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An expanded genetic code with a functional quadruplet codon.

机译:具有功能性四联密码子的扩展遗传密码。

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摘要

With few exceptions the genetic codes of all known organisms encode the same 20 amino acids, yet all that is required to add a new building block are a unique tRNA/aminoacyl-tRNA synthetase pair, a source of the amino acid, and a unique codon that specifies the amino acid. For example, the amber nonsense codon, TAG, together with orthogonal Methanococcus jannaschii or Escherichia coli tRNA/synthetase pairs have been used to genetically encode a variety of unnatural amino acids in E. coli and yeast, respectively. However, the availability of noncoding triplet codons ultimately limits the number of amino acids encoded by any organism. Here, we report the design and generation of an orthogonal synthetase/tRNA pair derived from archaeal tRNA(Lys) sequences that efficiently and selectively incorporates an unnatural amino acid into proteins in response to the quadruplet codon, AGGA. Frameshift suppression with l-homoglutamine (hGln) does not significantly affect protein yields or cell growth rates and is mutually orthogonal with amber suppression, permitting the simultaneous incorporation of two unnatural amino acids, hGln and O-methyl-l-tyrosine, at distinct positions within myoglobin. This work suggests that neither the number of available triplet codons nor the translational machinery itself represents a significant barrier to further expansion of the genetic code.
机译:除少数例外,所有已知生物的遗传密码均编码相同的20个氨基酸,但添加新构件所需的全部操作是唯一的tRNA /氨酰基-tRNA合成酶对,氨基酸来源和唯一密码子指定氨基酸。例如,琥珀废话密码子TAG与正交詹氏甲烷球菌或大肠杆菌tRNA /合成酶对一起已分别用于遗传编码大肠杆菌和酵母中的多种非天然氨基酸。但是,非编码三联体密码子的可用性最终限制了任何生物体编码的氨基酸数量。在这里,我们报告设计和生成的古细菌tRNA(Lys)序列的正交合成酶/ tRNA对的有效和选择性地将非天然氨基酸纳入蛋白质响应四联密码子,AGGA。用l-高谷氨酰胺(hGln)抑制移码不会显着影响蛋白质产量或细胞生长速率,并且与琥珀色抑制相互正交,从而允许在不同位置同时掺入两种非天然氨基酸hGln和O-甲基-1-酪氨酸在肌红蛋白内。这项工作表明,可用的三联体密码子的数目或翻译机制本身都不是进一步扩展遗传密码的重大障碍。

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