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1
Membrane lipid biosynthesis in Acholeplasma laidlawii b: elongation of medium- and long-chain exogenous fatty acids in growing cells.莱氏无胆甾原体b中的膜脂生物合成:生长细胞中中链和长链外源脂肪酸的延长
J Bacteriol. 1978 Jan;133(1):66-74. doi: 10.1128/jb.133.1.66-74.1978.
2
Membrane lipid biosynthesis in Acholeplasma laidlawii B: incorporation of exogenous fatty acids into membrane glyco- and phospholipids by growing cells.莱氏无胆甾原体B中的膜脂生物合成:生长细胞将外源脂肪酸掺入膜糖脂和磷脂中。
J Bacteriol. 1977 Nov;132(2):485-96. doi: 10.1128/jb.132.2.485-496.1977.
3
Membrane lipid biosynthesis in Acholeplasma laidlawii B: de novo biosynthesis of saturated fatty acids by growing cells.莱氏无胆甾原体B中的膜脂生物合成:生长细胞对饱和脂肪酸的从头生物合成。
J Bacteriol. 1977 Nov;132(2):497-504. doi: 10.1128/jb.132.2.497-504.1977.
4
Lipid compositional manipulation in Acholeplasma laidlawii B. Effect of exogenous fatty acids on fatty acid composition and cell growth when endogenous fatty acid production is inhibited.莱氏无胆甾原体B中的脂质成分调控。当内源性脂肪酸生成受到抑制时,外源性脂肪酸对脂肪酸组成及细胞生长的影响。
Can J Biochem. 1978 Jun;56(6):462-9. doi: 10.1139/o78-072.
5
The biosynthetic incorporation of short-chain linear saturated fatty acids by Acholeplasma laidlawii B may suppress cell growth by perturbing membrane lipid polar headgroup distribution.莱氏无胆甾原体B对短链线性饱和脂肪酸的生物合成掺入可能通过扰乱膜脂极性头部基团分布来抑制细胞生长。
Biochemistry. 2002 Jul 9;41(27):8665-71. doi: 10.1021/bi025987r.
6
Membrane lipid composition and cell size of Acholeplasma laidlawii strain A are strongly influenced by lipid acyl chain length.莱氏无胆甾原体A菌株的膜脂组成和细胞大小受脂质酰基链长度的强烈影响。
Eur J Biochem. 1995 Feb 1;227(3):734-44. doi: 10.1111/j.1432-1033.1995.tb20196.x.
7
Effect of independent variations in fatty acid structure and chain length on lipid polar headgroup composition in Acholeplasma laidlawii B membranes: regulation of lamellar/nonlamellar phase propensity.脂肪酸结构和链长的独立变化对莱氏无胆甾原体B膜脂质极性头部基团组成的影响:片层/非片层相倾向的调节
Biochemistry. 2003 Feb 11;42(5):1309-17. doi: 10.1021/bi026923j.
8
Membrane lipid biosynthesis in Acholeplasma laidlawii B. Investigations into the in vivo regulation of the quantity and hydrocarbon chain lengths of de novo biosynthesized fatty aicds in response to exogenously supplied fatty acids.莱氏无胆甾原体B中的膜脂生物合成。关于体内新合成脂肪酸的数量和烃链长度对外源脂肪酸供应的响应调控的研究。
Arch Biochem Biophys. 1977 Aug;182(2):455-64. doi: 10.1016/0003-9861(77)90526-4.
9
Membrane protein acylation. Preference for exogenous myristic acid or endogenous saturated chains in Acholeplasma laidlawii.膜蛋白酰化。莱氏无胆甾原体对外源肉豆蔻酸或内源性饱和链的偏好。
Eur J Biochem. 1992 Feb 15;204(1):231-40. doi: 10.1111/j.1432-1033.1992.tb16629.x.
10
The biosynthetic incorporation of diacetylenic fatty acids into the biomembranes of Acholeplasma laidlawii A cells and polymerisation of the biomembranes by irradiation with ultraviolet light.双炔脂肪酸生物合成掺入莱氏无胆甾原体A细胞的生物膜以及通过紫外线照射使生物膜聚合。
Biochim Biophys Acta. 1983 Jan 19;727(2):327-35. doi: 10.1016/0005-2736(83)90418-2.

