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あなたの細胞は自分でコレステロールを作っている——では、なぜ血液中があふれているのか?

著:ピーター・メグダル博士

この記事の使い方

医療上の免責事項: この記事は教育目的のものであり、医学的な助言ではありません。個別の指導については、必ずかかりつけの医師にご相談ください。.

読みやすい

あなたの身体は運んでいる 2〜4倍 必要以上のコレステロール

ミリオン・ダラー・モレキュール – パート2

物質収支モデリングMass-balance modeling is a quantitative approach that tracks the total input, output, and storage of a substance—here cholesterol—across the body's compartments to estimate how much is actually needed versus how much is present in excess. 生理学的要件と現代の集団平均との間のギャップ、そして特定の組織に害を及ぼしていない場合でも、なぜその余剰が依然として重要であるかについて示しています。.

平均的なアメリカ人の成人は、約5.6グラムの コレステロールコレステロールは、体が必要とするロウ状の物質です。細胞壁、ホルモン、ビタミンD、そして食べ物を消化する胆汁の材料となります。コレステロールがなければ私たちは生きていけません。. 任意の時点で血漿中を循環している量――おおよそ米国の5セント硬貨1枚分の重さに相当します。どのような物質がどのように代謝されるかについての慎重なマスバランス(物質収支)モデリングにより、 リポタンパク質リポタンパク質とは、脂肪とコレステロールを血流に乗せて運ぶ小さなカプセルのことです。脂肪は水に溶けないため、移動するにはタンパク質の包みが必要です。. 構造的完全性のために必要な粒子と、さらに特定の特殊組織が毎日実際に血流から取り込んでいる量を合わせると、体内の真の循環必要量は1.5〜2.7グラムに近いことが示唆される。この2〜4倍の余剰分自体に毒性はない。しかし、何もしていないわけでもなく、それが何をしていて何をしていないのかを理解することは、心血管医学の大部分を明確に説明することにつながる。.

120〜150g

標準的な成人の全身のコレステロール量

2–5%

その総量のうち、血漿コンパートメントに存在する

23%

脳内に閉じ込められた体内コレステロールの

人々が混同する2つの質問

臨床現場と一般向けの教育資料の両方において、コレステロールに関する混乱のほとんどは、2つの異なる疑問を混同していることから生じている。.

1つ目は簡単です。 体にはコレステロールが必要ですか? 答えは強く「はい」です。体内のすべての細胞膜に含まれています。ステロイドホルモン(コルチゾール、アルドステロン、, テストステロンTestosterone is the main male sex hormone, though women produce it too in smaller amounts., 、エストラジオールはそれから誘導される。. 胆汁酸胆汁酸は、肝臓でコレステロールから生成され、脂肪の消化を助けるために腸内に放出されます。., ビタミンD、およびシナプス機能のすべてがそれに依存しています。コレステロールがなければ、私たちが知るような真核生物の生命は存在し得ません。.

2番目の質問は異なります: リピッドパネルのコレステロール濃度は、私の体が実際に必要としているものを反映していますか? 脂質パネルはコレステロール濃度を測定する プラズマ中で, 、すなわち血液の液体画分であり、そこでリポタンパク質粒子の中を移動します。それは全身のインベントリではなく、輸送システムの測定値です。2つの疑問を切り離せば、現代の心臓病学における見かけ上のパラドックスの多くは――人間がどのようにして健康な生活を送ることができるかを含めて―― LDLコレステロール 30 mg/dL未満 — きれいに分解されます。.

コレステロールが実際にある場所

体重70キログラムの成人には、およそ 120〜150グラムの 総コレステロール総コレステロールは、悪玉も善玉も含め、すべての粒子に含まれるコレステロールの合計です。., 体のすべての組織に分散している.1,2 血漿コンパートメントが保持するのは 3〜7グラム 測定された総コレステロール濃度およびその人の血漿量に応じて、教育的資料でしばしば繰り返される10〜30パーセントという数値ではなく(この数値は急速に交換される肝臓・血漿・赤血球プールを全身のものと混同している)、身体のコレステロールの2〜5パーセントに相当する。.

残りの部分はどこにあるのでしょうか?その大半は細胞膜に存在し、コレステロールはそこで不可欠な構造材料となっています。骨格筋には約25〜30グラム、結合組織と脂肪組織にはさらに25〜32グラムが含まれています。皮膚には12〜18グラムがあります。肝臓には、胆汁酸の生成やリポタンパク質の組み立てのための作業用ストックとして4〜6グラムが存在します。心臓、腎臓、肺、腸、脾臓、副腎といった残りの組織は、それぞれ単独では1グラム未満ですが、全体として重要な割合を占めています。.

そして脳もある。.

脳は単独で存在している

体内で最もコレステロールが豊富な臓器は脳であり、脳には およそ30〜35グラム —全身のコレステロールの約4分の1が、体重のわずか2パーセントほどしか占めない組織に詰まっている。.3,4

その 血液脳関門 リポタンパク質コレステロールを通さない。. 肝臓で作られるコレステロールも、食事から摂取するも​​のも、血漿中を循環するも​​のも、そのどれ一つとして脳に入ることはありません。.

脳細胞は独自に合成する。. アストロサイトAstrocytes are a type of support cell (glia) in the brain that act as the primary cholesterol-manufacturing cells of the central nervous system, supplying cholesterol to neurons for membrane maintenance and myelin support. Because lipoproteins in the blood cannot cross the blood–brain barrier, the brain depends almost entirely on astrocyte-derived cholesterol synthesis. 脳特異的なリポタンパク質系を介して大部分を作り出し、神経へと輸送する アポリポ蛋白アポリポ蛋白とは、血液中の脂肪を運ぶ粒子に結合しているタンパク質です。脂肪と水は混ざらないため、これらのタンパク質は脂肪が血流の中を安全に移動できるようにする包みのような役割を果たします。. E. プールの代謝は遅い。神経コレステロールの場合は6ヶ月から5年、ミエリン鞘に詰め込まれたコレステロールの場合は数十年オーダーである。中枢神経系(CNS)からの唯一の意味のある排泄経路は、以下の物質への酵素的変換である。 24S-ヒドロキシコレステロール24S-ヒドロキシコレステロールは、コレステロールの酵素的変換によって脳内で生成されるオキシステロールであり、脳血液関門を通過して血流中で排泄されることを可能にする。これは脳のコレステロールの主要な排泄経路である。., 、血液脳関門を通過し、血漿中でクリアランスされる.4

これには実用的な意味合いがある。. スタチンスタチンは、肝臓がコレステロールを作るのに使う酵素の働きを遅らせます。肝臓は血液中からより多くのコレステロールを取り除くことでこれに反応し、そこに真の利益があります。., PCSK9阻害薬, 、およびその他の血漿コレステロール低下療法は、脳のコレステロールを直接低下させるわけではない。脂質低下治療が脳のコレステロール貯蔵量を枯渇させることで認知機能に悪害を及ぼすのではないかという懸念が時折提起されるが、これは解剖学的な誤解に基づいている。すなわち、脳のコレステロールプールは循環系から代謝的に完全に隔離されているのである。.

すべての細胞が独自に作っている

脳がコレステロールを局所で合成することは珍しくありません。. ヒトの体のすべての有核細胞は、アセチルCoAからコレステロールを合成することができる。, 、約30ステップの メバロン酸経路The mevalonate pathway is the multi-step biochemical route by which cells, primarily in the liver, synthesize cholesterol and related molecules; statins and bempedoic acid act at two separate nodes of this pathway to reduce cholesterol production..5 骨格筋はその大部分を自分で行う。皮膚は必要なものの約90%を作り出す。腎臓、肺、腸のいずれも、その経路を十分に行うことができる。.

