TY - THES A1 - Fischbach, Jens T1 - Isothermale Amplifikationsmethoden für den DNA- und Pyrophosphat-abhängigen Pathogennachweis N2 - Hintergrund: Etablierte Protein- und Nukleinsäure-basierte Methoden für den spezifischen Pathogennachweis sind nur unter standardisierten Laborbedingungen von geschultem Personal durchführbar und daher mit einem hohen Zeit- und Kostenaufwand verbunden. In der Nukleinsäure-basierten Diagnostik kann durch die Einführung der isothermalen Amplifikation eine schnelle und kostengünstige Alternative zur Polymerase-Kettenreaktion (PCR) verwendet werden. Die Loop-mediated isothermal amplification (LAMP) bietet aufgrund der hohen Amplifikationseffizienz vielfältige Detektionsmöglichkeiten, die sowohl für Schnelltest- als auch für Monitoring-Anwendungen geeignet sind. Ein wesentliches Ziel dieser Arbeit war die Verbesserung der Anwendbarkeit der LAMP und die Entwicklung einer neuen Methode für den einfachen, schnellen und günstigen Nachweis von Pathogenen mittels alternativer DNA- oder Pyrophosphat-abhängiger Detektionsverfahren. Hier wurden zunächst direkte und indirekte Detektionsmethoden untersucht und darauf aufbauend ein Verfahren entwickelt, mit dem neue Metallionen-abhängige Fluoreszenzfarbstoffe für die selektive Detektion von Pyrophosphat in der LAMP und anderen enzymatischen Reaktionen identifiziert werden können. Als Alternative für die DNA-basierte Detektion in der digitalen LAMP sollten die zuvor etablierten Farbstoffe für den Pyrophosphatnachweis in einer Emulsion getestet werden. Abschließend wurde ein neuer Reaktionsmechanismus für die effiziente Generierung hochmolekularer DNA unter isothermalen Bedingungen als Alternative zur LAMP entwickelt. Ergebnisse: Für den Nachweis RNA- und DNA-basierter Phythopathogene konnte die Echtzeit- und Endpunktdetektion mit verschiedenen Farbstoffen in einem geschlossenen System etabliert werden. Hier wurde Berberin als DNA-interkalierender Fluoreszenzfarbstoff mit vergleichbarer Sensitivität zu SYBR Green und EvaGreen erfolgreich in der LAMP mit Echtzeitdetektion eingesetzt. Ein Vorteil von Berberin gegenüber den anderen Farbstoffen ist die Toleranz der DNA-Polymerase auch bei hohen Farbstoffkonzentrationen. Berberin kann daher auch in der geschlossenen LAMP-Reaktion ohne zusätzliche Anpassung der Reaktionsbedingungen für die Endpunktdetektion verwendet werden. Darüber hinaus konnte Hydroxynaphtholblau (HNB), das für den kolorimetrischen Endpunktnachweis bekannt ist, erstmals auch für die fluorimetrische Detektion der LAMP in Echtzeit eingesetzt werden. Zusätzlich konnten in der Arbeit weitere Metallionen-abhängige Farbstoffe zur indirekten Detektion der LAMP über das Pyrophosphat identifiziert werden. Dafür wurde eine iterative Methode entwickelt, mit der potenzielle Farbstoffe hinsichtlich ihrer Enzymkompatibilität und ihrer spektralen Eigenschaften bei An- oder Abwesenheit von Manganionen selektiert werden können. Mithilfe eines kombinatorischen Screenings im Mikrotiterplattenformat konnte die komplexe Konzentrationsabhängigkeit zwischen den einzelnen Komponenten für einen fluorimetrischen Verdrängungsnachweis untersucht werden. Durch die Visualisierung des Signal-Rausch-Verhältnis’ als Intensitätsmatrix (heatmap) konnten zunächst Alizarinrot S und Tetrazyklin unter simulierten Reaktionsbedingungen selektiert werden. In der anschließenden enzymatischen LAMP-Reaktion konnte insbesondere Alizarinrot S als günstiger, nicht-toxischer und robuster Fluoreszenzfarbstoff identifiziert werden und zeigte eine Pyrophosphat-abhängige Zunahme der Fluoreszenzintensität. Die zuvor etablierten Farbstoffe (HNB, Calcein und Alizarinrot S) konnten anschließend erfolgreich für die indirekte, fluorimetrische Detektion von Pyrophosphat in einer LAMP-optimierten Emulsion eingesetzt werden. Die Stabilität und Homogenität der generierten Emulsion wurde durch den Zusatz des Emulgators Poloxamer 188 verbessert. Durch die fluoreszenzmikroskopische Analyse der Emulsion war eine eindeutige Diskriminierung der positiven und negativen Tröpfchen vor allem bei Einsatz von Calcein und Alizarinrot S möglich. Aufgrund des komplexen Primer-Designs und der hohen Wahrscheinlichkeit unspezifischer Amplifikation in der LAMP wurde eine neue Bst DNA-Polymerase-abhängige isothermale Amplifikationsreaktion entwickelt. Durch die Integration einer spezifischen Linkerstruktur (abasische Stelle oder Hexaethylenglykol) zwischen zwei Primersequenzen konnte ein