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Biology subjects

Gardner, A. F.

Publications and source records attributed to Gardner, A. F..

2 recordsLinked to original sources

High-throughput Kinetics using Capillary Electrophoresis and Robotics (HiKER) platform used to Study T7, T3, and Sp6 RNA Polymerase Misincorporation

T7 RNA Polymerase (RNAP) is a well-studied and widely used enzyme with recent applications in the production of RNA vaccines. For over 50 years denaturing sequencing gels have been used as a key analysis tool for probing the kinetic mechanism of T7 RNAP nucleotide addition. However, sequencing gels are both slow and low throughput limiting their utility for comprehensive enzyme analysis. Here, we report the development of HiKER; (High-throughput Kinetics using Capillary Electrophoresis and Robotics) a high-throughput pipeline to quantitatively measure enzyme kinetics. We adapted a traditional polymerase misincorporation assay for fluorescent detection at scale allowing rapid estimates of RNAP misincorporation in different experimental conditions. In addition, high-throughput kinetics reactions were automated using an open-source OT-2 liquid handling robot. The platform allows multiple weeks worth of data to be collected in mere days. Using this platform, [~]1500 time points were collected in a single workday. T7 RNAP exhibited dramatic differences in both observed rate constant and amplitude depending on the mismatch examined. An average misincorporation frequency of [~]45 misincorporations per million bases was estimated using HiKER and is consistent with previous observations from next generation sequencing studies. Misincorporation time courses for T3 RNAP and Sp6 RNAP were similar to T7 RNAP suggesting conserved kinetic mechanisms. Interestingly, dramatic changes in the extent of misincorporation were observed in the three RNAPs depending on the mismatch. Extension from base mismatch experiments showed differences between T7, T3, and Sp6 RNAP. Sp6 RNAP was the slowest to extend from a mismatch followed by T7 RNAP and then T3 RNAP. Taken together the results presented here demonstrate the capabilities of HiKER to carry out high-throughput enzymology studies. Importantly, this pipeline and the corresponding analysis strategies are affordable, open-source, and broadly applicable to many enzymes.

biochemistry↗

Streamlined DNA template preparation and co-transcriptional 5' capped RNA synthesis enabled by solid-phase catalysis

The success of SARS-CoV-2 mRNA vaccines demonstrated that rapid, large-scale manufacturing of synthetic mRNA is necessary for an effective and timely response to a pandemic. Innovations in areas such as template design and manufacturing processes are being implemented to facilitate more simple, cost-effective and scalable mRNA synthesis. In this study, for the first time, we demonstrate that the enzymatic steps in mRNA production (including DNA template linearization, RNA synthesis, 5' capping and methylation) can be carried out using enzymes immobilized to a solid support. Specifically, we demonstrate efficient IVT template DNA linearization using immobilized BspQI, where the linearized template DNA can be directly used in IVT without the need of purification. We also showed that immobilized T7 RNA polymerase, Faustovirus RNA capping enzyme (FCE), vaccinia cap 2'-O-methyltransfease (2'OMTase) and a novel FCE::T7RNAP fusion enable efficient enzymatic synthesis of Cap-1 RNA in a one-pot format. This solid-phase enzymatic platform may enable highly efficient, seamless and continuous mRNA synthesis workflows that minimizes sample loss and units of operation in biopharmaceutical manufacturing.

biochemistry↗