生合成には生物学的なコストがかかる。単一のコレステロール分子を生成するには 11個の酸素分子 おおよそ ATP換算100個分, そして、その経路は慎重に管理しなければならないいくつかの有毒な中間体を経て進行する。.6 ほぼすべての細胞が進化の過程でこの精巧な仕組みを維持してきたという事実自体が示唆に富んでいる。すなわち、局所的なコレステロールの供給は任意のものではなく、組織は血液循環に依存してその需要を満たすようには進化しなかったということである。.

全身合成は1日あたり約10ミリグラム毎キログラム、体重70キログラムの成人の場合で約700ミリグラムである。.5 肝臓は、しばしば その の場所 コレステロール合成Cholesterol synthesis is your body making its own cholesterol, mostly in the liver. Almost every cell can do it., ヒトでは、体全体の合成の約10パーセントにしか寄与しません。残りの90パーセントは肝臓外です。あなたの組織は主に自分自身で作っています。.

では、血液循環システムは実際には何のためのものですか?

すべての組織が独自のコレステロールを合成できるのであれば、当然の次の疑問は、循環しているリポタンパク質系が何をしているのかということである。主に3つの役割がある。.

01 トリグリセリド分布。. 超低密度リポタンパク質(VLDLVLDL(超低密度リポ蛋白)は、肝臓が中性脂肪を体内の他の部位へと送り出すために作り出す粒子です。.肝臓から分泌される粒子が運ぶ 中性脂肪トリグリセリド(中性脂肪)は、血液中および体内の蓄積脂肪の主要な形態です。. エネルギー供給や貯蔵のために末梢組織へ. LDLLDL(低密度リポ蛋白)は、コレステロールを血液中に運ぶ主要な粒子であり、動脈壁に詰まる主原因となるものです。. VLDLの残りの部分であり リポ蛋白リパーゼLipoprotein lipase is an enzyme anchored to the walls of small blood vessels that strips triglycerides out of passing particles and hands the fat to muscle and fat tissue. トリセツリドを取り除いた―― 反応速度論的副生成物 エネルギー運搬の手段であり、専用のコレステロール配達人ではない。この認識の転換が重要である。LDLは進化の過程で コレステロールを運ぶ; それは、脂肪を運ぶことが本来の仕事であるシステムから生み出された。.

02 A 運動学的化学ポテンシャルバッファーIn lipoprotein physiology, the plasma lipoprotein system acts as a kinetic chemical-potential buffer by keeping free cholesterol on particle surfaces in continuous thermodynamic equilibrium with surrounding cell membranes, smoothing out moment-to-moment fluctuations in local tissue supply.. あらゆるリポ蛋白表面上の遊離コレステロールは、それが遭遇する細胞膜と継続的かつ自発的な平衡状態にある。このシステムは、すべての細胞外脂質表面にわたってコレステロールのほぼ均一な熱力学活性を維持し、どの組織の局所的供給における一刻一刻の変動をも均す。.7

03 局所的な合成量を需要が上回る少数の組織への送達。. これらは主に副腎皮質(コルチゾールおよびアルドステロン)、性腺(性ステロイド)、そして妊娠中には胎盤である。妊娠していない成人の基準値において、血漿からのコレステロールの正の必須取り込み量は1日あたり約50ミリグラムであり、全身の合成量と比較して少ない。.

これら3つの機能のいずれにおいても、血中コレステロールを5〜7グラム持ち歩く必要はない。構造的緩衝機能には、システムを安定させるのに十分な数の粒子があればよい。送達機能には、1日あたり約50ミリグラムというキネティック・フロア(最低必要量)が必要である。どちらの機能も、現代のほとんどの成人が示している値よりもはるかに低い血中コレステロール濃度で満たすことができる。.

体は実際どれくらいの血中コレステロールを必要としているのでしょうか?

This is the question the prior sections have been setting up. Two functional requirements need to be satisfied for the circulating system to work.

The first is structural integrity. Every circulating lipoprotein particle — LDL, HDLHDL、すなわち高密度リポタンパク質は、しばしば「善玉コレステロール」と呼ばれる粒子です。組織からコレステロールを回収し、肝臓へ運び戻します。., VLDL — needs free cholesterol on its surface to hold the phospholipid monolayer together. A representative 22-nanometer LDL particle carries about 400 free cholesterol molecules on its surface; an HDL carries about ten.8 Summed across all circulating particle classes at typical particle counts, this comes to roughly 25 to 30 mg/dL of structural surface free cholesterol.

The second is delivery to high-demand tissues, which, as noted, is on the order of 50 mg per day for a nonpregnant adult.

Building a transparent transport model — counting particles, free cholesterol per particle, core cholesteryl-ester cargo, and a reasonable reserve for tissue demand — and running it across the plausible parameter range, the model-estimated minimum plasma total cholesterol for a nonpregnant adult under baseline conditions comes out at roughly:

50 to 90 mg/dL total cholesterol — sensitivity range 40 to 110 — sufficient to maintain a functional lipoprotein transport system and deliver what the body’s high-demand tissues actually need.

In plasma cholesterol mass: roughly 1.5 to 2.7 grams at a representative plasma volume of three liters. This is the modeled floor. It is a calculation, not a measurement — but as the next section shows, the model’s prediction is corroborated by what we observe in living humans.

Real humans live at the model’s floor

The transport model’s predicted floor isn’t theoretical. It matches the plasma cholesterol levels observed in two well-studied human populations.

PCSK9 loss-of-function carriers

PCSK9PCSK9 is a protein made by your liver that destroys the docking ports your liver uses to pull cholesterol out of your blood. is a hepatic タンパク質タンパク質は、体内の筋肉や組織の構築と修復に使用される栄養素です。. that regulates how many LDL受容体LDL受容体は、肝細胞の表面にあるドッキングポートであり、血液中からLDL粒子を捕捉して取り込み、分解する。. hepatocytes display on their surface. People who carry two non-functional copies of the PCSK9 gene have abundant LDL receptors and clear plasma LDL aggressively. The originally-described African-American homozygotes from the Dallas Heart Study have lifelong plasma LDL cholesterol in the 14 to 29 mg/dL range — total cholesterol typically 50 to 80 mg/dL — with no observed abnormalities of cognition, fertility, steroidogenesis, or general health in the published cases.9 The number of reported homozygotes is small, so this is a constraint on the high side of the model’s floor rather than a definitive answer; but it is striking that the empirical observation lands squarely inside the model-predicted range.

PCSK9-inhibitor trial participants

Monoclonal antibodies against PCSK9 — evolocumab and alirocumab — pharmacologically reproduce the PCSK9 loss-of-function phenotype. The FOURIER試験The FOURIER trial evaluated the PCSK9 inhibitor evolocumab added to statin therapy and demonstrated that aggressively lowering ApoB-containing particles reduced cardiovascular events; analysis also showed that patients who achieved very low LDL-C but retained high hs-CRP still faced elevated residual risk, supporting the dual-risk model of atherogenesis. randomized 27,564 patients with established 心血管疾患心血管疾患とは、心臓発作、脳卒中、下肢の動脈閉塞など、心臓や血管に関する問題の総称です。., followed them for a median of 2.2 years on evolocumab, and achieved median on-treatment LDL cholesterol of about 30 mg/dL.10 Its open-label extension, フーリエールThe open-label extension of the FOURIER trial, which tracked patients treated with evolocumab for seven or more years and found sustained cognitive stability even among those maintaining LDL-C below 20 mg/dL., followed 6,635 of those patients for an additional median of five years — bringing maximum 累積暴露 to about 8.4 years — without identifying any signal of adrenal insufficiency, hypogonadism, cognitive decline, 脳出血A hemorrhagic stroke is a type of stroke caused by bleeding into or around the brain rather than by a blocked artery; because aspirin impairs clotting, it raises the risk of this complication, which is a key reason its use in low-risk individuals is now discouraged., or muscle disease.11 オデッセイODYSSEY OUTCOMES tested alirocumab in patients recovering from a recent heart attack. OUTCOMES, with alirocumab in roughly 19,000 patients, showed the same.

