Genetic information is stored in DNA. Genes generally contain the instructions on how to produce one specific protein. When a gene is activated, the cellular machinery produces a copy of this gene in the form of pre-messenger RNA (pre-mRNA) in a process called transcription. Pre-mRNA is an immature molecule that needs to be processed in order to form a functional mRNA that contains useful instructions. This processing includes two important events: pre-mRNA splicing, in which non-coding information is removed from the pre-mRNA, and mRNA packaging, in which the mature mRNA is organized into a specific three-dimensional shape. Only when both these steps, splicing and packaging, are completed successfully can the mRNA be exported from the cell nucleus into the cytoplasm, where it can be used to make new proteins.
The aim of this project was to better understand the molecular machines involved in pre-mRNA splicing and packaging, and how they work together. Specifically, it was unclear how the splicing machinery, (called the spliceosome), hands over the mature mRNA to the packaging machinery (also known as TREX, for transcription-export complex). After handover, the spliceosome also needs to be actively disassembled, or “recycled”, in order to regenerate spliceosome components.
To tackle these questions, we set out to use genome engineering and advanced electron microscopy methods (known as cryo-EM) to isolate spliceosomes, mRNAs, and TREX complexes from human cells and obtain detailed images of these complex molecular machines at different stages of their life cycle. This would allow us to understand how these machineries coordinate their activities and how it is ensured that spliceosomes are only disassembled once they have executed their task.