Submitted:
23 February 2026
Posted:
03 March 2026
Read the latest preprint version here
Abstract
Keywords:
1. From “Information Flow” to “State Constraint”: The Crisis of the Central Dogma and a First-Principle Breakthrough
1.1. Introduction: The Triumphs and Hidden Boundaries of the Central Dogma
1.2. The Absolute Explanatory Boundaries of the Central Dogma: From Information Conundrums to Physical Dimensionality Reduction
1.2.1. The “Dark Matter” of Genetic Instructions and Physical Interpretation
1.2.2. Topological and Mechanical Boundaries Forcing Reprogramming
1.2.3. The Gating Role of Global Physical Phase States on Core Transcriptional Processes
1.2.4. “Physical Solving” of Macroscopic Cellular Traits and Metabolic Network Buffering
1.3. First-Principle Inquiry: How Is a Living System Possible?
1.4. Introducing the CHP: The Central Homeostatic Principle as a More Complete Explanatory Framework
1.5. Empirical Integration: Reverse Validation of the CHP Constraint Framework by Frontier Research
1.5.1. The Mechanical Dimension: Physical Baselines and Gating Limits
1.5.2. The Electrophysiological Dimension: Rapid Coupling of Membrane Potential and Lipid Polarity
1.5.3. The Spatial Topological Dimension: Physical Transduction Networks Mediated by Membrane Contact Sites
1.5.4. The Thermodynamic Phase Dimension: 2D Lipid Phase Behavior as a Dimensionality-Reduction Template
2. Deductive Reasoning of Substrate Privilege: A Four-Stage Exclusionary Argument for the Central Homeostatic Constraint
2.1. Stage One: Deriving Functional Imperatives from Systemic Prerequisites
2.2. Stage Two: Mapping Functional Imperatives to Physical Material Constraints
2.3. Stage Three: Exclusionary Screening of the Four Major Biological Macromolecules
2.4. Stage Four: From Joint Fulfillment to Near-Irreplaceable Physical Privilege
3. The Central Homeostatic Principle (CHP): Formal Articulation and Conceptual Architecture
3.1. Formal Articulation
3.2. The Three-Tier Model (Minimal Realization)
3.3. Operational Corollaries
3.4. A Necessary Clarification: The Typology of CHP Rules
4. Translational Corollaries and Testable Hypotheses: State Engineering Under the CHP Framework
4.1. Hypothesis I (Temporal Dynamics): State Variables Precede Irreversible Molecular Commitment
4.2. Hypothesis II (Pathological Attractors): Non-Genetic Resistance Is Intrinsically a Migration of Lipid Physical Homeostasis
4.3. Hypothesis III (Loss of Homeostatic Resilience): Aging and Chronic Diseases Stem from the Attenuation of Physical Recovery Dynamics