bifunktioneller Primer die effiziente Regenerierung der Primerbindungsstellen gewährleisten. Der neue Primer induziert nach der spezifischen Hybridisierung auf dem Templat die Rückfaltung zu einer Haarnadelstruktur und blockiert gleichzeitig die Polymeraseaktivität am Gegenstrang, wodurch eine autozyklische Amplifikation trotz konstanter Reaktionstemperatur möglich ist. Die Effizienz der „Hinge-initiated Primer dependent Amplification“ (HIP) konnte abschließend durch die Verkürzung der Distanz zwischen einem modifizierten Hinge-Primer und einem PCR-ähnlichen Primer verbessert werden. Schlussfolgerung: Die LAMP hat sich aufgrund der hohen Robustheit und Effizienz zu einer leistungsfähigen Alternative für die klassische PCR in der molekularbiologischen Diagnostik entwickelt. Unterschiedliche Detektionsverfahren verbessern die Leistungsfähigkeit der qualitativen und quantitativen LAMP für die Feldanwendungen und für die Diagnostik, da die neuen DNA- und Pyrophosphat-abhängigen Nachweismethoden in einer geschlossenen Reaktion eingesetzt werden können und so eine einfache Pathogendiagnostik ermöglichen. Die gezeigten Methoden können darüber hinaus zu einer Kostensenkung und Zeitersparnis gegenüber den herkömmlichen Methoden beitragen. Ein attraktives Ziel stellt die Weiterentwicklung der HIP für den Pathogennachweis als Alternative zur LAMP dar. Hierbei können die neuen LAMP-Detektionsverfahren ebenfalls Anwendung finden. Die Verwendung von Bst DNA-Polymerase-abhängigen Reaktionen ermöglicht darüber hinaus die Integration einer robusten isothermalen Amplifikation in mikrofluidische Systeme. Durch die Kombination der Probenvorbereitung, Amplifikation und Detektion sind zukünftige Anwendungen mit kurzer Analysezeit und geringem apparativen Aufwand insbesondere in der Pathogendiagnostik möglich. N2 - Background: Established protein- and nucleic acid-based methods for the specific pathogen detection are usually performed under standardized laboratory conditions by trained staff and are associated with long processing time and high costs. In nucleic acid-based pathogen diagnostics, the isothermal amplification can be used as a rapid and cost-effective alternative to the polymerase chain reaction (PCR). Among all isothermal techniques, the loop-mediated isothermal amplification (LAMP) offers a wide range of applications for the rapid endpoint and real-time detection. A major goal of this work, was to improve the applicability of LAMP and the development of a new method to get a simple, fast and cost-effective diagnostic tool that is based on the detection of DNA and pyrophosphate. For this purpose, direct and indirect detection methods were investigated as well as additional metal ion-dependent fluorescent dyes for the selective detection of pyrophosphate in LAMP or other enzymatic reactions identified. As an alternative to the DNA-based digital LAMP, the previously established dyes were tested for the detection of pyrophosphate in emulsion. Finally, a new reaction mechanism was developed that allows the efficient generation of high molecular weight DNA under isothermal reaction conditions. Results: The detection of RNA- and DNA-based phytopathogens in closed reactions was established successfully with different dyes for real-time and endpoint detection. Berberine as DNA-intercalating fluorescent dye was used in the real-time detection of LAMP with comparable sensitivity to SYBR Green and EvaGreen for the first time. Additionally, the results revealed adequate tolerance of the Bst DNA polymerase to higher concentrations of the dye. Thus, it could be used directly in a closed LAMP reaction without any optimization. Furthermore, the magnesium indicator hydroxynaphthol blue (HNB) was used for fluorometric real-time detection in LAMP for the first time. To extend the number of indirect detection methods for the accumulating pyrophosphate in LAMP and other enzymatic reactions, new metal-ion-dependent dyes were identified. The developed platform could support the iterative process of finding new fluorescent dyes with regard to enzyme compatibility and their spectral properties in the presence or absence of manganese ions. To obtain a selective fluorometric displacement assay, the complex concentration dependence between all components was investigated successfully by the establishment of a combinatorial screening in a microtiter plate. The visualization of the calculated signal-to-noise ratio was then used to