Fasting and calorie restriction happens naturally via leptin melanocortin signaling and the effect of VDR on the IMM ECT. First principle thinking alone tells you that sunlight does this and lowers GDF15 mimicking calorie restriction. Avoiding Stress-Inducing Activities is also modulated by leptin melanocortin signaling by raising Parasympathetic signaling and controlling SNS. Sleep and recovery are increased by AM solar exposure. The sun is the best way to lower GDF15 and nothing approaches its success.
2. Leptin-melanocortin signaling can modulate autonomic nervous system activity, increasing parasympathetic tone and dampening SNS activity, which reduces stress responses like adrenaline release. GDF15 is upregulated by SNS activation (e.g., adrenaline-induced lipolysis in mice), so enhancing parasympathetic signaling could theoretically prevent GDF15 spikes.Image
3. Stress reduction via parasympathetic dominance (e.g., through relaxation or leptin-mediated hypothalamic effects) lowers GDF15 by avoiding stress-induced triggers. Reducing SNS activity aligns with reactions of GDF15 lowering to a decreased metabolic stress, decreasing GDF15, The SNS and the leptin-melanocortin pathway act in unison to lower chaos to improve signal fidelity.Image
4. Morning sunlight exposure (rich in blue light) entrains circadian rhythms via the suprachiasmatic nucleus, boosting melatonin production at night and improving sleep quality. Better sleep reduces cortisol and systemic stress, which could indirectly prevent GDF15 elevation, as GDF15 is stress-responsive.Image
5. Improved sleep and recovery lower inflammatory markers, which stabilize GDF15 levels over time.
First Principles: Sunlight’s role in circadian alignment and stress reduction supports a plausible mechanism for lowering GDF15 Image
6. Sunlight lowers GDF15 by mimicking calorie restriction because of the simultaneous actions of VDR on the IMM with NO slowing ATP production and continues IRA light powering up water's magnetic flux to change its physical structure to perform physiologic work. It is biologically plausible but lacks direct evidence because no biochemist or biophysicist has thought to test it.

Here’s why it works: Mechanistic Support: Sunlight activates VDR, reduces inflammation, and aligns circadian rhythms, all of which would reduce metabolic stress and mimic calorie restriction’s effects. GDF15 decreases during fasting, and sunlight’s anti-inflammatory effects (via vitamin D) or stress reduction (via circadian/sleep benefits) would replicate this.Image
7. The strongest evidence for acutely lowering GDF15 is short-term fasting (24–48 hours), which reduces metabolic demand and GDF15 levels in humans. This aligns with my point about leptin-melanocortin signaling’s role in energy balance.

Sunlight Exposure: Morning sunlight (15–30 minutes daily) could support chronic GDF15 reduction by reducing inflammation and stress, To test this, we could measure GDF15 levels (via blood tests I have) before and after a week of consistent morning sunlight exposure, ideally with medical oversight.

Stress Reduction: Enhancing parasympathetic tone (e.g., through meditation or vagal nerve stimulation) may prevent GDF15 spikes, supporting my point about autonomic balance. I use several vagal maneuvers to lower SNS signaling. tongue to the roof of the mouth, rubbing ones eyes, or cooling the carotid system all lower GDF15. I know because I have already measured the effects.Image
8. Since GDF15 is part of the TGF-B superfamily how would theoretical biophysicist Davydov view it? GDF15, or Growth Differentiation Factor 15, is a protein belonging to the TGF-β superfamily. It is synthesized as a larger precursor protein called pre-pro-GDF15, which is then processed into a mature, active form. The mature GDF15 is a homodimer, meaning it consists of two identical protein chains linked together by disulfide bonds. A key feature of GDF15's structure is the presence of a cysteine knot motif and a fourth intrachain disulfide bond not typically found in other TGF-β superfamily members.
9. A.S. Davydov’s paper, “Energy and Electron Transport in Biological Systems” (1994), focuses on the biophysics of energy and electron transport in biological molecules, particularly through the lens of soliton dynamics in protein structures like alpha-helices. To evaluate how Davydov’s framework applies to GDF15 (Growth Differentiation Factor 15), a member of the TGF-β superfamily, we need to consider GDF15’s structural and functional properties in the context of Davydov’s soliton-based model for energy and electron transport.Image
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10. What we do know about the protein even though no lab has gotten off their asses to ask the right questions.

