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Fricke, R.

Publications and source records attributed to Fricke, R..

2 recordsLinked to original sources

Direct, quantitative, and comprehensive analysis of tRNA acylation using intact tRNA liquid-chromatography mass-spectrometry

Aminoacyl-tRNA synthetases (aaRSs) provide the functional and essential link between the sequence of an mRNA and the protein it encodes. aaRS enzymes catalyze a two-step chemical reaction that acylates specific tRNAs with a cognate -amino acid. In addition to their role in translation, acylated tRNAs contribute to non-ribosomal natural product biosynthesis and are implicated in multiple human diseases. From the standpoint of synthetic biology, the acylation of tRNAs with a non-canonical -amino acid (ncAA) or more recently, a non--amino acid monomer (nAA) is a critical first step in the incorporation of these monomers into proteins, where they can be used for fundamental and applied science. These endeavors all demand an understanding of aaRS activity and specificity. Although a number of methods to monitor aaRS function in vitro or in vivo have been developed, many evaluate only the first step of the two-step reaction, require the use of radioactivity, or are slow, difficult to generalize, or both. Here we describe an LC-MS assay that rapidly, quantitatively, and directly monitors aaRS activity by detecting the intact acyl-tRNA product. After a simple tRNA acylation reaction workup, acyl- and non-acyl-tRNA molecules are resolved using ion-pairing reverse phase chromatography and their exact masses are determined using high-resolution time-of-flight mass spectrometry. The intact tRNA assay we describe is fast, simple, and quantifies reaction yields as low as 0.23%. The assay can also be employed on tRNAs acylated with flexizyme to detect products that are undetectable using standard techniques. The protocol requires basic expertise in molecular biology, mass spectrometry, and RNAse-free techniques.

biochemistry↗

Orthogonal synthetases for polyketide precursors

The absence of orthogonal aminoacyl-tRNA synthetases that accept non-L--amino acids is the primary bottleneck hindering the in vivo translation of sequence-defined hetero-oligomers. Here we report PylRS enzymes that accept -hydroxy acids, -thio acids, N-formyl-L--amino acids, and -carboxyl acid monomers (malonic acids) that are formally precursors to polyketide natural products. These monomers are all accommodated and accepted by the translation apparatus in vitro. High-resolution structural analysis of the complex between one such PylRS enzyme and a meta-substituted 2-benzylmalonate derivative reveals an active site that discriminates pro-chiral carboxylates and accommodates the large size and distinct electrostatics of an -carboxyl acid substituent. This work emphasizes the potential of PylRS-derived enzymes for acylating tRNA with monomers whose -substituent diverges significantly from the -amine embodied in proteinogenic amino acids. These enzymes could act in synergy with natural or evolved ribosomes to generate diverse sequence-defined non-protein hetero-oligomers.

synthetic biology↗