identify alizarin red S and tetracycline as promising candidates under simulated reaction conditions. By testing both dyes in the enzymatic assay, alizarin red S was confirmed as low-cost, non-toxic and robust dye for the pyrophosphate dependent increase of the fluorescence intensity. The previously established dyes (HNB, calcein and alizarin red S) were applied successfully for the indirect and fluorometric detection of pyrophosphate in a LAMP-optimized emulsion. The stability and homogeneity of the generated emulsion was increased by adding the surfactant poloxamer 188. The fluorescence microscopic analysis showed a distinct discrimination between positive and negative droplets, in particular by using calcein, HNB and alizarin red S. Additionally, a new amplification reaction that is also based on the Bst DNA polymerase was developed to prevent the complicated primer design and likelihood of unspecific amplification in LAMP. The efficient regeneration of the single stranded priming site was achieved by the integration of a specific linker (abasic site or hexaethylenglycol) between two priming sites to create a bifunctional hinge-primer. After the hybridization on the template sequence, the hinge-primer was used to induce the refolding to a hairpin structure and for blocking the polymerase activity on the reverse strand. Thus, an autocyclic amplification can be achieved at isothermal reaction conditions. Finally, the efficiency of the hinge-initiated primer dependent amplification (HIP) was improved by decreasing the distance between the modified hinge-primer and the corresponding PCR-like primer. Conclusion: Due to its robustness and efficiency, LAMP has been developed to a powerful alternative for the standardized PCR-based diagnostics in molecular biology in the past years. Different detection methods improve the performance of the qualitative and quantitative LAMP in field applications as well as in diagnostics. The new DNA and pyrophosphate based assays can be used in closed reactions and contribute to a simple pathogen detection. Furthermore, the advancements can lead to a considerable reduction of costs and time compared to conventional methods. An attractive achievement is the further optimization of the HIP as sensitive pathogen assay by using LAMP-based detection methods. The use of Bst DNA polymerasedependent reactions will allow a robust integration of the isothermal amplification in microfluidic systems. By combining sample preparation, amplification and detection in one device, powerful applications with short analysis time and low instrumental requirements are a future perspective in pathogen diagnostics. KW - DNA KW - LAMP KW - Pathogen KW - Isothermale Amplifikation KW - Pyrophosphat Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-18314 UR - https://nbn-resolving.org/urn:nbn:de:kobv:517-opus4-406072 ER - TY - JOUR A1 - Heinsohn, Natascha Katharina A1 - Niedl, Robert Raimund A1 - Anielski, Alexander A1 - Lisdat, Fred A1 - Beta, Carsten T1 - Electrophoretic µPAD for Purification and Analysis of DNA Samples JF - Biosensors N2 - In this work, the fabrication and characterization of a simple, inexpensive, and effective microfluidic paper analytic device (µPAD) for monitoring DNA samples is reported. The glass microfiber-based chip has been fabricated by a new wax-based transfer-printing technique and an electrode printing process. It is capable of moving DNA effectively in a time-dependent fashion. The nucleic acid sample is not damaged by this process and is accumulated in front of the anode, but not directly on the electrode. Thus, further DNA processing is feasible. The system allows the DNA to be purified by separating it from other components in sample mixtures such as proteins. Furthermore, it is demonstrated that DNA can be moved through several layers of the glass fiber material. This proof of concept will provide the basis for the development of rapid test systems, e.g., for the detection of pathogens in water samples. KW - microfluidic paper analytic device (µPAD) KW - patterning glass microfiber KW - fiber-electrophoresis chip KW - DNA KW - imprinted electrodes KW - cross layer chip KW - polymerase chain reaction (PCR) KW - purification Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-15763 SN - 2079-6374 VL - 12 IS - 2 PB - MDPI ER - TY - CHAP A1 - Messaoudi, Hamza A1 - Das, Susanta Kumar A1 - Lange, Janine A1 - Heinrich, Friedhelm A1 - Schrader, Sigurd A1 - Frohme, Marcus A1 - Grunwald, Rüdiger T1 - Femtosecond laser induced nanostructuring for surface enhanced Raman spectroscopy N2 - The formation of periodical nanostructures with femtosecond laser pulses was used to create highly efficient substrates for surface-enhanced Raman spectroscopy (SERS). We report about the structuring of silver and copper substrates and their application to the SERS of DNA (herring sperm) and protein molecules (egg albumen). The maximum enhancement factors were found on Ag substrates processed with the second harmonic generation (SHG) of a 1-kHz Ti:sapphire laser and structure periods near the SHG wavelength. In the case of copper, however, the highest enhancement was obtained with long-period ripples induced with at fundamental wavelength. This is explained by an additional significant influence of nanoparticles on the surface. Nanostructured areas in the range of 1.25 mm2 were obtained in 10 s. The surfaces were characterized by scanning electron microscopy, Fast Fourier Transform and Raman spectroscopy. Moreover, the role of the chemical modification of the metal structures is addressed. Thin oxide layers resulting from working in atmosphere which improve the biocompatibility were indicated by vibration spectra. It is expected that the detailed study of the mechanisms of laser-induced nanostructure formation will stimulate further applications of functionalized surfaces like photocatalysis, selective chemistry and nano-biology. KW - laser-induced periodic surface structure KW - surface enhanced Raman spectroscopy KW - SERS KW - metal nanostructure KW - bio-molecule KW - DNA KW - femtosecond laser KW - ultrashort pulse Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-15252 SP - 61 EP - 68 PB - Society of Photo-Optical Instrumentation Engineers (SPIE) ER - TY - JOUR A1 - Grebinyk, Anna A1 - Prylutska, Svitlana A1 - Grynyuk, I. A1 - Kolp, Benjamin A1 - Hurmach, V. A1 - Sliva, T. A1 - Amirkhanov, Volodymyr A1 - Trush, V. A1 - Matyshevska, Olga A1 - Slobodyanik, M. A1 - Prylutskyy, Yuriy A1 - Frohme, Marcus A1 - Ritter, Uwe T1 - C60 Fullerene Effects on Diphenyl-N-(trichloroacetyl)-amidophosphate Interaction with DNA In Silico and Its Cytotoxic Activity Against Human Leukemic Cell Line In Vitro JF - Nanoscale Research Letters N2 - New representative of carbacylamidophosphates - diphenyl-N-(trichloroacetyl)-amidophosphate (HL), which contains two phenoxy substituents near the phosphoryl group, was synthesized, identified by elemental analysis and IR and NMR spectroscopy, and tested as a cytotoxic agent itself and in combination with C60 fullerene. According to molecular simulation results, C60 fullerene and HL could interact with DNA and form a rigid complex stabilized by stacking interactions of HL phenyl groups with C60 fullerene and DNA G nucleotide, as well as by interactions of HL CCl3 group by ion-π bonds with C60 molecule and by electrostatic bonds with DNA G nucleotide. With the use of MTT test, the cytotoxic activity of HL against human leukemic CCRF-CM cells with IC50 value detected at 10 μM concentration at 72 h of cells treatment was shown. Under combined action of 16 μM C60 fullerene and HL, the value of IC50 was detected at lower 5 μM HL concentration and at earlier 48 h period of incubation, besides the cytotoxic effect of HL was observed at a low 2.5 μM concentration at which HL by itself had no influence on cell viability. Binding of C60 fullerene and HL with minor DNA groove with formation of a stable complex is assumed to be one of the possible reasons of their synergistic inhibition of CCRF-CЕM cells proliferation. Application of C60 fullerene in combination with 2.5 μM HL was shown to have no harmful effect on structural stability of blood erythrocytes membrane. Thus, combined action of C60 fullerene and HL in a low concentration potentiated HL cytotoxic effect against human leukemic cells and was not followed by hemolytic effect. KW - diphenyl-N-(trichloroacetyl)-amidophosphate (HL) KW - C60 fullerene KW - leukemic CCRF-CEM cell KW - DNA KW - molecular simulation Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-10515 SN - 1556-276X VL - 2018 SP - 1 EP - 9 ER - TY - JOUR A1 - Hornemann, Andrea A1 - Sinning, Denise A1 - Cortes, Sofia A1 - Campino, Lenea A1 - Emmer, Peggy A1 - Kuhls, Katrin A1 - Ulm, Gerhard A1 - Frohme, Marcus A1 - Beckhoff, Burkhard T1 - A pilot study on fingerprinting Leishmania species from the Old World using Fourier