力与先前在天然双链DNA(dsDNA)中观察到的相似。然而,poly(A)力-伸长曲线中第一个平台的宽度变化显著,平均短于对应dsDNA的B-S转变的初始长度的标准70%。此外,与dsDNA中的发现类似,在低于机械解链转变的力下,双链poly(A)的拉伸和松弛弹性曲线重叠,但当分子拉伸超过机械解链转变时会出现滞后现象。这些结果有力地表明,在酸性pH条件下,poly(A)可以形成机械稳定的双链体。我们推测在酸性条件下,mRNA上的细胞poly(A)尾巴可能会形成类似的结构。