TY - THES A1 - Krüger, Beate T1 - Integration und Kombination bioinformatischer Methoden in Biotechnologie, synthetischer Biologie und Pharmaindustrie T1 - Intgration and combination of bioinformatical methods in biotechnology, synthetic biology and pharmaceutical industry N2 - Die Bioinformatik ist eine interdisziplinäre Wissenschaft, welche Probleme aus allen Lebenswissenschaften mit Hilfe computergestützter Methoden bearbeitet. Ihr Ziel ist es, die Verarbeitung und Interpretation großer Datenmengen zu ermöglichen. Zudem unterstützt sie den Designprozess von Experimenten in der Synthetischen Biologie. Die synthetische Biologie beschäftigt sich mit der Generierung neuer Komponenten und deren Eigenschaften, welche durch die Behandlung und Manipulation lebender Organismen oder Teilen daraus entstehen. Ein besonders interessantes Themengebiet hierbei sind Zweikomponenten-Systeme (Two-Component System, TCS). TCS sind wichtige Signalkaskaden in Bakterien, welche in der Lage sind Informationen aus der Umgebung in eine Zelle zu übertragen und darauf zu reagieren. Die vorliegende Dissertation beschäftigt sich mit der Beurteilung, Nutzung und Weiterentwicklung von bioinformatischen Methoden zur Untersuchung von Proteininteraktionen und biologischen Systemen. Der wissenschaftliche Beitrag der vorliegenden Arbeit kann in drei Aspekte unterteilt werden: - Untersuchung und Beurteilung von bioinformatischen Methoden und Weiterführung der Ergebnisse aus der vorhergehenden Diplomarbeit zum Thema Protein-Protein-Interaktionsvorhersagen. - Analyse genereller evolutionärer Modifikationsmöglichkeiten von TCS sowie deren Design und spezifische Unterschiede. - Abstraktion bzw. Transfer der gewonnenen Erkenntnisse auf technische und biologische Zusammenhänge. Mit dem Ziel das Design neuer Experimente in der synthetischen Biologie zu vereinfachen und die Vergleichbarkeit von technischen und biologischen Prozessen sowie zwischen Organismen zu ermöglichen. Das Ergebnis der durchgeführten Studie zeigte, dass Zweikomponenten-Systeme in ihrem Aufbau sehr konserviert sind. Nichtsdestotrotz konnten viele spezifische Eigenschaften und drei generelle Modifikationsmöglichkeiten entdeckt werden. Die Untersuchungen ermöglichten die Identifikation neuer Promotorstellen, erlaubten aber auch die Beschreibung der Beschaffenheit unterschiedlicher Signalbindestellen. Zudem konnten bisher fehlende Komponenten aus TCS entdeckt werden, ebenso wie neue divergierte TCS-Domänen im Organismus Mycoplasma. Eine Kombination aus technischen Ansätzen und synthetischer Biologie vereinfachte die gezielte Manipulation von TCS oder anderen modularen Systemen. Die Etablierung der vorgestellten zweistufigen Modul-Klassifikation ermöglichte eine effizientere Analyse modular aufgebauter Prozesse und erlaubte somit das molekulare Design synthetischer, biologischer Anwendungen. Zur einfachen Nutzung dieses Ansatzes wurde eine frei zugängliche Software GoSynthetic entwickelt. Konkrete Beispiele demonstrierten die praktische Anwendbarkeit dieser Analysesoftware. Die vorgestellte Klassifikation der synthetisch-biologischen und technischen Einheiten soll die Planung zukünftiger Designexperimente vereinfachen und neue Wege für sinnverwandte Bereiche aufzeigen. Es ist nicht die Hauptaufgabe der Bioinformatik, Experimente zu ersetzen, sondern resultierende große Datenmengen sinnvoll und effizient auszuwerten. Daraus sollen neue Ideen für weitere Analysen und alternative Anwendungen gewonnen werden, um fehlerhafte oder falsche Ansätze frühzeitig zu erkennen. Die Bioinformatik bietet moderne, technische Verfahren, um vertraute, aber oft mühsame experimentelle Wege durch neue, vielversprechende Ansätze zur Datenstrukturierung und Auswertung großer Datenmengen zu ergänzen. Neue Sichtweisen werden durch die Erleichterung des Testprozederes gefördert. Die resultierende Zeitersparnis führt zudem zu einer Kostenreduktion. N2 - The field of Bioinformatics is an interdisciplinary science focusing on the application of computer science to solve problems in different areas of life sciences. Its scope is to handle and interpret an immense quantity of data and to support computer-aided design approaches of synthetic biological experiments. Synthetic biology deals with the generation of new components and biological characteristics created by manipulation of living organisms or parts of them. Of particular interest are two-component systems (TCS). TCS describe simple and important signalling cascades in bacteria which transfer information from the environment into the cell as a reaction to changes in the environment. The present thesis is focused on the assessment, applicability and enhancement of bioinformatical methods in order to facilitate analysis of protein interactions and biological systems. The scientific efforts within the thesis can be divided into three aspects: - Analysis and assessment of bioinformatical methods and enhancement of results from the preceding diploma thesis dealing with protein-protein interaction predictions. - Analysis of general evolutionary modification possibilities within TCS as well as specific differences and design for the identification of a common approach. - Abstraction and transfer of the results to technical and biological contexts in order to simplify synthetic biological design experiments. Establishment of comparable vocabulary for both, technical and biological processes as well as different organisms. The outcome of this thesis revealed that TCS structure is very conserved but that it nevertheless contained some very specific characteristics. New promotor sites were discovered whilst additionally allowing the