transform infrared spectroscopy JF - Analytical and Bioanalytical Chemistry N2 - Leishmania species are protozoan parasites and the causative agents of leishmaniasis, a vector borne disease that imposes a large health burden on individuals living mainly in tropical and subtropical regions. Different Leishmania species are responsible for the distinct clinical patterns, such as cutaneous, mucocutaneous, and visceral leishmaniasis, with the latter being potentially fatal if left untreated. For this reason, it is important to perform correct species identification and differentiation. Fourier transform infrared spectroscopy (FTIR) is an analytical spectroscopic technique increasingly being used as a potential tool for identification of microorganisms for diagnostic purposes. By employing mid-infrared (MIR) spectral data, it is not only possible to assess the chemical structures but also to achieve differentiation supported by multivariate statistic analysis. This work comprises a pilot study on differentiation of Leishmania species of the Old World (L. major, L. tropica, L. infantum, and L. donovani) as well as hybrids of distinct species by using vibrational spectroscopic fingerprints. Films of intact Leishmania parasites and their deoxyribonucleic acid (DNA) were characterized comparatively with respect to their biochemical nature and MIR spectral patterns. The strains’ hyperspectral datasets were multivariately examined by means of variance-based principal components analysis (PCA) and distance-based hierarchical cluster analysis (HCA). With the implementation of MIR spectral datasets we show that a phenotypic differentiation of Leishmania at species and intra-species level is feasible. Thus, FTIR spectroscopy can be further exploited for building up spectral databases of Leishmania parasites in view of high-throughput analysis of clinical specimens. KW - Fourier transform infrared spectroscopy KW - hierarchical cluster analysis (HCA) KW - principal components analysis (PCA) KW - Leishmania KW - DNA KW - multivariate differentiation Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-10080 SN - 1432-1130 ER - TY - JOUR A1 - Prylutska, Svitlana A1 - Grynyuk, I. A1 - Grebinyk, Anna A1 - Hurmach, V. A1 - Shatrava, Iu. A1 - Sliva, T. A1 - Amirkhanov, Volodymyr A1 - Prylutskyy, Yuriy A1 - Matyshevska, Olga A1 - Slobodyanik, M. A1 - Frohme, Marcus A1 - Ritter, Uwe T1 - Cytotoxic Effects of Dimorfolido-N-Trichloroacetylphosphorylamide and Dimorfolido-N-Benzoylphosphorylamide in Combination with C60 Fullerene on Leukemic Cells and Docking Study of Their Interaction with DNA JF - Nanoscale Research Letters N2 - Dimorfolido-N-trichloroacetylphosphorylamide (HL1) and dimorfolido-N-benzoylphosphorylamide (HL2) as representatives of carbacylamidophosphates were synthesized and identified by the methods of IR, 1H, and 31P NMR spectroscopy. In vitro HL1 and HL2 at 1 mM concentration caused cell specific and time-dependent decrease of leukemic cell viability. Compounds caused the similar gradual decrease of Jurkat cells viability at 72 h (by 35%). HL1 had earlier and more profound toxic effect as compared to HL2 regardless on leukemic cell line. Viability of Molt-16 and CCRF-CEM cells under the action of HL1 was decreased at 24 h (by 32 and 45%, respectively) with no substantial further reducing up to 72 h. Toxic effect of HL2 was detected only at 72 h of incubation of Jurkat and Molt-16 cells (cell viability was decreased by 40 and 45%, respectively). It was shown that C60 fullerene enhanced the toxic effect of HL2 on leukemic cells. Viability of Jurkat and CCRF-CEM cells at combined action of C60 fullerene and HL2 was decreased at 72 h (by 20 and 24%, respectively) in comparison with the effect of HL2 taken separately. In silico study showed that HL1 and HL2 can interact with DNA and form complexes with DNA both separately and in combination with C60 fullerene. More stable complexes are formed when DNA interacts with HL1 or C60 + HL2 structure. Strong stacking interactions can be formed between HL2 and C60 fullerene. Differences in the types of identified bonds and ways of binding can determine distinction in cytotoxic effects of studied compounds. KW - dimorfolido-N-trichloroacetylphosphorylamide KW - dimorfolido-N-benzoylphosphorylamide KW - C60 fullerene KW - leukemic cell KW - DNA KW - computer modeling Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-9273 SN - 1556-276X VL - 12 IS - 124 ER -