carboxyltransferase

  • 文章类型: Journal Article
    乙酰辅酶A羧化酶(ACCs)将乙酰辅酶A转化为丙二酰辅酶A,脂肪酸生物合成和自养碳固定途径的关键步骤。三个功能不同的组件,生物素羧化酶(BC),生物素羧基载体蛋白(BCCP),和羧化酶(CT),以不同的组合分离或部分融合,形成异聚ACC。然而,合并BC-BCCP和单独CT的ACC尚未被识别,其催化机理尚不清楚。这里,我们从金氯氟菌中鉴定出两种BC亚型(BC1和BC2),一种丝状的缺氧光生体,采用3-羟基丙酸酯(3-HP)双循环而不是卡尔文循环进行自养碳固定。我们发现BC1具有融合的BC和BCCP结构域,其中BCCP可以在Lys553残基上被大肠杆菌或C.aurantiacusBirA生物素化。BC1和BC2的晶体结构在3.2和3.0分辨率下,分别,进一步揭示了两个BC1-BC同源二聚体的四聚体,和一个BC2同源二聚体,都表现出相似的BC架构。两个BC1-BC同源二聚体通过部分解析的BCCP结构域的八链β-桶连接。β-桶的破坏导致四聚体在溶液中解离成二聚体并降低生物素羧化酶活性。BCCP结构域的生物素化进一步促进BC1和CTβ-CTα相互作用,形成具有酶活性的ACC,其在体外将乙酰辅酶A转化为丙二酰辅酶A,并通过在大肠杆菌细胞中与重组丙二酰辅酶A还原酶共表达产生3-HP。这项研究揭示了一种异聚ACC,该ACC进化出融合的BC-BCCP,但分离了CTα和CTβ以完成ACC活性。IMPORTANCEAC-CoA羧化酶(ACC)催化脂肪酸生物合成中的限速步骤和各种生物体的自养碳固定途径,使它们成为针对各种感染和疾病的药物发现的有吸引力的目标。虽然对同聚ACC的结构研究,由具有三个亚基的单一蛋白质组成,揭示了“摆动域模型”,其中生物素羧基载体蛋白(BCCP)域在生物素羧化酶(BC)和羧化酶(CT)活性位点之间易位以促进反应,我们对异聚ACCs的亚基组成和催化机理的理解仍然有限.这里,我们从一种古老的缺氧光合细菌中鉴定出一种新的ACC,它进化出融合的BC和BCCP结构域,而是分离CT成分以形成具有酶活性的ACC,其在体外将乙酰辅酶A转化为丙二酰辅酶A,并通过在大肠杆菌细胞中与重组丙二酰辅酶A还原酶共表达产生3-羟基丙酸酯(3-HP)。这些发现扩展了异聚ACCs的多样性和分子进化,并为3-HP生物合成的潜在应用提供了结构基础。
    Acetyl-CoA carboxylases (ACCs) convert acetyl-CoA to malonyl-CoA, a key step in fatty acid biosynthesis and autotrophic carbon fixation pathways. Three functionally distinct components, biotin carboxylase (BC), biotin carboxyl carrier protein (BCCP), and carboxyltransferase (CT), are either separated or partially fused in different combinations, forming heteromeric ACCs. However, an ACC with fused BC-BCCP and separate CT has not been identified, leaving its catalytic mechanism unclear. Here, we identify two BC isoforms (BC1 and BC2) from Chloroflexus aurantiacus, a filamentous anoxygenic phototroph that employs 3-hydroxypropionate (3-HP) bi-cycle rather than Calvin cycle for autotrophic carbon fixation. We reveal that BC1 possesses fused BC and BCCP domains, where BCCP could be biotinylated by E. coli or C. aurantiacus BirA on Lys553 residue. Crystal structures of BC1 and BC2 at 3.2 Å and 3.0 Å resolutions, respectively, further reveal a tetramer of two BC1-BC homodimers, and a BC2 homodimer, all exhibiting similar BC architectures. The two BC1-BC homodimers are connected by an eight-stranded β-barrel of the partially resolved BCCP domain. Disruption of β-barrel results in dissociation of the tetramer into dimers in solution and decreased biotin carboxylase activity. Biotinylation of the BCCP domain further promotes BC1 and CTβ-CTα interactions to form an enzymatically active ACC, which converts acetyl-CoA to malonyl-CoA in vitro and produces 3-HP via co-expression with a recombinant malonyl-CoA reductase in E. coli cells. This study revealed a heteromeric ACC that evolves fused BC-BCCP but separate CTα and CTβ to complete ACC activity.IMPORTANCEAcetyl-CoA carboxylase (ACC) catalyzes the rate-limiting step in fatty acid biosynthesis and autotrophic carbon fixation pathways across a wide range of organisms, making them attractive targets for drug discovery against various infections and diseases. Although structural studies on homomeric ACCs, which consist of a single protein with three subunits, have revealed the \"swing domain model\" where the biotin carboxyl carrier protein (BCCP) domain translocates between biotin carboxylase (BC) and carboxyltransferase (CT) active sites to facilitate the reaction, our understanding of the subunit composition and catalytic mechanism in heteromeric ACCs remains limited. Here, we identify a novel ACC from an ancient anoxygenic photosynthetic bacterium Chloroflexus aurantiacus, it evolves fused BC and BCCP domain, but separate CT components to form an enzymatically active ACC, which converts acetyl-CoA to malonyl-CoA in vitro and produces 3-hydroxypropionate (3-HP) via co-expression with recombinant malonyl-CoA reductase in E. coli cells. These findings expand the diversity and molecular evolution of heteromeric ACCs and provide a structural basis for potential applications in 3-HP biosynthesis.
