A generative bias towards average complexity in artificial cell lineages
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Summary
A computational model of a developmental system is introduced and the finding of a generative bias towards average complexity argues for a critical role of selective biases in driving increases in phenotypic complexity and in maintaining high complexity once it has evolved.
- Type
- article
- Published
- 2007-07-22
- Cited by
- 13
- References
- 58
- OpenAlex
- https://openalex.org/W17472908
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:6489592
Keywords
Jet (fluid), Jet stream, Environmental science, Physics, Mechanics
References
- ALES: Cell Lineage Analysis and Mapping of Developmental Events
- The evolution of complexity
- Genetic networks in the early development of Caenorhabditis elegans.
- An epigenetic mutation responsible for natural variation in floral symmetry
- The Major Transitions in Evolution
- Entropy and information in evolving biological systems
- The unicellular ancestry of animal development.
- Gene networks capable of pattern formation: from induction to reaction-diffusion.
- MECHANISMS OF LARGE‐SCALE EVOLUTIONARY TRENDS
- The evolutionary origin of complex features
- Bias in the introduction of variation as an orienting factor in evolution
- Evolution of complexity in signaling pathways
- Mechanism of eve stripe formation.
- Gene regulation for higher cells: a theory.
- Theory of robustness of irreversible differentiation in a stem cell system: chaos hypothesis.
- Arms races between and within species
- On the increase in complexity in evolution.
- Complexity and evolution: What everybody knows
- Modularity in development and evolution.
- The Evolutionary Genetics of Canalization
Cited by
- Trends, stasis, and drift in the evolution of nematode vulva development.
- Determinative Developmental Cell Lineages Are Robust to Cell Deaths
- LinMap: Visualizing Complexity Gradients in Evolutionary Landscapes
- Developmental motifs reveal complex structure in cell lineages
- Modelling cell lineage using a meta-Boolean tree model with a relation to gene regulatory networks.
- A morphospace for synthetic organs and organoids: the possible and the actual.
- Selection for distinct gene expression properties favours the evolution of mutational robustness in gene regulatory networks
- In Silico Experimental Evolution suggests a complex intertwining of selection, robustness and drift in the evolution of genetic networks complexity
- Computational comparison of developmental cell lineage trees by alignments
- Alignment of Cell Lineage Trees Elucidates Genetic Programs for the Development and Evolution of Cell Types
- Early effects of gene duplication on the robustness and phenotypic variability of gene regulatory networks
- Cell‐based allometry: an approach for evaluation of complexity in morphogenesis
- Directed Evolution of an Artificial Cell Lineage
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