These are large, prospective, well-monitored safety datasets. They don’t measure tissue saturation thresholds directly, but they bound the empirically demonstrated safe range of plasma LDL cholesterol from above: humans tolerate prolonged plasma LDL cholesterol in the 15 to 30 mg/dL range without identified clinical consequence. The transport model predicts this, and the human data confirms it.

So why does the excess matter?

Here is where it would be tempting to draw the wrong conclusion. The model says the body’s circulating requirement is about 50 to 90 mg/dL total cholesterol. The current US adult mean is 188 mg/dL (NHANES 2017–2018).12 The excess is roughly two- to four-fold. Is the excess harmless?

No. And the reason is subtle but important.

The question of cholesterol as physiological need is separate from the question of cholesterol as cardiovascular risk. They are physiologically orthogonal. Excess plasma cholesterol does not poison any tissue, cause cells to malfunction, or cause organs to fail. But every additional apolipoprotein-B-containing particle in the bloodstream has a small probability per unit time of entering the arterial wall, becoming retained, becoming oxidized, and seeding an atherosclerotic 歯垢プラークとは、動脈の壁の内側にコレステロール、免疫細胞、瘢痕組織、カルシウムが蓄積したものです。..13

The risk is cumulative across time. メンデルランダム化Mendelian randomization is a clever research method that uses the genes people were born with as a natural experiment. studies — which use genetic variants as natural experiments to test causality — show a 対数線形関係A log-linear relationship between LDL-C and cardiovascular risk means that each successive equal reduction in LDL-C produces a proportionally consistent percentage reduction in heart events, with no threshold below which further lowering stops being beneficial—supporting the 'lower is better' principle. between cumulative apoB exposureApoB-years(アポB年)は、時間経過に伴うアポBの累積曝露量を表す提案中の研究用指標であり、mg/dL・年単位のアポB対年齢曲線の下面積として表されます。これは、単一の測定値よりも直接的に統合された動脈硬化惹起性粒子の負荷をとらえることを目的としていますが、臨床ツールや治療閾値としてはまだ検証されていません。. and lifetime risk of atherosclerotic cardiovascular disease, extending below plasma LDL cholesterol of 20 mg/dL.13,14 The slope of that line is approximately constant. There is no inflection where risk vanishes. There is no threshold below which exposure stops counting.

So the modern surplus is metabolically tolerated in the sense that no tissue is harmed by it. It is not tolerated in the sense of contributing nothing to long-term risk — it contributes proportionally to particle exposure, regardless of where on the 用量反応A dose-response relationship means more of something produces more of an effect, in a consistent gradient. curve you sit. The atherogenic question isn’t whether you need the cholesterol; it’s how many apoB particlesアポBは、動脈の壁に詰まってプラークを引き起こす可能性のあるコレステロール粒子のすべての外側に存在するタンパク質です。それらの粒子はそれぞれ、正確に1個のアポBを運んでいます。. are exposed to your arterial wall over your lifetime, and for how long.

Three claims worth taking away

First, the cholesterol circulating in your blood is a small and unrepresentative slice of total body cholesterol. The brain — the most cholesterol-rich organ — is sealed off from plasma. Most other tissues make their own.

Second, the circulating cholesterol actually required to sustain a working lipoprotein transport system and meet the demands of high-uptake tissues is roughly 50 to 90 mg/dL total cholesterol for a nonpregnant adult at baseline. Modern population averages exceed this by two- to four-fold. The surplus is metabolically tolerated.

Third, “metabolically tolerated” is not the same as “biologically neutral.” The cumulative atherogenic risk of carrying that surplus is real and causally established, even when no particular tissue is being damaged in the short term.

Your body needs cholesterol. Your blood mostly doesn’t need to carry as much of it as it does.

If those three claims feel paradoxical when stated together, that is because most of us were taught about cholesterol as if it were one thing. It isn’t. It is at least three different things — a whole-body structural pool, a circulating transport system, and a per-particle atherogenic exposure — and most clinical confusion comes from collapsing the distinctions.

The cleaner framing is the one in the pull quote above. Both halves are true. Holding them together is what modern preventive cardiology asks of us.

This piece distills a longer technical analysis, including a formal mass-balance model with explicit equations and a sensitivity analysis. For the full quantitative treatment — including the assumptions, parameter ranges, and worked unit-conversion arithmetic underlying the transport-floor estimate — see the accompanying manuscript. The author has no financial relationships with manufacturers of lipid-lowering therapies.

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  13. B. A. Ference et al. Low-density lipoproteins cause atherosclerotic cardiovascular disease. 1. Evidence from genetic, epidemiologic, and clinical studies. A consensus statement from the European Atherosclerosis Society Consensus Panel. European Heart Journal, 38:2459–2472, 2017.
  14. A. D. Sniderman et al. Apolipoprotein B particles and cardiovascular disease: a narrative review. JAMA Cardiology, 4:1287–1295, 2019.

ディープダイブ

Cholesterol Structure, Transport, and Biological Requirement

A mechanistic analysis of compartment partitioning, リポタンパク質リポタンパク質とは、脂肪とコレステロールを血流に乗せて運ぶ小さなカプセルのことです。脂肪は水に溶けないため、移動するにはタンパク質の包みが必要です。. structural requirements, and the model-estimated minimum for the circulating transport system

抄録

背景. Whole-body コレステロールコレステロールは、体が必要とするロウ状の物質です。細胞壁、ホルモン、ビタミンD、そして食べ物を消化する胆汁の材料となります。コレステロールがなければ私たちは生きていけません。. distribution, lipoprotein structural requirements, and tissue dependence on circulating cholesterol are frequently conflated in clinical and educational sources, leading to overstatements of how much circulating cholesterol the body “requires.”

方法. This analysis (i) defines a strict compartment-based vocabulary distinguishing total body cholesterol, tissue cholesterol, intracellular cholesterol, and circulating (plasma/serum) cholesterol, and (ii) builds a transparent transport-model estimate for the minimum circulating cholesterol concentration required to maintain lipoprotein structural integrity and to meet exogenous tissue demand, with stated assumptions, explicit unit-converted parameters, and sensitivity bounds. Equations and parameter ranges are given in the Methods appendix (Section 11).

