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Updated: Feb 28, 2026

Probing The Structure And Dynamics Of Nucleosomes Using Atomic Force Microscopy Imaging
Published on: January 31, 2019
Global architecture of human poly(A)-specific ribonuclease by atomic force microscopy in liquid and dynamic light
Anna Niedzwiecka1, Malgorzata Lekka, Per Nilsson
1Laboratory of Biological Physics, Institute of Physics, Polish Academy of Sciences, Warsaw, Poland. annan@ifpan.edu.pl
Abstract:
Deadenylation is the initial and often rate-limiting step in the main pathways of eukaryotic mRNA decay. Poly(A)-specific ribonuclease (PARN) is a eukaryotic enzyme that efficiently degrades mRNA poly(A) tails. Structural and functional studies have shown that human PARN is composed of at least three functional domains, i.e. the catalytic nuclease domain and two RNA binding domains, the R3H and the RNA recognition motif (RRM), respectively. However, the complete structure of the full length protein is still unknown. We have investigated the global architecture of human PARN by atomic force microscopy (AFM) imaging in buffered milieu and report for the first time the dimensions of the full length protein at subnanometer resolution. The AFM images of single PARN molecules reveal compact ellipsoidal dimers (10.9 × 7.6 × 4.6nm). The dimeric form of PARN was confirmed by dynamic light scattering (DLS) measurements that rendered a molecular weight of 161 kDa, in accordance with previous crystal structures of PARN fragments showing a dimeric composition. We discuss a putative internal arrangement of three functional domains within the full length PARN dimer.
Insights
Researchers visualized full-length human poly(A)-specific ribonuclease (PARN) using atomic force microscopy. This study reveals the enzyme
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Deadenylation is a crucial step in eukaryotic mRNA decay.
- Poly(A)-specific ribonuclease (PARN) degrades mRNA poly(A) tails.
- Human PARN comprises catalytic and RNA-binding domains, but its full structure is unknown.
Purpose of the Study:
- To determine the global architecture and dimensions of full-length human PARN.
- To visualize the native structure of PARN at high resolution.
Main Methods:
- Atomic force microscopy (AFM) for high-resolution imaging of single molecules.
- Dynamic light scattering (DLS) for molecular weight determination.
Main Results:
- AFM imaging revealed compact ellipsoidal PARN dimers measuring 10.9 × 7.6 × 4.6nm.
- DLS confirmed the dimeric form with a molecular weight of 161 kDa.
- Provided the first subnanometer resolution dimensions of full-length human PARN.
Conclusions:
- Human PARN exists as a dimer in solution.
- The study provides insights into the quaternary structure of PARN.
- This structural information aids in understanding PARN's role in mRNA decay.
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