How Early-Life Programming During Embryogenesis Imprints Cellular Memory
Abstract
1. Introduction
2. Background
3. Fundamental Principles of Cellular Memory: Epigenetic and Metabolic Regulation
3.1. Epigenetic Memory
3.2. Metabolic Memory
3.3. Mechanisms by Which Maternal and Embryonic Nutritional–Metabolic Environments Establish Cellular Memory
4. External Influences During Embryogenesis
4.1. Nutritional and Metabolic Influences
4.2. In Vitro Physical and Chemical Exposures
4.3. Windows of Sensitivity
| Author | Year | Species | Findings | Exposure | Ref. |
|---|---|---|---|---|---|
| Kwong et al. | 2000 | Rat | Blastocyst defects and hypertension | Nutrition | [28] |
| Watkins et al. | 2010 | Mouse | Effects vascular metabolism | [35] | |
| Eckert et al. | 2012 | Blastocyst metabolic reprogramming | [37] | ||
| Seki et al. | 2017 | Hepatic hypermethylation and metabolic changes | [111] | ||
| Upadhyaya et al. | 2017 | Cardiac histone modifications | [112] | ||
| Lessard et al. | 2019 | Multigenerational male semen defects | [8] | ||
| Crisóstomo et al. | 2021 | Inherited altered metabolites | [17] | ||
| Pepin et al. | 2022 | Inherited metabolic dysfunction and histone methylation | [113] | ||
| Tang et al. | 2023 | Methylation and metabolism | [114] | ||
| Whatley et al. | 2023 | Metabolic alteration and altered histone acetylation | [115] | ||
| Whatley et al. | 2024 | Altered histone acetylation | [116] | ||
| Tomar et al. | 2024 | Metabolic inheritance by sperm mitochondrial RNAs | [117] | ||
| Zhu et al. | 2024 | Disrupts development and metabolism | [56] | ||
| Alfian et al. | 2025 | Altered heterochromatin methylation | [76] | ||
| Desmet et al. | 2016 | Bovine | Epigenetic and transcriptomic changes | [118] | |
| Fernández-González et al. | 2004 | Mouse | Alters genes and behavior | Culture media | [38] |
| Watkins et al. | 2007 | Increases systolic blood pressure | [40] | ||
| de Lima et al. | 2020 | Embryo metabolic adaptation | [51] | ||
| Ishiyama et al. | 2021 | Hyperglycemia and higher inflammatory genes | [108] | ||
| Ishiyama et al. | 2021 | Diabetic kidney disease | [109] | ||
| Whatley et al. | 2022 | Altered development and metabolism | [119] | ||
| Sato et al. | 2025 | Improve glucose intolerance and in vitro culture effects | [120] | ||
| da Fonseca Junior et al. | 2023 | Bovine | Adaptive metabolic and epigenetic | [121] | |
| Dumoulin et al. | 2010 | Human | Influences offspring birthweight | [69] | |
| Nelissen et al. | 2013 | Influences fetal growth | [70] | ||
| Ducreux et al. | 2023 | Altered gene expressions | [77] | ||
| Khosla et al. | 2001 | Mouse | Altered imprinted gene expression | Culture conditions | [47] |
| Ecker et al. | 2004 | Long-term behavioral effects | [7] | ||
| Mahsoudi et al. | 2007 | Transgenerational effects | [39] | ||
| Banrezes et al. | 2011 | Affects adult body weight | [41] | ||
| Uysal et al. | 2022 | Altered DNA methylation | [46] | ||
| Moriyama et al. | 2022 | Altered gene expression and metabolites | [72] | ||
| Jharna et al. | 2025 | Alters metabolism | [49] | ||
| Donjacour et al. | 2014 | Mouse | Alters glucose metabolism | IVF | [75] |
| Bai et al. | 2022 | Heterochromatin alterations and placental defects | [122] | ||
| Bari et al. | 2023 | Increased birth rates | [123] | ||
| Lee et al. | 2025 | Proteomic and metabolic response | [4] | ||
| Cui et al. | 2020 | Human | Increased metabolic dysfunction risk | ART exposure | [124] |
| Huang et al. | 2021 | Lower DNA methylation | [125] | ||
| Ling et al. | 2009 | Mouse | Impacts developmental competence | Cryopreservation | [83] |
| Qin et al. | 2021 | Abnormal glucose metabolism | [89] | ||
| Chen et al. | 2024 | Affects metabolism | [88] | ||
| Lee et al. | 2024 | Metabolic and gene expression alterations | [90] | ||
| Pavlinkova et al. | 2017 | Mouse | Male subfertility inherited | Diabetes exposure | [18] |
| Chen, B. | 2022 | Mouse | Transmission of glucose intolerance | [126] | |
| Petropoulos et al. | 2015 | Human | Offspring DNA methylation changes | [58] | |
