Metal complexes as optical probes for DNA sensing and imaging.
暂无分享,去创建一个
[1] E. Yeow,et al. Fluorogenic Pt complexes distinguish the quantity and folding behavior of RNA G-quadruplexes between live cancerous and healthy cells. , 2020, Chemical communications.
[2] Jim A. Thomas,et al. Triazole-based osmium(ii) complexes displaying red/near-IR luminescence: antimicrobial activity and super-resolution imaging† , 2020, Chemical science.
[3] Zoë A. E. Waller,et al. Beyond Solvent Exclusion: i-Motif Detecting Capability and an Alternative DNA Light-Switching Mechanism in a Ruthenium(II) Polypyridyl Complex. , 2020, Journal of the American Chemical Society.
[4] Jim A. Thomas,et al. Mononuclear ruthenium(ii) theranostic complexes that function as broad-spectrum antimicrobials in therapeutically resistant pathogens through interaction with DNA , 2020, Chemical science.
[5] Cheuk‐Lam Ho,et al. Recent advances of iridium(III) metallophosphors for health-related applications , 2020 .
[6] F. Loiseau,et al. Flexible RuII Schiff base complexes: G-quadruplex DNA binding and photo-induced cancer cell death. , 2020, Chemistry.
[7] S. Cotton,et al. A luminescent europium hairpin for DNA photosensing in the visible, based on trimetallic bis-intercalators. , 2020, Journal of inorganic biochemistry.
[8] Ruilin Guan,et al. Mitochondrial DNA targeting and impairment by a dinuclear Ir–Pt complex that overcomes cisplatin resistance , 2020 .
[9] A. Casini,et al. Targeted imaging of integrins in cancer tissues using photocleavable Ru(ii) polypyridine complexes as mass-tags. , 2020, Chemical communications.
[10] R. Bonsignore,et al. Fluorescent metal-based complexes as cancer probes. , 2020, Bioorganic & medicinal chemistry letters.
[11] S. MacNeil,et al. A Dinuclear Ruthenium(II) Complex Excited by Near-Infrared Light through Two-Photon Absorption Induces Phototoxicity Deep within Hypoxic Regions of Melanoma Cancer Spheroids , 2020, Journal of the American Chemical Society.
[12] N. Sugimoto,et al. Chemical biology of non-canonical structures of nucleic acids for therapeutic applications. , 2020, Chemical communications.
[13] J. Barton,et al. Cell-Selective Cytotoxicity of a Fluorescent Rhodium Metalloinsertor Conjugate Results from Irreversible DNA Damage at Base Pair Mismatches. , 2020, Biochemistry.
[14] S. Sreedharan,et al. Photoactive metal complexes that bind DNA and other biomolecules as cell probes, therapeutics, and theranostics. , 2020, Chemical communications.
[15] S. Parkin,et al. Toward Optimal Ru(II) Photocages: Balancing Photochemistry, Stability, and Biocompatibility Through Fine Tuning of Steric, Electronic, and Physiochemical Features. , 2020, Inorganic chemistry.
[16] S. MacNeil,et al. Correction: A dinuclear ruthenium(ii) phototherapeutic that targets duplex and quadruplex DNA , 2019, Chemical science.
[17] S. Sreedharan,et al. Making the right link to theranostics: the photophysical and biological properties of dinuclear RuII-ReI dppz complexes depend on their tether. , 2019, Journal of the American Chemical Society.
[18] Lihong Hu,et al. A new rhodium(I) NHC complex inhibits TrxR: In vitro cytotoxicity and in vivo hepatocellular carcinoma suppression. , 2019, European journal of medicinal chemistry.
[19] G. Gasser,et al. Metal-based photosensitizers for photodynamic therapy: the future of multimodal oncology? , 2019, Current opinion in chemical biology.
[20] Chun-Hua Huang,et al. Targeted live-cell nuclear delivery of the DNA ‘light-switching’ Ru(II) complex via ion-pairing with chlorophenolate counter-anions: the critical role of binding stability and lipophilicity of the ion-pairing complexes , 2019, Nucleic acids research.
[21] P. Sadler,et al. New Designs for Phototherapeutic Transition Metal Complexes , 2019, Angewandte Chemie.
[22] W. Zhou,et al. Discovery of a Ruthenium Complex for the Theranosis of Glioma through Targeting the Mitochondrial DNA with Bioinformatic Methods , 2019, International journal of molecular sciences.
