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1
Sec-dependent membrane protein biogenesis: SecYEG, preprotein hydrophobicity and translocation kinetics control the stop-transfer function.依赖Sec的膜蛋白生物合成:SecYEG、前体蛋白疏水性和转运动力学控制停止转运功能。
EMBO J. 1998 Feb 2;17(3):696-705. doi: 10.1093/emboj/17.3.696.
2
The SecDFyajC domain of preprotein translocase controls preprotein movement by regulating SecA membrane cycling.前体蛋白转运酶的SecDFyajC结构域通过调节SecA膜循环来控制前体蛋白的移动。
EMBO J. 1997 Aug 15;16(16):4871-9. doi: 10.1093/emboj/16.16.4871.
3
The catalytic cycle of the escherichia coli SecA ATPase comprises two distinct preprotein translocation events.大肠杆菌SecA ATP酶的催化循环包括两个不同的前体蛋白转运事件。
EMBO J. 1997 Dec 15;16(24):7297-304. doi: 10.1093/emboj/16.24.7297.
4
Characterization of a mutant form of SecA that alleviates a SecY defect at low temperature and shows a synthetic defect with SecY alteration at high temperature.一种SecA突变形式的特性,该突变形式在低温下可缓解SecY缺陷,并在高温下与SecY改变表现出合成缺陷。
J Biochem. 2000 Jun;127(6):1071-9. doi: 10.1093/oxfordjournals.jbchem.a022700.
5
SecA supports a constant rate of preprotein translocation.SecA支持前体蛋白以恒定速率进行转运。
J Biol Chem. 2006 Jun 9;281(23):15709-13. doi: 10.1074/jbc.M600205200. Epub 2006 Apr 6.
6
Preprotein transfer to the Escherichia coli translocase requires the co-operative binding of SecB and the signal sequence to SecA.前体蛋白转移至大肠杆菌转位酶需要SecB和信号序列与SecA协同结合。
Mol Microbiol. 1998 Sep;29(5):1179-90. doi: 10.1046/j.1365-2958.1998.00997.x.
7
Delta mu H+ and ATP function at different steps of the catalytic cycle of preprotein translocase.ΔμH⁺和ATP在前体蛋白转位酶催化循环的不同步骤中发挥作用。
Cell. 1991 Mar 8;64(5):927-39. doi: 10.1016/0092-8674(91)90317-r.
8
PrlA4 prevents the rejection of signal sequence defective preproteins by stabilizing the SecA-SecY interaction during the initiation of translocation.PrlA4通过在转运起始过程中稳定SecA-SecY相互作用来防止信号序列缺陷型前体蛋白被排斥。
EMBO J. 1998 Jul 1;17(13):3631-9. doi: 10.1093/emboj/17.13.3631.
9
SecA membrane cycling at SecYEG is driven by distinct ATP binding and hydrolysis events and is regulated by SecD and SecF.SecA在SecYEG处的膜循环由不同的ATP结合和水解事件驱动,并受SecD和SecF调节。
Cell. 1995 Dec 29;83(7):1171-81. doi: 10.1016/0092-8674(95)90143-4.
10
Charged amino acids in a preprotein inhibit SecA-dependent protein translocation.前体蛋白中的带电荷氨基酸会抑制依赖SecA的蛋白质转运。
J Mol Biol. 2009 Mar 6;386(4):1000-10. doi: 10.1016/j.jmb.2009.01.031.

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Folding and Insertion of Transmembrane Helices at the ER.内质网中跨膜螺旋的折叠和插入。
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Characterization of the Features of Water Inside the SecY Translocon.鉴定 SecY 转运通道内水的特征。
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Investigating the stability of the SecA-SecYEG complex during protein translocation across the bacterial membrane.研究 SecA-SecYEG 复合物在细菌膜蛋白转运过程中的稳定性。
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Anomalous behavior of water inside the SecY translocon.SecY转运体内部水的异常行为。
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Critical determinants of mitochondria-associated neutral sphingomyelinase (MA-nSMase) for mitochondrial localization.线粒体相关中性鞘磷脂酶(MA-nSMase)线粒体定位的关键决定因素。
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6
Type II transmembrane domain hydrophobicity dictates the cotranslational dependence for inversion.II型跨膜结构域的疏水性决定了反转的共翻译依赖性。
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Long-timescale dynamics and regulation of Sec-facilitated protein translocation.Sec 促进蛋白易位的长时动力学和调控。
Cell Rep. 2012 Oct 25;2(4):927-37. doi: 10.1016/j.celrep.2012.08.039. Epub 2012 Oct 19.
9
Direct simulation of early-stage Sec-facilitated protein translocation.早期 Sec 促进蛋白易位的直接模拟。
J Am Chem Soc. 2012 Aug 22;134(33):13700-7. doi: 10.1021/ja3034526. Epub 2012 Aug 10.
10
Position-dependent effects of polylysine on Sec protein transport.多聚赖氨酸对 Sec 蛋白运输的位置依赖性影响。
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本文引用的文献

