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To enhance the biological effects of radiation damage in cancerous cells, we present an alternative approach to the use of gold nanoparticles (AuNP), focusing on the synthesis and characterization of highly monodisperse, spherical radioactive gold nanoparticles 198AuNP. The size of the AuNP size was optimized with the help of Geant4/TOPAS particle scattering simulations, and energy deposition per nm3 per decay for varying radii (2–10 nm) was evaluated. This work is the foundation for ongoing experimental work to evaluate cell death induced by 198AuNP which aims for the use of radioactive gold nanoparticles in cancer treatment.
Dose enhancement by gold nanoparticles (AuNP) increases the biological effectiveness of radiation damage in biomolecules and tissue. To apply them effectively during cancer therapy their influence on the locally delivered dose has to be determined.[1] Hereby, the AuNP locations strongly influence the energy deposit in the nucleus, mitochondria, membrane and the cytosol of the targeted cells. To estimate these effects, particle scattering simulations are applied. In general, different approaches for modeling the AuNP and their distribution within the cell are possible. In this work, two newly developed continuous and discrete-geometric models for simulations of AuNP in cells are presented. [2] These models are applicable to simulations of internal emitters and external radiation sources. Most of the current studies on AuNP focus on external beam therapy. In contrast, we apply the presented models in Monte-Carlo particle scattering simulations to characterize the energy deposit in cell organelles by radioactive 198AuNP. They emit beta and gamma rays and are therefore considered for applications with solid tumors. Differences in local dose enhancement between randomly distributed and nucleus targeted nanoparticles are compared. Hereby nucleus targeted nanoparticels showed a strong local dose enhancement in the radio sensitive nucleus. These results are the foundation for ongoing experimental work which aims to obtain a mechanistic understanding of cell death induced by radioactive 198Au.
X-ray photoelectron-spectroscopy (XPS) allows simultaneous irradiation and damage monitoring. Although water radiolysis is essential for radiation damage, all previous XPS studies were performed in vacuum. Here we present near-ambient-pressure XPS experiments to directly measure DNA damage under water atmosphere. They permit in-situ monitoring of the effects of radicals on fully hydrated double-stranded DNA. Our results allow us to distinguish direct damage, by photons and secondary low-energy electrons (LEE), from damage by hydroxyl radicals or hydration induced modifications of damage pathways. The exposure of dry DNA to x-rays leads to strand-breaks at the sugar-phosphate backbone, while deoxyribose and nucleobases are less affected. In contrast, a strong increase of DNA damage is observed in water, where OH-radicals are produced. In consequence, base damage and base release become predominant, even though the number of strand-breaks increases further.
The change of DNA radiation damage upon hydration: In-situ observations by near-ambient-pressure XPS
(2023)
Ionizing radiation damage to DNA plays a fundamental role in cancer therapy. X-ray photoelectron-spectroscopy (XPS) allows simultaneous irradiation and damage monitoring. Although water radiolysis is essential for radiation damage, all previous XPS studies were performed in vacuum. Here we present near-ambient-pressure XPS experiments to directly measure DNA damage under water atmosphere. They permit in-situ monitoring of the effects of radicals on fully hydrated double-stranded DNA. The results allow us to distinguish direct damage, by photons and secondary low-energy electrons (LEE), from damage by hydroxyl radicals or hydration induced modifications of damage pathways. The exposure of dry DNA to x-rays leads to strand-breaks at the sugar-phosphate backbone, while deoxyribose and nucleobases are less affected. In contrast, a strong increase of DNA damage is observed in water, where OH-radicals are produced. In consequence, base damage and base release become predominant, even though the number of strand-breaks increases further.
In the last years, secondary low-energy electrons (LEE) emerged as important, if not predominant, reductive pathway in ionizing damage of biomolecules. These electrons are created in copious amount as result of inelastic scattering of high energy radiation at water. Until now, all experiments the quantification of the effects of LEEs on the biomolecular damage was either performed in vacuum with LEE sources or with DNA on surfaces in humid atmosphere.
We present a new experimental setup to irradiate biomolecules with electrons under physiological conditions. In combination with monte carlo simulations this setup makes it possible to determine microdosimetric quantities for biomolecules in liquid environment under electron irradiation.