引用本文的文献

1
The acylation state of surface lipoproteins of mollicute Acholeplasma laidlawii.柔软支原体 Acholeplasma laidlawii 表面脂蛋白的酰化状态。
J Biol Chem. 2011 Jul 1;286(26):22769-76. doi: 10.1074/jbc.M111.231316. Epub 2011 May 3.
2
The mycoplasmas.支原体。
Microbiol Rev. 1978 Jun;42(2):414-70. doi: 10.1128/mr.42.2.414-470.1978.

本文引用的文献

1
Synthesis of saturated long chain fatty acids from sodium acetate-1-C14 by Mycoplasma.支原体利用乙酸钠-1-C14合成饱和长链脂肪酸。
J Bacteriol. 1967 Feb;93(2):636-41. doi: 10.1128/jb.93.2.636-641.1967.
2
Incorporation and elongation of fatty acid isomers by Mycoplasma laidlawii A.莱氏无胆甾原体A对脂肪酸异构体的掺入与延长
Biochemistry. 1970 Jan 20;9(2):407-12. doi: 10.1021/bi00804a030.
3
Calorimetric evidence for the liquid-crystalline state of lipids in a biomembrane.生物膜中脂质液晶态的量热学证据。
Proc Natl Acad Sci U S A. 1969 May;63(1):104-9. doi: 10.1073/pnas.63.1.104.
4
Some studies on the fatty acid composition of total lipids and phosphatidylglycerol from Acholeplasma laidlawii B and their relation to the premeability of intact cells of this organism.关于莱氏无胆甾原体B总脂质和磷脂酰甘油的脂肪酸组成及其与该生物体完整细胞通透性关系的一些研究。
Biochim Biophys Acta. 1972 Sep 7;280(1):22-32. doi: 10.1016/0005-2760(72)90209-3.
5
Replacement of the octadecenoic acid growth-requirement for Acholeplasma laidlawii A by cis-9,10-methylenehexadecanoic acid, a cyclopropane fatty acid.用环丙烷脂肪酸顺式-9,10-亚甲基十六烷酸替代莱氏无胆甾原体A对十八碳烯酸的生长需求。
J Gen Microbiol. 1974 Jan;80(1):93-100. doi: 10.1099/00221287-80-1-93.
6
The effect of alterations in fatty acid composition and cholesterol content on the nonelectrolyte permeability of Acholeplasma laidlawii B cells and derived liposomes.脂肪酸组成和胆固醇含量的改变对莱氏无胆甾原体B细胞及衍生脂质体非电解质通透性的影响。
Biochim Biophys Acta. 1973 Mar 16;298(2):500-12. doi: 10.1016/0005-2736(73)90376-3.
7
Inhibition of fatty acid synthetases by the antibiotic cerulenin.抗生素浅蓝菌素对脂肪酸合成酶的抑制作用。
Biochem Biophys Res Commun. 1972 Aug 7;48(3):649-56. doi: 10.1016/0006-291x(72)90397-x.
8
The action mechanism of cerulenin. I. Effect of cerulenin on sterol and fatty acid biosynthesis in yeast.浅蓝菌素的作用机制。I. 浅蓝菌素对酵母中甾醇和脂肪酸生物合成的影响。
J Biochem. 1972 May;71(5):783-96. doi: 10.1093/oxfordjournals.jbchem.a129827.
9
The effect of membrane-lipid phase transitions on membrane structure and on the growth of Acholeplasma laidlawii B.膜脂相变对膜结构及莱氏无胆甾原体B生长的影响
J Supramol Struct. 1974;2(5-6):617-28. doi: 10.1002/jss.400020509.
10
The synthesis of long-chain fatty acids by a cell-free system from Mycoplasma laidlawii A.利用来自莱氏无胆甾原体A的无细胞系统合成长链脂肪酸。
Biochemistry. 1970 Jan 6;9(1):57-63. doi: 10.1021/bi00803a008.

莱氏无胆甾原体b中的膜脂生物合成:生长细胞中中链和长链外源脂肪酸的延长

Membrane lipid biosynthesis in Acholeplasma laidlawii b: elongation of medium- and long-chain exogenous fatty acids in growing cells.