1
The SecDFyajC domain of preprotein translocase controls preprotein movement by regulating SecA membrane cycling.前体蛋白转运酶的SecDFyajC结构域通过调节SecA膜循环来控制前体蛋白的移动。
EMBO J. 1997 Aug 15;16(16):4871-9. doi: 10.1093/emboj/16.16.4871.
2
Anionic phospholipids are determinants of membrane protein topology.阴离子磷脂是膜蛋白拓扑结构的决定因素。
EMBO J. 1997 Jul 16;16(14):4261-6. doi: 10.1093/emboj/16.14.4261.
3
In vitro analysis of the stop-transfer process during translocation across the cytoplasmic membrane of Escherichia coli.大肠杆菌跨细胞质膜转运过程中停止转运过程的体外分析。
J Biol Chem. 1997 Aug 8;272(32):20082-7. doi: 10.1074/jbc.272.32.20082.
4
Distinct catalytic roles of the SecYE, SecG and SecDFyajC subunits of preprotein translocase holoenzyme.前体蛋白转运酶全酶的SecYE、SecG和SecDFyajC亚基的不同催化作用。
EMBO J. 1997 May 15;16(10):2756-68. doi: 10.1093/emboj/16.10.2756.
5
The protease-protected 30 kDa domain of SecA is largely inaccessible to the membrane lipid phase.SecA蛋白酶保护的30 kDa结构域在很大程度上无法接触到膜脂相。
EMBO J. 1997 May 1;16(9):2188-96. doi: 10.1093/emboj/16.9.2188.
6
Molecular mechanism of membrane protein integration into the endoplasmic reticulum.膜蛋白整合到内质网的分子机制。
Cell. 1997 May 16;89(4):523-33. doi: 10.1016/s0092-8674(00)80234-2.
7
Getting greasy: how transmembrane polypeptide segments integrate into the lipid bilayer.变得油腻:跨膜多肽片段如何融入脂质双层。
Mol Microbiol. 1997 Apr;24(2):249-53. doi: 10.1046/j.1365-2958.1997.3351702.x.
8
The major pathways of protein translocation across membranes.蛋白质跨膜转运的主要途径。
Genes Cells. 1996 Apr;1(4):337-46. doi: 10.1046/j.1365-2443.1996.34034.x.
9
Short hydrophobic segments in the mature domain of ProOmpA determine its stepwise movement during translocation across the cytoplasmic membrane of Escherichia coli.ProOmpA成熟结构域中的短疏水片段决定了其在跨大肠杆菌细胞质膜转运过程中的逐步移动。
J Biol Chem. 1997 Feb 28;272(9):5880-6. doi: 10.1074/jbc.272.9.5880.
10
Escherichia coli preprotein translocase.大肠杆菌前体蛋白转运酶
J Biol Chem. 1996 Nov 22;271(47):29514-6. doi: 10.1074/jbc.271.47.29514.

依赖Sec的膜蛋白生物合成:SecYEG、前体蛋白疏水性和转运动力学控制停止转运功能。

Sec-dependent membrane protein biogenesis: SecYEG, preprotein hydrophobicity and translocation kinetics control the stop-transfer function.

作者信息

Duong F, Wickner W

机构信息

Dartmouth Medical School, Department of Biochemistry, 7200 Vail Building, Hanover, NH 03755, USA.

出版信息

EMBO J. 1998 Feb 2;17(3):696-705. doi: 10.1093/emboj/17.3.696.

DOI:10.1093/emboj/17.3.696
PMID:9450995
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1170419/
Abstract

Preprotein translocase catalyzes membrane protein integration as well as complete translocation. Membrane proteins must interrupt their translocation and be laterally released from the translocase into the lipid bilayer. We have analyzed the translocation arrest and lateral release activities of Escherichia coli preprotein translocase with an in vitro reaction and the preprotein proOmpA carrying a synthetic stop-transfer sequence. Membrane protein integration is catalytic, occurs with kinetics similar to those of proOmpA itself and only requires the functions of SecYEG and SecA. Though a strongly hydrophobic segment will direct the protein to leave the translocase and enter the lipid bilayer, a protein with a segment of intermediate hydrophobicity partitions equally between the translocated and membrane-integrated states. Analysis of the effects of PMF, varied ATP concentrations or synthetic translocation arrest show that the stop-translocation efficiency of a mildly hydrophobic segment depends on the translocation kinetics. In contrast, the lateral partitioning from translocase to lipids depends solely on temperature and does not require SecA ATP hydrolysis or SecA membrane cycling. Thus translocation arrest is controlled by the SecYEG translocase activity while lateral release and membrane integration are directed by the hydrophobicity of the segment itself. Our results suggest that a greater hydrophobicity is required for efficient translocation arrest than for lateral release into the membrane.

摘要

前体蛋白转运酶催化膜蛋白整合以及完全转运。膜蛋白必须中断其转运并从转运酶侧向释放到脂质双层中。我们利用体外反应和携带合成停止转运序列的前体蛋白proOmpA分析了大肠杆菌前体蛋白转运酶的转运停滞和侧向释放活性。膜蛋白整合是催化性的,其发生动力学与proOmpA本身相似,并且仅需要SecYEG和SecA的功能。虽然强疏水片段会引导蛋白质离开转运酶并进入脂质双层,但具有中等疏水性片段的蛋白质会在转运态和膜整合态之间平均分配。对质子动力势(PMF)、不同ATP浓度或合成转运停滞效应的分析表明,轻度疏水片段的停止转运效率取决于转运动力学。相比之下,从转运酶到脂质的侧向分配仅取决于温度,不需要SecA ATP水解或SecA膜循环。因此,转运停滞由SecYEG转运酶活性控制,而侧向释放和膜整合则由片段本身的疏水性决定。我们的结果表明,与侧向释放到膜中相比,有效的转运停滞需要更大的疏水性。