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- Institut für Mikrobiologie - Abteilung für Genetik & Biochemie (65) (remove)
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Bacteria are exposed to oxidative stress as an unavoidable consequence of their aerobic lifestyle. Reactive oxygen species (ROS) are generated in the stepwise one-electron reduction of molecular oxygen during the respiration. Pathogens encounter ROS during the oxidative burst of macrophages as part of the host immune defense. Besides ROS, bacteria also have to cope with reactive chlorine, electrophilic and nitrogen species (RCS, RES, RNS). To cope with these reactive species, bacteria have evolved different defense and repair mechanisms. To maintain the reduced state of the cytoplasm, they utilize low molecular weight (LMW) thiols. LMW thiols are small thiol-containing compounds that can undergo post-translational thiolmodifications with protein thiols, termed as S-thiolations. S-thiolations function as major redox regulatory and thiol-protection mechanism under oxidative stress conditions. In eukaryotes and Gram-negative bacteria, the tripeptide glutathione (GSH) functions as major LMW thiol, which is present in millimolar concentrations. The Actinomycetes, such as Mycobacterium and Corynebacterium species do not produce GSH and utilize instead mycothiol (MSH) as their alternative LMW thiol. In Firmicutes, including Bacillus and Staphylococcus species, bacillithiol (BSH) functions as the major LMW thiol. LMW thiols protect protein thiols against the irreversible overoxidation of cystein residues to sulfinic and sulfonic acids. In addition, LMW thiols contribute to the virulence and survival of pathogens, function in metal homeostasis and serve as enzyme cofactors for detoxification of xenobiotics and antibiotics. In this doctoral thesis, we aimed to investigate the roles of MSH and BSH in redox regulation of main metabolic enzymes under oxidative stress in the pathogens Corynebacterium diphtheriae and Staphylococcus aureus. Previous redox proteomics studies identified the glyceraldehyde-3-phosphate dehydrogenase GapDH and the aldehyde dehydrogenase AldA as S-thiolated in S. aureus and C. diphtheriae. Thus, we aimed to study the redox regulation of the metabolic enzyme GapDH in C. diphtheriae in response to NaOCl and H2O2 stress by S-mycothiolation, which is described in chapter 1. Moreover, we studied the involvement of the mycoredoxin-1 (Mrx1) and thioredoxin (Trx) pathways in reactivation of S-mycothiolated GapDH in vitro. Using shotgun proteomics, 26 S-mycothiolated proteins were identified under NaOCl stress in C. diphtheriae. These are involved in energy metabolism (Ndh, GlpD) and in the biosynthesis of amino acids (ThrA, LeuB), purines (PurA) and cell wall metabolites (GlmS). The glycolytic GapDH was identified as conserved target for S-thiolation across Gram-positive bacteria. GapDH was the most abundant protein, contributing with 0.75 % to the total cystein proteome. Moreover, GapDH is a conserved target for redox regulation and S-glutathionylation in response to oxidative stress in several prokaryotic and eukaryotic organisms. Treatment of GapDH with NaOCl and H2O2 in the absence of MSH resulted in irreversible enzyme inactivation due to overoxidation. Pretreatment of GapDH with MSH prior to H2O2 or NaOCl exposure resulted in reversible inactivation due to S-mycothiolation of the active site Cys153. Since S-mycothiolation is faster compared to overoxidation, S-mycothiolation efficiently protects the GapDH active site against overoxidation. The activity of S-mycothiolated GapDH could be restored by both, the Mrx1 and Trx pathway in vitro. Interestingly, the recovery of Smycothiolated GapDH by Mrx1 was faster compared to its reduction by the Trx pathway. In previous studies, the reactivation of S-mycothiolated Mpx and MrsA by the mycoredoxin pathway occurred also faster compared to the Trx pathway, which is consistent with our results. We were further interested to analyze the redox regulation of the glyceraldehyde-3phosphate dehydrogenase Gap of S. aureus under NaOCl and H2O2 stress, which is described in chapter 2. Using the quantitative redox proteomic approach OxICAT, 58 NaOCl-sensitive cystein residues with >10% thiol oxidation under NaOCl stress were identified. Gap and AldA showed the highest oxidation increase of 29% under NaOCl stress at their active site cystein residues. Using shotgun proteomics, five S-bacillithiolated proteins were identified, including Gap, AldA, GuaB, RpmJ and PpaC. Gap contributed with 4 % as most abundant cystein protein to the total cystein proteome. Our activity assays demonstrated that Gap of S. aureus is highly sensitive to overoxidation by H2O2 and NaOCl in vitro in the absence of BSH. The active site Cys151 of Gap was oxidized to the BSH mixed disulfide under H2O2 and NaOCl stress in the presence of BSH in vitro, which resulted in the reversible Gap inactivation. Moreover, inactivation of Gap by NaOCl and H2O2 due to S-bacillithiolation was faster compared to overoxidation, indicating that S-bacillithiolation protects the Gap active site against overoxidation in vitro. We further showed that the bacilliredoxin Brx catalyzes the reduction of S-bacillithiolated Gap in vitro. Molecular docking of BSH into the Gap active site revealed that S-bacillithiolation does not require major structural changes. Apart from Gap, the aldehyde dehydrogenase AldA was identified as S-bacillithiolated at its active site Cys279 under NaOCl stress in S. aureus previously. Thus, the expression, function, redox regulation and structural changes of AldA were analysed under NaOCl and aldehyde stress in S. aureus as summarized in chapter 3. AldA was S-bacillithiolated in the presence of H2O2 and BSH as demonstrated in BSH-specific Western blots in vitro. The expression of aldA was previously shown to be regulated by the alternative sigma factor SigmaB in S. aureus. Transcription of aldA was strongly increased in a SigmaB-independent manner under formaldehyde, NaOCl and diamide stress in S. aureus. Using an aldA deletion mutant, we demonstrated that aldA is required for growth and survival under NaOCl stress in S. aureus. The purified AldA enzyme was shown to catalyze the oxidation of various aldehyde substrates, including formaldehyde, methylglyoxal, glycolaldehyde and acetaldehyde in vitro. In addition, the function of the conserved Cys279 for AldA activity was investigated in vivo and in vitro. The purified AldAC279S mutant was shown to be inactive for aldehyde oxidation in vitro. Moreover, the aldAC279S mutant was very sensitive under NaOCl stress in vivo, and this phenotype could be reversed using the aldA complemented strain. These experiments demonstrate the function of Cys279 for AldA activity both in vitro and in vivo. AldA activity assays showed that AldA is sensitive to overoxidation and irreversible inactivation by H2O2 alone in vitro. In the presence of BSH, AldA is protected against overoxidation by reversible Sbacillithiolation in vitro. Molecular docking and molecular dynamics simulations revealed that BSH occupies two different positions in the Cys279 active site, which depend on the NAD+ cofactor. In the apoenzyme, BSH forms the disulfide with Cys279 in the “resting” state position, while Cys279 is S-bacillithiolated in the “attacking” state position in the holoenzyme in the presence of the NAD+ cofactor.
