@misc{Fronczek2009, type = {Master Thesis}, author = {Fronczek, David Norman}, title = {Integration of fluorescence and atomic force microscopy for single molecule studies of protein complexes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-70731}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {The scope of this work is to develop a novel single-molecule imaging technique by combining atomic force microscopy (AFM) and optical fluorescence microscopy. The technique is used for characterizing the structural properties of multi-protein complexes. The high-resolution fluorescence microscopy and AFM are combined (FIONA-AFM) to allow for the identification of individual proteins in such complexes. This is achieved by labeling single proteins with fluorescent dyes and determining the positions of these fluorophores with high precision in an optical image. The same area of the sample is subsequently scanned by AFM. Finally, the two images are aligned and the positions of the fluorophores are displayed on top of the topographical data. Using quantum dots as fiducial markers in addition to fluorescently labeled proteins, fluorescence and AFM information can be aligned with an accuracy better than 10 nm, which is sufficient to identify single fluorescently labeled proteins in most multi-protein complexes. The limitations of localization precision and accuracy in fluorescence and AFM images are investigated, including their effects on the overall registration accuracy of FIONA-AFM hybrid images. This combination of the two complementary techniques opens a wide spectrum of possible applications to the study of protein interactions, because AFM can yield high resolution (5-10 nm) information about the conformational properties of multi-protein complexes while the fluorescence can indicate spatial relationships of the proteins within the complexes. Additionally, computer simulations are performed in order to validate the accuracy of the registration algorithm.}, subject = {Kraftmikroskopie}, language = {en} } @phdthesis{Buechner2014, author = {B{\"u}chner, Claudia Nadine}, title = {Single molecule studies of DNA lesion search and recognition strategies}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-111886}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2014}, abstract = {The integrity of our genome is continuously endangered by DNA damaging factors. Several cellular mechanisms have evolved to recognize and remove different types of DNA lesions. Despite the wealth of information on the three-dimensional structure and the catalytic mechanism of DNA repair enzymes, the essential process of target site search and identification remains more elusive. How can a small number of repair proteins find and detect the rare sites of damage rapidly and efficiently over an excess of millions of undamaged bases? To address this pivotal question in DNA repair, I focused on the central players from the two DNA damage excision repair pathways in my studies: nucleotide excision repair (NER) and base excision repair (BER). As examples for completely different approaches of damage search, recognition and verification, I compared the NER protein Xeroderma pigmentosum group D (XPD) with the BER proteins human thymine DNA glycosylase (hTDG) and human 8-oxoguanine glycosylase (hOgg1). In particular, the single molecule approach of atomic force microscopy (AFM) imaging and complementary biochemical and biophysical techniques were applied. I established a simple, optimized preparation approach, which yields homogeneous and pure samples of long (several hundreds to thousands of base pairs) DNA substrates suitable for the AFM studies with DNA repair proteins. Via this sample preparation, a single target site of interest can be introduced into DNA at a known position, which allows separate analysis of specific protein-DNA complexes bound to the lesion site and nonspecific complexes bound to non-damaged DNA. The first part of the thesis investigates the XPD protein involved in eukaryotic NER. In general, the NER mechanism removes helix-distorting lesions - carcinogenic UV light induced photoproducts, such as cyclobutane pyrimidine dimers (CPDs) as well as bulky DNA adducts. The 5'-3' helicase XPD has been proposed to be one of the key players in DNA damage verification in eukaryotic NER, which is still a matter of hot debate. In