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Water: Beyond H₂O — A Mechanistic Review of Source, Mineral Architecture, Physiological Function, and Hydration Biochemistry

Original title: Water: Beyond H₂O — A Mechanistic Review of Source, Mineral Architecture, Physiological Function, and Hydration Biochemistry

Zenodo (CERN European Organization for Nuclear Research) 2026
Bomi Joseph

Summary

This review pulls together existing research to make one key point: forget "eight glasses a day," because good hydration is about more than just how much water you drink. What kind of water (natural mineral-rich water vs. stripped bottled water), what it's stored in (plastic bottles can leach microplastics and hormone-disrupting chemicals), and what's happening around you (heat, alcohol, sugary drinks) all affect how well your body actually uses the water you take in. The takeaway: pay attention to water quality and context, not just a daily volume target.

Water is the most abundant molecule in the human body and the foundational medium of all cellular biochemistry, yet public health guidance on hydration has remained anchored to a single, decontextualized metric: eight glasses per day. This review argues that such reductionism misrepresents both the nature of water and the dynamic complexity of human hydration physiology. We examine water across four dimensions. First, the chemical architecture of natural water: natural spring and aquifer water is not pure H₂O but a mineral solution containing ionic macro-minerals, trace elements, and ultra-trace elements — including magnesium, calcium, silica, selenium, chromium, boron, and lithium — in immediately bioavailable ionic form. We contrast this with the mineralogically stripped product of reverse osmosis and distillation processes that dominate the commercial bottled water market. Second, the three mechanisms by which the human body acquires water: exogenous ingestion, endogenous metabolic production via mitochondrial oxidative phosphorylation (up to 110 g H₂O per 100 g fat metabolized), and sustained-release absorption of food-matrix-embedded water. Third, water's structural and functional roles in the body, including as a substrate for ion-channel electrochemistry, a cerebrospinal and synovial shock absorber, and a renal clearance vehicle whose demand scales dynamically with dietary solute load, pharmacological burden, ambient temperature, and humidity. Fourth, the four principal saboteurs of effective hydration: atmospheric conditions producing invisible insensible water loss, the osmotic competition of hypertonic sugary beverages, the molecular disruption of ethanol on electrolyte hydration layers and ion-channel gating, and microplastic and endocrine-disrupting chemical leaching from polyethylene terephthalate packaging. We conclude that intelligent hydration requires attention to source quality, container integrity, and dynamic physiological demand — not adherence to a static volume target.

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