調査結果. (1) Total body cholesterol in an adult is approximately 120–150 g; the rapidly-exchanging plasma pool of 3–7 g (depending on plasma volume and measured 総コレステロール総コレステロールは、悪玉も善玉も含め、すべての粒子に含まれるコレステロールの合計です。. concentration) represents 2–5% of body content. (2) The brain alone contains ~30–35 g, isolated from plasma by the 血液脳関門The blood–brain barrier is a highly selective cellular interface lining the brain's blood vessels that blocks lipoprotein particles from entering the central nervous system, meaning the brain must synthesize all of its own cholesterol locally.. (3) Plasma cholesterol is ~70% esterified / ~30% free. (4) A representative 22-nm modeled LDLLDL(低密度リポ蛋白)は、コレステロールを血液中に運ぶ主要な粒子であり、動脈壁に詰まる主原因となるものです。. particle (Hevonoja reconstruction) contains ~2,200 cholesterol molecules, ~18% of which is surface free cholesterol; LDL is heterogeneous and these numbers should not be applied uncritically to all LDL particles. (5) Under stated transport-model assumptions and using NMR-consistent particle counts (LDL-P in nmol/L → ~10¹⁶–10¹⁷ particles/dL; HDL-P in µmol/L → ~10¹⁸ particles/dL), the model-estimated minimum plasma total cholesterol that simultaneously stabilizes the lipoprotein system and supplies ~50 mg/day of net exogenous demand in a nonpregnant adult is approximately 50–90 mg/dL (sensitivity 40–110 mg/dL). This is a calculated scenario, not a demonstrated physiological minimum.

結論. Modern US adult mean plasma total cholesterol of ~188 mg/dL (NHANES 2017–2018) exceeds the model-estimated transport floor by a factor that is assumption-sensitive but consistently > 2. The surplus is metabolically tolerated, causally tied to ASCVD risk on a per-apoB-particle basis, and not required for any known physiological function. Clinical guidelines that recommend LDL-C reduction for ASCVD prevention operate in a different epistemic register (event reduction in trials) than this paper (物質収支モデリングMass-balance modeling is a quantitative approach that tracks the total input, output, and storage of a substance—here cholesterol—across the body's compartments to estimate how much is actually needed versus how much is present in excess.); the two are complementary, not in conflict.

1. Compartment-Based Vocabulary

Every cholesterol claim in this paper specifies (i) the compartment, (ii) the chemical form, and (iii) the units. Conflating clinical lipid-panel concentrations with tissue or whole-body cholesterol mass is the source of most quantitative errors in the lay and educational literature. The following terminology is used throughout. [1]

Term Meaning Typical units
Plasma TC / serum TC Total cholesterol concentration in the corresponding blood fraction (calculated or directly measured on a routine lipid panel) mg/dL or mmol/L
Plasma LDL-C / HDL-C / VLDL-C Cholesterol carried by the named lipoprotein class in plasma mg/dL or mmol/L
LDL-P / HDL-P Number concentration of LDL or HDLHDL、すなわち高密度リポタンパク質は、しばしば「善玉コレステロール」と呼ばれる粒子です。組織からコレステロールを回収し、肝臓へ運び戻します。. particles (typically measured by NMR spectroscopy) LDL-P in nmol/L; HDL-P in µmol/L (note different orders of magnitude)
Plasma free cholesterol / plasma cholesteryl esterCholesteryl esters are storage forms of cholesterol in which a fatty acid is attached to cholesterol; they accumulate in large quantities inside foam cells and the extracellular spaces of plaques, and their depletion—measured as regression of the lipid-rich pool—is a primary marker of plaque improvement in primate regression studies. Chemical partition of plasma cholesterol between unesterified and esterified forms (typically ~30% / ~70%) mg/dL, mmol/L, or % of plasma TC
Plasma cholesterol mass Plasma TC × plasma volume; the absolute cholesterol mass circulating in plasma at one moment g (= mg/dL × dL_plasma / 1000)
Circulating cholesterol mass Plasma cholesterol mass + cholesterol carried in erythrocyte membranes (rapidly exchanges with plasma) g
Tissue cholesterol concentration Cholesterol per unit mass of tissue (e.g., brain at ~23 mg/g wet weight) mg/g wet or dry weight
Cellular / subcellular cholesterol Cholesterol in a specific cell type, organelle membrane, or pool mol% of membrane lipids; µg/mg タンパク質タンパク質は、体内の筋肉や組織の構築と修復に使用される栄養素です。.
Total body cholesterol Whole-body cholesterol mass across all tissues and fluids g
Model-estimated transport floor Calculated minimum plasma cholesterol concentration that satisfies the structural and delivery functions of the circulating lipoprotein system under stated assumptions mg/dL

 

Lipoprotein particle units are NMR conventions

NMR lipoprotein subfraction analysis (LipoProfile and similar) reports LDL-P in nanomolar (nmol/L), reflecting the ~10¹⁵–10¹⁸ particles/L range typical for adults. HDL-P is conventionally reported in micromolar (µmol/L) because HDL is more abundant on a per-particle basis. This paper uses the NMR conventions throughout and converts to particles per dL with explicit arithmetic.

 

Plasma vs serum

Routine clinical lipid panels are performed on either serum or plasma; the difference in measured cholesterol is small (typically < 3%). Unless specified, all circulating cholesterol concentrations refer to plasma or serum interchangeably.

2. Systemic Distribution and Mass Balance

2.1 Total body cholesterol

Total body cholesterol in an adult is approximately 120〜150g, with body-weight scaling. The range reflects between-subject and between-method variability in tissue-distribution studies. [2][3] Older textbook citations of ~35 g represent only Goodman’s rapidly-exchanging Pool A (liver + plasma + erythrocytes + part of viscera) in the kinetic tracer model, not whole-body content. Direct quantitative tissue analysis (Sabine, 1977, recapitulated in modern reviews) places adult human total body cholesterol at the higher figure, with brain, connective tissue including adipose, and skeletal muscle each contributing roughly 25–35 g. [2][3]

Goodman’s three-pool tracer model defines a rapidly-exchanging Pool A (liver, plasma, erythrocytes, splanchnic) of 15–30 g, a slowly-exchanging Pool B (skeletal muscle, adipose, dense connective tissue) of 35–60 g, and a kinetically isolated CNS pool of ~30–35 g. [4][5] The plasma compartment alone contains 3–7 g of cholesterol, depending on plasma volume and measured plasma total cholesterol concentration.

2.2 Tissue distribution

Distribution under the assumption of ~140 g total body cholesterol (representative midpoint). All entries are tissue cholesterol mass. [2][3]

Compartment Cholesterol (g) % of body total Dominant chemical form
Brain / CNS (myelin + neural membranes) 30–35 ~22–25% >99.5% free (unesterified)
Skeletal muscle ~25–30 ~18–22% Free (plasma membrane)
Connective tissue, adipose, body fluids ~25–32 ~18–23% Mixed; CE accumulates with age in tendon/dura
Skin ~12–18 ~9–13% 無料
Other viscera (lung, kidney, intestine, etc.) ~12–18 ~9–13% Free predominantly
Liver ~4–6 ~3–4% Mixed FC + CE
Plasma / circulating pool 3–7 ~2–5% ~70% CE / ~30% FC
Heart, spleen, adrenals (per organ) <1 each <1% High density per gram (adrenals ≥ 25 mg/g)

The CNS contains ~22–25% of body cholesterol at the highest tissue concentration (~23 mg/g wet weight). [5][6] The blood–brain barrier is impermeable to lipoprotein cholesterol; the entire CNS pool is synthesized locally. Cortical neuronal cholesterol turns over with a half-life of 6 months to 5 years; myelin cholesterol turns over on the order of decades. Net efflux from the CNS occurs primarily as 24S-ヒドロキシコレステロール24S-ヒドロキシコレステロールは、コレステロールの酵素的変換によって脳内で生成されるオキシステロールであり、脳血液関門を通過して血流中で排泄されることを可能にする。これは脳のコレステロールの主要な排泄経路である。., which traverses the blood–brain barrier and is cleared in plasma. [5][6][7]

2.3 Plasma cholesterol mass at different plasma total cholesterol concentrations

Plasma cholesterol mass is the product of plasma volume and plasma total cholesterol concentration. At a representative plasma volume of 3.0 L:

Plasma TC (mg/dL) Plasma cholesterol mass (g, 3.0 L plasma) Clinical context
50 1.5 Below typical neonatal range; rare LOF mutations
80 2.4 Reported PCSK9PCSK9 is a protein made by your liver that destroys the docking ports your liver uses to pull cholesterol out of your blood. LOF homozygote range
100 3.0 PCSK9阻害薬A PCSK9 inhibitor is a medicine that blocks that cholesterol-destroying protein, leaving more docking ports available to clear particles from the blood. on-treatment targets
150 4.5 Therapeutic target on intensive lipid-lowering
188 5.6 US adult mean (NHANES 2017–2018) [8]
220 6.6 Borderline-elevated
280 8.4 Heterozygous FH range

 

Plasma volume varies with body size

Plasma volume in adults is approximately 40–45 mL/kg body weight (~2.8–3.2 L for a 70-kg adult, ~3.5–4.0 L for a 90-kg adult). All plasma mass calculations in this paper use a representative 3.0 L unless otherwise stated.