Gout was described by Hippocrates in the 5th century BC as a disease of rich people and linked with excess food and alcohol. It is caused by long-lasting hyperuricemia, which is a result of an imbalance between excretion and production of uric acid. The surplus of uric acid leads to deposition of monosodium urate crystals in the joints, which can initiate a painful inflammation called a gout attack. Despite various pharmacological treatments for this disease, a low purine diet remains the basis of all gout therapies. Since food is rich in purines, the aim of this project was to develop a novel enzyme system to decrease the purine content of food, what should result in reduced serum urate concentration in patients with hyperuricemia. The system consists of five degrading enzymes (adenine deaminase, guanine deaminase, xanthine oxidoreductase, urate oxidase and purine nucleoside phosphorylase) that combined in one product are able to hydrolyse all purines to a highly soluble allantoin, which can be easily removed from the body. This approach provides the patients a possibility to reduce the symptoms and frequency of gout attacks or even doses of prescribed drugs. In order to obtain necessary system components, yeast Arxula adeninivorans LS3 was screened for enzyme activities. A. adeninivorans is known to utilise various purines and this ability is a result of activity of desired enzymes, two of which, adenine deaminase and xanthine oxidoreductase, are in focus of this thesis. The analysis of growth of A. adeninivorans on various carbon and nitrogen sources gave the first insight into the cells’ nutrient preferences indicating the presence of purine degrading enzymes, such as adenine deaminase and xanthine oxidoreductase. Purines, such as adenine and hypoxanthine, could be utilised by this yeast as sole carbon and nitrogen sources and were shown to trigger the gene expression of the purine degradation pathway. Enzyme activity tests and quantitative real-time PCR method allowed for identification of the best inducers for adenine deaminase and xanthine oxidoreductase, as well as their concentration and time of induction. The adenine deaminase (AADA) and the xanthine oxidoreductase (AXOR) genes were isolated and subjected to homologous expression in A. adeninivorans cells using Xplor®2 transformation/expression platform. The selected transgenic strains accumulated the recombinant adenine deaminase in very high concentrations. The expression of AXOR gene posed difficulties and remained a challenge. Additional expression of both proteins in alternative E. coli system was undertaken but failed for AXOR gene. The recombinant adenine deaminase and wild-type xanthine oxidoreductase were purified and characterized biochemically. The characterization included determination of optimal pH and temperature, stability in different buffers and temperatures, molecular weight, substrate spectrum, enzyme activators and inhibitors, kinetics and intracellular localisation. The determination of these parameters was necessary to ensure optimal conditions for application of these enzymes in the industry. At the final stage, the enzymes were combined in one mix with provided guanine deaminase and urate oxidase and used to degrade purines in selected food constituents. The application was successful and demonstrated the potential of this approach for the production of food with lower purine concentration.
Feasible Cluster Model Method for Simulating the Redox Potentials of Laccase CueO and Its Variant
(2022)
Laccases are regarded as versatile green biocatalysts, and recent scientific research has focused on improving their redox potential for broader industrial and environmental applications. The density functional theory (DFT) quantum mechanics approach, sufficiently rigorous and efficient for the calculation of electronic structures, is conducted to better comprehend the connection between the redox potential and the atomic structural feature of laccases. According to the crystal structure of wild type laccase CueO and its variant, a truncated miniature cluster model method was established in this research. On the basic of thermodynamic cycle, the overall Gibbs free energy variations before and after the one-electron reduction were calculated. It turned out that the trends of redox potentials to increase after variant predicted by the theoretical calculations correlated well with those obtained by experiments, thereby validating the feasibility of this cluster model method for simulating the redox potentials of laccases.