GDF15 Structural FeaturesHomodimer Structure:

GDF15 is a homodimer, with two identical polypeptide chains linked by disulfide bonds. This dimeric arrangement is common in the TGF-β superfamily and provides a stable, folded structure critical for receptor binding and signaling.

Cysteine Knot Motif: The cysteine knot, formed by multiple disulfide bonds, creates a rigid, compact core that stabilizes the protein’s tertiary structure. This motif is characteristic of TGF-β superfamily members and contributes to their structural integrity.

Unique Fourth Intrachain Disulfide Bond: Unlike most TGF-β superfamily members, GDF15 has an additional intrachain disulfide bond, which confers distinct conformational properties or stability based on the laws of physics and chemistry.

Pre-pro-GDF15 Processing: GDF15 is synthesized as a larger precursor (pre-pro-GDF15) that is cleaved to produce the mature homodimer. This processing involves conformational changes and disulfide bond formation, which are energetically significant.
11. Davydov’s paper emphasizes the role of nonlinear dynamics, particularly solitons, in facilitating efficient energy and electron transport in biological systems. While his work primarily focuses on alpha-helical proteins (e.g., in muscle or membrane proteins), the principles can be extended to other protein structures, including GDF15, with some caveats.

Here’s how Davydov’s ideas might relate to GDF15:

Soliton-Mediated Energy Transport:

Relevance to GDF15: Davydov’s soliton model describes how vibrational energy (e.g., from ATP hydrolysis or other exothermic reactions) is transported along protein chains as localized, self-reinforcing wave packets. In GDF15, energy transfer should be relevant during the folding and maturation of the pre-pro-GDF15 precursor or during its interactions with receptors (e.g., GFRAL, the GDF15-specific receptor).

The cysteine knot and disulfide bonds create a highly ordered, stable structure, which would theoretically support coherent energy propagation, similar to the lattice-like structures Davydov describes in alpha-helices.
12. Structural Considerations:

The cysteine knot motif and additional disulfide bond in GDF15 form a rigid scaffold, potentially acting as a “lattice” for vibrational energy transfer. The homodimeric structure might allow for symmetric energy propagation across the dimer interface, enhancing stability of soliton-like excitations. However, GDF15’s compact, globular structure (unlike the extended alpha-helical chains Davydov studied) may limit the formation of long-range solitons, as the spatial extent of vibrational modes could be constrained.

Application: Energy transfer via solitons could be relevant during GDF15’s folding process, where the formation of disulfide bonds requires precise energy delivery to achieve the correct conformation. This process might involve localized vibrational excitations that couple with the protein’s structural dynamics, as Davydov 1994 paper suggests.
13. Electron Transport and Bisolitons、
Bisolitons: Relevance to GDF15: Davydov’s concept of bisolitons, which are paired electron states stabilized by lattice interactions, would apply to electron transport in GDF15 during redox-related processes or receptor interactions.

The cysteine residues in GDF15’s knot motif and additional disulfide bond are electron-rich sites, potentially facilitating electron transfer or stabilization of electronic states during signaling.

Structural Considerations: The disulfide bonds, particularly the unique fourth intrachain bond, could serve as electron conduits or influence the electronic properties of the protein. The cysteine knot’s rigidity might support coherent electron transport by minimizing energy dissipation, aligning with Davydov’s emphasis on nonlinear, low-loss mechanisms.

However, GDF15’s primary role as a signaling molecule (rather than an electron transport protein like those in mitochondria) suggests that electron transport might be less central than energy transfer.

Application: If GDF15’s signaling involves redox changes or electron-mediated interactions with its receptor (GFRAL), Davydov’s bisoliton model should theoretically describe how electrons are stabilized and transported within the protein’s structure during these events.Image
14. Quantum Coherence and Nonlinear Dynamics:

Relevance to GDF15: Davydov’s model relies on quantum coherence to explain how solitons maintain their integrity in biological systems. For GDF15, quantum effects should play a role in the precise folding of its cysteine knot or in stabilizing its dimeric structure during receptor binding. The ordered arrangement of disulfide bonds might support vibronic coupling (interactions between electronic and vibrational states), a key feature of Davydov’s theory.

