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Arthur A. Spector

Researcher at University of Iowa

Publications -  243
Citations -  15723

Arthur A. Spector is an academic researcher from University of Iowa. The author has contributed to research in topics: Fatty acid & Arachidonic acid. The author has an hindex of 68, co-authored 241 publications receiving 15255 citations. Previous affiliations of Arthur A. Spector include National Institutes of Health & Joslin Diabetes Center.

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Membrane lipid composition and cellular function.

TL;DR: Membrane fatty acid composition, phospholipid composition, and cholesterol content can be modified in many different kinds of intact mammalian cells, and many of the functional responses probably are caused directly by the membrane lipid structural changes, which affect either bulk lipid fluidity or specific lipid domains.
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Epoxyeicosatrienoic acids (EETs): metabolism and biochemical function.

TL;DR: Epoxyeicosatrienoic acids, which are synthesized from arachidonic acid by cytochrome P450 epoxygenases, function primarily as autocrine and paracrine effectors in the cardiovascular system and kidney.
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Action of epoxyeicosatrienoic acids on cellular function.

TL;DR: EETs and several of their metabolites activate peroxisome proliferator-activated receptor alpha (PPARalpha) and PPARgamma, suggesting that some functional effects may result from PPAR activation.
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Delivery and turnover of plasma-derived essential PUFAs in mammalian brain.

TL;DR: Although unesterified plasma PUFA concentrations are low, their rates of incorporation into brain are sufficient to compensate for metabolic and efflux losses, so that PUFA transport from plasma into brain as a component of a lipoprotein is unnecessary.
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Astrocytes, not neurons, produce docosahexaenoic acid (22:6 omega-3) and arachidonic acid (20:4 omega-6).

TL;DR: It is suggested that astrocytes play an important supportive role in the brain by elongating and desaturating ω‐6 and ω-3 essential fatty acid precursors to 20:4ω‐6and 22:6ω‐3, then releasing the long‐chain polyunsaturated fatty acids for uptake by neurons.