Streptococcus pneumoniae (pneumococci), a human pathobiont, express and expose several proteinaceous colonization and virulence factors on its surface to facilitate on the one hand colonization of the upper respiratory tract and on the other hand pathogenesis in the host. In this study the interaction of two of such factors referred to as pneumococcal virulence factor A (PavA) and pneumococcal virulence factor B (PavB) and acting as microbial surface components recognizing adhesive matrix molecules (MSCRAMMs), was delineated with the two host matricellular proteins fibronectin (Fn) and vitronectin (Vn). Despite similarity in nomenclature, PavA and PavB represent two diverse pneumococcal proteins with respect to their structure and association with the pneumococcal surface. PavA is a non-classical surface protein (NCSP) with an ambiguous mode of secretion and anchorage while PavB is a characteristic MSCRAMM, anchored via sortase A to pneumococcal peptidoglycan. PavB has a signature of repetitive modules termed as streptococcal surface repeats (SSURE). Pneumococci preferentially interact with immobilized human Fn. In vitro cell culture adherence assays demonstrated that cell bound Fn facilitates the adherence of pneumococci to the host cells and this particular interaction is indifferent to host cell type and is species non-specific. Flow cytometry and immunoblot analyses further indicated the ability of pneumococci to interact with the soluble form of Fn in a dose-dependent but species non-specific manner. The molecular interaction of PavA and PavB (via its SSURE domains) with Fn was delineated further in detail via several direct protein-protein interaction approaches. Ligand overlay assays, surface plasmon resonance studies and SPOT peptide arrays demonstrated that PavA and PavB target at least 13 out of the 15 type III fibronectin domains located in the C-terminal part of Fn. Strikingly, both pneumococcal fibronectin-binding proteins (FnBPs) recognize similar peptides in targeted type III repeats. Structural comparisons revealed that the targeted type III epitopes cluster on the inner strands of both β-sheets forming the fibronectin domains. Importantly, synthetic peptides of FnIII1, FnIII5 or FnIII15 bind directly to FnBPs PavA and PavB, respectively. Thus, analysis of interaction of pneumococcal FnBPs PavA and PavB revealed a probable conserved and/or common pattern of molecular interaction with human Fn. In addition to Fn, pneumococcal PavB interacts with other host matricellular proteins such as human plasminogen (Plg) and human thrombospondin-1 (hTSP-1). Pneumococcal proteins such as PspC and PspC-like Hic have earlier been demonstrated to interact with hTSP-1 as well as human Vn, thereby depicting a redundant function as MSCRAMMs. In this study the role of PavB as a pneumococcal vitronectin binding protein (VnBP) was assessed. Flow cytometric analysis suggested PavB as VnBP, because strains deficient for PavB exhibited a significantly decreased ability to acquire vitronectin compared to wild-type pneumococci. When using a double knockout, deficient in expression of PavB and the VnBP PspC, the pneumococcal interaction with vitronectin was completely abolished. The direct protein-protein interaction assays such as far western ligand overlay, ELISA, and surface plasmon resonance indicated the interaction of SSURE domains with both soluble and immobilized Vn. However, the binding activity depends on the number of SSURE domains with five SSURE showing the highest binding activity to Vn. The interaction of PavB with Vn was charge dependent and heparin sensitive as analyzed by ELISA. The importance of the heparin binding domains of Vn in this interaction was further analyzed via direct protein-protein interaction approaches. Binding studies (far western ligand overlay, ELISA, and surface plasmon resonance) with truncated recombinant Vn fragments indicated that PavB targets the C-terminal heparin-binding domain (HBD3) of vitronectin, a characteristic shared with PspC, hence, suggesting a conserved molecular interaction of pneumococci with Vn. In addition to its function as an MSCRAMM, PavB has the capability to interact directly with host epithelial cells via an unknown cellular receptor. Thus, this study aimed to identify cellular receptor(s) for PavB. In vitro cell culture adherence and invasion assays confirmed that pneumococcal PavB is involved in promoting pneumococcal adherence to respiratory epithelial cells without employing any molecular bridge. The direct interaction between PavB and host epithelial cells was further confirmed via direct binding assays when using Cy5-labeled PavB and flow cytometric analysis. Strikingly, exogenously added human vitronectin competitively inhibited binding of PavB to respiratory epithelial cells. This observation led us to hypothesize that the major vitronectin receptor αvβ3 integrin acts as a potential receptor for PavB. This hypothesis was supported by functional blocking assays with monoclonal antibodies recognizing specific integrin subunits. The results revealed reduced binding of PavB in the presence of bound antibodies recognizing αv integrin indicating that PavB employs αvβ3 integrin as its direct receptor on eukaryotic cells. This was further confirmed via a direct binding assay of PavB to mouse embryonic fibroblasts (MEFs) where cells lacking αvβ3 demonstrated a marked decrease in binding to PavB. Although functional blocking assay and direct binding assay with MEFs supported the role of αvβ3 integrin as a direct adhesin for PavB, RNA interference of αv integrin in epithelial cells did not impair the binding of PavB in αv-knocked down cells in comparison to non-transfected cells. Finally, surface plasmon resonance (SPR) analysis indicated the direct interaction between pneumococcal PavB and recombinant αvβ3 integrin. In this study we report for the first time the interaction of a Gram-positive extracellular pathogen, namely Streptococcus pneumoniae, with one of the host ICAMs, namely the αvβ3 integrin. In conclusion, the present study analysed some of the aspects of molecular interaction of pneumococcal MSCRAMMs PavA and PavB with hFn and hVn. The hot spots of interaction on C-terminal FnIII repeats were delineated for PavA and PavB. HBD3 was revealed to be pivotal for PavB-Vn interaction. In addition the redundant role of pneumococcal PavB as an MSCRAMM was demonstrated. Furthermore this study successfully identifies a direct receptor for pneumococcal PavB, namely αvβ3 integrin. The mechanism and biological rationale of this newly identified interaction is a matter of debate and awaits further scientific analyses.
Recently, we engineered a tunable rhamnose promoter-based setup for the production of recombinant proteins in E. coli. This setup enabled us to show that being able to precisely set the production rate of a secretory recombinant protein is critical to enhance protein production yields in the periplasm. It is assumed that precisely setting the production rate of a secretory recombinant protein is required to harmonize its production rate with the protein translocation capacity of the cell. Here, using proteome analysis we show that enhancing periplasmic production of human Growth Hormone (hGH) using the tunable rhamnose promoter-based setup is accompanied by increased accumulation levels of at least three key players in protein translocation; the peripheral motor of the Sec-translocon (SecA), leader peptidase (LepB), and the cytoplasmic membrane protein integrase/chaperone (YidC). Thus, enhancing periplasmic hGH production leads to increased Sec-translocon capacity, increased capacity to cleave signal peptides from secretory proteins and an increased capacity of an alternative membrane protein biogenesis pathway, which frees up Sec-translocon capacity for protein secretion. When cells with enhanced periplasmic hGH production yields were harvested and subsequently cultured in the absence of inducer, SecA, LepB, and YidC levels went down again. This indicates that when using the tunable rhamnose-promoter system to enhance the production of a protein in the periplasm, E. coli can adapt its protein translocation machinery for enhanced recombinant protein production in the periplasm.
