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Updated: May 29, 2026

Combining X-Ray Crystallography with Small Angle X-Ray Scattering to Model Unstructured Regions of Nsa1 from S. Cerevisiae
Published on: January 10, 2018
Crystal structure of Onconase at 1.1 Å resolution--insights into substrate binding and collective motion
Daniel E Holloway1, Umesh P Singh, Kuslima Shogen
1Department of Biology and Biochemistry, University of Bath, Bath, UK.
Abstract:
Onconase(®) (ONC) is an amphibian member of the pancreatic ribonuclease superfamily that is selectively toxic to tumor cells. It is a much less efficient enzyme than the archetypal ribonuclease A and, in an attempt to gain further insight, we report the first atomic resolution crystal structure of ONC, determined in complex with sulfate ions at 100 K. The electron density map is of a quality sufficient to reveal significant nonplanarity in several peptide bonds. The majority of active site residues are very well defined, with the exceptions being Lys31 from the catalytic triad and Lys33 from the B(1) subsite, which are relatively mobile but rigidify upon nucleotide binding. Cryocooling causes a compaction of the unit cell and the protein contained within. This is principally the result of an inward movement of one of the lobes of the enzyme (lobe 2), which also narrows the active site cleft. Binding a nucleotide in place of sulfate is associated with an approximately perpendicular movement of lobe 2 and has little further effect on the cleft width. Aspects of this deformation are present in the principal axes of anisotropy extracted from C(α) atomic displacement parameters, indicating its intrinsic nature. The three lowest-frequency modes of ONC motion predicted by an anisotropic network model are compaction/expansion variations in which lobe 2 is the prime mover. Two of these have high similarity to the cryocooling response and imply that the essential 'breathing' motion of ribonuclease A is conserved in ONC. Instead, shifts in conformational equilibria may contribute to the reduced ribonucleolytic activity of ONC.
Insights
Onconase (ONC), a tumor-selective amphibian ribonuclease, exhibits reduced efficiency. Its atomic structure reveals intrinsic flexibility, particularly in lobe 2, impacting active site dynamics and potentially explaining its lower activity compared to ribonuclease A.
Area of Science:
- Biochemistry
- Structural Biology
- Biophysics
Background:
- Onconase (ONC) is an amphibian ribonuclease with selective tumor cell toxicity.
- ONC is less efficient than archetypal ribonuclease A, necessitating structural investigation.
Purpose of the Study:
- Determine the first atomic resolution crystal structure of Onconase (ONC).
- Investigate the structural basis for ONC's reduced ribonucleolytic activity.
Main Methods:
- X-ray crystallography at 100 K with sulfate ion complex.
- Analysis of electron density maps and atomic displacement parameters.
- Anisotropic network modeling for protein motion prediction.
Main Results:
- Revealed significant peptide bond nonplanarity and defined active site residues.
- Identified mobility in Lys31 and Lys33, which rigidify upon nucleotide binding.
- Observed cryocooling-induced protein compaction and active site cleft narrowing due to lobe 2 movement.
Conclusions:
- ONC's structural flexibility, especially lobe 2 movement, is intrinsic and conserved.
- Conformational equilibria shifts, rather than altered breathing motions, likely cause ONC's reduced ribonucleolytic activity.
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