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Polyketide synthases (PKSs) are large megaenzymes that occur in bacteria, fungi, and plants and produce polyketides, a class of secondary metabolites. Many polyketide natural products exhibit high biological activities e.g. as antibiotics or anti-fungal compounds. The modular architecture of assembly line PKSs makes them exciting targets for engineering approaches via the exchange of whole modules or single domains. Although many engineering attempts have been pursued over the last three decades, the resulting chimeric PKSs often exhibit decreased turnover rates or diminished product yields.
In this thesis, new approaches to engineer chimeric PKSs were explored, each targeting a different aspect of the chimeric system: First the relative contribution of protein-protein and protein-substrate recognition on the turnover of chimeric PKS was assessed, revealing the importance of protein-protein interactions between the acyl carrier protein (ACP) and the ketosynthase (KS) domain in the chain translocation step. Directed evolution experiments followed to optimize the protein-protein interaction across a chimeric interface. Additionally, different junction sites for the generation of chimeric PKSs were compared, showing the ability for recombination without interfering with the chain translocation reaction, and highlighting the use of SYNZIP domains to bridge PKS modules. To optimize chimeric PKSs even further, multipoint mutagenesis of KS domains was established, with positive effects on the activity of chimeric systems.
To support engineering attempts, several structure elucidation techniques were combined with in silico modeling to characterize the architecture of a PKS module and the domain-domain interactions within it. Preliminary results show a strong conformational flexibility of the PKS module and the great potential of these techniques to define the multitude of transient interactions in PKS modules.
Multidomain enzymes, such as fatty acid synthases (FASs) or polyketide synthases (PKSs), play a crucial role in the biosynthesis of important natural products. They have a high significance in the development of new pharmaceuticals and various research approaches focus on the engineering of these proteins. For example, human type I FAS is an interesting therapeutic target. Owing to its importance in lipogenesis, upregulation of human type I FAS expression has been observed in numerous cancers. Type I FAS is also regarded as important target in antiobesity treatment. Both multidomain enzyme classes - FASs and PKSs - show high structural and functional similarities. Particularly animal type I FAS is most relevant as evolutionary precursor of the PKS family. Therefore, the well characterized FASs are suitable model proteins for the poorly characterized PKSs, to gain deeper understanding in these megasynthases.
Furthermore, fatty acids are considered to be strategically important platform chemicals accessible through sustainable microbial approaches. The recently acquired structural information on FASs provides an excellent understanding of the molecular basis of fatty acid synthesis. The specific understanding of chain-length control, the characterization of a multitude of substrate-specific thioesterases, and the emerging tools and means for metabolic engineering have fostered targeted approaches for modulating chain length. There is large interest in short-chain fatty acids, since these compounds are biotechnologically valuable platform chemicals and biofuel precursors, and attempts on the synthesis of short-chain fatty acids have been reported during the last years.
Primary focus of this thesis lies on the animal type I FASs, which exhibit large conformational variety, as seen in electron microscopy and high-speed atomic force microscopy. Conformational dynamics facilitate productive protein-protein interactions between catalytic domains within the enzyme and aid acyl carrier protein (ACP)-mediated substrate shuttling during the catalytic cycle of fatty acid biosynthesis. To gain deeper insight into the fundamental processes of ACP-mediated substrate shuttling and the underlying conformational dynamics, spectroscopic methods like Förster resonance energy transfer and electron paramagnetic resonance spectroscopy shall be employed. These spectroscopic methods demand site-specific labeling of proteins with fluorophore or spin labels, which can be accomplished with the amber codon suppression technology. Through amber codon suppression, a non-canonical amino acid (ncAA) with an orthogonal functional group is incorporated site-specifically into the protein sequence, which can be used in chemoselective reactions for protein labeling.
This thesis is at the forefront of employing the technology of amber codon suppression for addressing complex biological questions on megasynthases. The successful production of ncAA-modified FASs is challenging. With the aim of incorporating ncAAs into the multidomain 540 kDa large murine FAS, we by far exceed boundaries of documented application of amber codon suppression. Most of the proteins that are reported by Liu & Schultz in applications of amber codon suppression are in the range of 30kDa - for example the TE domain of human FAS. In the same review, the largest protein amber codon suppression was applied to is a potassium channel with roughly 80 kDa. Thus, to the best of my knowledge no protein exceeding 100 kDa has been used in amber codon suppression so far.
In this thesis a low-complex, well-plate based reporter assay is presented, based on an ACP-GFP fusion protein for fast and efficient screening of ncAA incorporation. Reliability and applicability of the reporter assay is demonstrated by successful upscaling to larger protein constructs and increased expression scale.
As outlined in this thesis, we have carefully set up methods for the modification of murine FAS and made several achievements:
(i) We have created our own toolbox with a multitude of suppressor plasmids and various orthogonal pairs. pACU and pACE plasmids are compatible for fast exchange of cassettes, and cloning procedures are optimized for modification of synthetases by site-directed mutagenesis. (ii) We have organic synthesis of several ncAAs stably running in the lab and synthesis of other ncAAs can be established when required. Therefore, extensive screening at moderate costs is possible. (iii) We have established a reporter assay for screening our own library of vectors for amber codon suppression and for optimizing incorporation of ncAAs. (iv) We successfully incorporated ncAAs into subconstructs and full-length murine FAS, and collected initial promising results for the application of these proteins in spectroscopic methods. Thus, laying the foundation for future studies to address fundamental questions of the ACP-mediated substrate shuttling and other conformational dynamics of these enzymes.