This opens up new possibilities in radiation research to access the LEE damage under well defined physiological condition, for more complex systems, such as DNA-Protein complexes and even living cells.
We report on a study in which plasmid DNA in water was irradiated with 30 keV electrons generated by a scanning electron microscope and passed through a 100 nm thick Si3N4 membrane. The corresponding Monte Carlo simulations suggest that the kinetic energy spectrum of the electrons throughout the water is dominated by low energy electrons (<100 eV). The DNA radiation damage, single-strand breaks (SSB) and double-strand breaks (DSB), was determined by electrophoresis. The median lethal dose of D1/2 = 1.7 ± 0.3 Gy was found to be much smaller compared to partially or fully hydrated DNA irradiated under vacuum conditions. The ratio of DSB to SSB was found to be (1:12) as compared to 1:88) found for hydrated DNA. Our method enables quantitative measurements of radiation damage to biomolecules (DNA, proteins) in solutions under varying conditions (pH, salinity, cosolutes) for an electron energy range which is difficult to probe by standard methods.
Quantifizierung der Schädigung von DNA in wässriger Lösung unter direkter Elektronenbestrahlung
(2018)
Bei der Behandlung von Krebs wird Strahlentherapie zur Zerstörung von Tumorzellen eingesetzt. Der zugrunde liegende Wirkmechanismus ist die durch ionisierende Strahlung verursachte Schädigung an Biomolekülen. Dabei kommt den Schädigungsprozessen an DNA aufgrund ihrer zentralen Rolle in Mutation und Zelltod eine besondere Bedeutung zu. Durch den hohen Wasseranteil in menschlichen Zellen findet ein Großteil der inelastischen Streuprozesse an Wassermolekülen statt und führt zur deren Radiolyse. Die so entstehenden Radiolyseprodukte sind für einen Großteil des Schadens an DNA verantwortlich. Ein detailliertes Verständnis der zugrunde liegenden molekularen Interaktion ist die Voraussetzung um effizientere Therapien zu entwickeln.
Ziel dieser Arbeit ist es, die Schädigung von DNA durch ionisierende Strahlung in Abhängigkeit der inelastischen Streuevents und des Energieeintrags innerhalb des biologisch relevanten mikroskopischen Treffervolumens zu quantifizieren. Die Bestrahlungen müssen dazu in Flüssigkeit, unter Berücksichtigung der chemischen Umgebung durchgeführt werden, welche die indirekten Schäden vermittelt. Deshalb wurde eine neuartige Kombination aus Experiment und Monte- Carlo-Simulationen entworfen und angewandt. Um Elektronenbestrahlung flüssiger Lösungen innerhalb eines Rasterelektronenmikroskops zu ermöglichen, wurde ein Probenhalter mit einer für Elektronen durchlässigen Nanomembran entwickelt. So können Bestrahlungen an DNA,
Proteinen, und Zellen bei verschiedenen pH-Werten, Salzkonzentrationen oder in Anwesenheit von Kosoluten durchgeführt werden. Für ein Modellsystem aus Plasmid-DNA in Wasser wurde damit die mittlere letale Dosis aus der Kombination der experimentellen Daten, Partikelstreusimulationen (Geant4-DNA) und Diffusionsberechnungen zu D1/2 = 1.7 ± 0.3 Gy bestimmt. Aus der Konvolution der Plasmidpositionen mit dem durch Elektronenstreusimulationen bestimmten ortsaufgelösten Energieeintrag wurde dessen Häufigkeitsverteilung im Targetvolumen der
Plasmide sowie der mittlere mikroskopische letale Energieeintrag berechnet als E1/2 = 6 ± 4 eV .
Es wurde gefolgert, dass weniger als zwei Ionisationsprozesse im sensitiven Targetvolumen der DNA im Mittel zu einem Einzelstrangbruch führen. Das für mikrodosimetrische Modellierungen wichtige Verhältnis von Einzelstrangbrüchen (SSB) zu Doppelstrangbrüchen (DSB) wurde als SSB : DSB = 12 : 1 bestimmt. Die vorgestellte Methode zur Bestimmung mikroskopischer Schaden-Dosis Relationen wurde auf weitere Klassen von Bestrahlungsexperimenten verallgemeinert. Dadurch ist die Methode unabhängig von der verwandten Primärstrahlung, der Probengeometrie und den Diffusionseigenschaften der untersuchten Moleküle anwendbar. So wird eine Vergleichbarkeit experimenteller Systeme mit inhomogenen Energieverteilungen erreicht, die bei ausschließlicher Betrachtung makroskopischer, gemittelter Größen nicht gegeben ist.
