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Structure and mechanism of human diacylglycerol O-acyltransferase 1 期刊论文
NATURE, 2020, 581 (7808) : 329-+
作者:  Wu, Fan;  Zhao, Su;  Yu, Bin;  Chen, Yan-Mei;  Wang, Wen;  Song, Zhi-Gang;  Hu, Yi;  Tao, Zhao-Wu;  Tian, Jun-Hua;  Pei, Yuan-Yuan;  Yuan, Ming-Li;  Zhang, Yu-Ling;  Dai, Fa-Hui;  Liu, Yi;  Wang, Qi-Min;  Zheng, Jiao-Jiao;  Xu, Lin;  Holmes, Edward C.;  Zhang, Yong-Zhen
收藏  |  浏览/下载:24/0  |  提交时间:2020/07/03

The structure of human diacylglycerol O-acyltransferase 1, a membrane protein that synthesizes triacylglycerides, is solved with cryo-electron microscopy, providing insight into its function and mechanism of enzymatic activity.


Diacylglycerol O-acyltransferase 1 (DGAT1) synthesizes triacylglycerides and is required for dietary fat absorption and fat storage in humans(1). DGAT1 belongs to the membrane-bound O-acyltransferase (MBOAT) superfamily, members of which are found in all kingdoms of life and are involved in the acylation of lipids and proteins(2,3). How human DGAT1 and other mammalian members of the MBOAT family recognize their substrates and catalyse their reactions is unknown. The absence of three-dimensional structures also hampers rational targeting of DGAT1 for therapeutic purposes. Here we present the cryo-electron microscopy structure of human DGAT1 in complex with an oleoyl-CoA substrate. Each DGAT1 protomer has nine transmembrane helices, eight of which form a conserved structural fold that we name the MBOAT fold. The MBOAT fold in DGAT1 forms a hollow chamber in the membrane that encloses highly conserved catalytic residues. The chamber has separate entrances for each of the two substrates, fatty acyl-CoA and diacylglycerol. DGAT1 can exist as either a homodimer or a homotetramer and the two forms have similar enzymatic activity. The N terminus of DGAT1 interacts with the neighbouring protomer and these interactions are required for enzymatic activity.


  
The ABC exporter IrtAB imports and reduces mycobacterial siderophores 期刊论文
NATURE, 2020, 580 (7803) : 413-+
作者:  Fessler, Evelyn;  Eckl, Eva-Maria;  Schmitt, Sabine;  Mancilla, Igor Alves;  Meyer-Bender, Matthias F.;  Hanf, Monika;  Philippou-Massier, Julia;  Krebs, Stefan;  Zischka, Hans;  Jae, Lucas T.
收藏  |  浏览/下载:13/0  |  提交时间:2020/07/03

Intracellular replication of the deadly pathogen Mycobacterium tuberculosis relies on the production of small organic molecules called siderophores that scavenge iron from host proteins(1). M. tuberculosis produces two classes of siderophore, lipid-bound mycobactin and water-soluble carboxymycobactin(2,3). Functional studies have revealed that iron-loaded carboxymycobactin is imported into the cytoplasm by the ATP binding cassette (ABC) transporter IrtAB(4), which features an additional cytoplasmic siderophore interaction domain(5). However, the predicted ABC exporter fold of IrtAB is seemingly contradictory to its import function. Here we show that membrane-reconstituted IrtAB is sufficient to import mycobactins, which are then reduced by the siderophore interaction domain to facilitate iron release. Structure determination by X-ray crystallography and cryo-electron microscopy not only confirms that IrtAB has an ABC exporter fold, but also reveals structural peculiarities at the transmembrane region of IrtAB that result in a partially collapsed inward-facing substrate-binding cavity. The siderophore interaction domain is positioned in close proximity to the inner membrane leaflet, enabling the reduction of membrane-inserted mycobactin. Enzymatic ATPase activity and in vivo growth assays show that IrtAB has a preference for mycobactin over carboxymycobactin as its substrate. Our study provides insights into an unusual ABC exporter that evolved as highly specialized siderophore-import machinery in mycobacteria.


