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Kalb, E.

Publications and source records attributed to Kalb, E..

3 recordsLinked to original sources

An Expanded Repertoire of tRNA Sources for Cell-Free Protein Synthesis

Cell-free expression systems (CFE) are flexible protein translation platforms that simplify the central dogma into an accessible reaction space. Within these systems, bulk transfer RNAs (tRNAs) are critical substrates which deliver amino acids to the elongating ribosome. For years, CFE systems were completed with commercially available tRNA isolated from E. coli MRE600. All commercial sources of tRNA have since been discontinued, jeopardizing future work in all applications of cell-free translation. Here, we address this need by repurposing previously described tRNA isolation methods to produce tRNAs suitable for CFE applications. We isolated the tRNA pools of E. coli strains A19, BL21(DE3), and Rosetta2 BL21(DE3), finding A19 tRNAs but not BL21(DE3) or Rosetta2 BL21(DE3) capable of robust in vitro translation. We determined the abundances of individual tRNAs using tRNA-seq, finding BL21(DE3) and Rosetta2 BL21(DE3) contained outsized abundances of several tRNAs, compromising translation activity. Using codon optimization strategies which align codon usage to tRNA abundance, we were able to mitigate the impact of misaligned tRNA abundances. We extended these studies to V. natriegens, a promising platform for synthetic biology and CFE. We find that neither exogenous V. natriegens tRNAs nor codon optimization are viable options to improve translation yields. Our work here highlights the importance of tRNA abundance within the context of CFE, and simultaneously addresses a critical challenge within cell-free translation.

biochemistry↗

Purification of post-transcriptionally modified tRNAs for enhanced cell-free translation systems

Transfer RNAs (tRNAs) are utilized by the ribosome to decode the nucleic acid alphabet. tRNA structure, stability, aminoacylation efficiency, and decoding efficacy are governed by their extensive post-transcriptional modifications. In most studies, individual tRNAs are generated using in vitro transcription, which produces tRNAs devoid of these critical site-specific modifications, negatively affecting translation yields and fidelity. To address this, we have developed a purification method which couples tRNA overexpression to DNA hybridization-based purification. Using this approach, we produced native tRNAs from E. coli in high yield and purity while retaining their complement of native post-transcriptional modifications and translational activity. We extend this technique to the purification of [Formula] and [Formula], tRNAs of critical importance for genetic code expansion. We confirmed that both [Formula] and [Formula] contain native E. coli post-transcriptional modifications and provide the first complete modification profiles of each. Moreover, we found that in vivo-generated [Formula] significantly outperforms its in vitro-generated counterpart in amber codon suppression in cell-free translation reactions. Finally, we purified an engineered variant of E. coli [Formula], extending our studies to synthetic tRNAs. We present a flexible method which generates modified tRNAs in high yield and purity, addressing a critical and persistent challenge in RNA biochemistry. This toolkit enables future structural and cell-free studies through scalable access to native and engineered tRNAs, advancing the broader field of translation and synthetic biology.

biochemistry↗

High yield, low magnesium flexizyme reactions in a water-ice eutectic phase

Flexizymes enable the stoichiometric acylation of tRNAs with a variety of compounds, enabling the in vitro translation of peptides with both non-natural backbones and side chains. However, flexizyme reactions have several drawbacks, including single-turnover kinetics, high Mg(II) carryover inhibiting in vitro translation, and rapid product hydrolysis. Here we present flexizyme reactions utilizing an ice-eutectic phase, with high yields, 30X lower Mg(II), and long-term product stability. The eutectic flexizyme reactions increase the ease of use and flexibility of flexizyme aminoacylation, and increase the in vitro protein production.

synthetic biology↗