Shcherbakova Inna, Brenowitz Michael
Department of Biochemistry, Albert Einstein College of Medicine, Bronx, NY 10461, USA.
J Mol Biol. 2005 Nov 25;354(2):483-96. doi: 10.1016/j.jmb.2005.09.032. Epub 2005 Sep 30.
The P4-P6 domain serves as a scaffold against which the periphery and catalytic core organize and fold during Mg2+-mediated folding of the Tetrahymena thermophila ribozyme. The most prominent structural motif of the P4-P6 domain is the tetraloop-tetraloop receptor interaction which "clamps" the distal parts of its hairpin-like structure. Destabilization of the tertiary structure of the P4-P6 domain by perturbation of the tetraloop-tetraloop receptor interaction alters the Mg2+-mediated folding pathway. The folding hierarchy of P5c approximately P4-P6 > periphery > catalytic core that is a striking attribute of the folding of the wild-type RNA is abolished. The initial steps in folding of the mutant RNA are > or =50-fold faster than those of the wild-type ribozyme with the earliest observed tertiary contacts forming around regions known to specifically bind Mg2+. The interaction between the mutant tetraloop and the tetraloop receptor appears coincidently with slowly forming catalytic core tertiary contacts. Thus, the stability conferred upon the P4-P6 domain by the tetraloop-tetraloop receptor interaction dictates the preferred folding pathway by stabilizing an early intermediate. A sub-denaturing concentration of urea diminishes the early barrier to folding the wild-type ribozyme along with complex effects on the subsequent steps of folding the wild-type and mutant RNA.
在嗜热四膜虫核酶的Mg2+介导折叠过程中,P4 - P6结构域作为一个支架,在此支架上,外周部分和催化核心进行组织和折叠。P4 - P6结构域最显著的结构基序是四环 - 四环受体相互作用,该相互作用“夹住”其发夹状结构的远端部分。通过扰动四环 - 四环受体相互作用来破坏P4 - P6结构域的三级结构,会改变Mg2+介导的折叠途径。野生型RNA折叠的一个显著特征,即P5c≈P4 - P6>外周部分>催化核心的折叠层次结构被消除。突变型RNA折叠的初始步骤比野生型核酶快50倍或更多,最早观察到的三级接触在已知能特异性结合Mg2+的区域周围形成。突变型四环与四环受体之间的相互作用与缓慢形成的催化核心三级接触同时出现。因此,四环 - 四环受体相互作用赋予P4 - P6结构域的稳定性,通过稳定早期中间体来决定首选的折叠途径。亚变性浓度的尿素降低了野生型核酶折叠的早期障碍,同时对野生型和突变型RNA折叠的后续步骤产生复杂影响。