Analysis of spliceosomal proteins in Trypanosomatids reveals novel functions in mRNA processing

Itai Dov Tkacz1, Sachin Kumar Gupta, Vadim Volkov

  • 1Mina and Everard Goodman Faculty of Life Sciences and Advanced Materials and Nanotechnology Institute, Bar-Ilan University, Ramat-Gan 52900, Israel.

Insights

This study identifies novel trypanosome-specific splicing factors and reveals unique functions for conserved proteins in RNA processing, advancing our understanding of gene expression in these parasites.

Area of Science:

  • Molecular Biology
  • Parasitology
  • Genetics

Background:

  • Trypanosomatids utilize trans-splicing for all mRNAs, adding a spliced leader (SL) exon.
  • Sm and Lsm proteins are crucial for both cis- and trans-splicing by binding U snRNAs.

Purpose of the Study:

  • To identify and characterize protein complexes associated with SmD3 and Lsm3 in Leishmania tarentolae.
  • To investigate the roles of U1A and other factors in trypanosome RNA processing.

Main Methods:

  • Purification of SmD3- and Lsm3-associated complexes from Leishmania tarentolae.
  • Mass spectrometry analysis to identify co-purified proteins.
  • Functional studies in Trypanosoma brucei to elucidate factor roles.

Main Results:

  • Purified SmD3 and Lsm complexes contained 54 and 39 proteins, respectively, with no mRNA degradation factors in Lsm complexes.
  • U1A complex co-purified with U1 snRNP proteins and the polyadenylation factor CPSF73.
  • Trypanosome-specific factors and conserved proteins like PRP19 and GEMIN2 were found to have unique roles in snRNP biogenesis and SL RNA modification.

Conclusions:

  • The study identified trypanosomatid-specific splicing factors and highlighted specialized functions of conserved snRNP proteins.
  • U1 snRNP appears to function exclusively in cis-splicing, while U1A also impacts polyadenylation and trans-splicing.
  • Conserved proteins like GEMIN2 act as master regulators of snRNP assembly in trypanosomes.

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