2ROE
Solution structure of thermus thermophilus HB8 TTHA1718 protein in vitro
2ROE の概要
エントリーDOI | 10.2210/pdb2roe/pdb |
関連するPDBエントリー | 2ROG |
分子名称 | Heavy metal binding protein (1 entity in total) |
機能のキーワード | protein, metal binding protein |
由来する生物種 | Thermus thermophilus |
タンパク質・核酸の鎖数 | 1 |
化学式量合計 | 7051.32 |
構造登録者 | Sakakibara, D.,Sasaki, A.,Ikeya, T.,Hamatsu, J.,Koyama, H.,Mishima, M.,Mikawa, T.,Waelchli, M.,Smith, B.O.,Shirakawa, M.,Guentert, P.,Ito, Y. (登録日: 2008-03-20, 公開日: 2009-03-03, 最終更新日: 2024-05-29) |
主引用文献 | Sakakibara, D.,Sasaki, A.,Ikeya, T.,Hamatsu, J.,Hanashima, T.,Mishima, M.,Yoshimasu, M.,Hayashi, N.,Mikawa, T.,Walchli, M.,Smith, B.O.,Shirakawa, M.,Guntert, P.,Ito, Y. Protein structure determination in living cells by in-cell NMR spectroscopy Nature, 458:102-105, 2009 Cited by PubMed Abstract: Investigating proteins 'at work' in a living environment at atomic resolution is a major goal of molecular biology, which has not been achieved even though methods for the three-dimensional (3D) structure determination of purified proteins in single crystals or in solution are widely used. Recent developments in NMR hardware and methodology have enabled the measurement of high-resolution heteronuclear multi-dimensional NMR spectra of macromolecules in living cells (in-cell NMR). Various intracellular events such as conformational changes, dynamics and binding events have been investigated by this method. However, the low sensitivity and the short lifetime of the samples have so far prevented the acquisition of sufficient structural information to determine protein structures by in-cell NMR. Here we show the first, to our knowledge, 3D protein structure calculated exclusively on the basis of information obtained in living cells. The structure of the putative heavy-metal binding protein TTHA1718 from Thermus thermophilus HB8 overexpressed in Escherichia coli cells was solved by in-cell NMR. Rapid measurement of the 3D NMR spectra by nonlinear sampling of the indirectly acquired dimensions was used to overcome problems caused by the instability and low sensitivity of living E. coli samples. Almost all of the expected backbone NMR resonances and most of the side-chain NMR resonances were observed and assigned, enabling high quality (0.96 ångström backbone root mean squared deviation) structures to be calculated that are very similar to the in vitro structure of TTHA1718 determined independently. The in-cell NMR approach can thus provide accurate high-resolution structures of proteins in living environments. PubMed: 19262674DOI: 10.1038/nature07814 主引用文献が同じPDBエントリー |
実験手法 | SOLUTION NMR |
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