TY - JOUR A1 - Bald, Ilko A1 - Schürmann, Robin Mathis A1 - Ebel, Kenny A1 - Nicolas, Christophe A1 - Milosavljevic, Aleksandar R. T1 - Role of valence band states and plasmonic enhancement in electron-transfer-induced transformation of nitrothiophenol JF - The Journal of Physical Chemistry Letters N2 - Hot-electron-induced reactions are more and more recognized as a critical and ubiquitous reaction in heterogeneous catalysis. However, the kinetics of these reactions is still poorly understood, which is also due to the complexity of plasmonic nanostructures. We determined the reaction rates of the hot-electron-mediated reaction of 4-nitrothiophenol (NTP) on gold nanoparticles (AuNPs) using fractal kinetics as a function of the laser wavelength and compared them with the plasmonic enhancement of the system. The reaction rates can be only partially explained by the plasmonic response of the NPs. Hence, synchrotron X-ray photoelectron spectroscopy (XPS) measurements of isolated NTP-capped AuNP clusters have been performed for the first time. In this way, it was possible to determine the work function and the accessible valence band states of the NP systems. The results show that besides the plasmonic enhancement, the reaction rates are strongly influenced by the local density of the available electronic states of the system. Y1 - 2019 UR - https://pubs.acs.org/doi/10.1021/acs.jpclett.9b00848 U6 - https://doi.org/10.1021/acs.jpclett.9b00848 SN - 1948-7185 VL - 10 SP - 3153 EP - 3158 PB - American Chemical Society CY - Washington ER - TY - THES A1 - Ebel, Kenny T1 - Quantification of low-energy electron induced single and double strand breaks in well-defined DNA sequences using DNA origami nanostructures T1 - Quantifizierung von DNA Einzel- und Doppelstrangbrüchen definierter DNA Sequenzen induziert durch niederenergetische Elektronen unter Verwendung von DNA Origami Nanostrukturen N2 - Ionizing radiation is used in cancer radiation therapy to effectively damage the DNA of tumors leading to cell death and reduction of the tumor tissue. The main damage is due to generation of highly reactive secondary species such as low-energy electrons (LEE) with the most probable energy around 10 eV through ionization of water molecules in the cells. A simulation of the dose distribution in the patient is required to optimize the irradiation modality in cancer radiation therapy, which must be based on the fundamental physical processes of high-energy radiation with the tissue. In the present work the accurate quantification of DNA radiation damage in the form of absolute cross sections for LEE-induced DNA strand breaks (SBs) between 5 and 20 eV is done by using the DNA origami technique. This method is based on the analysis of well-defined DNA target sequences attached to DNA origami triangles with atomic force microscopy (AFM) on the single molecule level. The present work focuses on poly-adenine sequences (5'-d(A4), 5'-d(A8), 5'-d(A12), 5'-d(A16), and 5'- d(A20)) irradiated with 5.0, 7.0, 8.4, and 10 eV electrons. Independent of the DNA length, the strand break cross section shows a maximum around 7.0 eV electron energy for all investigated oligonucleotides confirming that strand breakage occurs through the initial formation of negative ion resonances. Additionally, DNA double strand breaks from a DNA hairpin 5'-d(CAC)4T(Bt-dT)T2(GTG)4 are examined for the first time and are compared with those of DNA single strands 5'-d(CAC)4 and 5'- d(GTG)4. The irradiation is made in the most likely energy range of 5 to 20 eV with an anionic resonance maximum around 10 eV independently of the DNA sequence. There is a clear difference between σSSB and σDSB of DNA single and double strands, where the strand break for ssDNA are always higher in all electron energies compared to dsDNA by the factor 3. A further part of this work deals with the characterization and analysis of new types of radiosensitizers used in