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RNase P and RNase mitochondrial RNA processing (MRP) are ribonucleoproteins (RNPs) that consist of a catalytic RNA and a varying number of protein cofactors. RNase P is responsible for precursor tRNA maturation in all three domains of life, while RNase MRP, exclusive to eukaryotes, primarily functions in rRNA biogenesis. While eukaryotic RNase P is associated with more protein cofactors and has an RNA subunit with fewer auxiliary structural elements compared to its bacterial cousin, the double-anchor precursor tRNA recognition mechanism has remarkably been preserved during evolution. RNase MRP shares evolutionary and structural similarities with RNase P, preserving the catalytic core within the RNA moiety inherited from their common ancestor. By incorporating new protein cofactors and RNA elements, RNase MRP has established itself as a distinct RNP capable of processing ssRNA substrates. The structural information on RNase P and MRP helps build an evolutionary trajectory, depicting how emerging protein cofactors harmonize with the evolution of RNA to shape different functions for RNase P and MRP. Here, we outline the structural and functional relationship between RNase P and MRP to illustrate the coevolution of RNA and protein cofactors, a key driver for the extant, diverse RNP world.
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http://dx.doi.org/10.1016/j.jbc.2024.105729 | DOI Listing |
Nucleic Acids Res
August 2025
Department of Biochemistry, University of California, Riverside, CA 92521, United States.
Ribonuclease (RNase) MRP is a conserved RNA-based enzyme best known for its essential role in the maturation of ribosomal RNA (rRNA) in eukaryotes. However, the composition and RNA substrate specificity of this multisubunit ribonucleoprotein complex in higher eukaryotes remain a mystery. Here, we identify NEPRO and C18ORF21 (which we renamed RMP64 and RMP24, respectively) as constitutive subunits of metazoan RNase MRP.
View Article and Find Full Text PDFCancer Res Treat
August 2025
Department of Central Laboratory & Institute of Clinical Molecular Biology, Peking University People's Hospital, Beijing, China.
Purpose: Relapsed and refractory acute myeloid leukemia (R/R AML) has a poor prognosis due to chemotherapy resistance. Mitochondrial dysfunction contributes to this resistance, but the role of the RNA component of mitochondrial RNA processing endoribonuclease (RMRP) in R/R AML remains unclear.
Materials And Methods: Mass spectrometry identified molecules linked to chemoresistance in AML.
Nat Commun
June 2025
Department of Biochemistry, University of California, Riverside, 3401 Watkins Drive, Boyce Hall, Riverside, CA, USA.
Cellular quiescence is a state of reversible proliferative arrest that plays essential roles in development, resistance to stress, aging, and longevity of organisms. Here we report that rapid depletion of RNase MRP, a deeply conserved RNA-based enzyme required for rRNA biosynthesis, induces a long-term yet reversible proliferative arrest in human cells. Severely compromised biogenesis of rRNAs along with acute transcriptional reprogramming precede a gradual decline of the critical cellular functions.
View Article and Find Full Text PDFPLoS One
June 2025
School of Biosciences, The University of Sheffield, Sheffield, United Kingdom.
The DEDD family of exonucleases has expanded through evolution whilst retaining a conserved catalytic domain. One subgroup with closely related catalytic DEDD domain sequences includes the yeast enzymes Rex1 (RNA exonuclease 1) and Rex3, the metazoan REXO1 (RNA exonuclease 1 homologue) and Rexo5 proteins, and the plant protein Sdn5 (small RNA degrading nuclease). Comparison of protein structure models and sequence analyses revealed that this group can be differentiated into two distinct clades consisting of Rex1, Rexo5 and Sdn5 on the one hand, and Rex3 and REXO1 on the other.
View Article and Find Full Text PDFCell Rep
June 2025
Department of Genetics and Biochemistry, Clemson University, Clemson, SC 29631, USA; Clemson University Center for Human Genetics, Greenwood, SC 29646, USA. Electronic address:
Human RNase MRP is a ribonucleoprotein (RNP) enzyme that processes precursor rRNA (pre-rRNA) at ITS1 site 2 and may have additional activities. It is an endonuclease related to RNase P, which processes pre-tRNAs and pre-tRNA-like substrates. In Saccharomyces cerevisiae, these two RNPs utilize distinct catalytic RNAs with eight shared and one or two specific protein subunits.
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