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Synthesis Gas (Syngas)-Derived Medium-Chain-Length Polyhydroxyalkanoate Synthesis in Engineered Rhodospirillum rubrum

机译:工程红螺螺旋藻中合成气(Syngas)衍生的中链长聚羟基链烷酸酯的合成

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The purple nonsulfur alphaproteobacterium Rhodospirillum rubrum S1 was genetically engineered to synthesize a heteropolymer of mainly 3-hydroxydecanoic acid and 3-hydroxyoctanoic acid [P(3HD- co -3HO)] from CO- and CO_(2)-containing artificial synthesis gas (syngas). For this, genes from Pseudomonas putida KT2440 coding for a 3-hydroxyacyl acyl carrier protein (ACP) thioesterase ( phaG ), a medium-chain-length (MCL) fatty acid coenzyme A (CoA) ligase ( PP_0763 ), and an MCL polyhydroxyalkanoate (PHA) synthase ( phaC1 ) were cloned and expressed under the control of the CO-inducible promoter P_( cooF ) from R. rubrum S1 in a PHA-negative mutant of R. rubrum . P(3HD- co -3HO) was accumulated to up to 7.1% (wt/wt) of the cell dry weight by a recombinant mutant strain utilizing exclusively the provided gaseous feedstock syngas. In addition to an increased synthesis of these medium-chain-length PHAs (PHA_(MCL)), enhanced gene expression through the P_( cooF ) promoter also led to an increased molar fraction of 3HO in the synthesized copolymer compared with the P_( lac ) promoter, which regulated expression on the original vector. The recombinant strains were able to partially degrade the polymer, and the deletion of phaZ2 , which codes for a PHA depolymerase most likely involved in intracellular PHA degradation, did not reduce mobilization of the accumulated polymer significantly. However, an amino acid exchange in the active site of PhaZ2 led to a slight increase in PHA_(MCL) accumulation. The accumulated polymer was isolated; it exhibited a molecular mass of 124.3 kDa and a melting point of 49.6°C. With the metabolically engineered strains presented in this proof-of-principle study, we demonstrated the synthesis of elastomeric second-generation biopolymers from renewable feedstocks not competing with human nutrition.IMPORTANCE Polyhydroxyalkanoates (PHAs) are natural biodegradable polymers (biopolymers) showing properties similar to those of commonly produced petroleum-based nondegradable polymers. The utilization of cheap substrates for the microbial production of PHAs is crucial to lower production costs. Feedstock not competing with human nutrition is highly favorable. Syngas, a mixture of carbon monoxide, carbon dioxide, and hydrogen, can be obtained by pyrolysis of organic waste and can be utilized for PHA synthesis by several kinds of bacteria. Up to now, the biosynthesis of PHAs from syngas has been limited to short-chain-length PHAs, which results in a stiff and brittle material. In this study, the syngas-utilizing bacterium Rhodospirillum rubrum was genetically modified to synthesize a polymer which consisted of medium-chain-length constituents, resulting in a rubber-like material. This study reports the establishment of a microbial synthesis of these so-called medium-chain-length PHAs from syngas and therefore potentially extends the applications of syngas-derived PHAs.
机译:紫色非硫α变形杆菌Rhodospirillum rubrum S1经过基因工程改造,从含CO和CO_(2)的人工合成气(合成气)中合成了主要由3-羟基癸酸和3-羟基辛酸[P(3HD- co -3HO)]组成的杂聚物。 )。为此,来自恶臭假单胞菌KT2440的基因编码3-羟酰基酰基载体蛋白(ACP)硫酯酶(phaG),中链长度(MCL)脂肪酸辅酶A(CoA)连接酶(PP_0763)和MCL聚羟基链烷酸酯(PHA)合酶(phaC1)被克隆并在R.rubrum的PHA阴性突变体中在来自R.rubrum S1的CO诱导型启动子P_(cooF)的控制下表达。通过仅利用所提供的气态原料合成气的重组突变体菌株,P(3HD-co -3HO)累积至细胞干重的7.1%(wt / wt)。除了增加这些中链长度的PHAs(PHA_(MCL))的合成外,通过P_(cooF)启动子增强的基因表达还导致合成共聚物中3HO的摩尔分数比P_(lac )启动子,可调节原始载体上的表达。重组菌株能够部分降解聚合物,而编码最可能参与细胞内PHA降解的PHA解聚酶的phaZ2的缺失并没有显着降低积累的聚合物的动员。但是,PhaZ2活性位点中的氨基酸交换导致PHA_(MCL)积累略有增加。分离出积累的聚合物。它的分子量为124.3 kDa,熔点为49.6°C。通过这项原理验证研究中介绍的代谢工程菌株,我们证明了由可再生原料合成的第二代弹性体生物聚合物不会与人类营养竞争。那些通常生产的石油基不可降解聚合物。将廉价的底物用于微生物生产PHA对于降低生产成本至关重要。不与人类营养竞争的原料是高度有利的。合成气是一氧化碳,二氧化碳和氢气的混合物,可通过有机废物的热解获得,并可通过多种细菌用于PHA合成。到目前为止,从合成气中合成PHA仅限于短链长度的PHA,这会导致材料变硬和变脆。在这项研究中,利用合成气的细菌红景天螺旋菌经过基因修饰,合成了一种由中链长度的成分组成的聚合物,从而产生了类似橡胶的物质。这项研究报道了从合成气中微生物合成这些所谓的中链长度的PHA的方法,因此潜在地扩展了合成气衍生的PHA的应用。

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