Alcohol dehydrogenases as biocatalysts for the production of enantiomerically pure chiral alcohols
(2016)
Summary Enantiomerically pure chiral alcohols are key compounds in the production of certain chemicals including pharmaceuticals. Chemical synthesis allows to obtain maximal yield of 50% for one enantiomer ( >50% yield is achievable with chiral catalysts used in chemical synthesis), whereas biosynthesis leads to nearly 100% yield. Hence, expensive and time consuming resolution of racemic mixture can be avoided. Alcohol dehydrogenases are the most popular enzymes used in the chiral alcohols synthesis due to high activity with appropriate aldehydes or ketones. ADHs require a cofactor which has to be regenerated after the conversion of aldehyde/ketone to the respective alcohol. Thereby, different regeneration methods were used in the practical work to compare and choose the better one. R. erythropolis and C. hydrogenoformans alcohol dehydrogenases were chosen based on the literature screening. Each gene was cloned into Xplor2 vector and pFPMT vector. Xplor2 vector was used for the transformation of A. adeninivorans and pFPMT vector was used for the transformation of H. polymorpha. Chemically synthesized alcohol dehydrogenase sequences from R. erythropolis (ReADH) and C. hydrogenoformans (ChADH) were cloned between TEF1 promoter and PHO5 terminator which are components of Xplor2 vector or between FMD promoter and MOX terminator which are genetic elements of pFPMT vector. Moreover, ChADH and ReADH sequences with His-tag encoding sequence at the 5’ or 3’ end were constructed and the most active form of the protein was selected for further studies. ReADH-6H was used for the synthesis of 1-(S)-phenylethanol and ethyl (R)-4-chloro-3-hydroxybutanoate whereas ChADH-6H was used for the production of ethyl (R)-mandelate. ReADH-6H synthesized in A. adeninivorans and H. polymorpha was fully biochemically characterized. The enzymes from the two yeast species showed some differences in their pH and temperature optima, thermostability and activity levels. A-ReADH (A. adeninivorans) and H-ReADH (H. polymorpha) were highly active with the same substrates which were: acetophenone, 4-hydroxy-3-butanone and ethyl 4-chloroacetoacetate for reduction reaction along with 1-phenylethanol and 1,6-hexanediol for oxidation reaction. Recombinant A-ReADH-6H and H-ReADH-6H were synthesized in A. adeninivorans and H. polymorpha, respectively. Both enzymes were used for the synthesis of 1-(S)-phenylethanol and ethyl (R)-4-chloro-3-hydroxybutanoate with the use of substrate-coupled cofactor regeneration system. The enantiopurity of the products was >99%. Moreover, A. adeninivorans whole cell catalyst was also used for the synthesis of both chiral alcohols. BmGDH (Bacillus megaterium glucose dehydrogenase) was co-expressed with ReADH-6H for NADH cofactor regeneration. Comparison between isolated enzymes and permeabilized whole cell catalysts indicate that cell biocatalysts are more suitable for the production of 1-(S)-phenylethanol with 92% of acetophenone being converted in 60 min. However, cells did not show any significant advantage over isolated enzymes in the synthesis of ethyl (R)-4-chloro-3-hydroxybutanoate although the velocity of the synthesis of ethyl (R)-4-chloro-3-hydroxybutanoate was slightly improved using whole-cell catalysts, giving an 80% substrate conversion in 120 min. Recombinant C. hydrogenoformans alcohol dehydrogenase was synthesized in A. adeninivorans and biochemically characterized. Enzyme showed high activity only with one substrate, ethyl benzoylformate. The A. adeninivorans and H. polymorpha cell catalysts synthesizing ChADH and BmGDH (Bacillus megaterium glucose dehydrogenase) were constructed and used in the synthesis of ethyl (R)-mandelate (reduction product of ethyl benzoylformate) with the enantiopurity of the reaction product being >98%. H. polymorpha catalysts were more effective in the synthesis than A. adeninivorans cells. The first were able to convert 93% of ethyl benzoylformate within 180 min and the latter were converting 94% of the substrate within 360 min. Re-use of non-immobilized cells and catalysts entrapped in Lentikat® was performed and the improvement of the stability of immobilized catalysts was reported. Space time yield of 3.07 mmol l-1 h-1 and 6.07 mmol l-1 h-1 was achieved with A. adeninivorans and H. polymorpha cell catalysts, respectively. Alcohol dehydrogenase 1 from A. adeninivorans was analyzed concerning the synthesis of enantiomerically pure chiral alcohols. The enzyme did not synthesize industrially attractive products. However, based on biochemical characterization enzyme plays a role in the synthesis of 1-butanol or ethanol and thereby it is of biotechnological interest.
Invasion of the bacterial pathogen Listeria monocytogenes into human host cells requires specialized surface molecules for attachment and induction of phagocytosis. However, efficient invasion is also dependent on factors with house-keeping functions, such as SecA2-dependent secretion of autolysins for post-divisional segregation of daughter cells. Mutations in this pathway prevent degradation of peptidoglycan cross-walls, so that long cell chains are formed that cannot be phagocytosed. The extreme chaining of such mutants manifests as rough colony phenotype. One rough clone was isolated from a transposon library with a transposon insertion in the uncharacterized lmo0720 gene (lftS) together with a spontaneous point mutation in the secA2 gene. We separated both mutations and demonstrated that this point mutation in the intramolecular regulator 2 domain of SecA2 was sufficient to inactivate the protein. In contrast, lftS deletion did not cause a ΔsecA2-like phenotype. lftS is located in an operon with lftR (lmo0719), encoding a PadR-like transcriptional regulator, and lftR deletion affected growth, invasion and day-light dependent coordination of swarming. Inactivation of lftS partially suppressed these phenotypes, suggesting a functional relationship between LftR and LftS. However, the invasion defect of the ΔlftR mutant was only marginally suppressed by lftS removal. LftR regulates expression of the lmo0979–0980 (lieAB) operon, encoding a putative multidrug resistance transporter and lieAB transcription was strongly upregulated in the absence of LftR. Deletion of lieAB in the ΔlftR background restores wild type-like invasion levels. Hence, we conclude that tight transcriptional repression of the lieAB operon is essential for efficient listerial host cell invasion.