the studies, I focused on XPD from the archaeal species Thermoplasma acidophilum (taXPD), which shares a relatively high sequence homology with the sequence of the human protein and may serve as a good model for its eukaryotic counterpart. Based on AFM experiments and accompanying DNA binding affinity measurements with the biosensor technology Biolayer Interferometry (BLI), a clear role of XPD in damage verification was deciphered. Specifically, the data suggested that the ATP-dependent 5'-3' helicase activity of XPD was blocked by the presence of damage leading to stalled XPD-DNA damage verification complexes at the lesion sites. Successful damage verification led to ATP-dependent conformational changes visible by a significant transition in DNA bend angles from ~ 50° to ~ 65° at the site of the bound protein. Remarkably, this DNA bend angle shift was observed both in the presence of ATP and ATPγs (non-hydrolyzable ATP analog) indicating that ATP-binding instead of ATP hydrolysis was sufficient to induce repair competent conformational changes of XPD. Most importantly, detailed protein binding position and DNA bend angle analyses revealed for the first time that XPD preferably recognizes a bulky fluorescein lesion on the translocated strand, whereas a CPD lesion is preferentially detected on the opposite, non-translocated strand. Despite the different recognition strategies for both types of damages, they share a common verification complex conformation, which may serve as a signal for the recruitment of further NER factors. In the second part of the thesis, AFM imaging and a 2-Aminopurine fluorescence-based base-flipping assay were combined to investigate damage search and recognition by DNA glycosylases in BER. Exemplarily, I chose to study hTDG as a representative of the vast glycosylase family. hTDG excises thymine and uracil from mutagenic G:T and G:U mispairs contributing to cancer and genetic disease. The AFM data suggested that hTDG uses the intrinsic flexibility of G:T and G:U wobble pairs for initial damage sensing, while scanning DNA as a search complex (SC, slightly bent DNA). Remarkably, hTDG has been indicated to continuously switch between the search and interrogation conformation (IC, stronger bent DNA) during damage search. In the IC, target bases are interrogated by extrahelical base flipping, which is facilitated by protein-induced DNA bending and enhanced DNA flexibility at mismatches. AFM and fluorescence analyses revealed that the flipped base is stabilized via hTDG's arginine finger. Correct target bases are perfectly stabilized within the enzyme's catalytic pocket resulting in prolonged residence time and enhanced excision probability. To test for the generalizability of the proposed hTDG damage search model to BER glycosylases, identical studies were performed with a second glycosylase, hOgg1. The data on hOgg1, which removes structurally more stable 8-oxoguanine lesions, supported the hypothesis developed for lesion recognition by hTDG as a common strategy employed by BER glycosylases}, subject = {Rasterionenmikroskop}, language = {en} } @phdthesis{Mehringer2021, author = {Mehringer, Christian Felix}, title = {Optimierung und Objektivierung der DNA-Biegewinkelmessung zur Untersuchung der initialen Schadenserkennung von Glykosylasen im Rahmen der Basen-Exzisions-Reparatur}, doi = {10.25972/OPUS-23084}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-230847}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Im Rahmen dieser Doktorarbeit sollte ankn{\"u}pfend an die Ergebnisse aus vo-rangegangenen Untersuchungen der AG Tessmer, das von B{\"u}chner et al. [1] vorgestellte Modell zur DNA-Schadenserkennung, welches im Speziellen auf Daten zu den Glykosylasen hTDG und hOGG1 basierte, auf seine Allgemein-g{\"u}ltigkeit f{\"u}r DNA-Glykosylasen untersucht werden. Das Modell beschreibt den Prozess der Schadenserkennung als eine notwendige {\"U}bereinstimmung der passiven Biegung am Schadensort mit dem aktiven BiegungswinkeI der scha-densspezifischen Glykosylase. Ein wesentlicher Bestandteil dieser Arbeit war zudem die Etablierung einer automatisierten Messsoftware zur objektiven Biegewinkelmessung an DNA-Str{\"a}ngen in rasterkraftmikroskopischen Aufnah-men. Dies wurde mit verschiedenen Bildverarbeitungsprogrammen sowie einer in MATLAB implementierten Messsoftware erreicht und das Programm