2.4 Subcellular distribution and the ER cholesterol sensor

Within most non-neural cells, the plasma membrane holds 60–90% of cellular cholesterol at 30–40 mol% of PM lipids, while the endoplasmic reticulum maintains only 3–6 mol%. [9][10] The gradient is enforced by SREBP2 coupled to SCAP and Insig: when ER cholesterol exceeds ~5 mol%, SCAP retains SREBP2 in the ER and synthesis is suppressed. [11] Das et al. (eLife 2014) resolved PM cholesterol into three functional pools using a Perfringolysin O (PFO*) probe: a sphingomyelin-sequestered pool (~15 mol% of PM lipids), an “essential” pool required for cell viability, and an “accessible” pool that fluxes to the ER to regulate synthesis. [11][12] The accessible pool—not bulk PM cholesterol—is the regulatory signal.

PFO* binding threshold applies to plasma-membrane bilayers, not lipoprotein monolayers.

The 35 mol% PFO*-accessibility threshold in plasma membranes reflects bilayer architecture and sphingomyelin–cholesterol complexation specific to the PM. [11][12] LDL and HDL surfaces are phospholipid monolayers stabilized by アポリポプロテインアポリポ蛋白とは、血液中の脂肪を運ぶ粒子に結合しているタンパク質です。脂肪と水は混ざらないため、これらのタンパク質は脂肪が血流の中を安全に移動できるようにする包みのような役割を果たします。.; they have different lipid composition, leaflet asymmetry, and packing constraints. The threshold should not be applied directly to lipoprotein surfaces without further analysis.

2.5 Daily turnover

Whole-body de novo コレステロール合成Cholesterol synthesis is your body making its own cholesterol, mostly in the liver. Almost every cell can do it. in adults is approximately 10 mg/kg/day (~700 mg/day in a 70-kg adult, ~880 mg/day in an 88-kg adult). The liver contributes only ~10% of total synthesis in humans; the majority is extrahepatic. [13] Three-pool tracer studies of plasma cholesterol turnover give a total production rate (synthesis plus dietary absorption) of ~1.0–1.2 g/day in normolipidemic subjects. [4] Dietary intake (~300–500 mg/day on a Western diet, ~30–50% absorbed) is compensated by down-regulation of endogenous synthesis. [14]

3. Lipoprotein Architecture and Cholesterol Partitioning

3.1 Representative 22-nm LDL particle composition

The reconstruction below is from Hevonoja et al. (BBA 2000) for a representative LDL particle of 22 nm diameter. [15][16][17]

Component Molecules / particle Mass fraction (%) 場所
Cholesteryl esters (CE) ~1,600 40–45% Core
Unesterified cholesterol (FC) ~600 8–10% ~400 surface, ~200 core
トリグリセリドトリグリセリド(中性脂肪)は、血液中および体内の蓄積脂肪の主要な形態です。. (TG) ~170 5–9% Core
Phosphatidylcholine ~450 } 19–21% combined Surface monolayer
Sphingomyelin ~185 (phospholipid total) Surface monolayer
アポB-100ApoB-100 is the full-length form of apolipoprotein B found on LDL, VLDL, IDL, and remnant lipoproteins; its positively charged amino-acid domains bind ionically to negatively charged proteoglycan side chains in the arterial wall, physically trapping the particle in the intima and initiating plaque formation. (single copy) 1 20–25% Wraps the surface

Total cholesterol per representative LDL particle is ~2,200 molecules; surface FC accounts for ~18% of LDLコレステロールLDLコレステロール(LDL-C)は、LDL粒子内に存在するコレステロールの量です。これは、ほとんどすべての標準的な検査報告書に記載されている数値です。.. Some general references cite ~1,500 cholesterol per average LDL particle, reflecting different averaging schemes across the LDL size distribution; both numbers are central-tendency descriptions of an inherently heterogeneous population. [16]

LDL is heterogeneous.

In-vivo LDL spans ~22–27.5 nm with substantial compositional variation; 小型Sd LDLSmall dense LDL particles are LDL particles that are smaller and carrying less cholesterol than usual. carries less cholesterol per particle and is enriched in TG, while large buoyant LDL carries more. The Hevonoja reconstruction is a representative central-tendency particle and should not be applied uncritically to all LDL species.

3.2 Plasma free-to-esterified ratio

Direct enzymatic and chromatographic measurement in healthy human serum shows plasma free cholesterol at ~25–30% of total plasma cholesterol, with the esterified fraction at ~70–75%. [18][19] An elevated FC/CE ratio is associated with LCAT dysfunction, familial chylomicronemia, and an independent atherogenic signal in some studies. [20]

3.3 Surface free cholesterol: structural role

Free cholesterol on the lipoprotein surface intercalates between phospholipid acyl chains, with its 3β-hydroxyl projecting into the aqueous interface and its rigid ステロールステロールは、同じ4つの環状構造を基盤とするワックス状の分子のグループです。コレステロールは動物が作るものであり、植物は独自のステロールを作り出します。. ring aligned with the lipid tails. This “condensation” reduces free volume in the monolayer, decreases its permeability to water, and increases mechanical stability of the particle. [21][22] FC at ~25 mol% of surface lipids is compatible with a liquid-ordered, well-packed monolayer; this configuration supports particle stability and lateral mobility for enzymatic processing. [23]

3.4 Free cholesterol exchange

Free cholesterol on lipoprotein surfaces is in spontaneous equilibrium with cell membranes and other lipoprotein particles via passive aqueous diffusion. Exchange half-time scales inversely with surface curvature: ~5 min for nascent HDL, ~45 min for LDL. [21][23] This kinetic system maintains a near-uniform thermodynamic activity of cholesterol across all extracellular lipid surfaces. [22][23]

4. Cholesteryl Esters: Transport Cargo

Cholesteryl esters are fully hydrophobic and reside in the lipoprotein core as a liquid or liquid-crystalline droplet. CE in LDL represents 40–45% of particle mass and provides the bulk of cholesterol delivered to cells via receptor-mediated endocytosis, where lysosomal acid lipase liberates free cholesterol for use. [17]

CETPCETP is a protein that swaps cholesterol and triglycerides between HDL and the harmful ApoB particles. shuttles CE from HDL to apoB-containing lipoproteins in exchange for triglycerides, enriching アポBアポBは、動脈の壁に詰まってプラークを引き起こす可能性のあるコレステロール粒子のすべての外側に存在するタンパク質です。それらの粒子はそれぞれ、正確に1個のアポBを運んでいます。. particles with cholesterol cargo. A substantial fraction of apoB-particle core CE therefore reflects cholesterol that has cycled through peripheral cells, plasma, and HDL before being transferred onto LDL, superimposed on hepatic cholesterol pools secreted as VLDLVLDL(超低密度リポ蛋白)は、肝臓が中性脂肪を体内の他の部位へと送り出すために作り出す粒子です。.. [24]