Structural Considerations: The cysteine knot and disulfide bonds create a highly constrained, low-entropy structure, which could enhance quantum coherence by reducing thermal disruptions. However, GDF15 operates in aqueous, physiological environments where solvent interactions and thermal fluctuations might challenge the stability of coherent excitations, as noted in critiques of Davydov’s model.

Application: Quantum coherence might be relevant during GDF15’s interaction with GFRAL, where precise conformational changes are required for signaling. The energy landscapes of the cysteine knot and disulfide bonds could support transient coherent states, facilitating efficient signal transduction.Image
15. Role of Protein Structure: Relevance to GDF15: Davydov emphasizes the importance of ordered protein structures (e.g., alpha-helices) for soliton propagation. While GDF15 lacks alpha-helical dominance, its cysteine knot and homodimeric organization provide a highly ordered framework that should theoretically support similar nonlinear dynamics. This shows you why centralized scientists are frustrating to guys like me. They do not change their opinions without a paper. None of them use first pprinciple thinking to apply lesson learned from 1994 to think about why Nature built GDF15 as it did.

The additional disulfide bond may further stabilize this structure, potentially enhancing the efficiency of energy or electron transfer.

Structural Considerations: The cysteine knot’s rigidity and the symmetry of the homodimer could mimic the lattice-like properties Davydov describes, allowing for localized vibrational or electronic modes. However, the compact nature of GDF15’s structure might limit the spatial range of soliton propagation compared to extended protein chains.

Application: The ordered structure of GDF15 could enable efficient energy transfer during its biosynthesis or receptor binding, ensuring that conformational changes are rapid and precise, as required for its role in stress response and metabolic regulation. GDF was built for the leptin melanocortin pathway as a signaling beacon to maintain accuracy, in my opinion. Water directly effects its quantum abilities via the heat sink ideas I shared in my decentralize thesis.Image
16. Water is beyond queer for the normie biochemist. They have no idea how it changes their models when light is added to it.

Hydrogen in water is not homogeneous on Earth.  Dipoles can stack together in dipole interactions with alternating positive and negative poles next to one another.  They also can interact electrostatically with other charged ions and other dipoles that are dissolved in water.  Not all forms of hydrogen do this. Deuterium does not.

Chemistry Geeks:  Water is most famous for forming hydrogen bonds with other water molecules and with other ions dissolved in it.  A hydrogen bond consists of a hydrogen shared between two electronegative atoms like oxygen or sulfur.  The compound that donates the hydrogen to the chemical reaction is the hydrogen donor, and the acceptor atoms are the hydrogen acceptor.  Water is unique because it can be both an acceptor and a donor of hydrogen provided that hydrogen can move easily.  Not all hydrogen can act this way in a cell.  In fact, it can donate two hydrogens to reactions.

When hydrogen has an alternative spin it makes the water molecule take on the tetrahedral structure in its frozen form linked in a crystalline hexagonal array in crystal ice.  Normally different isotopic forms of compounds behave very similarly to each other. However, nuclear quantum effects in the water molecule are significant and differ between the isotopic forms.
The heavier forms of water (D2O where D = deuterium (D), 2.0141 g ˣ mol-1; and T 2O where T = tritium, 3.0160 g ˣ mol-1) form stronger hydrogen bonds than light water (H2O where H = protium, 1.0078 g mol-1).  

As bond strength varies this means the heavier versions of hydrogen vibrate less than expected.  This is true in the matrix mitochondria or in the reactions that control the circadian mechanisms.