Des weiteren wurden die Strahlenschutzfunktionen des kompatiblen Soluts Ectoine und sein Einfluss auf Wasser und Biomoleküle untersucht. Mittels Ramanspektroskopie wurde ein kon-zentrationsabhängiger Anstieg des Anteils der Kollektivmoden des Wassers der OH-Streckschwingungen und dessen Unabhängigkeit von der Natriumchloridkonzentration beobachtet.
Molekulardynamik-Simulationen zeigten, dass die zwitterionischen Eigenschaften zur Bildung einer half-chair Konformation Ectoines führen. Die Wasserstoffbrückenbindungen in der ersten Hydrationshülle sind signifikant stabiler und besitzen höhere Lebensdauern als das Bulk-Wasser. Bestrahlung von DNA in Anwesenheit von 1 M Ectoine führt zu einer Erhöhung der Überlebensrate um den Faktor 1,41. Die Schutzfunktion wurde auf die Erhöhung des Streuquerschnitts niederenergetischer Elektronen an den akustischen Vibrationsmoden des Wasser durch Ectoine und seine Wirkung als OH-Radikalfänger zurückgeführt. Dies wurde mittels Ramanspektroskopie und Elektronenspinresonanzmessungen (ESR) nachgewiesen.
The quantification of radiation induced damage to DNA in aqueous en-
vironment is of fundamental interest for dosimetry and its application
in radiation-therapy and protection. We present a combined experi-
mental and simulational approach to quantify and compare radiation
induced damage to biomolecules in liquid environment for a wide range
of primary radiation sources e. g. photons, electrons or ions and tar-
gets, such as DNA, proteins or cells.[1] To show its viability, we will
apply this method to an experimentally challenging systems, the di-
rect irradiation of plasmid DNA (pUC19) in water with electrons as
primary particles. Here we combine Geant4 electron-scattering simula-
tions with calculations concerning the diffusion and convection induced
movement of the biomolecules, within a coarse-grained model of the
irradiated liquid. Additionally a microscopic target model for the plas-
mid DNA based on the relation of lineal energy and radiation quality
is used to calculate the effective target volume.
Universität Berlin Radiation damage to biomolecules such as DNA, is the reason to treat cancer via radiation therapy. The understanding of the molecular processes and the quantification of the underlying damaging mechanisms is necessary to develope more efficient irradiation protocols for cancer therapy. Thereby damage to DNA is of key interest due to its central role in reproduction and mutation. Due to the high amount of water in biological tissue, most of the damage is caused by the secondary particles which are produced by the interaction of ionizing radiation with water. Thereby a multitude of species are produced, e.g. kinetic low energy electrons, prehydrated electrons, OH-radicals and ions. The quantification of the contribution to DNA damage by the various species is of interest. Here we present an experimental approach to disentangle their relative DNA strand break yields. Plasmid DNA (pUC19 ) is irradiated in water with electrons under the presence of different scavengers. The presented preliminary results reveal the relative contributions of OH-radicals, low energy electrons and prehydrated electrons and their DNA single and double strand break yields.
The compatible solute and osmolyte ectoine is an effective protectant of biomolecules and whole cells against heating, freezing and high salinity. The protection of cells (human Keratinocytes) by ectoine against ultraviolet radiation was also reported by various authors, although the underlying mechanism is not yet understood. We present results on the irradiation of biomolecules (DNA) with ionizing radiation (high energy electrons) in fully aqueous environment in the presence of ectoine and high salt concentrations. The results demonstrate an effective radiation protection of DNA by ectoine against the induction of single strand breaks by ionizing radiation. The effect is explained by an increased in low-energy electron scattering at the enhanced free-vibrational density of states of water due to ectoine, as well as the action of ectoine as an OH-radical scavenger. This was demonstrated by Raman spectroscopy, electron paramagnetic resonance (EPR) and Monte-Carlo simulations (Geant4).