zudem auf die Biegewinkelmessung von proteininduzierten Biegewinkeln erweitert. Zur Anwendung kam die Methode der automatisierten Biegewinkelmessung sowohl an rasterkraftmikroskopischen Aufnahmen der Glykosylase MutY gebunden an ungesch{\"a}digter DNA als auch an Aufnahmen von DNA mit und ohne Basen-schaden. Neben oxoG:A und G:A, den spezifischen MutY-Zielsch{\"a}den, wurden auch andere Basensch{\"a}den wie beispielsweise oxoG:C und ethenoA:T vermes-sen und zudem die von der Glykosylase MutY an ungesch{\"a}digter DNA induzier-te Biegung mit den Biegewinkeln der jeweiligen Zielsch{\"a}den verglichen. Die {\"U}bereinstimmung in den Konformationen der Zielsch{\"a}den und der Reparatur-komplexe auch f{\"u}r die Glykosylase MutY (wie bereits f{\"u}r hTDG und hOGG1 in oben genannter Arbeit gezeigt) erlauben ein verbessertes Verst{\"a}ndnis der Schadenssuche und -erkennung durch DNA-Glykosylasen, indem sie die All-gemeing{\"u}ltigkeit einer Biegungsenergie-basierten initialen Schadenserkennung durch DNA-Glykosylasen unterst{\"u}tzen. Die etablierte Messsoftware kann zu-k{\"u}nftig an weiteren DNA-Sch{\"a}den und den entsprechenden Protein-DNA-Komplexen ihre Anwendung finden und kann somit durch die effektive Gewin-nung objektiver Daten in großer Menge zur St{\"u}tzung des Modells beitragen.}, subject = {DNS-Reparatur}, language = {de} } @phdthesis{Bangalore2022, author = {Bangalore, Disha Mohan}, title = {Mechanistic studies of protein-DNA interactions by single molecule atomic force microscopy}, doi = {10.25972/OPUS-25204}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-252047}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {Protein-DNA interactions are central to many biological processes and form the bedrock of gene transcription, DNA replication, and DNA repair processes. Many proteins recognize specific sequences in DNA- a restriction enzyme must only cut at the correct sequence and a transcription factor should bind at its consensus sequence. Some proteins are designed to bind to specific structural or chemical features in DNA, such as DNA repair proteins and some DNA modifying enzymes. Target-specific DNA binding proteins initially bind to non-specific DNA and then search for their target sites through different types of diffusion mechanisms. Atomic force microscopy (AFM) is a single-molecule technique that is specifically well-suited to resolve the distinct states of target-specific as well as nonspecific protein-DNA interactions that are vital for a deeper insight into the target site search mechanisms of these enzymes. In this thesis, protein systems involved in epigenetic regulation, base excision repair (BER), and transcription are investigated by single-molecule AFM analyses complemented by biochemical and biophysical experiments. The first chapter of this thesis narrates the establishment of a novel, user-unbiased MatLab-based tool for automated DNA bend angle measurements on AFM data. This tool has then been employed to study the initial lesion detection step of several DNA glycosylases. These results promoted a model describing the altered plasticities of DNA at the target lesions of DNA glycosylases as the fundamental mechanism for their enhanced efficiency of lesion detection. In the second chapter of this thesis, the novel automated tool has been further extended to provide protein binding positions on the DNA along with corresponding DNA bend angles and applied to the study of DNMT3A DNA methyltransferase. These AFM studies revealed preferential co-methylation at specific, defined distances between two CpG sites by the enzyme and when combined with biochemical analyses and structural modelling supported novel modes of CpG co-methylation by DNMT3A. In the third chapter of this thesis, the role of 8-oxo-guanine glycosylase (hOGG1) in Myc-mediated transcription initiation has been investigated. AFM analyses revealed that in the presence of oxidative damage in DNA, Myc is recruited to its target site (E-box) by hOGG1 through direct protein-protein interactions, specifically under oxidizing conditions. Intriguingly, oxidation of hOGG1 was further observed to result in dimerization of hOGG1, which may also play a role in the mechanism of transcription regulation by hOGG1 under oxidative stress.