chemoradiotherapy, which selectively increases the DNA damage upon radiation. Fluorinated DNA sequences with 2'-fluoro-2'-deoxycytidine (dFC) show an increased sensitivity at 7 and 10 eV compared to the unmodified DNA sequences by an enhancement factor between 2.1 and 2.5. In addition, light-induced oxidative damage of 5'-d(GTG)4 and 5'-d((CAC)4T(Bt-dT)T2(GTG)4) modified DNA origami triangles by singlet oxygen 1O2 generated from three photoexcited DNA groove binders [ANT994], [ANT1083] and [Cr(ddpd)2][BF4]3 illuminated in different experiments with UV-Vis light at 430, 435 and 530 nm wavelength is demonstrated. The singlet oxygen induced generation of DNA damage could be detected in both aqueous and dry environments for [ANT1083] and [Cr(ddpd)2][BF4]3. N2 - In der Radiotherapie wird ionisierende Strahlung verwendet, um die DNA in Tumorzellen wirksam zu schädigen. Der Hauptschaden ist auf die Erzeugung hochreaktiver Sekundärspezies wie niederenergetische Elektronen (LEE) durch Ionisierung von Wassermolekülen in den Zellen mit einer wahrscheinlichsten Energie um 10 eV zurückzuführen. Die Optimierung der Bestrahlungsmodalität in der Strahlentherapie beruht auf Simulationen der Dosisverteilung im menschlichen Körper, die auf fundamentale physikalische Prozesse zwischen hochenergetischer Strahlung mit dem Gewebe basieren. Die vorliegende Arbeit beschäftigt sich mit der exakten Quantifizierung von LEE-induzierten DNA-Strahlenschäden in Form von absoluten Wirkungsquerschnitten σSB für DNA-Strangbrüche (SBs) zwischen 5 und 20 eV mit Hilfe der DNA-Origami-Technik. Diese Methode verwendet wohl definierte DNA-Zielsequenzen gebunden an DNA-Origami Nanostrukturen, dessen Schädigung durch die Rasterkraftmikroskopie auf Einzelmolekülniveau untersucht werden kann. Ein großer Fokus liegt auf den Bestrahlungsexperimenten von Polyadeninsequenzen ((5'-d(A4), 5'-d(A8), 5'-d(A12), 5'-d(A16) und 5'-d(A20) unterschiedlicher Nukleotidanzahl) bestrahlt mit 5.0, 7.0, 8.4 und 10 eV Elektronen. Unabhängig von der DNA-Nukleotidlänge zeigen die Strangbruchquerschnitte für alle untersuchten Oligonukleotide ein Maximum um 7.0 eV Elektronenenergie. Diese DNA-Strangbrüche sind durch die anfängliche Bildung negativer Ionenresonanzen bedingt. Zusätzlich werden erstmals Wirkungsquerschnitte für DNA-Doppelstrangbrüche σDSB spezifischer Sequenz (5'- d(CAC)4T(Bt-dT)T2(GTG)4) ermittelt und mit den Wirkungsquerschnitten von DNA-Einzelstrangbrüchen σSSB (5'- d(CAC)4 und 5'-d(GTG)4) verglichen. Die Bestrahlungen erfolgen im Energiebereich von 5 bis 20 eV mit einem anionischen Resonanzmaximum um 10 eV unabhängig von der DNA-Sequenz. Es wird ein deutlicher Unterschied zwischen σSSB und σDSB von DNA-Einzel- und Doppelstrangbrüchen im Verhältnis von 3 zu 1 erhalten. Des Weiteren befasst sich ein großer Forschungsbereich in der Radiochemotherapie mit der Charakterisierung und Analyse neuer Radiosensibilisatoren, die den DNA-Schaden bei Bestrahlung selektiv erhöhen können. Dafür werden DNA-Sequenzen mit 2'-Fluor-2'-desoxycytidin (dFC) modifiziert, die eine erhöhte Empfindlichkeit mit einem Verstärkungsfaktor zwischen 2.1 und 2.5 bei 7 und 10 eV im Vergleich zu den nicht modifizierten DNA-Sequenzen zeigen. Außerdem können mit der DNA-Origami-Technik lichtinduzierte oxidative DNA-Schädigungen von 5'-d(GTG)4 und 5'- d(CAC)4T(Bt-dT)T2(GTG)4 durch hochreaktivem Singulett-Sauerstoff 1O2 untersucht werden. Der Singulett-Sauerstoff wird durch photoaktive DNA-Binder [ANT994], [ANT1083] und [Cr(ddpd)2][BF4]3 mit UV-Vis Licht bei Wellenlängen von 430, 435 und 530 nm gebildet, die sich auf den DNA-Origami Nanostrukturen nahe den Zielsequenzen zufällig binden. Die Erzeugung von DNA-Schäden konnte sowohl in wässriger als auch in kondensierter Umgebung durch [ANT1083] und [Cr(ddpd)2][BF4]3 nachgewiesen werden. KW - DNA damage KW - single strand break KW - double strand break KW - ionizing radiation KW - low-energy electrons KW - DNA origami KW - DNA origami KW - Einzelstrangbruch KW - Doppelstrangbruch KW - niederenergetische Elektronen KW - DNA Schädigung KW - ionisierende Strahlung Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-504499 ER - TY - JOUR A1 - Ebel, Kenny A1 - Bald, Ilko T1 - Length and Energy Dependence of Low-Energy Electron-Induced Strand Breaks in Poly(A) DNA JF - International Journal of Molecular Sciences N2 - The DNA in living cells can be effectively damaged by high-energy radiation, which can lead to cell death. Through the ionization of water molecules, highly reactive secondary species such as low-energy electrons (LEEs) with the most probable energy around 10 eV are generated, which are able to induce DNA strand breaks via dissociative electron attachment. Absolute DNA strand break cross sections of specific DNA sequences can be efficiently determined using DNA origami nanostructures as platforms exposing the target sequences towards LEEs. In this paper, we systematically study the effect of the oligonucleotide length on the strand break cross section at various irradiation energies. The present work focuses on poly-adenine sequences (d(A₄), d(A₈), d(A₁₂), d(A₁₆), and d(A₂₀)) irradiated with 5.0, 7.0, 8.4, and 10 eV electrons. Independent of the DNA length, the strand break cross section shows a maximum around 7.0 eV electron energy for all investigated oligonucleotides confirming that strand breakage occurs through the initial formation of negative ion resonances. When going from d(A₄) to d(A₁₆), the strand break cross section increases with oligonucleotide length, but only at 7.0 and 8.4 eV, i.e., close to the maximum of the negative ion resonance, the increase in the strand break cross section with the length is similar to the increase of an estimated geometrical cross section. For d(A₂₀), a markedly lower DNA strand break cross section is observed for all electron energies, which is tentatively ascribed to a conformational change of the dA₂₀ sequence. The results indicate that, although there is a general length dependence of strand break cross sections, individual nucleotides do not contribute independently of the absolute strand break cross section of the whole DNA strand. The absolute quantification of sequence specific strand breaks will help develop a more accurate molecular level understanding of radiation induced DNA damage, which can then be used for optimized risk estimates in cancer radiation therapy. KW - DNA origami KW - DNA radiation damage KW - DNA strand breaks KW - low-energy electrons KW - sequence dependence Y1 - 2019 U6 - https://doi.org/10.3390/ijms21010111 SN - 1422-0067 VL - 21 IS - 1 PB - Molecular Diversity Preservation International CY - Basel ER - TY - JOUR A1 - Ebel, Kenny A1 - Bald, Ilko T1 - Low-energy (5-20 eV) electron-induced single and double strand breaks in well-defined DNA sequences JF - The journal of physical chemistry letters / American Chemical Society N2 - Ionizing radiation is used in cancer radiation therapy to effectively damage the DNA of tumors. The main damage is due to generation of highly reactive secondary species such as low-energy electrons (LEEs). The accurate quantification of DNA radiation damage of well-defined DNA target sequences in terms of absolute cross sections for LEE-induced DNA strand breaks is possible by the DNA origami technique; however, to date, it is possible only for DNA single strands. In the present work DNA double strand breaks in the DNA sequence 5'-d(CAC)(4)/5'd(GTG)(4) are compared with DNA single strand breaks in the oligonucleotides 5'-d(CAC)(4) and 5'-d(GTG)(4) upon irradiation with LEEs in the energy range from 5 to 20 eV. A maximum of strand break cross section was found around 7 and 10 eV independent of the DNA sequence, indicating that dissociative electron attachment is the underlying mechanism of strand breakage and confirming previous studies using plasmid DNA. Y1 - 2022 U6 - https://doi.org/10.1021/acs.jpclett.2c00684 SN - 1948-7185 VL - 13 IS - 22 SP - 4871 EP - 4876 PB - American Chemical Society CY - Washington ER - TY - GEN A1 - Ebel, Kenny A1 - Bald, Ilko T1 - Length and Energy Dependence of Low-Energy Electron-Induced Strand Breaks in Poly(A) DNA T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The DNA in living cells can be effectively damaged by high-energy radiation, which can lead to cell death. Through the ionization of water molecules, highly reactive secondary species such as low-energy electrons (LEEs) with the most probable energy around 10 eV are generated, which are able to induce DNA strand breaks via dissociative electron attachment. Absolute DNA strand break cross sections of specific DNA sequences can be efficiently determined using DNA origami nanostructures as platforms exposing the target sequences towards LEEs. In this paper, we systematically study the effect of the oligonucleotide length on the strand break cross section at various irradiation energies. The present work focuses on poly-adenine sequences (d(A₄), d(A₈), d(A₁₂), d(A₁₆), and d(A₂₀)) irradiated with 5.0, 7.0, 8.4, and 10 eV electrons. Independent of the DNA length, the strand break cross section shows a maximum around 7.0 eV electron energy for all investigated oligonucleotides confirming that strand breakage occurs through the initial formation of negative ion resonances. When going from d(A₄) to d(A₁₆), the strand break cross section increases with oligonucleotide length, but only at 7.0 and 8.4 eV, i.e., close to the maximum of the negative ion resonance, the increase in the strand break cross section with the length is similar to the increase of an estimated geometrical cross section. For d(A₂₀), a markedly lower DNA strand break cross section is observed for all electron energies, which is tentatively ascribed to a conformational change of the dA₂₀ sequence. The results indicate that, although there is a general length dependence of strand break cross sections, individual nucleotides do not contribute independently of the absolute strand break cross section of the whole DNA strand. The absolute quantification of sequence specific strand breaks will help develop a more accurate molecular level understanding of radiation induced DNA damage, which can then be used for optimized risk estimates in cancer radiation therapy. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 814 KW - DNA origami KW - DNA radiation damage KW - DNA strand breaks KW - low-energy electrons KW - sequence dependence Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-444125 SN - 1866-8372 IS - 814 ER - TY - JOUR A1 - Meiling, Till Thomas A1 - Schürmann, Robin Mathis A1 - Vogel, Stefanie A1 - Ebel, Kenny A1 - Nicolas, Christophe A1 - Milosavljevic, Aleksandar R. A1 - Bald, Ilko T1 - Photophysics and Chemistry of Nitrogen-Doped Carbon Nanodots with High Photoluminescence Quantum Yield JF - The journal of physical chemistry : C, Nanomaterials and interfaces N2 - Fluorescent carbon nanodots (CNDs) are very promising nanomaterials for a broad range of applications because of their high photostability, presumed selective luminescence, and low cost at which they can be produced. In this respect, CNDs are superior to well-established semiconductor quantum dots and organic dyes. However, reported synthesis protocols for CNDs typically lead to low photoluminescence quantum yield (PLQY) and low reproducibility, resulting in a poor understanding of the CND chemistry and photophysics. Here, we report a one-step synthesis of nitrogen-doped carbon nanodots (N-CNDs) from various carboxylic acids, Tris, and ethylenediaminetetraacetic acid resulting in high PLQY of up to 90%. The reaction conditions in terms of starting materials, temperature, and reaction time are carefully optimized and their influence on the photophysical properties is characterized. We find that citric acid-derived N-CNDs can result in a very high PLQY of 90%, but they do not show