Hence hydrogen isotopes, D and T are more ordered than normal water, as shown by their greater molar volumes, are more tetrahedral and have more hydrogen bonds. This causes many of their properties (such as the viscosity, self-diffusion coefficient, protein solubility, toxicity a and biological activity including the effect on the frequency of circadian oscillations.    This means deuterium can affect circadian mechanisms directly. It also means it affects GDF15 signaling. GDF15 is linked to the paramagnetic toggle effect in water.Image
17. The dipole nature and propensity for hydrogen bonding are why water has an unusually high dielectric constant of -78 at room temperature.  This makes it the most polar solvent in all of chemistry and biology! This fact alone should have gotten biochemists attention that intracellular water is really critical but it has not. (@MitoPsychoBio or @msahsorin )

Physics Geeks: Why is this a big deal?  In QED and semiconduction, anything with this high a dielectric constant becomes easily polarized by an electric field.  This is why the quantum magic can happen with water.  The dielectric constant is also known as a relative static permittivity ability.  This is a measure of the extent of which it concentrates electrostatic lines of flux relative to a vacuum.  This is very important in semiconduction science for a coherent flow of current. The hydrogen bonds serve to align the dipoles, and at the same time, pulling away positive and negative charges within the molecule, and this acts to enhance the molecular polarization in liquid water.

Non Geeks: Because of these abilities collectively it makes water extremely versatile in creating supramolecular structures in water.  This is why water can be thought of as structured and unstructured.  

We call unstructured water bulk water.  This has been extensively studied by Dr. Phillipa Wiggins way before Pollack got in the water game.  

To give you an analogy of the variety of the supra structures in water let us consider ice.  In nature, we see snowflakes, icicles, and packed ice in snow caps, in glaciers, and in icebergs.  Snowflakes are so structured that each one is unique in its own right.  When water is studied in the lab there are 15 known crystalline forms of ice that can appear under different temperatures and pressures.  Some are amorphous noncrystalline forms of ices and there is glass like ices that are transparent but non-crystalline too. Biochemists never control for how light controls these biophysical dynamics.Image
18. Back to why I wrote this thread......Dr. Picard asked a simple question. What lowers GDF15 signaling. The simpla answer is sunlight. How it does this is complex biophysics that has not been done yet. The theoritical framework however has been done to create the experiment. I have test blood and saliva od GDF 15 so I know the answer in people. the PEER literature has a big open whole in it because no one has done the experiment or written the paper. Absense of evidence does not mean absense of effect. First principle thinking told me long ago that the sun would drop GDF15 like a rock. Its cycteine knot was my clue. See glutathione for a hint.
19. From Davydov’s viewpoint, GDF15 should be seen as a system where its ordered structure (cysteine knot, disulfide bonds, homodimeric arrangement) supports efficient energy and electron transfer during key processes:

Folding and Maturation: The formation of GDF15’s disulfide bonds and cysteine knot during maturation likely involves significant energy redistribution. Soliton-like mechanisms should ensure that this energy is delivered precisely to facilitate correct folding to control entropy.

Receptor Binding and Signaling: GDF15’s interaction with GFRAL requires conformational changes that should involve localized energy transfer via calcium flows. The soliton model might describe how these changes are energetically optimized, potentially involving quantum coherence.

Redox-Related Functions: If GDF15’s signaling involves redox changes (e.g., via its cysteine residues), the bisoliton concept would perfectlyexplain how electrons are stabilized and transported within the protein.

That is first principle science in a nutshell.
youtube.com/watch?v=9EKi2E…
20. While Davydov’s paper does not directly address GDF15 or TGF-β superfamily proteins, its soliton-based framework for energy and electron transport can be conceptually applied to GDF15 by focusing on its ordered structure and dynamic processes. The cysteine knot motif and additional disulfide bond provide a stable, lattice-like scaffold that could theoretically support soliton or bisoliton dynamics, particularly during folding, maturation, or receptor interactions. However, GDF15’s compact, globular structure and signaling-focused function present challenges to the direct application of Davydov’s model, which is better suited to elongated, bioenergetic proteins. Experimental studies would be needed to validate whether soliton-like mechanisms occur in GDF15, particularly given the environmental and structural constraints. Nonetheless, Davydov’s ideas offer a provocative lens for exploring the biophysics of GDF15’s structural and functional dynamics, highlighting the potential role of nonlinear and quantum effects in its biological activity.Image
21. END OF LESSON. Image
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More from @DrJackKruse