  
Structure and mechanism of the ER-based glucosyltransferase ALG6 期刊论文
NATURE, 2020, 579 (7799) : 443-+
作者:  van Veen, Sarah;  Martin, Shaun;  Van den Haute, Chris;  Benoy, Veronick;  Lyons, Joseph;  Vanhoutte, Roeland;  Kahler, Jan Pascal;  Decuypere, Jean-Paul;  Gelders, Geraldine;  Lambie, Eric;  Zielich, Jeffrey;  Swinnen, Johannes V.;  Annaert, Wim;  Agostinis, Patrizia;  Ghesquiere, Bart;  Verhelst, Steven;  Baekelandt, Veerle;  Eggermont, Jan;  Vangheluwe, Peter
收藏  |  浏览/下载:13/0  |  提交时间:2020/07/03

Analyses reveal a previously undescribed transmembrane protein fold in the endoplasmic reticulum-based glucosyltransferase ALG6 and provide a structural basis for understanding the glucose transfer mechanism.


In eukaryotic protein N-glycosylation, a series of glycosyltransferases catalyse the biosynthesis of a dolichylpyrophosphate-linked oligosaccharide before its transfer onto acceptor proteins(1). The final seven steps occur in the lumen of the endoplasmic reticulum (ER) and require dolichylphosphate-activated mannose and glucose as donor substrates(2). The responsible enzymes-ALG3, ALG9, ALG12, ALG6, ALG8 and ALG10-are glycosyltransferases of the C-superfamily (GT-Cs), which are loosely defined as containing membrane-spanning helices and processing an isoprenoid-linked carbohydrate donor substrate(3,4). Here we present the cryo-electron microscopy structure of yeast ALG6 at 3.0 angstrom resolution, which reveals a previously undescribed transmembrane protein fold. Comparison with reported GT-C structures suggests that GT-C enzymes contain a modular architecture with a conserved module and a variable module, each with distinct functional roles. We used synthetic analogues of dolichylphosphate-linked and dolichylpyrophosphate-linked sugars and enzymatic glycan extension to generate donor and acceptor substrates using purified enzymes of the ALG pathway to recapitulate the activity of ALG6 in vitro. A second cryo-electron microscopy structure of ALG6 bound to an analogue of dolichylphosphate-glucose at 3.9 angstrom resolution revealed the active site of the enzyme. Functional analysis of ALG6 variants identified a catalytic aspartate residue that probably acts as a general base. This residue is conserved in the GT-C superfamily. Our results define the architecture of ER-luminal GT-C enzymes and provide a structural basis for understanding their catalytic mechanisms.


  
Catalytic power of enzymes decreases with temperature: New insights for understanding soil C cycling and microbial ecology under warming 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (9) : 4238-4250
作者:  Alvarez, Gael;  Shahzad, Tanvir;  Andanson, Laurence;  Bahn, Michael;  Wallenstein, Matthew D.;  Fontaine, Sebastien
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
enzymatic activity  enzyme denaturation  enzyme trait  SOC decomposition under warming  temperature sensitivity  
Microbial mechanisms of carbon priming effects revealed during the interaction of crop residue and nutrient inputs in contrasting soils 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (7) : 2775-2790
作者:  Fang, Yunying;  Nazaries, Loic;  Singh, Brajesh K.;  Singh, Bhupinder Pal
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
C-13 isotope  copiotrophs  enzymatic stoichiometry  extracellular enzyme activity  gene abundance  oligotrophs  
Imbalanced nutrient recycling in a warmer ocean driven by differential response of extracellular enzymatic activities 期刊论文
GLOBAL CHANGE BIOLOGY, 2017, 23 (10)
作者:  Ayo, Begona;  Abad, Naiara;  Artolozaga, Itxaso;  Azua, Inigo;  Bana, Zurine;  Unanue, Marian;  Gasol, Josep M.;  Duarte, Carlos M.;  Iriberri, Juan
收藏  |  浏览/下载:10/0  |  提交时间:2019/04/09
beta-glucosidase  alkaline phosphatase  C:N:P molar ratio  extracellular enzymatic activity  global warming  leucine aminopeptidase  subtropical and tropical ocean  temperature-sensitivity