}, subject = {Transcription}, language = {en} } @phdthesis{Schubert2021, author = {Schubert, Jonathan}, title = {Bildgebende Zweifarben-Einzelmolek{\"u}l-PET-Fluoreszenzspektroskopie am molekularen Chaperon Hsp90}, doi = {10.25972/OPUS-24493}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-244938}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Im Forschungsfeld der Proteindynamik h{\"a}ufen sich in den letzten Jahren Untersuchungen an einzelnen Molek{\"u}len. Damit k{\"o}nnen molekulare Ereignisse, die in konventioneller Spektroskopie durch stochastische Prozesse unentdeckt bleiben, durch direkte Beobachtung identifiziert und analysiert werden, was zu tieferem mechanistischem Verst{\"a}ndnis des untersuchten Systems beitragen kann. Die Implikation des molekularen Chaperons Hsp90 in die korrekte Faltung und Aktivierung einer Vielzahl davon abh{\"a}ngiger Klientenproteine machen es zu einem zentralen Knotenpunkt der zellul{\"a}ren Proteinhom{\"o}ostase, allerdings ist der Mechanismus seiner breiten Klientenerkennung und -prozessierung bisher nur l{\"u}ckenhaft untersucht. Mit der Erkenntnis, dass Hsp90 ATP abh{\"a}ngig große, ratenlimitierende Umstrukturierungen erf{\"a}hrt, wurden Reportersysteme entwickelt, die auf dem F{\"o}rster-Resonanzenergietransfer mit einer r{\"a}umlichen Aufl{\"o}sung von ca. 2-10 nm basieren. Diese dokumentieren einen Klammerschluss des Chaperons und prognostizieren einen intermediatbbasierten Konformations-Zyklus. Details {\"u}ber den Mechanismus der Umstrukturierungen wurden mit der Entwicklung von Reportersystemen ermittelt, die auf dem photoinduzierten Elektronentransfer zwischen der Aminos{\"a}ure Tryptophan und einem organischen Farbstoff basieren. Die Technik beruht auf kontaktinduzierter Fluoreszenzl{\"o}schung und damit verbundenen digitalen Intensit{\"a}ts{\"u}berg{\"a}ngen, dabei erm{\"o}glicht die r{\"a}umliche Sensitivit{\"a}t von < 1 nm die Beobachtung von lokalen Umstrukturierungen. In Hsp90 wurden damit mittels konventioneller Spektroskopie drei kritische lokale Umlagerungen untersucht und daraus ein Modell mit heterogenen apo-Konformationen sowie ein kooperativer Konformationszyklus abgeleitet, der dem intermediatbasierten Modell gegen{\"u}bersteht. Im Rahmen dieser Dissertation wurde anhand des Hsp90-Chaperons eine Methode entwickelt, die eine bildgebende PET Fluoreszenzspektroskopie von mehreren Umstrukturierungen gleichzeitig an einzelnen Molek{\"u}len erlaubt. Ein umfangreiches Farbstoffscreening f{\"u}hrte zur Identifizierung eines Farbstoffpaars, das die PET-basierte simultane Aufzeichnung zweier Konformations-Koordinaten erm{\"o}glicht. {\"U}ber verschiedene Modifikationen des Chaperons konnten einzelmolek{\"u}ltaugliche Oberfl{\"a}chen hergestellt werden, auf denen zweifach markierte Hsp90-Proteine immobilisiert sind. Fluoreszenzintensit{\"a}tszeitspuren einzelner Chaperone und entsprechende Kontrollkonstrukte best{\"a}tigen qualitativ den Erfolg der Methode, f{\"u}r die quantitative Analyse wurde eine Routine in der Programmiersprache Python entwickelt, mit welcher kinetische Informationen ermittelt werden konnten. Diese legen eine enge wechselseitige Abh{\"a}ngigkeit der drei lokalen Elemente nahe, wobei der Großteil der Konformations{\"u}berg{\"a}nge zweier simultan aufgezeichneter Umstrukturierungen Synchronit{\"a}t innerhalb von zwei Sekunden zeigt. Im Vergleich zur Hydrolyse von einem ATP in mehreren Minuten deutet das auf eine enge Kopplung hin. Weiter konnte eine Beschleunigung der Dynamiken durch aromatische Modifikation des N-Terminus von Hsp90 beobachtet werden, zudem erlaubt der Einzelmolek{\"u}lansatz die Verwendung des nativen Nukleotids ATP, wodurch auch die lokalen {\"O}ffnungsdynamiken zug{\"a}nglich werden. Die zur Bestimmung der Zeitkonstanten durchgef{\"u}hrte Analyse unterst{\"u}tzt die Ansicht heterogener apo-Zust{\"a}nde und einer einheitlich geschlossenen Konformation. Die bildgebende Zweifarben-Einzelmolek{\"u}l-PET-Spektroskopie konnte insgesamt zu einem Komplement der Einzelmolek{\"u}l-FRET-Spektroskopie entwickelt werden, um damit lokale Konformationsdynamiken zu untersuchen. Der bildgebende Ansatz erlaubt eine einfache Implementierung in einen experimentellen Einzelmolek{\"u}l-FRET Aufbau bei gleichzeitiger Erweiterung der beobachteten Koordinaten und wird so zu einem breit anwendbaren Werkzeug multidimensionaler Dynamikuntersuchungen einzelner Proteine.}, subject = {Fluoreszenzspektroskopie}, language = {de} }