This work deals with the characterization of three different type II polyketide synthase systems (PKS II) from the Gram-negative bacteria Xenorhabdus and Photorhabdus.
Particular attention was paid to a biochemically underexplored class of aryl polyene (APE) pigments. Bioinformatic analysis of enzymes involved in the biosynthesis and the in vitro reconstruction proved that the synthesis of APEs involves an unusual fatty acid-like elongation mechanism. Furthermore, the discovery of unexpected protein-protein interactions provided new insights into the multienzyme complex formation of this unusual PKS II system. Through collaboration with the groups from Prof. Michael Groll and junior Prof. Nina Morgner, two protein complexes were structurally solved and several native protein multimerization events were identified and allowed us to suggest a possible protein-interaction network. The results are summarized in publication ‘An Uncommon Type II PKS Catalyzes Biosynthesis of Aryl Polyene Pigments’ (first author; J. Am. Chem. Soc.).
In addition to in vitro-analysis, in vivo-studies were used to investigate the APE compound produced by X. doucetiae in more detail. The activation of the silent biosynthetic gene cluster (BGC) led to the detection of the APE compound in the homologous host. Further combination of homologous expression and targeted deletions of the APE BGC revealed an APE-lipid-like structure. MS-based analyses and purification of intermediates allowed us to deduce structural building blocks of the APE-lipid, which is composed of an APE structural core, a glucosamine residue and an unusual long-chain fatty acid with unusual conjugated double bonds and a phosphoethanolamine head group. In combination with the above stated in vitro-data, we assumed a plausible biosynthetic mechanism of the APE-lipid. The results are summarized in the section ‘Additional Results: Tracing the Full-length APE’.
The biosynthesis of isopropylstilbene (IPS) has already been well-studied by the Bode laboratory and the group of Prof. Ikuro Abe. Studies with Photorhabdus laumondii TT01 by the Bode group revealed the distributed locations and functions of the genes involved in biosynthesis, which originate from two pathways. Particularly, the Bode group first demonstrated that an unusual ketosynthase/cyclase (StlD) catalyzes the condensation of 5-phenyl-2,4-pentadienoyl-ACP and isovaleryl-beta-ketoacyl-ACP via a Michael addition. Such a pathway for stilbene formation is distinct from those widespread in plants. The Abe group solved the structure and biochemical mechanism of StlD and further investigated the aromatization reaction of the aromatase StlC. However, the generation of the required cinnamoyl-precursor 5-phenyl-2,4-pentadienoyl-ACP as a Michael acceptor for this cyclization reaction remained elusive. In this work, we were able to reconstitute the synthesis of the Michael acceptor in vitro, by the action of enzymes from the fatty acid biosynthesis. With the knowledge about the crucial cross-talk from primary and specialized metabolism, we further determined the minimal endowment for stilbene production in a heterologous host. Here, the discovered AasS enzyme StlB is responsible for the generation of cinnamoyl-ACP and among others, plFabH plays a key role as gatekeeper enzyme for further processing. With this information in hand, we were able to obtain IPS production in E. coli. These results are presented in the manuscript ‘Biosynthesis of the Multifunctional Isopropylstilbene in Photorhabdus laumondii Involves Cross-talk Between Specialized and Primary Metabolism’ (co-first author, manuscript).
The biosynthesis of the orange-to-red-pigmented anthraquinones (AQs) is the best-studied type II PKS system according to preliminary results. While several investigations by Brachmann et al. discovered the BGC and the overall product spectrum of the main AQ-256 and its methylated derivatives, data of Quiqin Zhou (Bode group) performed biochemical in vitro analysis paired with in vivo heterologous expression of the ant-genes antA-I. This led to the identification of shunt products that indicated an AQ-scaffold derived from an octaketide intermediate that gets shortened to a heptaketide by the hydrolase AntI, resulting in the main anthraquinone AQ-256. This PKS-shortening mechanism was further confirmed by the protein crystal structure of AntI by the Groll group (publication, minor contributions, co-author, Chem Sci. ‘Molecular Mechanism of Polyketide Shortening in Anthraquinone Biosynthesis of Photorhabdus luminescens’). Further substrate analysis of the P. luminescens AQ-producer and mutants revealed an inhibitory effect of cinnamic acid against the hydrolase AntI. Cinnamic acid might therefore be involved in regulation of AQ biosynthesis (‘Anthraquinone Production is Influenced by Cinnamic Acid’, first author, manuscript).
Biochemical analysis from Quiqin Zhou with the minimal PKS of the AQ-synthase further revealed the exclusive activation of the AQ-ACP by the PPTase AntB. The PPTase is insoluble alone but gets stabilized by the CoA-ligase, most likely inactive, working as a chaperone. Thus, the minimal PKS endowment to produce the octaketide scaffold compromises, besides the ACP, the KS:CLF heterodimer and the MCAT, the co-occurrence of the PPTase AntB and the CoA-ligase AntG. For the first time, X-ray crystallography depicted a minimal PKS in action, by obtaining the structural data of native complexes from an ACP:KS:CLF, the KS:CLF alone and an ACP:MCAT in their non-active and active forms. It was possible to confirm a KS-bound hexaketide, which was built upon heterologous expression of the KS:CLF. Mutagenesis with amino-acids proposed to be involved in protein-protein interactions in the ACP:KS:CLF complex revealed some interesting protein-interaction sites. Additionally, an induced-fit mechanism of the MCAT with the ACP during the malonylation reaction confirmed a monodirectional transfer reaction (‘Structural Snapshots of the Minimal PKS System Responsible for Octaketide Biosynthesis’ co-author, manuscript under review).