analysis of the signal binding sites. Missing elements from known TCS could be discovered and a completely new diverged TCS domain in the organism Mycoplasma could be identified as well as three general modification possibilities for TCS. The combination between technological approaches and synthetic biology simplifies the systematic manipulation of TCS or other modular systems. The established two-staged module classification simplifies the analysis of modular processes and thereby the molecular design of synthetical-biological questions. Concrete examples showed the functionality and usefulness of the classification. A freely accessible software GoSynthetic provided easy access and application of the developed toolbox. Not only new concrete scientific findings were provided by the given thesis but also a general approach to identify and analyse TCS and even to create similar analytic procedures. The established classification of biological and technical modules will ease the design of future experiments and reveals new pportunities applicable to similar scientific areas. It is not the task of Bioinformatics to replace experiments but to analyse the resulting huge amounts of data meaningfully and efficiently. Hence, new ideas for further analysis and alternative cases need to be generated which may finally help to identify erroneous approaches earlier. Bioinformatics offers modern technical methods to amend familiar and sometimes exhausting experimental procedures with promising new approaches for data structuring and analysis of immense quantities of data. New perceptions are encouraged and speedier progress is possible without increasing the experimental coasts. KW - Biotechnologie KW - Synthetische Biologie KW - Bioinformatik KW - Vaccinia-Virus KW - Zweikomponentensystem KW - Zweikomponenten-System KW - Pharmazeutische Industrie KW - biotechnology KW - synthetic biology KW - bioinformatic KW - two-component system KW - vaccinia virus KW - gene ontology Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-70702 ER - TY - JOUR A1 - Krueger, Beate A1 - Friedrich, Torben A1 - Förster, Frank A1 - Bernhardt, Jörg A1 - Gross, Roy A1 - Dandekar, Thomas T1 - Different evolutionary modifications as a guide to rewire two-component systems JF - Bioinformatics and Biology Insights N2 - Two-component systems (TCS) are short signalling pathways generally occurring in prokaryotes. They frequently regulate prokaryotic stimulus responses and thus are also of interest for engineering in biotechnology and synthetic biology. The aim of this study is to better understand and describe rewiring of TCS while investigating different evolutionary scenarios. Based on large-scale screens of TCS in different organisms, this study gives detailed data, concrete alignments, and structure analysis on three general modification scenarios, where TCS were rewired for new responses and functions: (i) exchanges in the sequence within single TCS domains, (ii) exchange of whole TCS domains; (iii) addition of new components modulating TCS function. As a result, the replacement of stimulus and promotor cassettes to rewire TCS is well defined exploiting the alignments given here. The diverged TCS examples are non-trivial and the design is challenging. Designed connector proteins may also be useful to modify TCS in selected cases. KW - histidine kinase KW - connector KW - Mycoplasma KW - engineering KW - promoter KW - sensor KW - response regulator KW - synthetic biology KW - sequence alignment Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-123647 N1 - This is an open access article. Unrestricted non-commercial use is permitted provided the original work is properly cited. VL - 6 ER - TY - JOUR A1 - Bencurova, Elena A1 - Akash, Aman A1 - Dobson, Renwick C.J. A1 - Dandekar, Thomas T1 - DNA storage-from natural biology to synthetic biology JF - Computational and Structural Biotechnology Journal N2 - Natural DNA storage allows cellular differentiation, evolution, the growth of our children and controls all our ecosystems. Here, we discuss the fundamental aspects of DNA storage and recent advances in this field, with special emphasis on natural processes and solutions that can be exploited. We point out new ways of efficient DNA and nucleotide storage that are inspired by nature. Within a few years DNA-based information storage may become an attractive and natural complementation to current electronic data storage systems. We discuss rapid and directed access (e.g. DNA elements such as promotors, enhancers), regulatory signals and modulation (e.g. lncRNA) as well as integrated high-density storage and processing modules (e.g. chromosomal territories). There is pragmatic DNA storage for use in biotechnology and human genetics. We examine DNA storage as an approach for synthetic biology (e.g. light-controlled nucleotide processing enzymes). The natural polymers of DNA and RNA offer much for direct storage operations (read-in, read-out, access control). The inbuilt parallelism (many molecules at many places working at the same time) is important for fast processing of information. Using biology concepts from chromosomal storage, nucleic acid processing as well as polymer material sciences such as electronical effects in enzymes, graphene, nanocellulose up to DNA macramé , DNA wires and DNA-based aptamer field effect transistors will open up new applications gradually replacing classical information storage methods in ever more areas over time (decades). KW - DNA KW - RNA KW - data storage KW - natural processing KW - synthetic biology Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349971 SN - 2001-0370 VL - 21 ER -