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  • 文章类型: Journal Article
    Propionyl-CoA carboxylase (PCC) is a promising enzyme in the fields of biological CO2 utilization, synthesis of natrual products, and so on. The activity and substrate specificity of PCC are dependent on its key subunit carboxyltransferase (CT). To obtain PCC with high enzyme activity, seven pccB genes encoding CT subunit from diverse microorganisms were expressed in recombinant E. coli, and PccB from Bacillus subtilis showed the highest activity in vitro. To further optimize this protein using directed evolution, a genetic screening system based on oxaloacetate availability was designed to enrich the active variants of PccBBs. Four amino acid substitutions (D46G, L97Q, N220I and I391T) proved of great assistance in PccBBs activity improvement, and a double mutant of PccBBs (N220I/I391T) showed a 94-fold increase of overall catalytic efficiency indicated by kcat/Km. Moreover, this PccBBs double mutant was applied in construction of new succinate biosynthetic pathway. This new pathway produces succinate from acetyl-CoA with fixation of two CO2 molecules, which was confirmed by isotope labeling experiment with NaH13CO3. Compared with previous succinate production based on carboxylation of phosphoenolpyruvate or pyruvate, this new pathway showed some advantages including higher CO2 fixation potentiality and availability under aerobic conditions. In summary, this study developed a PCC with high enzyme activity which can be widely used in biotechnology field, and also demonstrated the feasibility of new succinate biosynthetic pathway with two CO2 fixation reactions.
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  • 文章类型: Journal Article
    Through a structure-based drug design project (SBDD), potent small molecule inhibitors of pyruvate carboxylase (PC) have been discovered. A series of α-keto acids (7) and α-hydroxycinnamic acids (8) were prepared and evaluated for inhibition of PC in two assays. The two most potent inhibitors were 3,3\'-(1,4-phenylene)bis[2-hydroxy-2-propenoic acid] (8u) and 2-hydroxy-3-(quinoline-2-yl)propenoic acid (8v) with IC50 values of 3.0 ± 1.0 μM and 4.3 ± 1.5 μM respectively. Compound 8v is a competitive inhibitor with respect to pyruvate (Ki = 0.74 μM) and a mixed-type inhibitor with respect to ATP, indicating that it targets the unique carboxyltransferase (CT) domain of PC. Furthermore, compound 8v does not significantly inhibit human carbonic anhydrase II, matrix metalloproteinase-2, malate dehydrogenase or lactate dehydrogenase.