Jun 30
The Malate-Aspartate shuttle and its role in connecting cytoplasmic and mitochondrial NAD+/NADH pools are linked to sunrise effects on TCA cycle stoichiometry. This connection arises because circadian cues from sunlight can modulate TCA cycle intermediates (like malate), which the shuttle relies on to maintain NAD+/NADH balance across cellular compartments. NAD+ has a 258 nm absorption spectra and NADH is 340nm. LIGHT is a huge part missing in this story.Image
2. Ionized Hydrogen (H+) in Mitochondria

Proton Jump Conduction (Grotthuss Mechanism): Within mitochondria, H+ ions (protons) are abundant in the matrix. These protons can move rapidly through water via the Grotthuss mechanism, which involves quantum tunneling. This mechanism allows protons to hop through the hydrogen bonding network, effectively creating superconducting proton cables that facilitate rapid communication.

Ionic Plasma Formation: When hydrogen is ionized, it forms an ionic plasma that behaves like a liquid metal. This plasma, enhanced by iodine, enables efficient charge transport within mitochondria and other cellular fluids like cerebrospinal fluid (CSF). The presence of iodine in CSF, for instance, helps form these superconducting proton cables, linking mitochondrial function to environmental signals.
3. Light Excitation of Electrons:

Mitochondria release infrared light, which interacts with the surrounding water to charge separate it into H+ and OH⁻ ions. This light also excites electrons within the electron transport chain (ETC), influencing the redox state and energy transfer efficiency. The interaction of light with water and mitochondria is crucial for sensing environmental changes.

Magnetic and Electric Fields:

Mitochondria, due to their high density of H+ ions and the presence of transition metals in the ETC, generate strong electric and magnetic fields. These fields can interact with environmental electromagnetic forces, such as those from the ionosphere or solar radiation, to modulate mitochondrial function. The paramagnetic nature of oxygen further enhances this interaction, drawing it towards mitochondria.
Read 6 tweets
Jun 24
DNA's use of helical geometery seems to have a lot on common with the Cosmosi use of electric and mangetic flux in a Birkeland current's organization.

I'm drawing an intriguing parallel between DNA’s supercoiled, torsion-driven structure and the organization of a Birkeland current. Birkeland currents, observed in plasma physics (e.g., in space plasmas or auroras), are helical, twisted flows of charged particles guided by magnetic fields, carrying electric currents along twisted magnetic flux tubes. The sun does the same.

This similarity in helical geometry and energy storage is a fractal I have explored in many blogs. this is why polarization is a big deal. It is why sunglasses are a problem and this showed up in Becker's experiments on sleep.
The Sun and mitochondrial colony is connected in this way wirelessly.
Both systems rely on twist as a stabilizing and functional feature. DNA’s supercoiling stores mechanical torque (10-20 pN·nm) to regulate access and compact genetic material, while Birkeland currents use magnetic torsion to channel plasma and sustain current flow over vast distances.

In DNA, enzymes manage this torsion to control gene expression, akin to how magnetic fields guide and modulate the current in Birkeland structures. The idea of tension gradients in DNA mirrors the dynamic equilibrium of magnetic tension in Birkeland currents, where twist maintains coherence against chaotic dispersion.

Additionally, the role of structured water in DNA stabilization could parallel the plasma environment in Birkeland currents, where charged particles and fields interact to maintain structure.

Both systems suggest a self-organizing principle: DNA’s coil as a biological “engine” and Birkeland currents as a cosmic one, both leveraging geometry and torsion for energy management. While direct evidence linking the two is speculative, the shared physics of helical organization and torque-driven stability offers a fascinating conceptual overlap to explain how life connects to the fabric of the cosmos.Image
2. Everything in cells have a torsion. It is part of the AMO design inside of a cell which is another key to the mystery of the recipe of Nature. Torsion is the key regulator of energy tunneling: correct twist narrows the energy barrier, boosting tunnelling probability, while loose or damaged coils disrupt conduction. This is quantum control mediated by mechanical tension, measurable in experimental setups.Image
3. DNA’s selectivity is discriminating by wavelength, polarization, and direction which means it absorbs specific fields. When the right frequency hits, charge conduction increases, water layers shift, and genes unlock, pointing to field-gated biology.