4.4. Hypothesis IV (Limit Deduction of State Engineering): Pure Lipid-Driven Cell Fate Reprogramming
4.5. Hypothesis V (Evolutionary Primacy): Boundary Homeostasis Precedes Informational Complexity in Prebiotic Systems
5. Translational Corollary: The Homeostatic Restoration Hypothesis
5.1. Theoretical Foundation and Formal Articulation
5.2. Core Scientific and Clinical Value
5.3. Strict Applicability Boundaries
5.4. Core Testable Criteria
6. Falsifiability: What Evidence Would Weaken or Overturn the CHP?
Tier I: Fundamental Invalidation of CHP Core Principles
Tier II: Significant Attenuation of CHP Core Assertions and Universality
Tier III: Invalidation of Translational Corollaries
7. Conclusion and Perspectives
Acknowledgments
References
- Xin, T.; Zhang, Z.; Zhang, Y.; Li, X.; Wang, S.; Wang, G.; Li, H.; Wang, B.; Zhang, M.; Li, W. Recessive epistasis of a synonymous mutation confers cucumber domestication through epitranscriptomic regulation. Cell 2025, 188(17), 4517–4529. [Google Scholar] [CrossRef] [PubMed]
- Hunter, M.V.; Joshi, E.; Bowker, S.; Montal, E.; Ma, Y.; Kim, Y.H.; Yang, Z.; Tuffery, L.; Li, Z.; Rosiek, E. Mechanical confinement governs phenotypic plasticity in melanoma. Nature 2025, 647(8089), 517–527. [Google Scholar] [CrossRef] [PubMed]
- Yang, C.; Tibbitt, M.W.; Basta, L.; Anseth, K.S. Mechanical memory and dosing influence stem cell fate. Nature Materials 2014, 13(6), 645–652. [Google Scholar] [CrossRef] [PubMed]
- Killaars, A.R.; Grim, J.C.; Walker, C.J.; Hushka, E.A.; Brown, T.E.; Anseth, K.S. Extended exposure to stiff microenvironments leads to persistent chromatin remodeling in human mesenchymal stem cells. Advanced Science 2019, 6(3), 1801483. [Google Scholar] [CrossRef]
- Nasrollahi, S.; Walter, C.; Loza, A.J.; Schimizzi, G.V.; Longmore, G.D.; Pathak, A. Past matrix stiffness primes epithelial cells and regulates their future collective migration through a mechanical memory. Biomaterials 2017, 146, 146–155. [Google Scholar] [CrossRef]
- Sabari, B.R.; Dall’Agnese, A.; Boija, A.; Klein, I.A.; Coffey, E.L.; Shrinivas, K.; Abraham, B.J.; Hannett, N.M.; Zamudio, A.V.; Manteiga, J.C. Coactivator condensation at super-enhancers links phase separation and gene control. Science 2018, 361(6400), eaar3958. [Google Scholar] [CrossRef]
- Jalihal, A.P.; Pitchiaya, S.; Xiao, L.; Bawa, P.; Jiang, X.; Bedi, K.; Parolia, A.; Cieslik, M.; Ljungman, M.; Chinnaiyan, A.M. Multivalent proteins rapidly and reversibly phase-separate upon osmotic cell volume change. Molecular Cell 2020, 79(6), 978–990. [Google Scholar] [CrossRef] [PubMed]
- Delarue, M.; Brittingham, G.P.; Pfeffer, S.; Surovtsev, I.V.; Pinglay, S.; Kennedy, K.J.; Schaffer, M.; Gutierrez, J.I.; Sang, D.; Poterewicz, G. mTORC1 controls phase separation and the biophysical properties of the cytoplasm by tuning crowding. Cell 2018, 174(2), 338–349. [Google Scholar] [CrossRef]
- Li, J.; Qu, G.; Ma, H.; He, Z.; Yu, H.; Wang, Y.; Zhang, M.; Chen, L.; Li, C.; Yao, R. Strigolactone signaling repressor SMXL7 forms nuclear condensates to regulate gene transcription in Arabidopsis. Cell Reports 2025, 44(12), 116696. [Google Scholar] [CrossRef]
- Joyner, R.P.; Tang, J.H.; Helenius, J.; Dultz, E.; Brune, C.; Holt, L.J.; Huet, S.; Müller, D.J.; Weis, K. A glucose-starvation response regulates the diffusion of macromolecules. eLife 2016, 5, e09376. [Google Scholar] [CrossRef]
