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#395 - Brain lipidology: understanding APOE, cholesterol homeostasis, Alzheimer's disease risk, and the effects of lipid-lowering therapies on brain health | Tom Dayspring, M.D.
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How the brain produces and transports its own cholesterol using apoE lipoproteins
At 34:50 · chapter starts 29:00
Tom opens with the definitive statement: what is happening with brain cholesterol has zero connection to what is circulating in plasma. ApoB particles — the main cholesterol carriers in blood — cannot cross the blood-brain barrier. Instead, the fetal brain begins synthesizing its own cholesterol in the second and third trimesters, ramping up production because neurons and glial cells need massive amounts for their membranes and for myelin. Oligodendrocytes produce roughly 70% of brain cholesterol, primarily used to wrap axons and dendrites in the myelin sheaths that enable fast neural signaling. Microgliocytes serve as the brain's immune cells, and astrocytes handle much of the remaining synthesis. To move cholesterol between cells through the brain's interstitial space — the matrosome — the astrocytes package it into ApoE-containing lipoproteins that resemble plasma HDL in density but are fundamentally different in composition, carrying copies of ApoE rather than ApoA-1 [1] — Tom Dayspring "The brain and body run completely separate cholesterol systems. ApoB-containing particles that carry most of your plasma cholesterol are fa…" 29:05 . These particles mature in the matrosome, and neurons take them up via LDL receptors and especially LRP1, both of which recognize ApoE. Tom argues the receptor should be renamed the ApoB/ApoE receptor to reflect its true ligand range across both body compartments.
The brain and body run completely separate cholesterol systems. ApoB-containing particles that carry most of your plasma cholesterol are far too large to cross the blood-brain barrier, meaning your LDL level has essentially zero bearing on brain cholesterol supply.
Once the brain reaches adult size around age 10, neurons stop making their own cholesterol to save ATP for firing action potentials. Astrocytes take over production, packaging cholesterol into ApoE-containing HDL-like particles that ferry it through the brain's interstitial fluid to waiting neurons.
Around age 10, when the brain reaches adult size, neurons cease synthesizing cholesterol themselves and rely entirely on astrocytes to supply it, freeing ATP for neural firing.
Synthesizing a single cholesterol molecule requires more than 30 molecules of ATP across 37 enzymatic steps, which is why neurons delegate cholesterol production to astrocytes once the brain is fully grown.