Infective/bacterial endocarditis is a rare but life-threatening disease with a hospital mortality rate of 22.7% and a 1-year mortality rate of 40%. Therefore, continued research efforts to develop efficient anti-infective implant materials are of the utmost importance. Equally important is the development of test systems that allow the performance of new materials to be comprehensively evaluated. In this study, a novel antibacterial coating based on dalbavancin was tested in comparison to rifampicin/minocycline, and the suitability of a recently developed mouse tail vein model for testing the implant coatings was validated. Small polymeric stent grafts coated with a poly-L-lactic acid (PLLA) layer and incorporated antibiotics were colonized with Staphylococcus (S.) aureus before implantation into the tail vein of mice. The main assessment criteria were the hematogenous spread of the bacteria and the local tissue reaction to the contaminated implant. For this purpose, colony-forming units (CFU) in the blood, spleen and kidneys were determined. Tail cross sections were prepared for histological analysis, and plasma cytokine levels and expression values of inflammation-associated genes were examined. Both antibiotic coatings performed excellently, preventing the onset of infection. The present study expands the range of available methods for testing the anti-infectivity of cardiovascular implants, and the spectrum of agents for effective surface coating.
The leading hypothesis of why organisms age is the “Free Radical Theory of Aging”, which states that the accumulation of reactive oxygen species (ROS), such as superoxide (O2•-) and hydrogen peroxide (H2O2), causes protein, lipid and DNA damage and leads to the observed age-related decline of cells and tissues. A major obstacle in analyzing the role of oxidative stress in aging organisms is the inability to precisely localize and quantify the oxidants, to identify proteins and pathways that might be affected, and ultimately, to correlate changes in oxidant levels with the lifespan of the organism. To directly monitor the onset and extent of oxidative stress during the lifespan of Caenorhabditis elegans, we utilized the fluorescent H2O2 sensor protein HyPer, which enabled us to quantify endogenous peroxide levels in different tissues of living animals in real time. We made the surprising observation that wildtype C. elegans is exposed to very high peroxide levels during development. Peroxide levels drop rapidly as the animals mature, and low peroxide levels then prevail throughout the reproductive age, after which an age-accompanying increase of peroxide level is observed. These results were in excellent agreement with findings obtained by using the highly quantitative redox proteomic technique OxICAT, which monitors the oxidation status of redox-sensitive proteins as read-out for onset, localization, and protein targets of oxidative stress. By using OxICAT, we detected increased protein thiol oxidation during the development of C. elegans and in aging animals. Many processes in C. elegans might potentially contribute to the elevated peroxide levels observed during development, including cuticle formation, apoptosis, proliferation, gametogenesis, or ROS signaling. The finding that all investigated C. elegans mutants regardless of their lifespan are exposed to high developmental peroxide levels argues for ROS accumulation to be a universal and necessary event. Yet, recovery from the early oxidative boost might determine the subsequent adult lifespan, as we found that long-lived daf-2 mutants transition faster to reducing conditions than short-lived daf-16 mutants, which retain higher peroxide levels throughout their mature life. These results suggest that changes in the cellular oxidant homeostasis, encountered at a very early stage in life, might determine subsequent redox levels and potentially the lifespan of organisms. Manipulation of developmental oxidant levels using glucose restriction or a short bolus of superoxide caused a disruption in developmental growth, a delay in reproduction, and a shortened lifespan. These results suggest that developmental oxidant levels are fine-tuned and optimized. Future experiments are aimed to investigate the sources of developmental hydrogen peroxide, and to elucidate whether active down-regulation of antioxidant enzymes during the larval period might foster peroxide accumulation. Preliminary results indicate that this might indeed be the case for peroxiredoxin 2, whose expression was significantly lower during development than at later stages in life. Finally, we investigated whether the observed variances in the developmental peroxide levels of individual worms within a synchronized wildtype population might be responsible for the observed significant variances in lifespan, and hence could serve as a predictor for adult lifespan. Preliminary results revealed that neither too low nor too high peroxide levels during development are beneficial for the lifespan of wildtype worms, suggesting that ROS level during development might be optimized for maximized lifespan. Future experiments aim to reveal the processes that are affected by ROS and which might influence the individual’s lifespan early in life.
