Cell Communication and Signaling· 2026Q1
The Epigenetic Memory Nexus: encoding, maintenance, and inheritance of insect diapause
- 0citations
- Q1SCImago
- 2026year
Short summary
A new framework, the Epigenetic Memory Nexus, proposes that epigenetic mechanisms (DNA methylation, histone modifications, ncRNAs) encode, maintain, and transmit insect diapause memory, resolving the classical neuroendocrine-circadian paradigm's limitations.
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Key points
- The Epigenetic Memory Nexus integrates DNA methylation, histone modifications, and non-coding RNAs to explain insect diapause.
- The Nexus translates environmental signals into stable chromatin states that establish the diapause phenotype.
- Diapause reprograms a DNA methylation-based clock, slowing adult aging and linking seasonal adaptation to life-history strategy.
- Heritable histone marks enable non-genetic pre-adaptation, transmitting diapause memory across generations.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract The classical neuroendocrine-circadian paradigm for insect diapause faces a fundamental memory crisis: it cannot explain how insects accumulate environmental signals, maintain a stable diapause state for months, or transmit this adaptive information across generations. To resolve this, we propose a unifying framework called the Epigenetic Memory Nexus. It provides a putative mechanistic basis for encoding, stabilizing, and heritably transmitting environmental information. We define the Nexus as a dynamic hub comprising three epigenetic pillars: DNA methylation, histone modifications, and non-coding RNAs (ncRNAs). This review delineates the Nexus’s molecular architecture and its three core functions. First, it acts as a signal-translation bridge, converting circadian-decoded inputs into stable chromatin states, which in turn orchestrate neuroendocrine output to establish the diapause phenotype. Second, it serves as a master regulator of biological time: diapause reprograms a DNA methylation-based epigenetic clock that slows adult aging, linking a short-term seasonal adaptation to a long-term life-history strategy. Third, it functions as a vehicle for evolutionary adaptation, transmitting diapause memory through heritable histone marks, enabling non-genetic pre-adaptation. By integrating these findings, we propose that the Nexus extends our conceptualization of diapause from a simple hormonal switch to a programmable, heritable memory state anchored in chromatin-level regulation. This integrative framework offers a potential resolution to long-standing contradictions in diapause biology while providing a roadmap for predicting and managing insect populations in an era of rapid climate change.
The authors' abstract, as published at the source. Cell Communication and Signaling, 2026 · DOI ↗
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Field: Endocrine and Autonomic Systems
Endocrine and Autonomic SystemsNeuroscience