- Parry, B.R.; Surovtsev, I.V.; Cabeen, M.T.; O’hern, C.S.; Dufresne, E.R.; Jacobs-Wagner, C. The bacterial cytoplasm has glass-like properties and is fluidized by metabolic activity. Cell 2014, 156(1), 183–194. [Google Scholar] [CrossRef] [PubMed]
- Gupta, V.K.; Chaudhuri, O. Mechanical regulation of cell-cycle progression and division. Trends in Cell Biology 2022, 32(9), 773–785. [Google Scholar] [CrossRef]
- Ohnuki, S.; Ohya, Y. High-dimensional single-cell phenotyping reveals extensive haploinsufficiency. PLOS Biology 2018, 16(5), e2005130. [Google Scholar] [CrossRef] [PubMed]
- Barkai, N.; Leibler, S. Robustness in simple biochemical networks. Nature 1997, 387(6636), 913–917. [Google Scholar] [CrossRef] [PubMed]
- Simunovic, M.; Voth, G.A. Membrane tension controls the assembly of curvature-generating proteins. Nature Communications 2015, 6(1), 7219. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Y.; Daday, C.; Gu, R.-X.; Cox, C.D.; Martinac, B.; de Groot, B.L.; Walz, T. Visualization of the mechanosensitive ion channel MscS under membrane tension. Nature 2021, 590(7846), 509–514. [Google Scholar] [CrossRef]
- Sorum, B.; Docter, T.; Panico, V.; Rietmeijer, R.A.; Brohawn, S.G. Tension activation of mechanosensitive two-pore domain K+ channels TRAAK, TREK-1, and TREK-2. Nature Communications 2024, 15(1), 3142. [Google Scholar] [CrossRef]
- Di Paolo, G.; De Camilli, P. Phosphoinositides in cell regulation and membrane dynamics. Nature 2006, 443(7112), 651–657. [Google Scholar] [CrossRef] [PubMed]
- Mukherjee; Huang, Y.; Elgeti, J.; Oh, S.; Abreu, J.G.; Ammar, L.; Neliat, A.R.; Schüttler, J.; Su, D.-D.; Dupre, C. Membrane potential mediates the cellular response to mechanical pressure. Cell 2026, 189(1), 143–160. [Google Scholar] [CrossRef]
- Chen, Z.; Chen, P.; Li, J.; Landao-Bassonga, E.; Papadimitriou, J.; Gao, J.; Liu, D.; Tai, A.; Ma, J.; Lloyd, D. External strain on the plasma membrane is relayed to the endoplasmic reticulum by membrane contact sites and alters cellular energetics. Science Advances 2025, 11(26), eads6132. [Google Scholar] [CrossRef] [PubMed]
- Shen, Z.; Gelashvili, Z.; Niethammer, P. Endoplasmic reticulum disruption stimulates nuclear membrane mechanotransduction. Nature Cell Biology 2026, 28, 125–134. [Google Scholar] [CrossRef] [PubMed]
- Shelby, S.A.; Castello-Serrano, I.; Wisser, K.C.; Levental, I.; Veatch, S.L. Membrane phase separation drives responsive assembly of receptor signaling domains. Nature Chemical Biology 2023, 19(6), 750–758. [Google Scholar] [CrossRef] [PubMed]
- Alameh, M.-G.; Tombácz, I.; Bettini, E.; Lederer, K.; Ndeupen, S.; Sittplangkoon, C.; Wilmore, J.R.; Gaudette, B.T.; Soliman, O.Y.; Pine, M. Lipid nanoparticles enhance the efficacy of mRNA and protein subunit vaccines by inducing robust T follicular helper cell and humoral responses. Immunity 2021, 54(12), 2877–2892. [Google Scholar] [CrossRef]
- Ndeupen, S.; Qin, Z.; Jacobsen, S.; Bouteau, A.; Estanbouli, H.; Igyártó, B.Z. The mRNA-LNP platform’s lipid nanoparticle component used in preclinical vaccine studies is highly inflammatory. iScience 2021, 24(12), 103479. [Google Scholar] [CrossRef] [PubMed]
- Harel-Adar, T.; Mordechai, T.B.; Amsalem, Y.; Feinberg, M.S.; Leor, J.; Cohen, S. Modulation of cardiac macrophages by phosphatidylserine-presenting liposomes improves infarct repair. Proceedings of the National Academy of Sciences 2011, 108(5), 1827–1832. [Google Scholar] [CrossRef] [PubMed]
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