5. HDL Maturation

Nascent HDL is secreted as lipid-poor apoA-I that acquires phospholipid and free cholesterol from peripheral cells via ABCA1ABCA1は、コレステロールを細胞の外へ汲み出し、肝臓へ戻るためのHDL粒子に受け渡すタンパク質です。., forming a discoidal particle of two apoA-I molecules in a “double-belt” conformation. [25] LCAT, activated by apoA-I, transfers an acyl group from the sn-2 position of phosphatidylcholine to surface FC, generating CE that migrates into the hydrophobic core. [23][25]

As CE accumulates, the discoidal bilayer becomes spherical. Mature HDL2 reaches ~10–12 nm diameter and carries ~30–60 cholesterol molecules per particle (mostly CE), with ~5–15 surface FC. [23] The CE either returns directly to the liver via SR-B1SR-B1 is the receptor on liver cells that takes cholesterol from HDL particles and releases it for disposal in bile. or transfers to apoB particles via CETP for hepatic clearance through LDL受容体LDLR is the gene that builds the LDL receptor, the docking port your liver uses to pull cholesterol particles out of circulation.. [23][24]

6. Tissue Requirements: De Novo Synthesis and Exogenous Uptake

6.1 Most nucleated tissues can synthesize cholesterol de novo

Every nucleated cell in the human body expresses the complete mevalonate–cholesterol biosynthetic pathway. [13][26] Under usual conditions, most tissues are not absolutely dependent on continuous exogenous cholesterol supply from plasma; the quantitative balance between local synthesis and lipoprotein-derived uptake varies by tissue, age, and physiological state.

Tissue Primary cholesterol source Notes
Brain / CNS Local synthesis (アストロサイトAstrocytes are a type of support cell (glia) in the brain that act as the primary cholesterol-manufacturing cells of the central nervous system, supplying cholesterol to neurons for membrane maintenance and myelin support. Because lipoproteins in the blood cannot cross the blood–brain barrier, the brain depends almost entirely on astrocyte-derived cholesterol synthesis. → neurons via apoEAPOE is a gene that comes in three common versions, labeled E2, E3, and E4. It controls how efficiently your liver clears leftover fat particles.) BBB excludes lipoprotein cholesterol; net efflux via 24S-OH-cholesterol [7]
Skeletal muscle Predominantly local synthesis Low demand for new sterol
Skin ~90% local synthesis Supports barrier function
Adrenal cortex Mixed: LDLR > SR-B1 in humans; reverse in rodents [27][28] Stored CE buffers acute steroidogenic demand
Gonads (testes, ovaries) Mixed: LDLR + SR-B1; reproductive-state-dependent Pregnancy and lactation raise demand
Placenta Maternal LDL and HDL; pregnancy only Outside scope of nonpregnant adult analysis
Liver Synthesis + dietary + reverse transport Master regulator; secretes VLDL

In human adrenocortical and gonadal physiology, LDLR-mediated endocytosis carries greater quantitative weight than SR-B1 for cholesterol delivery — opposite to the rodent pattern in which SR-B1 dominates. SR-B1 nonetheless remains expressed and biologically active in human steroidogenic tissues, and SR-B1 loss-of-function in humans produces subtle but real abnormalities in ACTH-stimulated cortisol response. The mixed-pathway nature of human steroidogenic cholesterol supply should be preserved in any mechanistic discussion. [27][28]

6.2 LDL-receptor kinetics: in-vitro and in-vivo are not interchangeable

In-vitro: in cultured human fibroblasts, high-affinity binding of LDL apoB-100 saturates at LDL protein concentrations below 50 µg/mL (Brown & Goldstein). [29][30] Catapano and colleagues (2024) describe this as a half-saturation corresponding to an LDL-C plasma equivalent of ~2.5 mg/dL, and combine it with the observation that interstitial-fluid LDL-C is ~20% of plasma LDL-C to argue that plasma LDL-C of ~12.5 mg/dL would saturate tissue LDLR. [31] This argument depends on intermediate assumptions about LDL protein-to-cholesterol mass ratio, interstitial-fluid composition, and uniformity of fibroblast LDLR behavior; this paper cites the argument without endorsing it as a measured human threshold.

In-vivo: organ-level LDL clearance in rat and hamster (Spady & Dietschy) gives Km ≈ 90 mg/dL — roughly 30-fold higher, reflecting unstirred boundary layers, capillary permeability, and receptor density rather than intrinsic affinity. [32] This rodent in-vivo number is not directly portable to human tissue-level cholesterol-delivery thresholds.

Receptor saturation kinetics are not a clean human delivery threshold.

The chain (in-vitro fibroblast Km → plasma-equivalent LDL-C → interstitial-fluid LDLR saturation in adrenal/gonadal cells) depends on assumptions that have not been independently validated in humans, and hepatocytes are exposed to sinusoidal blood rather than to ordinary interstitial fluid. The substantively defensible claim is empirical: humans with very low plasma LDL-C, by 遺伝学Genetics is the study of what you inherit from your parents. or therapy, have not shown clinical signs of cholesterol-delivery insufficiency in the reported populations.

6.3 Empirical observations: very low LDL-C in humans

Carriers of homozygous PCSK9 loss-of-function mutations are a small reported sample. The originally described Dallas Heart Study African-American homozygotes had lifelong plasma LDL-C of 14–29 mg/dL (total cholesterol typically 50–80 mg/dL) without overt clinical abnormalities in the limited published descriptions. [33][34] The total reported global population of such homozygotes remains small, so this evidence supports the absence of large-effect harm but does not prove a universal physiological minimum.

Larger evidence comes from PCSK9-inhibitor randomized trials. フーリエFOURIER tested evolocumab, a PCSK9 inhibitor, in patients who already had cardiovascular disease and were on statins. (n = 27,564) had a median randomized follow-up of 2.2 years, with on-treatment median LDL-C of 30 mg/dL and no signal of adrenal insufficiency, hypogonadism, cognitive decline, 脳出血A hemorrhagic stroke is a type of stroke caused by bleeding into or around the brain rather than by a blocked artery; because aspirin impairs clotting, it raises the risk of this complication, which is a key reason its use in low-risk individuals is now discouraged., or muscle disease. [35] オデッセイODYSSEY OUTCOMES tested alirocumab in patients recovering from a recent heart attack. OUTCOMES (n = 18,924) had a median follow-up of 2.8 years with similar safety findings. [36] The FOURIER Open-Label Extension (フーリエールThe open-label extension of the FOURIER trial, which tracked patients treated with evolocumab for seven or more years and found sustained cognitive stability even among those maintaining LDL-C below 20 mg/dL., n = 6,635 of the original 27,564) added a median 5.0 yearsエボロクマブEvolocumab is an injectable cholesterol medicine in the PCSK9 inhibitor family, usually given every two to four weeks. exposure, bringing 累積暴露Cumulative exposure is the total amount of harmful cholesterol particles your arteries have been soaked in across your entire life — how high, multiplied by how long. in that subset to ~8.4 years, with no new safety signal. [37] These are large, prospective safety data; they are not a direct measurement of human cholesterol delivery thresholds but they bound the empirically demonstrated safe range of plasma LDL-C from above.

Interstitial-fluid LDL is reported at ~10–20% of plasma LDL concentration in human peripheral lymph studies. [38][39] These data are descriptive and do not establish a measured human tissue saturation threshold.