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  • 文章类型: Journal Article
    生物素依赖性羧化酶在自然界中广泛分布,在脂肪酸代谢中起着核心作用,氨基酸,碳水化合物,和其他化合物。在过去的十年中,大多数这些大型全酶的结构信息都在积累,包括500kDa二聚酵母乙酰辅酶A羧化酶,750-kDaα6β6十二聚体细菌丙酰辅酶A羧化酶,3-甲基巴豆酰辅酶A羧化酶,和香叶酰辅酶A羧化酶,720-kDa六聚体细菌长链酰基辅酶A羧化酶,500kDa四聚体细菌单链丙酮酸羧化酶,370-kDaα2β4细菌双亚基丙酮酸羧化酶,和130-kDa单体真核脲羧化酶。从这些研究中出现的一个共同主题是这些全酶的戏剧性结构灵活性,尽管它们具有很强的整体序列保守性,全酶结构的广泛多样性以及其域和亚基的广泛构象变异性都证明了这一点。这种结构灵活性对于这些酶的功能和调节是至关重要的,并且鉴定可以干扰它的化合物代表了开发新的调节剂和药物的有吸引力的方法。到目前为止,在结构中观察到的广泛多样性及其生化和功能影响将是这篇综述的重点。
    Biotin-dependent carboxylases are widely distributed in nature and have central roles in the metabolism of fatty acids, amino acids, carbohydrates, and other compounds. The last decade has seen the accumulation of structural information on most of these large holoenzymes, including the 500-kDa dimeric yeast acetyl-CoA carboxylase, the 750-kDa α6β6 dodecameric bacterial propionyl-CoA carboxylase, 3-methylcrotonyl-CoA carboxylase, and geranyl-CoA carboxylase, the 720-kDa hexameric bacterial long-chain acyl-CoA carboxylase, the 500-kDa tetrameric bacterial single-chain pyruvate carboxylase, the 370-kDa α2β4 bacterial two-subunit pyruvate carboxylase, and the 130-kDa monomeric eukaryotic urea carboxylase. A common theme that has emerged from these studies is the dramatic structural flexibility of these holoenzymes despite their strong overall sequence conservation, evidenced both by the extensive diversity in the architectures of the holoenzymes and by the extensive conformational variability of their domains and subunits. This structural flexibility is crucial for the function and regulation of these enzymes and identifying compounds that can interfere with it represents an attractive approach for developing novel modulators and drugs. The extensive diversity observed in the structures so far and its biochemical and functional implications will be the focus of this review.
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  • 文章类型: Journal Article
    Acetyl-CoA carboxylase (ACC) catalyzes the committed and rate-limiting step in fatty acid biosynthesis. The two partial reactions, carboxylation of biotin followed by carboxyl transfer to the acceptor acetyl-CoA, are performed by two separate domains in animal ACCs. The cyclic keto-enol insecticides and acaricides have been proposed to inhibit insect ACCs. In this communication, we show that the enol derivative of the cylic keto-enol insecticide spirotetramat inhibited ACCs partially purified from the insect species Myzus persicae and Spodoptera frugiperda, as well as the spider mite (Tetranychus urticae) ACC which was expressed in insect cells using a recombinant baculovirus. Steady-state kinetic analysis revealed competitive inhibition with respect to the carboxyl acceptor, acetyl-CoA, indicating that spirotetramat-enol bound to the carboxyltransferase domain of ACC. Interestingly, inhibition with respect to the biotin carboxylase substrate ATP was uncompetitive. Amino acid residues in the carboxyltransferase domains of plant ACCs are important for binding of established herbicidal inhibitors. Mutating the spider mite ACC at the homologous positions, for example L1736 to either isoleucine or alanine, and A1739 to either valine or serine, did not affect the inhibition of the spider mite ACC by spirotetramat-enol. These results indicated different binding modes of the keto-enols and the herbicidal chemical families.
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  • 文章类型: Journal Article
    Pyruvate carboxylase (PC) is a biotin-dependent enzyme that catalyzes the MgATP- and bicarbonate-dependent carboxylation of pyruvate to oxaloacetate, an important anaplerotic reaction in central metabolism. The carboxyltransferase (CT) domain of PC catalyzes the transfer of a carboxyl group from carboxybiotin to the accepting substrate, pyruvate. It has been hypothesized that the reactive enolpyruvate intermediate is stabilized through a bidentate interaction with the metal ion in the CT domain active site. Whereas bidentate ligands are commonly observed in enzymes catalyzing reactions proceeding through an enolpyruvate intermediate, no bidentate interaction has yet been observed in the CT domain of PC. Here, we report three X-ray crystal structures of the Rhizobium etli PC CT domain with the bound inhibitors oxalate, 3-hydroxypyruvate, and 3-bromopyruvate. Oxalate, a stereoelectronic mimic of the enolpyruvate intermediate, does not interact directly with the metal ion. Instead, oxalate is buried in a pocket formed by several positively charged amino acid residues and the metal ion. Furthermore, both 3-hydroxypyruvate and 3-bromopyruvate, analogs of the reaction product oxaloacetate, bind in an identical manner to oxalate suggesting that the substrate maintains its orientation in the active site throughout catalysis. Together, these structures indicate that the substrates, products and intermediates in the PC-catalyzed reaction are not oriented in the active site as previously assumed. The absence of a bidentate interaction with the active site metal appears to be a unique mechanistic feature among the small group of biotin-dependent enzymes that act on α-keto acid substrates.
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