selective luminescence. By contrast, acetic acid-derived N-CNDs show selective luminescence but a PLQY of 50%. The chemical composition of the surface and core of these two selected N-CND types is characterized among others by high-resolution synchrotron X-ray photoelectron spectroscopy using single isolated N-CND clusters. The results indicate that photoexcitation occurs in the N-CND core, whereas the emission properties are determined by the N-CND surface groups. Y1 - 2018 U6 - https://doi.org/10.1021/acs.jpcc.8b00748 SN - 1932-7447 VL - 122 IS - 18 SP - 10217 EP - 10230 PB - American Chemical Society CY - Washington ER - TY - JOUR A1 - Rackwitz, Jenny A1 - Kopyra, Janina A1 - Dabkowska, Iwona A1 - Ebel, Kenny A1 - Rankovic, MiloS Lj. A1 - Milosavljevic, Aleksandar R. A1 - Bald, Ilko T1 - Sensitizing DNA Towards Low-Energy Electrons with 2-Fluoroadenine JF - Angewandte Chemie : a journal of the Gesellschaft Deutscher Chemiker ; International edition N2 - 2-Fluoroadenine ((2F)A) is a therapeutic agent, which is suggested for application in cancer radiotherapy. The molecular mechanism of DNA radiation damage can be ascribed to a significant extent to the action of low-energy (<20 eV) electrons (LEEs), which damage DNA by dissociative electron attachment. LEE induced reactions in (2F)A are characterized both isolated in the gas phase and in the condensed phase when it is incorporated into DNA. Information about negative ion resonances and anion-mediated fragmentation reactions is combined with an absolute quantification of DNA strand breaks in (2F)A-containing oligonucleotides upon irradiation with LEEs. The incorporation of (2F)A into DNA results in an enhanced strand breakage. The strand-break cross sections are clearly energy dependent, whereas the strand-break enhancements by (2F)A at 5.5, 10, and 15 eV are very similar. Thus, (2F)A can be considered an effective radiosensitizer operative at a wide range of electron energies. KW - ab initio calculations KW - dissociative electron attachment KW - DNA origami KW - DNA radiation damage KW - fludarabine Y1 - 2016 U6 - https://doi.org/10.1002/anie.201603464 SN - 1433-7851 SN - 1521-3773 VL - 55 SP - 10248 EP - 10252 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Schürmann, Robin Mathis A1 - Vogel, Stefanie A1 - Ebel, Kenny A1 - Bald, Ilko T1 - The physico-chemical basis of DNA radiosensitization BT - implications for cancer radiation therapy JF - Chemistry - a European journal N2 - High-energy radiation is used in combination with radiosensitizing therapeutics to treat cancer. The most common radiosensitizers are halogenated nucleosides and cisplatin derivatives, and recently also metal nanoparticles have been suggested as potential radiosensitizing agents. The radiosensitizing action of these compounds can at least partly be ascribed to an enhanced reactivity towards secondary low-energy electrons generated along the radiation track of the high-energy primary radiation, or to an additional emission of secondary reactive electrons close to the tumor tissue. This is referred to as physico-chemical radiosensitization. In this Concept article we present current experimental methods used to study fundamental processes of physico-chemical radiosensitization and discuss the most relevant classes of radiosensitizers. Open questions in the current discussions are identified and future directions outlined, which can lead to optimized treatment protocols or even novel therapeutic concepts. KW - cancer KW - dissociative electron attachment KW - low-energy electrons KW - radiation therapy KW - radiosensitizers Y1 - 2018 U6 - https://doi.org/10.1002/chem.201800804 SN - 0947-6539 SN - 1521-3765 VL - 24 IS - 41 SP - 10271 EP - 10279 PB - Wiley-VCH CY - Weinheim ER - TY - JOUR A1 - Schürmann, Robin A1 - Titov, Evgenii A1 - Ebel, Kenny A1 - Kogikoski Junior, Sergio A1 - Mostafa, Amr A1 - Saalfrank, Peter A1 - Milosavljević, Aleksandar R. A1 - Bald, Ilko