Experimental Rugged Fitness Landscape in Protein Sequence Space
Open Access
- 20 December 2006
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLOS ONE
- Vol. 1 (1) , e96
- https://doi.org/10.1371/journal.pone.0000096
Abstract
The fitness landscape in sequence space determines the process of biomolecular evolution. To plot the fitness landscape of protein function, we carried out in vitro molecular evolution beginning with a defective fd phage carrying a random polypeptide of 139 amino acids in place of the g3p minor coat protein D2 domain, which is essential for phage infection. After 20 cycles of random substitution at sites 12–130 of the initial random polypeptide and selection for infectivity, the selected phage showed a 1.7×104-fold increase in infectivity, defined as the number of infected cells per ml of phage suspension. Fitness was defined as the logarithm of infectivity, and we analyzed (1) the dependence of stationary fitness on library size, which increased gradually, and (2) the time course of changes in fitness in transitional phases, based on an original theory regarding the evolutionary dynamics in Kauffman's n-k fitness landscape model. In the landscape model, single mutations at single sites among n sites affect the contribution of k other sites to fitness. Based on the results of these analyses, k was estimated to be 18–24. According to the estimated parameters, the landscape was plotted as a smooth surface up to a relative fitness of 0.4 of the global peak, whereas the landscape had a highly rugged surface with many local peaks above this relative fitness value. Based on the landscapes of these two different surfaces, it appears possible for adaptive walks with only random substitutions to climb with relative ease up to the middle region of the fitness landscape from any primordial or random sequence, whereas an enormous range of sequence diversity is required to climb further up the rugged surface above the middle region.Keywords
This publication has 40 references indexed in Scilit:
- Evolutionary Optimization of a Nonbiological ATP Binding Protein for Improved Folding StabilityChemistry & Biology, 2004
- Surveying a local fitness landscape of a protein with epistatic sites for the study of directed evolutionBiopolymers, 2002
- Modelling Evolving PopulationsJournal of Theoretical Biology, 1997
- Solubility of artificial proteins with random sequencesFEBS Letters, 1996
- Population Evolution on a Multiplicative Single-Peak Fitness LandscapeJournal of Theoretical Biology, 1996
- Application of N-terminally Truncated DNA Polymerase from Thermus thermophilus ( Tth Polymerase) to DNA Sequencing and Polymerase Chain Reactions: Comparative Study of Tth and Wild-Type Tth PolymerasesDNA Research, 1996
- Molecular Basis for Nonadditive Mutational Effects in Escherichia coli Dihydrofolate ReductaseBiochemistry, 1995
- Additivity of mutational effects in proteinsBiochemistry, 1990
- The NK model of rugged fitness landscapes and its application to maturation of the immune responseJournal of Theoretical Biology, 1989
- Correlation of DNA exonic regions with protein structural units in haemoglobinNature, 1981