[23] N. Zaffaroni,et al. Luminescent dinuclear rhenium(I) PNA conjugates for microRNA-21 targeting: Synthesis, chemico-physical and biological characterization , 2019, Journal of Organometallic Chemistry.
[24] Qianling Zhang,et al. Near-Infrared Luminescent Osmium(II) Complexes with an Intrinsic RNA-Targeting Capability for Nucleolus Imaging in Living Cells. , 2018, ACS applied bio materials.
[25] M. Gabr,et al. Platinum(II) Complexes with Sterically Expansive Tetraarylethylene Ligands as Probes for Mismatched DNA. , 2018, Inorganic chemistry.
[26] F. Cabrerizo,et al. Photophysical properties of [(norharmane)Re(CO)3 (L)]+ complexes (L = bpy, phen or dppz). Redox behavior of the excited states and their interaction with Calf Thymus DNA , 2018, Journal of Photochemistry and Photobiology A: Chemistry.
[27] B. Epe,et al. DNA Oxidation Photoinduced by Norharmane Rhenium(I) Polypyridyl Complexes: Effect of the Bidentate N,N'-Ligands on the Damage Profile. , 2018, Chemistry.
[28] K. K. Lo,et al. Luminescent rhenium(I), ruthenium(II), and iridium(III) polypyridine complexes containing a poly(ethylene glycol) pendant or bioorthogonal reaction group as biological probes and photocytotoxic agents , 2018 .
[29] S. Sreedharan,et al. Mitochondria-localising DNA-binding biscyclometalated phenyltriazole iridium(iii) dipyridophenazene complexes: syntheses and cellular imaging properties. , 2018, Dalton transactions.
[30] A. Zamora,et al. Cyclometalated iridium(III) luminescent complexes in therapy and phototherapy , 2018 .
[31] L. Ji,et al. Mitochondrial dynamics tracking with iridium(III) complexes. , 2018, Current opinion in chemical biology.
[32] Fuyi Wang,et al. Luminescent cyclometallated platinum(II) complexes: highly promising EGFR/DNA probes and dual-targeting anticancer agents , 2018 .
[33] Qiang Zhao,et al. Long-Lived Emissive Probes for Time-Resolved Photoluminescence Bioimaging and Biosensing. , 2018, Chemical reviews.
[34] T. Albrecht,et al. A Redox-Activated G-Quadruplex DNA Binder Based on a Platinum(IV)-Salphen Complex. , 2018, Angewandte Chemie.
[35] S. Sreedharan,et al. Multimodal Super-resolution Optical Microscopy Using a Transition-Metal-Based Probe Provides Unprecedented Capabilities for Imaging Both Nuclear Chromatin and Mitochondria. , 2017, Journal of the American Chemical Society.
[36] Justin J. Wilson,et al. In Vitro Anticancer Activity and in Vivo Biodistribution of Rhenium(I) Tricarbonyl Aqua Complexes. , 2017, Journal of the American Chemical Society.
[37] S. Balasubramanian,et al. DNA G-quadruplexes in the human genome: detection, functions and therapeutic potential , 2017, Nature Reviews Molecular Cell Biology.
[38] A. Patra,et al. Dual-Sensitized Luminescent Europium(ΙΙΙ) and Terbium(ΙΙΙ) Complexes as Bioimaging and Light-Responsive Therapeutic Agents. , 2016, Chemistry.
[39] T. Gunnlaugsson,et al. Luminescent ruthenium polypyridyl complexes with extended 'dppz' like ligands as DNA targeting binders and cellular agents. , 2016, Dalton transactions.
[40] G. Gasser,et al. Towards (99m)Tc-based imaging agents with effective doxorubicin mimetics: a molecular and cellular study. , 2016, Dalton transactions.
[41] L. Ji,et al. Topoisomerase IIα poisoning and DNA double-strand breaking by chiral ruthenium(ii) complexes containing 2-furanyl-imidazo[4,5-f][1,10]phenanthroline derivatives. , 2016, Dalton transactions.
[42] Chun-Hua Huang,et al. Delivering the cell-impermeable DNA ‘light-switching’ Ru(ii) complexes preferentially into live-cell nucleus via an unprecedented ion-pairing method† †Electronic supplementary information (ESI) available. CCDC 1046781. For ESI and crystallographic data in CIF or other electronic format see DOI: 10.1 , 2016, Chemical science.