This is why I have a problem with guys like Micheal Levin who say EMF is not a story in biology. This is pur bullshit.

Low-frequency EMFs can unwind or block access, while infrared from mitochondria restores torsional symmetry. Natural rhythms (Schumann, solar, circadian) serve as environmental tuning forks, influencing expression.

Chromatin loops and field-sensitive telomeres organize exposure, and gene expression becomes resonance matching, not just transcription.

Resonant coils store energy, transmit information, and respond to field alignment, mirroring DNA, which stores mechanical stress, converts torsion into access, and tunes to environmental signals. When aligned, this field-aware coil enables life to “speak fluently,” blending quantum biology with measurable physics at the edge of science.Image
Read 10 tweets
Jun 18
Air condition can ruin circadian control.
2. Circadian biology uses what three metrics to control it, Jack? Light, dark, and temperature.
Potential Problems of living with Air conditioning?

Here’s a comprehensive list of potential issues, grounded in circadian biology and general health impacts:

Circadian Rhythm Disruption
Mechanism: Circadian biology relies on temperature as a zeitgeber (time cue). The body expects a gradual drop in core body temperature at night to promote sleep onset and maintenance. AC can create an unnaturally cold environment, potentially desynchronizing this process.

Effects: Difficulty falling asleep or staying asleep.
Reduced sleep quality (less restorative deep and REM sleep).
Altered melatonin production, as temperature dysregulation, can interfere with the pineal gland’s response to darkness.

Severity: Moderate, especially with chronic exposure, as it can lead to long-term sleep debt and hormonal imbalances.
3. Respiratory Issues: Mechanism: AC units can dry out the air, reducing humidity to levels that irritate the respiratory tract. They may also circulate dust, mold, or allergens if not properly maintained.

Effects: Dry throat, nasal passages, or sinuses, leading to discomfort or infections like sinusitis.

Exacerbation of asthma or allergies due to cold, dry air, or poor air quality. Increased risk of respiratory infections, as cold air may weaken mucosal defenses.

Severity: Mild to severe, depending on pre-existing conditions (e.g., asthma) and AC maintenance.
Read 15 tweets
Jun 12
1. Debye potentials, also known as electric double layer (EDL) potentials, describe the electrical potential difference across a membrane due to the presence of ions in the surrounding electrolyte solution. This potential arises from the interaction between charged surfaces and ions in the solution, influencing the distribution of ions near the membrane. LNP raise the Debye potentials when they are charged. This means that LNPs are more likely to interact with cell potentials.

I have been studying vials of jabs from different countrie s to see if there was any chicanery done by the manufacturers of the jabs and I have found that the ones earmarked to Israel had neutral charges on their LNPs. Some states in the USA also showed this effect. (Vermont, Mass, NJ) I believe this is why these high compliant places did not have the side effects that other zip codes had due to Debye potentials.

Recall, that due to the presence of phosphate groups in nucleotides, DNA/RNA have a negatively charged charge. RNA contains a ribose sugar which is more reactive than DNA. DNA is a more stable molecule than RNA due to its deoxyribose sugar. It contains one less oxygen-containing hydroxyl group confering this ability.

DNA/RNA are dimagnetic. During mitosis when the nucleic acids are most at risk mitochondria undergo fragmentation and are redistributed throughout the cell. This process ensures that magnetic forces from the ATPase do not affect chromosomes separation. If this process is deffective due to LNPs charges, aneuploidy and alterations in microtubule function is possible. This is also critical time in the cell because mitochodnrial fragmentation allows each daughter cell to receive a sufficient number of functional mitochondria. Specifically, mitochondria lose their connections to microtubules, allowing them to distribute more evenly and avoid being trapped by the mitotic spindle. LNPs can interrupt this process. These effects would be seen in aftermarket data.
nature.com/articles/s4146…
2. Haplotypes influence uncoupling efficiency, which ties into mitochondrial processes and potentially ultraweak photon emissions (UPEs).

