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In vitro reconstitution of assembly of apolipoprotein B48-containing lipoproteins
A E Rusiñol1, H Jamil, J E Vance
1Lipid and Lipoprotein Research Group and the Department of Medicine, University of Alberta, Edmonton, Alberta T6G 2S2, Canada.
Abstract:
Human apolipoprotein B48 (apoB48) and apoB15 (the NH2-terminal 48 and 15% of apoB100, respectively) were translated in vitro from their respective mRNAs using a rabbit reticulocyte lysate and microsomes derived from rat liver or dog pancreas. Synthesis of phosphatidylcholine and triacylglycerols was reconstituted in freshly isolated microsomes by the addition of precursors of these glycerolipids (acylcoenzyme A, glycerol 3-phosphate, and CDP-choline) before, during, or after translation. Assembly of apoB15 and apoB48 with newly synthesized phospholipids and triacylglycerols was favored by active, co-translational lipid synthesis. Moreover, translocation of apoB48 but not B15 into the microsomal lumen was increased in the presence of co-translational lipid synthesis. When apoB48 was translated in vitro, approximately 50% of apoB48 was buoyant at a density of <1.10 g/ml in the lumen of liver microsomes only when lipid synthesis was reconstituted during translation. Microsomal triacylglycerol transfer protein has been proposed to be essential for lipidation and/or translocation of apoB48. However, apoB48 was translocated into the lumen of dog pancreas microsomes in which the activity of the microsomal triacylglycerol transfer protein was not detectable. These data indicate that (i) apoB15 and apoB48 bind newly synthesized phosphatidylcholine during translocation; (ii) apoB48 but not apoB15 associates co-translationally with triacylglycerols; (iii) translocation of apoB48 but not apoB15 is stimulated by lipid synthesis; (iv) assembly of buoyant apoB48-containing lipoproteins can be reconstituted in vitro in the presence of active lipid synthesis; and (v) even in microsomes lacking microsomal triacylglycerol transfer protein activity, apoB48 is translocated into the lumen.
Insights
Apolipoprotein B48 (apoB48) assembly with lipids during co-translational synthesis is crucial for its lipidation and translocation into microsomes. This process facilitates the formation of buoyant apoB48-containing lipoproteins, independent of microsomal triacylglycerol transfer protein activity.
Area of Science:
- Biochemistry
- Molecular Biology
- Lipid Metabolism
Background:
- Apolipoprotein B (apoB) is essential for lipoprotein assembly and transport.
- Understanding the co-translational lipidation and translocation of apoB is critical for lipoprotein biogenesis.
Purpose of the Study:
- To investigate the role of co-translational lipid synthesis in the assembly and translocation of human apolipoprotein B48 (apoB48) and apoB15.
- To determine the requirements for the formation of buoyant apoB48-containing lipoproteins.
Main Methods:
- In vitro translation of apoB48 and apoB15 mRNAs using reticulocyte lysate and microsomes.
- Reconstitution of phosphatidylcholine and triacylglycerol synthesis in microsomes.
- Analysis of apoB lipidation and translocation under varying lipid synthesis conditions.
Main Results:
- Co-translational lipid synthesis favored the assembly of apoB48 and apoB15 with newly synthesized lipids.
- Translocation of apoB48, but not apoB15, into the microsomal lumen was enhanced by co-translational lipid synthesis.
- Buoyant apoB48-containing lipoproteins were formed in vitro when lipid synthesis was active during translation.
- ApoB48 translocation occurred even in microsomes lacking detectable microsomal triacylglycerol transfer protein activity.
Conclusions:
- ApoB48 and apoB15 bind phosphatidylcholine during translocation.
- ApoB48, but not apoB15, associates with triacylglycerols co-translationally.
- Lipid synthesis stimulates apoB48 translocation, enabling the assembly of buoyant apoB-lipoprotein particles.
- Microsomal triacylglycerol transfer protein is not essential for apoB48 translocation into the microsomal lumen.