Streptococcus pneumoniae (the pneumococcus) is a harmless resident of the human nasopharyngeal cavity, and, in general, every individual is likely to be colonized asymptomatically at least once during life. However, under certain conditions, the bacterium can spread to other tissues and organs causing local, non-invasive infections but also lifethreatening, invasive diseases. Pneumococcal carriage and infection is a highly regulated interplay between pathogen- and host-specific factors and the intimate contact of S. pneumoniae with the surface of the nasopharynx is the crucial step in pneumococcal pathogenesis. Pneumococcal adherence to the respiratory epithelium is mediated by surface-exposed adhesins. These adhesins engage host cell receptors either directly or indirectly by recognizing glycoproteins of the extracellular matrix (ECM) including structural components, such as collagens, laminins, and fibronectins, as well as plasma-derived ECM modulators, like vitronectin and Factor H. Pneumococcal surface protein C (PspC) is a surface-exposed protein and important virulence factor of S. pneumoniae. The multifunctional PspC protein promotes pneumococcal adherence to host cells by interacting with the secretory component of the human polymeric Immunoglobulin receptor of respiratory cells. In addition, PspC facilitates pneumococcal immune evasion by recruiting the complement inhibitor proteins C4b-binding protein (C4BP) and Factor H. Moreover, Factor H bound to the pneumococcal surface promotes bacterial adhesion to human epithelial and endothelial cells. S. pneumoniae also interacts with the human glycoprotein vitronectin. In plasma, monomeric vitronectin regulates thrombosis, fibrinolysis and the terminal complement cascade, while it additionally mediates cell-matrix interactions, cell adhesion and migration in the ECM. It was shown that multimeric, ECM-associated vitronectin facilitates pneumococcal adherence to respiratory epithelial cells. In addition, the interaction of pneumococci with vitronectin promotes their uptake by mucosal epithelial cells via the engagement of the integrin αvβ3 receptor and activation of intracellular signaling pathways culminating in cytoskeletal rearrangements. This study aims to identify and characterize the surface-exposed protein(s) that mediate binding of pneumococci to vitronectin and to elucidate the impact of vitronectin on pneumococcal pathogenesis beyond its function as molecular bridge between pneumococcus and host. Flow cytometric, immunosorbent and surface plasmon resonance experiments revealed that PspC is a vitronectin-binding protein of S. pneumoniae. The specificity of the interaction with vitronectin was confirmed using recombinant PspC proteins and Lactococcus lactis heterologously expressing PspC on their surface. Factor H did not hinder vitronectinbinding to PspC indicating that vitronectin recognizes the central part of PspC. Secretory IgA inhibited but not completely prevented vitronectin-binding to PspC, strongly suggesting that vitronectin binds near, but not directly to, the SC-binding region within the R domain(s) of PspC. In addition, PspC proteins comprising two R domains bound with higher affinity to vitronectin than PspC containing only one R domain, indicating that two interconnected R domains are required for efficient vitronectin-binding. Despite the sequential and structural differences to classical PspC, the PspC-like protein Hic specifically interacted with vitronectin with similar affinity than PspC containing two linked R domains. Binding studies confirmed that Factor H interacts with the very N-terminal region of Hic showing high sequence homology to classical PspC proteins, while vitronectin recognizes an adjacent region in the N-terminal region of Hic. The studied PspC proteins bound to both soluble and immobilized vitronectin, and the C-terminal heparin-binding domain (HBD3) was identified as PspC-binding motif in soluble vitronectin. However, in its immobilized form, vitronectin likely exposes additional binding sites for PspC since a region N-terminally to the identified HBD3 conferred binding of PspC. Vitronectin inhibits the terminal complement pathway, thereby preventing proinflammatory immune reactions and tissue damage. In general, pneumococci are protected from opsonization and MAC-dependent lysis by their capsule. However, pneumococci in close contact to human cells can become susceptible to complement attack due to reduced amounts of capsule. In addition, they can be severely affected by TCC-induced inflammatory responses. Vitronectin bound to PspC significantly inhibited the formation of terminal complement complexes. Thus, the interaction of PspC with vitronectin might aid in immune evasion of S. pneumoniae by inhibiting complement-mediated lysis and/or suppressing proinflammatory events. In conclusion, the results revealed the multifunctional PspC and Hic as vitronectin-binding proteins and proposed a novel role for the specific interaction of S. pneumoniae with vitronectin in regulating the complement cascade, beside its function as molecular bridge to the respiratory epithelium.
Bloodstream infections caused by Streptococcus pneumoniae induce strong inflammatory and procoagulant cellular responses and affect the endothelial barrier of the vascular system. Bacterial virulence determinants, such as the cytotoxic pore-forming pneumolysin, increase the endothelial barrier permeability by inducing cell apoptosis and cell damage. As life-threatening consequences, disseminated intravascular coagulation followed by consumption coagulopathy and low blood pressure is described. With the aim to decipher the role of pneumolysin in endothelial damage and leakage of the vascular barrier in more detail, we established a chamber-separation cell migration assay (CSMA) used to illustrate endothelial wound healing upon bacterial infections. We used chambered inlets for cell cultivation, which, after removal, provide a cell-free area of 500 μm in diameter as a defined gap in primary endothelial cell layers. During the process of wound healing, the size of the cell-free area is decreasing due to cell migration and proliferation, which we quantitatively determined by microscopic live cell monitoring. In addition, differential immunofluorescence staining combined with confocal microscopy was used to morphologically characterize the effect of bacterial attachment on cell migration and the velocity of gap closure. In all assays, the presence of wild-type pneumococci significantly inhibited endothelial gap closure. Remarkably, even in the presence of pneumolysin-deficient pneumococci, cell migration was significantly retarded. Moreover, the inhibitory effect of pneumococci on the proportion of cell proliferation versus cell migration within the process of endothelial gap closure was assessed by implementation of a fluorescence-conjugated nucleoside analogon. We further combined the endothelial CSMA with a microfluidic pump system, which for the first time enabled the microscopic visualization and monitoring of endothelial gap closure in the presence of circulating bacteria at defined vascular shear stress values for up to 48 h. In accordance with our CSMA results under static conditions, the gap remained cell free in the presence of circulating pneumococci in flow. Hence, our combined endothelial cultivation technique represents a complex in vitro system, which mimics the vascular physiology as close as possible by providing essential parameters of the blood flow to gain new insights into the effect of pneumococcal infection on endothelial barrier integrity in flow.
Bacterial kidney disease (BKD) is a chronic bacterial disease affecting both wild and farmed salmonids. The causative agent for BKD is the Gram-positive fish pathogen Renibacterium salmoninarum. As treatment and prevention of BKD have proven to be difficult, it is important to know and identify the key bacterial proteins that interact with the host. We used subcellular fractionation to report semi-quantitative data for the cytosolic, membrane, extracellular, and membrane vesicle (MV) proteome of R. salmoninarum. These data can aid as a backbone for more targeted experiments regarding the development of new drugs for the treatment of BKD. Further analysis was focused on the MV proteome, where both major immunosuppressive proteins P57/Msa and P22 and proteins involved in bacterial adhesion were found in high abundance. Interestingly, the P22 protein was relatively enriched only in the extracellular and MV fraction, implicating that MVs may play a role in host–pathogen interaction. Compared to the other subcellular fractions, the MVs were also relatively enriched in lipoproteins and all four cell wall hydrolases belonging to the New Lipoprotein C/Protein of 60 kDa (NlpC/P60) family were detected, suggesting an involvement in the formation of the MVs.
