A Stress-Threshold and Cybernetic Architecture of Punctuated Evolution: Modular Phenotypic Unfolding and Genetic Stabilization (SUNF/FUNF)
This work proposes a unified evolutionary framework — SUNF → FUNF — describing a possible temporal architecture in which environmentally mediated phenotypic accessibility may precede subsequent genetic and regulatory stabilization. The framework addresses how organisms can undergo rapid phenotypic transitions without immediate changes in DNA sequence, how similar genetic backgrounds can produce substantially different phenotypic outcomes under different environmental and developmental conditions, and how environmental signals can reorganize developmental and regulatory states before measurable genetic differentiation becomes established. In this framework, evolution can involve two temporally coupled layers: SUNF (Software-Unfolding) — a relatively fast, environment-mediated reconfiguration of regulatory and developmental accessibility — and FUNF (Firmware-Unfolding) — a slower evolutionary process in which selection can increase the reliability, persistence, or environmental independence of an environmentally accessible phenotype through genetic and regulatory accommodation. If supported by empirical tests, the framework suggests that an important task for evolutionary biology is to characterize the dynamic processes that allow organisms to reorganize phenotype in response to environmental change and, in some cases, subsequently stabilize aspects of that response. These processes involve a repertoire of biological modules, context-dependent regulatory configurations, and activation or deactivation processes responsive to environmental and developmental conditions. By formalizing this temporal architecture, the SUNF → FUNF framework provides a conceptual bridge between developmental plasticity, regulatory evolution, and natural selection. Its purpose is not to replace established evolutionary mechanisms, but to formulate a testable hypothesis about how their temporal organization may contribute to rapid phenotypic transitions and subsequent genetic accommodation.
Authors
- Ilya Fine (ORCID: https://orcid.org/0000-0002-3237-1581)
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-24
- DOI
- https://doi.org/10.5281/zenodo.22934830
- Primary Topic
- Developmental Biology and Gene Regulation
- Type
- article
- Field-Weighted Citation Impact
- 0.00