On the information expressed in enzyme primary structure: lessons from Ribonuclease A
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Summary
Brownian computations are directed at Ribonuclease A (RNase A) so as to quantify the information at the atom/covalent bond level to identify signature features of the active protein on new information grounds.
- Type
- article
- Published
- 2010-11-01
- Cited by
- 6
- References
- 34
- OpenAlex
- https://openalex.org/W2077966893
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:1353944
Keywords
Ribonuclease, RNase P, Computation, Protein primary structure, Covalent bond
References
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- Feynman Lectures on Computation
- The network of sequence flow between protein structures
- Variability of Molecular Descriptors in Compound Databases Revealed by Shannon Entropy Calculations
- Medicinal chemistry and bioinformatics--current trends in drugs discovery with networks topological indices.
- Science and information theory
- QSAR for RNases and theoretic–experimental study of molecular diversity on peptide mass fingerprints of a new Leishmania infantum protein
- Contribution of the active site histidine residues of ribonuclease A to nucleic acid binding.
- New transport peptides broaden the horizon of applications for peptidic pharmaceuticals
- Principles that govern the folding of protein chains.
- The RNase a superfamily: Generation of diversity and innate host defense
- Use of molecular negentropy to encode structure governing biological activity.
- 3D-MEDNEs: an alternative "in silico" technique for chemical research in toxicology. 2. quantitative proteome-toxicity relationships (QPTR) based on mass spectrum spiral entropy.
- Modelling of carbonic anhydrase inhibitory activity of sulfonamides using molecular negentropy.
- Distinguishing between Natural Products and Synthetic Molecules by Descriptor Shannon Entropy Analysis and Binary QSAR Calculations
- Coulombic effects of remote subsites on the active site of ribonuclease A.
- Studies on the total synthesis of an enzyme. I. Objective and strategy.
- Back to the future: Ribonuclease A
Cited by
- On the information expressed in enzyme structure: more lessons from ribonuclease A
- Information Properties of Naturally-Occurring Proteins: Fourier Analysis and Complexity Phase Plots
- A New Bioinformatics Approach to Natural Protein Collections: Permutation Structure Contrasts of Viral and Cellular Systems
- Scheduler for SANN Analysis of U.S. Supreme Court Network Based on Markov-Shannon Entropy
- Net-Net Auto Machine Learning (AutoML) Prediction of Complex Ecosystems
- Net-Net AutoML Selection of Artificial Neural Network Topology for Brain Connectome Prediction
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