The main goal of this contribution was to determine the effect of predation of the often abundant to dominant doliolid Dolioletta gegenbauri (Tunicata, Thaliacea) on the abundance of co-occurring planktonic copepods by feeding on their eggs. Previous oceanographic investigations revealed that doliolids had ingested eggs of small calanoid copepods. The ecological significance of such feeding could not be quantified completely because the environmental abundance of such eggs was not known. In this study, the eggs and nauplii of the neritic calanoid Paracalanus quasimodo (Crustacea, Copepoda) were offered to gonozooids and phorozooids of D. gegenbauri with a 6–6.5 mm length together with three species of phytoplankton; i.e., simulating diet conditions on the shelf. We hypothesized that copepod eggs of a similar size as food particles would be readily ingested whereas small nauplii, which could escape, would hardly be eaten by the doliolids. Our results revealed that doliolids have the potential to control small calanoids by ingesting their eggs at high rates but not their nauplii or later stages. Late copepodid stages and adults of co-occurring calanoid species could cause less mortality because they prey less on such eggs than doliolids of a similar weight. However, certain abundant omnivorous calanoid species with pronounced perception and/or capture abilities can prey successfully on the nauplii of small calanoids.
Regulated ATP-dependent proteolysis is a common feature of developmental processes and plays also a crucial role during environmental perturbations such as stress and starvation. The Bacillus subtilis MgsR regulator controls a subregulon within the stress- and stationary phase σB regulon. After ethanol exposition and a short time-window of activity, MgsR is ClpXP-dependently degraded with a half-life of approximately 6 min. Surprisingly, a protein interaction analysis with MgsR revealed an association with the McsB arginine kinase and an in vivo degradation assay confirmed a strong impact of McsB on MgsR degradation. In vitro phosphorylation experiments with arginine (R) by lysine (K) substitutions in McsB and its activator McsA unraveled all R residues, which are essentially needed for the arginine kinase reaction. Subsequently, site directed mutagenesis of the MgsR substrate was used to substitute all arginine residues with glutamate (R-E) to mimic arginine phosphorylation and to test their influence on MgsR degradation in vivo. It turned out, that especially the R33E and R94/95E residues (RRPI motif), the latter are adjacently located to the two redox-sensitive cysteines in a 3D model, have the potential to accelerate MgsR degradation. These results imply that selective arginine phosphorylation may have favorable effects for Clp dependent degradation of short-living regulatory proteins. We speculate that in addition to its kinase activity and adaptor function for the ClpC ATPase, McsB might also serve as a proteolytic adaptor for the ClpX ATPase in the degradation mechanism of MgsR.
Proteomic Adaptation of Clostridioides difficile to Treatment with the Antimicrobial Peptide Nisin
(2021)
Four aerobic bacteria with bacteriolytic capabilities were isolated from the brackish water site Strait Uzynaral of Lake Balkhash in Kazakhstan. The morphology and physiology of the bacterial isolates have subsequently been analyzed. Using matrix assisted laser desorption ionization-time of flight mass spectrum and partial 16S rRNA gene sequence analyses, three of the isolates have been identified as Pseudomonas veronii and one as Paenibacillus apiarius. We determined the capability of both species to lyse pre-grown cells of the Gram-negative strains Pseudomonas putida SBUG 24 and Escherichia coli SBUG 13 as well as the Gram-positive strains Micrococcus luteus SBUG 16 and Arthrobacter citreus SBUG 321 on solid media. The bacteriolysis process was analyzed by creating growth curves and electron micrographs of co-cultures with the bacteriolytic isolates and the lysis sensitive strain Arthrobacter citreus SBUG 321 in nutrient-poor liquid media. One metabolite of Paenibacillus apiarius was isolated and structurally characterized by various chemical structure determination methods. It is a novel antibiotic substance.
Gallic acid, protocatechuic acid, catechol, and pyrogallol are only a few examples of industrially relevant aromatics. Today much attention is paid to the development of new microbial factories for the environmentally friendly biosynthesis of industrially relevant chemicals with renewable resources or organic pollutants as the starting material. The non–conventional yeast, Blastobotrys raffinosifermentans, possesses attractive properties for industrial bio-production processes such as thermo- and osmotolerance. An additional advantage is its broad substrate spectrum, with tannins at the forefront. The present study is dedicated to the characterization of catechol-1,2-dioxygenase (Acdo1p) and the analysis of its function in B. raffinosifermentans tannic acid catabolism. Acdo1p is a dimeric protein with higher affinity for catechol (KM = 0.004 ± 0.001 mM, kcat = 15.6 ± 0.4 s–1) than to pyrogallol (KM = 0.1 ± 0.02 mM, kcat = 10.6 ± 0.4 s–1). It is an intradiol dioxygenase and its reaction product with catechol as the substrate is cis,cis-muconic acid. B. raffinosifermentans G1212/YIC102-AYNI1-ACDO1-6H, which expresses the ACDO1 gene under the control of the strong nitrate-inducible AYNI1 promoter, achieved a maximum catechol-1,2-dioxygenase activity of 280.6 U/L and 26.9 U/g of dry cell weight in yeast grown in minimal medium with nitrate as the nitrogen source and 1.5% glucose as the carbon source. In the same medium with glucose as the carbon source, catechol-1,2-dioxygenase activity was not detected for the control strain G1212/YIC102 with ACDO1 expression under the regulation of its respective endogenous promoter. Gene expression analysis showed that ACDO1 is induced by gallic acid and protocatechuic acid. In contrast to the wild-type strain, the B. raffinosifermentans strain with a deletion of the ACDO1 gene was unable to grow on medium supplemented with gallic acid or protocatechuic acid as the sole carbon source. In summary, we propose that due to its substrate specificity, its thermal stability, and its ability to undergo long-term storage without significant loss of activity, B. raffinosifermentans catechol-1,2-dioxygenase (Acdo1p) is a promising enzyme candidate for industrial applications.
