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Fail-safe genetic codes designed to intrinsically contain engineered organisms

机译:故障安全的遗传码设计为本质上含有工程生物体

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摘要

One challenge in engineering organisms is taking responsibility for their behavior over many generations. Spontaneous mutations arising before or during use can impact heterologous genetic functions, disrupt system integration, or change organism phenotype. Here, we propose restructuring the genetic code itself such that point mutations in protein-coding sequences are selected against. Synthetic genetic systems so-encoded should fail more safely in response to most spontaneous mutations. We designed fail-safe codes and simulated their expected effects on the evolution of so-encoded proteins. We predict fail-safe codes supporting expression of 20 or 15 amino acids could slow protein evolution to similar to 30% or 0% the rate of standard-encoded proteins, respectively. We also designed quadruplet-codon codes that should ensure all single point mutations in protein-coding sequences are selected against while maintaining expression of 20 or more amino acids. We demonstrate experimentally that a reduced set of 21 tRNAs is capable of expressing a protein encoded by only 20 sense codons, whereas a standard 64-codon encoding is not expressed. Our work suggests that biological systems using rationally depleted but otherwise natural translation systems should evolve more slowly and that such hypoevolvable organisms may be less likely to invade new niches or outcompete native populations.
机译:工程生物中的一个挑战是对许多世代的行为负责。在使用之前或期间产生的自发突变会影响异源遗传功能,破坏系统集成或改变生物表型。在这里,我们提出重组遗传密码本身,使得蛋白质编码序列中的点突变被选择反对。所以编码的合成遗传系统应更安全地失败,以应对大多数自发性突变。我们设计了故障安全代码,并模拟了对所以编码蛋白的进化的预期影响。我们预测支持20或15个氨基酸的表达的失效安全码可以缓慢蛋白质演化分别与标准编码蛋白的速率相似的30%或0%。我们还设计了四核 - 密码子码,该码应确保蛋白质编码序列中的所有单点突变在维持20或更多氨基酸的表达时选择。我们通过实验证明了减少的21个TrNAS能够表达仅由20个感测密码子编码的蛋白质,而不表达标准的64密码子编码。我们的工作表明,使用合理耗尽但自然翻译系统的生物系统应该更慢地发展,并且这种低可爱的生物可能不太可能侵入新的利基或外偶的原产人群。

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