7. A Transport-Model Estimate of the Minimum Circulating Cholesterol

What this section is and is not.

This section presents a transport-model estimate of the minimum plasma cholesterol concentration that simultaneously (i) sustains the structural integrity of the circulating lipoprotein system and (ii) supplies the net daily exogenous cholesterol demand of a nonpregnant adult under usual conditions. The estimate is calculation, not measurement. Equations and parameter values are in Section 11.

7.1 Structural integrity

All circulating lipoprotein particles require surface free cholesterol to stabilize their phospholipid monolayer. Using NMR-consistent particle counts (LDL-P in nmol/L; HDL-P in µmol/L) and explicit unit conversion: [15][17]

Particle class Class concentration (clinical) Particles per dL Surface FC per particle Surface FC contribution (mg/dL)
LDL LDL-C 100 mg/dL; LDL-P ~1,200 nmol/L ~7.1 × 10¹⁶ ~400 ~18
HDL HDL-C 50 mg/dL; HDL-P ~30 µmol/L ~1.8 × 10¹⁸ ~10 ~12
VLDL / IDLIDL(中等密度リポ蛋白)は、トリセリドを多く運ぶ大型の粒子が収縮してLDL粒子へと変化する過程の中間で形成される粒子です。. TG-driven; particle counts ~10¹⁵–10¹⁶ /dL ~variable ~2–3
Total surface FC (model, baseline TC ~190) ~30–33
Total measured plasma FC (~28% of TC at TC 190) ~50–55 (includes core FC and other)

The model-derived surface FC of ~30–33 mg/dL at typical clinical lipid values, plus core FC of ~10–15 mg/dL (LDL has ~200 core FC per particle, HDL has a smaller core FC contribution), and a small chylomicron-remnant and Lp(a) contribution, sums to approximately 45–55 mg/dL plasma FC. This matches the directly measured plasma FC fraction of ~25–30% of total cholesterol at total cholesterol ~190 mg/dL. [18][19]

7.2 Net daily exogenous cholesterol delivery to peripheral tissues

Reverse cholesterol transportReverse cholesterol transport is the process of moving cholesterol out of tissues, including artery walls, and back to the liver for disposal. HDL particles do the hauling. tracer studies in healthy adults (Turner et al., 2012) estimate whole-body tissue FC efflux at 3.79 ± 0.88 mg/kg/h, reported in the original paper as ≈8 g/day; this corresponds to ~6.4 g/day at 70 kg or ~8 g/day at 88 kg (the study’s mean approximate body weight). [40] This is bidirectional exchange flux, not net delivery demand. Estimated net obligate exogenous uptake by tissues whose local synthesis is insufficient under baseline conditions, in a nonpregnant adult, is approximately:

Tissue / function Estimated daily cholesterol use Source of supply
Adrenal steroidogenesis (baseline) ~30–60 mg/day Mostly LDLR-mediated; SR-B1 contribution
Gonadal steroidogenesis (nonpregnant adult, baseline) < 10 mg/day Predominantly LDLR-mediated in humans
Bile acid胆汁酸は、肝臓でコレステロールから生成され、脂肪の消化を助けるために腸内に放出されます。. synthesis ~400 mg/day Hepatic pool; not a peripheral demand
Extrahepatic membrane turnover (all) ~600–700 mg/day Met by local synthesis
Net obligate exogenous demand (nonpregnant adult, baseline) Order of tens of mg/day (~50 mg/day central estimate) Met at very low plasma LDL-C

 

Nonpregnant adult, baseline only.

Pregnancy roughly doubles maternal plasma cholesterol; placental demand is on a different order of magnitude and is not captured here. Acute illness, severe stress, and rapid tissue regeneration also raise demand.

7.3 Combined model-estimated transport floor

Model output across a range of plasma TC values:

Plasma TC scenario LDL surface FC (mg/dL) HDL surface FC (mg/dL) Total plasma FC (mg/dL) Notes
TC 188 (US mean) ~18 ~12 ~50–55 ベースライン
TC 100 (PCSK9-Rx target) ~10 ~10 ~30 Adequate; well above any structural floor
TC 70 (PCSK9 LOF homozygote) ~4 ~9 ~17 At or near model floor; empirically tolerated
TC 50 (extreme genetic) ~2 ~8 ~13 Below any well-validated empirical case

 

Bottom line: the transport model predicts that a nonpregnant adult under baseline conditions can maintain a functional circulating lipoprotein system and meet ~50 mg/day of exogenous tissue demand at plasma total cholesterol on the order of 50–90 mg/dL (sensitivity range 40–110 mg/dL). The chemical form remains roughly 70% esterified and 30% unesterified across this range. The model-floor estimate is in numerical agreement with the plasma TC observed in PCSK9 LOF homozygotes (~50–80 mg/dL), providing independent corroboration from clinical and genetic observation. Modern US adult mean plasma TC of ~188 mg/dL [8] exceeds the model-estimated floor by approximately 2–4×, depending on which sensitivity scenario is used.

7.4 Sensitivity bounds

Assumption varied Range tested Effect on transport-floor estimate
Plasma volume 2.5–4.0 L Inverse scaling; primary effect on absolute mass, secondary on mg/dL
LDL-P at given LDL-C ± 50% of representative Affects FC component proportionally
Surface FC per LDL particle 300–500 ± 15% on FC component
FC per HDL particle 5–15 ± 25% on HDL FC component
Net peripheral demand 20–150 mg/day Adds 5–30 mg/dL margin
Pregnancy / acute illness Model not applicable; demand can rise 2–10×
Combined plausible range (nonpregnant adult, baseline) ~40–110 mg/dL plasma TC

8. ApoB Causality and ASCVD Risk

Whether peripheral tissues require circulating cholesterol is a separate question from whether circulating apoB-containing lipoproteins are causally atherogenic. メンデルランダム化Mendelian randomization is a clever research method that uses the genes people were born with as a natural experiment. across > 50 genetic instruments (LDLR, PCSK9, HMGCRHMGCR is the gene for HMG-CoA reductase, the enzyme that performs the rate-limiting step in making cholesterol. It is the exact target of every statin., NPC1L1NPC1L1 is the transporter in your intestine that absorbs cholesterol from food and bile. Ezetimibe blocks it., APOB, ANGPTL3ANGPTL3は、血液中のトリグリセリドを豊富に含む微粒子の分解を遅らせるタンパク質です。., LPL, CETP) has established that the lifetime risk of ASCVD tracks cumulative apoB-particle exposure rather than absolute LDL-C concentration alone, with a 対数線形関係A log-linear relationship between LDL-C and cardiovascular risk means that each successive equal reduction in LDL-C produces a proportionally consistent percentage reduction in heart events, with no threshold below which further lowering stops being beneficial—supporting the 'lower is better' principle. between apoB and event risk extending below 20 mg/dL LDL-C. [41][42]

The atherogenic risk imposed by a given circulating cholesterol mass is determined by particle number (apoB count) and residence time, not by whether the cholesterol is required for tissue delivery. The two questions are physiologically orthogonal.