The aquaculture industry has been consistently and successfully growing over the
years, supplying over 50% of the fish humans consume. A large part of this success is due
to the implementation of vaccination, which is by far the most reliable prophylactic method
in large-scale fish farming. Nonetheless, although recent fish vaccines have greatly
contributed to the development and sustainability of the aquaculture industry, they not
always offer sufficient protection to provide acceptable survival rates when infectious
diseases outbreaks occur. Therefore, infectious diseases and effective vaccines still
constitute major problems for aquaculture.
Different practical aspects and biological factors of fish have also contributed to the
unsuccessful outcome of fish vaccines. To date, many of the most effective vaccines for fish
are injectable, and their formulation includes aluminum or oil emulsion adjuvants. Both facts
constitute a major issue for animal welfare due to the stress and side effects they trigger.
Great strides have been made in innovative technologies for fish vaccines. However, as of
today, they are not available on the market. Thus, improvements in vaccine formulations and
delivery routes remain an open topic and leads the to-do list of science with the aquaculture
of the future.
Vaccination provides immunity against a determined pathogen, and this is inherent
to the immune system. Therefore, thorough knowledge about the fish immune system and
how it is influenced by internal and external factors will certainly support rational vaccine
design. Thereby, the immune responses triggered by a vaccine can be exhaustively
characterized, and the formulations improved in case it is needed.
Hence, the goal of this PhD thesis, is to provide knowledge to improve fish
vaccination, both in its formulation and in its efficacy, aiming to promote the rational design
of fish vaccines. Additionally, this work proposes a holistic view of fish, where the
physiology and culture conditions of the fish are the starting points for the development and
application of vaccines. Thus, concepts and considerations for rational vaccine design
specific for fish are presented here.
Article I of this thesis offers a comprehensive review on the current situation in
Chile, but also worldwide aquaculture and the challenges it must face in the future. Namely,
recurrent pathogenic outbreaks and sub-optimal levels of protection due to inefficient
vaccination. This article established an open and flexible ground upon which to reflect on
how and what to improve in fish vaccines, leading the efforts towards rational vaccine
design.
In Article II, we investigated whether the current most used vaccination route,
intraperitoneal, can be improved by reducing the side effects of adjuvants, replacing them
with in the vaccine formulations with Poly-(D,L-lactic-co-glycolic) acid (PLGA)
microparticles, that serve simultaneously as vaccine vehicle and adjuvants.
Article III summarizes the scientific literature about what is known about the teleost
thymus. From this, it became clear how external factors such as photoperiod and seasonality
can modulate this primary lymphatic organ, and probably, immune responses. These are
essential factors to consider if effective and protective vaccines are needed in species highly
influenced by the environment such as fish.
As discussed in Article III, fish are poikilotherm animals, highly sensitive to
environmental factors like light. In Article IV, we reported for the first time, light generates
daily rhythms in cells’ circulation and gene expression, entraining the trout immune
response. Therefore, “when” (time of the day) we stimulate fish matters in order to get
optimal immune responses. Article V provides valuable knowledge about what happens
with fish immune responses, against a bacterial agent, under constant cues like light/dark
cycles and temperature. Once again, “when” we stimulate fish (season), influences the fish
immune status and therefore, their immune responses.
Finally, Article VI reports, for the first time, leukocytes extracted from fins of trout
directly respond to a parasitic infection. This article supports the idea that further research
must be done on fish mucosal surfaces, since they are key to stimulating/vaccinating fish, as
they are a natural entry route for pathogens and modulate the immune responses mounted.
Overall, the information provided by these articles is highly relevant for the
aquaculture industry. Firstly, because the vaccine platform based on PLGA microparticles
is promising for the future of fish vaccination, harmful adjuvants can be avoided, while still
providing enhanced stimulation thanks to the timed-released capacity of the particles.
Additionally, they offer the possibility to adapt them to in-feed vaccine pellets, which is the
ideal delivery route for fish. Secondly, accurate vaccination protocols can be established;
vaccination should be done during daytime, and preferably during the morning, where the
physiological status of fish provide optimal conditions for induction of an ultimately
protective immune response after vaccination. Furthermore, vaccination should be done
during warm months, spring, or summertime, as apparently fish have free-run internal clocks
that negatively modulate adaptive immune responses during wintertime.
In summary, the present thesis provides a novel concept for vaccination of
aquacultured species based on new data for rational vaccine design, with optimal application
procedures based on the optimal timing (season and daytime), reduced stress by oral
application and considerations about improving “first-line defenses” by vaccination via
mucosal surfaces of gut or skin.
The function and mode of action of small regulatory RNAs is currently still understudied in archaea. In the halophilic archaeon Haloferax volcanii, a plethora of sRNAs have been identified; however, in-depth functional analysis is missing for most of them. We selected a small RNA (s479) from Haloferax volcanii for detailed characterization. The sRNA gene is encoded between a CRISPR RNA locus and the Cas protein gene cluster, and the s479 deletion strain is viable and was characterized in detail. Transcriptome studies of wild-type Haloferax cells and the deletion mutant revealed upregulation of six genes in the deletion strain, showing that this sRNA has a clearly defined function. Three of the six upregulated genes encode potential zinc transporter proteins (ZnuA1, ZnuB1, and ZnuC1) suggesting the involvement of s479 in the regulation of zinc transport. Upregulation of these genes in the deletion strain was confirmed by northern blot and proteome analyses. Furthermore, electrophoretic mobility shift assays demonstrate a direct interaction of s479 with the target znuC1 mRNA. Proteome comparison of wild-type and deletion strains further expanded the regulon of s479 deeply rooting this sRNA within the metabolism of H. volcanii especially the regulation of transporter abundance. Interestingly, s479 is not only encoded next to CRISPR–cas genes, but the mature s479 contains a crRNA-like 5′ handle, and experiments with Cas protein deletion strains indicate maturation by Cas6 and interaction with Cas proteins. Together, this might suggest that the CRISPR–Cas system is involved in s479 function.