作者信息

Saito Y, Silvius J R, McElhaney R N

出版信息

J Bacteriol. 1978 Jan;133(1):66-74. doi: 10.1128/jb.133.1.66-74.1978.

DOI:10.1128/jb.133.1.66-74.1978
PMID:618849
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC221977/
Abstract

The chain elongation of a wide variety of exogenous fatty acids and the subsequent incorporation of the chain elongation products into the total membrane lipids of Acholeplasma laidlawii B were systematically studied. Within each chemical class of fatty acids examined, the extent of chain elongation increased with increases in chain length, reached a maximum value, and then declined with further increases in chain length. Depending on chemical structure, exogenous fatty acids containing less than 6 to 9 carbon atoms or more than 15 to 18 carbon atoms were not substrates for the chain elongation system. The substrate specificity of this fatty acid elongation system was strikingly broad, and straight-chain, methyl isobranched, and methyl anteisobranched saturated fatty acids, as well as cis- and trans-monounsaturated, cis-cyclopropane, and cis-polyunsaturated fatty acids, underwent chain elongation in vivo. The extent of chain elongation and the average chain length of the primary elongation products correlated well with the physical properties (melting temperatures) of the exogenous fatty acid substrates. The specificity of fatty acid chain elongation in A. laidlawii B maintained the fluidity and physical state of the membrane lipids within a rather wide but definitely limited range. The fatty acid chain elongation system of this organism could be markedly influenced by the presence of a second exogenous fatty acid that was not itself a substrate for the chain elongation system but was incorporated directly into the membrane lipids. The presence of a relatively low-melting exogenous fatty acid increased both the extent of chain elongation and the average chain length of the elongation products generated, whereas the presence of a relatively high-melting fatty acid had the opposite effect. The extent of chain elongation and nature of the elongation products formed were not, however, dependent on the fluidity and physical state of the membrane lipids per se. The second exogenous fatty acid appeared instead to exert its characteristic effect by competing with the chain elongation substrate and elongation products for the stereospecific acylation of positions 1 and 2 of sn-glycerol-3-phosphate. The similar effects of alterations in environmental temperature, cholesterol content, and exposure to the antibiotic cerulenin on the fatty acid chain elongation and de novo biosynthetic activities suggested that the chain elongation system of this organism may be a component of the de novo biosynthetic system.

摘要

对多种外源脂肪酸的链延长以及随后链延长产物掺入莱氏无胆甾原体B的总膜脂中的过程进行了系统研究。在所检测的每一类脂肪酸中,链延长程度随链长增加而增加,达到最大值后,又随链长进一步增加而下降。根据化学结构,含少于6至9个碳原子或多于15至18个碳原子的外源脂肪酸不是链延长系统的底物。该脂肪酸延长系统的底物特异性非常广泛,直链、甲基异支链和甲基反异支链饱和脂肪酸,以及顺式和反式单不饱和脂肪酸、顺式环丙烷脂肪酸和顺式多不饱和脂肪酸在体内都能进行链延长。链延长程度和初级延长产物的平均链长与外源脂肪酸底物的物理性质(熔点)密切相关。莱氏无胆甾原体B中脂肪酸链延长的特异性在相当宽但有限的范围内维持了膜脂的流动性和物理状态。该生物体的脂肪酸链延长系统可能会受到第二种外源脂肪酸的显著影响,这种脂肪酸本身不是链延长系统的底物,但可直接掺入膜脂中。存在相对低熔点的外源脂肪酸会增加链延长程度和所生成延长产物的平均链长,而存在相对高熔点的脂肪酸则有相反的效果。然而,链延长程度和所形成延长产物的性质并不取决于膜脂本身的流动性和物理状态。相反,第二种外源脂肪酸似乎是通过与链延长底物和延长产物竞争sn-甘油-3-磷酸1位和2位的立体特异性酰化作用来发挥其特征性作用的。环境温度变化、胆固醇含量以及接触抗生素浅蓝菌素对脂肪酸链延长和从头生物合成活性的类似影响表明,该生物体的链延长系统可能是从头生物合成系统的一个组成部分。