T1 - The electronic structure of the metal-organic interface of isolated ligand coated gold nanoparticles JF - Nanoscale Advances N2 - Light induced electron transfer reactions of molecules on the surface of noble metal nanoparticles (NPs) depend significantly on the electronic properties of the metal-organic interface. Hybridized metal-molecule states and dipoles at the interface alter the work function and facilitate or hinder electron transfer between the NPs and ligand. X-ray photoelectron spectroscopy (XPS) measurements of isolated AuNPs coated with thiolated ligands in a vacuum have been performed as a function of photon energy, and the depth dependent information of the metal-organic interface has been obtained. The role of surface dipoles in the XPS measurements of isolated ligand coated NPs is discussed and the binding energy of the Au 4f states is shifted by around 0.8 eV in the outer atomic layers of 4-nitrothiophenol coated AuNPs, facilitating electron transport towards the molecules. Moreover, the influence of the interface dipole depends significantly on the adsorbed ligand molecules. The present study paves the way towards the engineering of the electronic properties of the nanoparticle surface, which is of utmost importance for the application of plasmonic nanoparticles in the fields of heterogeneous catalysis and solar energy conversion. Y1 - 2022 U6 - https://doi.org/10.1039/d1na00737h SN - 2516-0230 VL - 4 IS - 6 SP - 1599 EP - 1607 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Vogel, Stefanie A1 - Ebel, Kenny A1 - Heck, Christian A1 - Schürmann, Robin Mathis A1 - Milosavljevic, Aleksandar R. A1 - Giuliani, Alexandre A1 - Bald, Ilko T1 - Vacuum-UV induced DNA strand breaks BT - influence of the radiosensitizers 5-bromouracil and 8-bromoadenine JF - Physical chemistry, chemical physics : a journal of European Chemical Societies N2 - Radiation therapy is a basic part of cancer treatment. To increase the DNA damage in carcinogenic cells and preserve healthy tissue at the same time, radiosensitizing molecules such as halogenated nucleobase analogs can be incorporated into the DNA during the cell reproduction cycle. In the present study 8.44 eV photon irradiation induced single strand breaks (SSB) in DNA sequences modified with the radiosensitizer 5-bromouracil (U-5Br) and 8-bromoadenine ((8Br)A) are investigated. U-5Br was incorporated in the 13mer oligonucleotide flanked by different nucleobases. It was demonstrated that the highest SSB cross sections were reached, when cytosine and thymine were adjacent to U-5Br, whereas guanine as a neighboring nucleobase decreases the activity of U-5Br indicating that competing reaction mechanisms are active. This was further investigated with respect to the distance of guanine to U-5Br separated by an increasing number of adenine nucleotides. It was observed that the SSB cross sections were decreasing with an increasing number of adenine spacers between guanine and U-5Br until the SSB cross sections almost reached the level of a non-modified DNA sequence, which demonstrates the high sequence dependence of the sensitizing effect of U-5Br. (8Br)A was incorporated in a 13mer oligonucleotide as well and the strand breaks were quantified upon 8.44 eV photon irradiation in direct comparison to a non-modified DNA sequence of the same composition. No clear enhancement of the SSB yield of the modified in comparison to the non-modified DNA sequence could be observed. Additionally, secondary electrons with a maximum energy of 3.6 eV were generated when using Si as a substrate giving rise to further DNA damage. A clear enhancement in the SSB yield can be ascertained, but to the same degree for both the non-modified DNA sequence and the DNA sequence modified with (8Br)A. Y1 - 2019 U6 - https://doi.org/10.1039/c8cp06813e SN - 1463-9076 SN - 1463-9084 VL - 21 IS - 4 SP - 1972 EP - 1979 PB - Royal Society of Chemistry CY - Cambridge ER -