| Rechavi et al. | 2014 | C. elegans | Small-RNA-based transgenerational inheritance | Starvation | [127] |
| Deena et al. | 2025 | Chicken | ROS generation and apoptosis-induced | Electromagnetic radiation | [96] |
5. Mechanisms of Cellular Memory
5.1. DNA Methylation
5.2. Histone Modifications
5.3. Role of Non-Coding RNAs in Maintaining Memory
5.4. Nuclear Structure and Chromatin Remodeling Complexes
5.5. Ribosome and rRNA Processing
5.6. Autophagy
6. Transgenerational Cellular Memory
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| 5′ ETS | 5′ External Transcribed Spaced |
| Acetyl-CoA | Acetyl coenzyme A |
| αKG | Alpha-ketoglutarate |
| αMEM | Alpha Minimum Essential Medium |
| ART | Assisted Reproductive Technology |
| BPA | Bisphenol A |
| BSA | Bovine serum albumin |
| CQ | Chloroquine |
| CVS | Chorionic villus sampling |
| DFC | Dense fibrillar component (nucleolus) |
| DNA | Deoxyribonucleic acid |
| DNMT1 | DNA Methyltransferase 1 |
| DNMT3A | DNA Methyltransferase 3A |
| DNMT3B | DNA Methyltransferase 3B |
| DOHaD | Developmental Origins of Health and Disease |
| EMR | Electromagnetic radiation |
| F1 | First filial generation |
| FAD | Flavin Adenine Dinucleotide |
| FC | Fibrillar Center |
| GC | Granular Component |
| H3K27ac | Histone H3 Lysine 27 Acetylation |
| H3K27me3 | Histone H3 Lysine 27 Trimethylation |
| H3K36me3 | Histone H3 Lysine 36 Trimethylation |
| H3K4me3 | Histone H3 Lysine 4 Trimethylation |
| H3K9me3 | Histone H3 Lysine 9 Trimethylation |
| ICM | Inner cell mass |
| ICRs | Imprinting control regions |
| ICSI | Intracytoplasmic Sperm Injection |
| IVF | In vitro fertilization |
| JmJC | Jumonji C-domain-containing Histone Demethylases |
| KDM1A | Lysine Demethylase 1A |
| LC3 | Protein light chain 3 |
| LLPS | Liquid–liquid phase separation |
| lncRNAs | Long non-coding RNAs |
| LSD1 | Lysine-specific Demethylase 1 |
| mESCs | Mouse embryonic stem cells |
| miRNAs | MicroRNAs |
| mTOR | Mechanistic Target of Rapamycin |
| MZT | Maternal-to-Zygotic Transition |
| NC | Naturally conceived |
| ncRNA | Non-coding RNA |
| NPBs | Nucleolar precursor bodies |
| NAD+ | Nicotinamide Adenine Dinucleotide |
| PFC | Protein-fat-carbohydrate |
| pAMPK | Phosphorylated AMP-Activated Protein Kinase |
| PRC2 | Polycomb Repressive Complex 2 |
| RNA | Ribonucleic Acid |
| rDNA | Ribosomal DNA |
| rRNA | Ribosomal RNA |
| RP | Ribonucleoprotein |
| ROS | Reactive Oxygen Species |
| rsRNAs | rRNA-derived small RNAs |
| SAM | S-Adenosyl Methionine |
| SCNT | Somatic cell nuclear transfer |
| TET | Ten-Eleven Translocation |
| TE | Trophectoderm |
| tsRNAs | tRNA-derived small RNAs |
| ZGA | Zygotic Genome Activation |
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Alfian, N.F.; Uechi, K.; Morishita, Y.; Sato, K.; Yui, M.; Jharna, J.F.; Bari, M.W.; Ishiyama, S.; Mochizuki, K.; Kishigami, S. How Early-Life Programming During Embryogenesis Imprints Cellular Memory. Int. J. Mol. Sci. 2026, 27, 163. https://doi.org/10.3390/ijms27010163
Alfian NF, Uechi K, Morishita Y, Sato K, Yui M, Jharna JF, Bari MW, Ishiyama S, Mochizuki K, Kishigami S. How Early-Life Programming During Embryogenesis Imprints Cellular Memory. International Journal of Molecular Sciences. 2026; 27(1):163. https://doi.org/10.3390/ijms27010163
Chicago/Turabian StyleAlfian, Norermi Firzana, Kei Uechi, Yoshiya Morishita, Kaname Sato, Maruhashi Yui, Jannatul Ferdous Jharna, Md. Wasim Bari, Shiori Ishiyama, Kazuki Mochizuki, and Satoshi Kishigami. 2026. "How Early-Life Programming During Embryogenesis Imprints Cellular Memory" International Journal of Molecular Sciences 27, no. 1: 163. https://doi.org/10.3390/ijms27010163
APA StyleAlfian, N. F., Uechi, K., Morishita, Y., Sato, K., Yui, M., Jharna, J. F., Bari, M. W., Ishiyama, S., Mochizuki, K., & Kishigami, S. (2026). How Early-Life Programming During Embryogenesis Imprints Cellular Memory. International Journal of Molecular Sciences, 27(1), 163. https://doi.org/10.3390/ijms27010163

