In vitro transcription is a fundamental technique in molecular biology. This process involves the synthesis of RNA molecules from a DNA template in a controlled laboratory environment, outside of living cells. It enables the production of custom-designed RNA sequences for several critical research applications.
In vitro transcription, often abbreviated as IVT, is a fundamental technique in molecular biology with crucial applications in drug discovery. This process involves the synthesis of RNA molecules from a DNA template in a controlled laboratory environment, enabling the production of custom-designed RNA sequences. We will introduce you to the concept of in vitro transcription and how Integrated DNA Technologies (IDT) plays a pivotal role in this process, ultimately contributing to breakthroughs in drug discovery.
In vitro transcription is built upon the central dogma of molecular biology, which states that genetic information flows from DNA to RNA to protein. This process harnesses the natural enzymatic machinery present in cells to produce RNA molecules outside of their native cellular context. Key components of in vitro transcription include:
In vitro transcription plays a pivotal role in drug discovery, primarily by enabling the production of custom RNA molecules for various applications:
While in vitro transcription is a versatile technique, it does come with challenges, such as ensuring high yields of pure RNA and minimizing template-independent synthesis. Moreover, the field of RNA therapeutics continues to evolve, creating new opportunities and challenges for IVT-based approaches. Advancements in IVT technology, such as improved enzymes and buffers, will likely enhance the efficiency and scalability of RNA production.
One example of an advancement enabling the ease and scalability of in vitro transcription is IDT’s gBlocks HiFi Gene Fragments. With NGS-verified, clonal fragments from 1000–3000 bp, obtaining high quality template without the trouble of cloning and sequencing is vastly simplified. Using gBlocks HiFi gene fragments, researchers has been able to accelerate mRNA manufacturing through IVT [1,2].
In the future, as the understanding of RNA biology deepens, IVT will continue to be at the forefront of drug discovery efforts, contributing to the development of innovative therapies. The ability to generate custom RNA molecules for a wide range of applications makes IVT an indispensable tool for the advancement of drug discovery and the development of novel therapeutic strategies and IDT will be here to help.