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The ER synthesizes lipids for building cell membranes and performing cellular functions such as energy storage and signaling. The lipid synthesis machinery embedded in the ER membrane primarily collects all reactants from the cytosol. Following synthesis, the secretory pathway and the ER contact sites distribute these lipids to other cellular organelles. Additionally, the energy-rich triacylglycerides are transported from the ER via lipid droplets.

The major components of all eukaryotic cell membranes are glycerophospholipids, sphingolipids, and sterols. Glycerophospholipids play diverse functions in a cell. They act as a barrier for transporting compounds across the membrane, serve as secondary messengers, and store energy. The most abundant glycerophospholipids in higher eukaryotic cell membranes are phosphatidylcholine and phosphatidylethanolamine.

Synthesis of Phosphatidylcholine

Phosphatidylcholine synthesis in nucleated mammalian cells occurs by the CDP-choline pathway or the Kennedy pathway using CTP as an energy substrate for metabolite activation. In this pathway, the glycerophospholipids synthesis occurs via modification of phosphatidic acid — the simplest glycerophospholipid with a phosphate head group. Enzymatic alterations to the phosphate head group yield important membrane glycerophospholipids, such as phosphatidylcholine and phosphatidylethanolamine.

Subcellular roles of Phosphatidylcholine

Besides its role in membrane building, phosphatidylcholine is vital in synthesizing and stabilizing lipoproteins like VLDL, a significant component of the lipid droplets. In the liver cells, the molar ratio of phosphatidylcholine to phosphatidylethanolamine in the plasma membrane affects the integrity of cells, which is critical for normal functioning. The compromised membranes result in the ballooning of the hepatocytes linked to conditions such as non-alcoholic fatty liver disease leading to liver failure. The rate of synthesis and acyl-chain composition of phosphatidylcholine vary as per tissue-specific needs. For example, saturated dipalmitoyl-phosphatidylcholine helps reduce surface tension in the lung alveoli, especially in neonatal infants.

Tags

PhosphatidylcholineER MembraneLipid SynthesisGlycerophospholipidsCDP choline PathwayKennedy PathwayPhosphatidic AcidPhosphatidylethanolamineLipoproteinVLDLNon alcoholic Fatty Liver DiseaseDipalmitoyl phosphatidylcholineLung Alveoli

来自章节 15:

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15.17 : Synthesis of Phosphatidylcholine in the ER Membrane

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15.1 : 内质网

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15.2 : 光滑的内质网

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15.3 : ER 在分泌途径中的作用

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15.4 : 将蛋白质引导至粗面内质网

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15.5 : ER 膜上的蛋白质转位机制

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15.6 : 共翻译蛋白易位

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15.7 : 蛋白质翻译后易位到 RER

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15.8 : 在 RER 中插入单通道跨膜蛋白

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15.9 : 在 RER 中插入多通道跨膜蛋白

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15.10 : 蛋白质在 ER 膜中的尾部锚定

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15.11 : 蛋白质在 ER 膜中的 GPI 锚定

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15.12 : RER 中的蛋白质修饰

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15.13 : RER 中的蛋白质折叠质量检查

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15.14 : 从 ER 中导出错误折叠的蛋白质

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