9. Evolutionary and Mechanistic Context

Cholesterol biosynthesis requires 11 molecules of O₂ and roughly 100 ATP equivalents per cholesterol molecule, and involves toxic intermediates. [43][44] This expense is consistent with cholesterol having emerged as eukaryotes adapted to a rising atmospheric oxygen tension; cholesterol both consumes O₂ during synthesis and reduces membrane O₂ permeability, partially functioning as an O₂ sink. [44]

Under the modeling perspective developed in Section 7, the lipoprotein transport system is best interpreted as (i) a vehicle for triglyceride distribution — LDL is a kinetic byproduct of VLDL catabolism — and (ii) a 運動学的化学ポテンシャルバッファーIn lipoprotein physiology, the plasma lipoprotein system acts as a kinetic chemical-potential buffer by keeping free cholesterol on particle surfaces in continuous thermodynamic equilibrium with surrounding cell membranes, smoothing out moment-to-moment fluctuations in local tissue supply. that maintains uniform sterol activity across all extracellular lipid surfaces. [22][23] Under this interpretation, the modern population’s circulating cholesterol concentration is set primarily by hepatic clearance capacity (LDLR density, PCSK9 activity, IDOL activity) rather than by peripheral demand.

10. Conclusions

  • Total body cholesterol in an adult is approximately 120–150 g; the plasma compartment of 3–7 g represents 2–5%, not 10–30%, of body content.
  • The brain contains ~30–35 g (22–25% of body cholesterol), entirely synthesized locally and isolated from plasma by the blood–brain barrier.
  • A representative 22-nm LDL particle contains ~2,200 cholesterol molecules (~1,600 CE + ~600 FC, of which ~400 FC are on the surface). LDL is heterogeneous; these numbers describe a representative reconstruction.
  • Plasma cholesterol is ~70% esterified and ~30% free.
  • In humans, LDLR-mediated endocytosis carries greater weight than SR-B1 for adrenal and gonadal cholesterol uptake, but SR-B1 remains biologically active.
  • Using NMR-consistent lipoprotein particle counts (LDL-P in nmol/L, HDL-P in µmol/L), the model-estimated minimum plasma total cholesterol for a nonpregnant adult under baseline conditions is approximately 50–90 mg/dL (sensitivity 40–110 mg/dL). This is a calculated scenario, not a directly measured human physiological minimum.
  • Net daily exogenous cholesterol delivery to peripheral tissues in a nonpregnant adult under baseline conditions is on the order of tens of mg/day, easily met at plasma LDL-C in the 15–30 mg/dL range observed in PCSK9 LOF carriers and in PCSK9-inhibitor trial subjects (FOURIER median 2.2 years, FOURIER-OLE subset median 5.0 additional years), in whom no signal of cholesterol-delivery insufficiency has been reported.
  • US adult mean plasma total cholesterol of ~188 mg/dL (NHANES 2017–2018) exceeds the model-estimated transport floor by approximately 2–4×, depending on which sensitivity scenario is used. The surplus is metabolically tolerated, causally tied to ASCVD risk on a per-apoB basis, and not required for any known physiological function in a nonpregnant adult under baseline conditions.

11. Methods Appendix

11.1 Scope

This appendix specifies the equations, parameter values, and assumptions used in the transport-model estimate of Section 7.

11.2 Equations

Plasma cholesterol mass:

M_plasma = TC × V_plasma / 1000   (g)

where TC is in mg/dL and V_plasma is in dL.

Conversion from NMR particle concentration to particles per dL:

N_particles_per_dL = [class-P] × 10⁻⁹ × N_A / 10        (LDL: [LDL-P] in nmol/L)

N_particles_per_dL = [class-P] × 10⁻⁶ × N_A / 10        (HDL: [HDL-P] in µmol/L)

where N_A = 6.022 × 10²³ /mol. The /10 converts L to dL.

Worked example, LDL-P = 1,200 nmol/L:

1,200 × 10⁻⁹ × 6.022 × 10²³ / 10 = 7.23 × 10¹⁶ particles/dL

Worked example, HDL-P = 30 µmol/L:

30 × 10⁻⁶ × 6.022 × 10²³ / 10 = 1.81 × 10¹⁸ particles/dL

Surface FC contribution from one lipoprotein class:

[FC]_class (mg/dL) = N_particles_per_dL × n_FC,class × MW_chol × 1000 / N_A

Worked example, LDL at LDL-C 100 (N = 7.23 × 10¹⁶/dL), 400 surface FC per particle, MW_chol = 386.7 g/mol:

7.23 × 10¹⁶ × 400 × 386.7 × 1000 / 6.022 × 10²³ = ~18.2 mg/dL

Total model-estimated transport floor:

TC_floor ≈ Σ [FC]_class,surface + Σ [FC]_class,core + CE_core,structural + CE_delivery_reserve

11.3 Parameter values used

パラメータ Central value Source / basis Sensitivity range
Plasma volume 3.0 L (= 30 dL) ~42 mL/kg × 70 kg 2.5–4.0 L
LDL-P at LDL-C 100 mg/dL ~1,200 nmol/L (= 7.1 × 10¹⁶ /dL) NMR LipoProfile data; MESAMESA, the Multi-Ethnic Study of Atherosclerosis, followed thousands of adults with no known heart disease, scanning their arteries and tracking outcomes., 木星JUPITER tested a statin in people whose cholesterol was normal but whose CRP was elevated, suggesting hidden inflammation. 600–1,800 nmol/L
HDL-P at HDL-C 50 mg/dL ~30 µmol/L (= 1.8 × 10¹⁸ /dL) NMR data 20–40 µmol/L
Surface FC per LDL particle 400 Hevonoja 2000 reconstruction [15] 300–500
FC per HDL particle (total) ~10 HDL2/3 composition reviews; calculated from HDL-C / HDL-P at central values 5–15
Net daily peripheral exogenous demand (nonpregnant adult) ~50 mg/day Composite of adrenal/gonadal/membrane estimates [26][27] 20–150 mg/day
MW cholesterol 386.7 g/mol Fixed n/a
Avogadro’s number 6.022 × 10²³ /mol Fixed n/a

11.4 Assumptions

The transport-floor calculation depends on assumptions made explicit here:

  • The nonpregnant adult is at metabolic steady state under baseline conditions (no pregnancy, no acute illness, no rapid tissue regeneration).
  • Plasma volume is taken as a single representative value rather than individualized.
  • Particle counts scale approximately linearly with class cholesterol concentration over the modeled range; this approximation breaks down at extremes.
  • Surface FC per LDL is taken from the Hevonoja reconstruction; surface composition varies somewhat with particle size and remodeling state.
  • FC per HDL particle reflects mature spherical HDL2/3 composition; nascent discoidal HDL has different per-particle FC content.
  • Net peripheral demand is taken as order of tens of mg/day; this aggregates tissue-level values that have wide uncertainty under different endocrine states.
  • Lp(a), カイロミクロンカイロミクロンは、食事由来の脂肪を小腸から血流へと運ぶ非常に大きな粒子です。., and chylomicron remnants are not modeled separately; including them would shift the FC contribution upward by a small amount.
  • The model is steady-state and ignores diurnal, 食後の食後とは「食事の後」を意味し、食後研究では、絶食時の基準値における測定ではなく、食事摂取直後の数時間における体(血管、脂質レベル、炎症マーカーなど)の反応を測定します。., and seasonal variation.

11.5 What this appendix does not establish

This appendix does not establish a measured human physiological minimum for total cholesterol. It provides a transparent, reproducible transport-model estimate. Direct empirical evidence for the safety of very low plasma LDL-C in humans (PCSK9 LOF carriers; PCSK9-inhibitor trial participants) is presented separately in Section 6.3 and remains the strongest evidence that the model’s predicted low floor is physiologically plausible. The two evidence streams are independent: a transport model and a clinical/genetic observation. They are numerically consistent — both indicate that plasma total cholesterol can fall to ~50–80 mg/dL without identified clinical consequence in a nonpregnant adult — but neither alone is dispositive.

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