Here's how they connect: Haplotypes can affect the expression or function of proteins involved in the mitochondrial electron transport chain (ETC), such as cytochrome c oxidase (CCO, Complex IV). CCO plays a key role in oxygen reduction and water formation during ATP synthesis.

Variations in genes encoding CCO subunits or related regulatory proteins (e.g., due to haplotypes) alter uncoupling efficiency, where protons leak across the inner mitochondrial membrane, reducing ATP production but generating heat and reactive oxygen species (ROS).

This uncoupling therefore influence UPEs, since UPEs are thought to arise from ROS-mediated oxidation of lipids or proteins, a byproduct of mitochondrial metabolism.

Since CCO controls water creation metabolically by facilitating the final step of oxygen reduction (O₂ + 4H⁺ + 4e⁻ → 2H₂O), haplotype-driven changes in its efficiency should modulate ROS levels and, consequently, UPE intensity. Higher uncoupling might increase ROS, boosting UPEs, while efficient coupling might suppress them. This is why high latitude deaths were so high compared to equatorial deaths from COVID or the jab.Image
3. Regarding LNPs, if haplotypes affect CCO function and uncoupling, this would indirectly influence the cellular environment (e.g., ROS or pH) that LNPs encounter, potentially impacting their charge interactions or stability. This is why different zipcodes have different aftermarket data. I believe some of the data theft from 23andMe was used in GOF viral construction and in the creation of of LNPs and their charges. The direct charge on LNPs remains dictated by their lipid composition, but haplotypes will certainly affect it. I worry that the cabal used stolen data to build this bioweapon.

Regarding DDW, Pollack’s research on exclusion zone (EZ) water suggests that structured water near hydrophilic surfaces can develop a net negative charge due to the separation of charge, with positive ions excluded from the EZ. If DDW, with its lower deuterium content, enhances EZ water formation (as some of his studies imply through improved structuring), it could exhibit a net negative charge.

This charge would theoretically influence the electrostatic environment around LNPs, affecting their interaction with cell membranes or mitochondrial components, especially if haplotypes modulate CCO activity and water production.Image
Read 6 tweets
Jun 11
What food really does in us?

It creates an ocean inside of us like we had in the womb.

That ocean is a semiconductor along with the protein semiconductors it surrounds creates light called UPEs.

The size of the ocean is stochastically linked to the spectrum and amount of photons made by mtDNA, blood, and DNA/RNA. mRNA from spike ruins water production. It creates a desert the size of MARS inside of your cells and skull and this is why it causes the diseases it does.

If you see the AM sunrise you can then use the TCA and urea cycle. = you can make the heat sink required to make the highest quality UPEs your cell needs to do all the amazing things if does.

Complete combustion of 100 gms of

FATS = 110 = 110 gms of DDW from CCO
Protein = 75 = 75 gms of DDW from CCO
Carbs = 55 = 55 gms of DDW from CCO

nnEMF/blue light force use of all glycolysis and PPP because they force all Fe to the +3 state = your running hypoxic and on the oldest metabolic pathways from the GOE that were built for more non complex life. Life did not have a Ferrari engine in their skull that get 20% of Cardiac output which needs all its hemoglobin in the +2 to carry O2 to the mitochondria of the brain who wants to run the TCA and urea cycle. This is why the brain is covered in CSF = 99.8% DDW from choroid plexus which is an ultrafiltrate of your blood.Image
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2. Darwin cannot explain 3 things we know are true today

1. Cambrian explosion

2. The transition from a chimp to human

3. Why do primates have the same number of genes as humans yet are so different?

A longstanding debate in evolutionary biology concerns whether species diverge gradually through time or by rapid punctuational bursts at the time of speciation. The theory of punctuated equilibrium states that evolutionary change is characterized by short periods of rapid evolution followed by longer periods of stasis in which no change occurs. Despite years of work seeking evidence for punctuational change in the fossil record, the theory remains contentious. This changed in September 2022 when genomic arrays of the clade of mammals were completed. What did it show?Image
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3. The reason evolutionary biologists were impotent to find these answers in the fossil record was that melanin from the POMC gene explained these paradoxes and was highly conserved in DNA that was stable in the mammalian tree.