[43] Jin-jian Lu,et al. A novel dinuclear iridium(III) complex as a G-quadruplex-selective probe for the luminescent switch-on detection of transcription factor HIF-1α , 2016, Scientific Reports.
[44] Tianfeng Chen,et al. Luminescent platinum(II) complexes with functionalized N-heterocyclic carbene or diphosphine selectively probe mismatched and abasic DNA , 2016, Nature Communications.
[45] A. Patra,et al. A luminescent europium(III)-platinum(II) heterometallic complex as a theranostic agent: a proof-of-concept study. , 2016, Dalton transactions.
[46] G. Cheng,et al. Highly phosphorescent platinum(ii) emitters: photophysics, materials and biological applications , 2016, Chemical science.
[47] A. Patra,et al. Photocytotoxic luminescent lanthanide complexes of DTPA???bisamide using quinoline as photosensitizer , 2015 .
[48] C. Leung,et al. Luminescence switch-on assay of interferon-gamma using a G-quadruplex-selective iridium(III) complex. , 2015, Chemical communications.
[49] H. Sleiman,et al. Cyclometalated Iridium(III) Imidazole Phenanthroline Complexes as Luminescent and Electrochemiluminescent G-Quadruplex DNA Binders. , 2015, Inorganic chemistry.
[50] K. Y. Zhang,et al. A multifunctional phosphorescent iridium(III) complex for specific nucleus staining and hypoxia monitoring. , 2015, Chemical communications.
[51] C. Che,et al. Luminescent cyclometalated platinum(II) complex forms emissive intercalating adducts with double-stranded DNA and RNA: differential emissions and anticancer activities. , 2014, Angewandte Chemie.
[52] John W. Haycock,et al. Long-lived metal complexes open up microsecond lifetime imaging microscopy under multiphoton excitation: from FLIM to PLIM and beyond , 2014 .
[53] C. Smythe,et al. Dinuclear Ruthenium(II) Complexes as Two-Photon, Time-Resolved Emission Microscopy Probes for Cellular DNA , 2014, Angewandte Chemie.
[54] M. Kuimova,et al. Salphen metal complexes as tunable G-quadruplex binders and optical probes , 2014 .
[55] Xuesong Wang,et al. Ruthenium(II)-arene complexes with strong fluorescence: insight into the underlying mechanism. , 2012, Chemistry.
[56] G. Rai,et al. The importance of cellular localisation of probes: synthesis, photophysical properties, DNA interactions and cellular imaging properties of rhenium dppz complexes with known cellular localisation vectors , 2012 .
[57] Jie-ying Wu,et al. Efficient two-photon-sensitized luminescence of a novel europium(III) β-diketonate complex and application in biological imaging. , 2011, Chemical Communications.
[58] J. Barton,et al. Charge photoinjection in intercalated and covalently bound [Re(CO)3(dppz)(py)]+-DNA constructs monitored by time-resolved visible and infrared spectroscopy. , 2011, Journal of the American Chemical Society.
[59] Xue-Zhong Sun,et al. Excited state dependent electron transfer of a rhenium-dipyridophenazine complex intercalated between the base pairs of DNA: a time-resolved UV-visible and IR absorption investigation into the photophysics of fac-[Re(CO)_3(F_2dppz)(py)]^+ bound to either [poly(dA-dT)]_2 or [poly(dG-dC)]_2 , 2011, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[60] Minna Li,et al. Lipophilic ruthenium complexes with tuned cell membrane affinity and photoactivated uptake. , 2010, Biophysical chemistry.
[61] Jim A. Thomas,et al. Differentiating quadruplexes: binding preferences of a luminescent dinuclear ruthenium(II) complex with four-stranded DNA structures. , 2010, Organic & biomolecular chemistry.
[62] Jim A. Thomas,et al. Dinuclear monointercalating RuII complexes that display high affinity binding to duplex and quadruplex DNA. , 2006, Chemistry.
[63] J. Barton,et al. Os(phen)2(dppz)2+: A Red-Emitting DNA Probe , 1995 .
[64] N. Turro,et al. Molecular light switch for DNA : Ru(bpy)2(dppz)2+ , 1990 .
[65] J. Barton,et al. Chiral probes for the handedness of DNA helices: enantiomers of tris(4,7-diphenylphenanthroline)ruthenium(II). , 1984, Proceedings of the National Academy of Sciences of the United States of America.