Department of Plant Biotechnology, College of Agriculture and Life Sciences, Chonnam National University, Gwangju, Republic of Korea.
Phytochemistry. 2010 Apr;71(5-6):543-7. doi: 10.1016/j.phytochem.2009.12.006. Epub 2010 Jan 8.
Among the four cold shock domain proteins (CSDPs) identified in Arabidopsis thaliana, it has recently been shown that CSDP1 harboring seven CCHC-type zinc fingers, but not CSDP2 harboring two CCHC-type zinc fingers, function as a RNA chaperone during cold adaptation. However, the structural features relevant to this differing RNA chaperone activity between CSDP1 and CSDP2 remain largely unknown. To determine which structural features are necessary for the RNA chaperone activity of the CSDPs, the importance of the N-terminal cold shock domain (CSD) and the C-terminal zinc finger glycine-rich domains of CSDP1 and CSDP2 were assessed. The results of sequence motif-swapping and deletion experiments showed that, although the CSD itself harbored RNA chaperone activity, the number and length of the zinc finger glycine-rich domains of CSDPs were crucial to the full activity of the RNA chaperones. The C-terminal domain itself of CSDP1, harboring seven CCHC-type zinc fingers, also has RNA chaperone activity. The RNA chaperone activity and nuclei acid-binding property of the native and chimeric proteins were closely correlated with each other. Collectively, these results indicate that a specific modular arrangement of the CSD and the zinc finger domain determines both the RNA chaperone activity and nucleic acid-binding property of CSDPs; this, in turn, contributes to enhanced cold tolerance in plants as well as in bacteria.
在拟南芥中鉴定出的四个冷休克结构域蛋白(CSDPs)中,最近研究表明,含有七个 CCHC 型锌指的 CSDP1 而不是含有两个 CCHC 型锌指的 CSDP2 在冷适应过程中作为 RNA 伴侣发挥作用。然而,CSDP1 和 CSDP2 之间这种不同的 RNA 伴侣活性相关的结构特征在很大程度上仍然未知。为了确定 CSDPs 的 RNA 伴侣活性的相关结构特征,评估了 CSDP1 和 CSDP2 的 N 端冷休克结构域(CSD)和 C 端锌指甘氨酸丰富结构域的重要性。序列模体交换和缺失实验的结果表明,尽管 CSD 本身具有 RNA 伴侣活性,但 CSDPs 的锌指甘氨酸丰富结构域的数量和长度对于 RNA 伴侣的完全活性至关重要。CSDP1 的 C 端结构域本身,含有七个 CCHC 型锌指,也具有 RNA 伴侣活性。天然和嵌合蛋白的 RNA 伴侣活性和核酸结合特性彼此密切相关。总之,这些结果表明 CSD 和锌指结构域的特定模块化排列决定了 CSDPs 的 RNA 伴侣活性和核酸结合特性;这反过来又有助于提高植物和细菌的耐寒性。