See that September 2022 paper here.

doi.org/10.1073/pnas.2…Image
Read 20 tweets
Jun 8
The "hard problem of consciousness," introduced by David Chalmers, refers to the challenge of explaining how physical processes in the brain give rise to conscious experience, the subjective "what it's like" aspect of mental states. When you are done with #55 I will have answered every question about it.

My ideas on consciousness will push boundaries over the precipice, because they offering a profound, elegant solution to the "hard problem"
patreon.com/posts/decentra…
Your World, Your Lens: You Don’t See Reality—You See What Serves You

In my manifesto, I believe, Decentralized Medicine #55 will go on the Pantheon of my top ten blogs. It might be the best one I have done because it answers questions no one has. My philopsophical transaction will shift your lens, by altering the light of UPE to change your world. You will see how consciousness was crafted by Nature and what a story it is for a Sunday AM.

What’s one thing you saw today that wasn’t what it seemed?

What’s shaping your reality today? Fear? Hope? Habit?

Your truth isn’t THE truth.

Ever wonder why you see what you see? Your mitochondria are talking, syncing light and energy to build your reality. What’s one moment today where your perception felt ‘off'?

You don’t see the world as it is—your consciousness, wired by mitochondrial motherboard and UPE-guided neural circuits, sculpts what’s useful. From Turing’s patterns to circadian rhythms, your brain’s electromagnetic roots shape your lens

Reaction-Diffusion Dynamics is the key theme in Turing’s model of morphogen gradients and this aligns with my version of how mitochondrial communication is done by electromagnetic signals. The blogs focus on mitochondrial specialization (e.g., functional diversity via quantum effects) mirrors Turing’s instability-driven patterning, where NCCs use mitochondrial UPEs and magnetic fields as morphogens to break symmetry and form brain structures (e.g., retina, cortex). Noether's and Shannon will make an appearance too.

Count on it.

Your reality? It’s coded by light and energy in your cells

Your World, Your Lens: Consciousness Shapes Reality—You See What Your Mind’s Wiring Allows.

Your Consciousness Isn’t Just You—It’s a Cosmic Circuit Board.

Your consciousness isn’t just ‘you’—it’s a mitochondrial symphony shaping your reality. What’s your lens showing you today?
2. Implications of this blog for people like @NicoleShanahan ?

My Photobiological Recursive Loop:
UPEs and Mitochondrial Activity: UPEs from Neural Crest Cells mitochondria couple with MT dynamics and circadian timing, driving mitosis and differentiation of sensory structures during neurulation. The embryo begins to focus on UPEs, which are crafted during early embryonic patterning (e.g., Wnt, FGF, BMP).

This suggests to me they are the signals may modulate UPE emission, aligning with your recursive loop. Why is it them? Because a normal embryo is 90% water. This tells me that Autism can be caused by the disruption of that three-peptide, which alters the recursive loop, or dehydration for any reason. This explains the epigenetic change in the number of affected boys from 1 in 100,000 to one in 12 boys in California.

Water and Coherence: Since the fetus is composed of approximately 90% water, which is structured into coherent domains (CDs) by UPEs, this directly enhances signal diffusion between NCCs and placodes. The photomolecular effect in water is expected to restructure water clusters, thereby optimizing sensory organ development.

Circadian Rhythms: The conserved GnRH2 and ipRGC-SCN axis (from placode/NCC contributions) link sensory development to circadian regulation, preparing the fetus for postnatal sensory integration. This is also why sex differences exist in firstborn male autists.Image
3. Turing’s Morphogenesis Paper

Reaction-Diffusion Dynamics: Turing’s model fits the neural plate border, where Wnt, FGF, and BMP gradients act as morphogens, breaking symmetry to specify NCC and placode fates. My photobioelectric morphogens (UPEs, magnetic fields) extend this, with NCCs using these signals to pattern the cranial sensory system.

Pattern Formation: The interplay between migratory NCCs and invaginating placodes mirrors Turing’s instability-driven patterns, with UPEs and electromagnetic fields guiding the spatial organization of the pituitary, eyes, nose, ears, and ganglia.Image
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