Academic literature on the topic 'Thiosemicarbazone complexes'

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Journal articles on the topic "Thiosemicarbazone complexes"

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Verma, K. K., N. Nirwan, R. Singh, and N. Bhojak. "Microwave Assisted Synthesis, Characterisation and Biological Activities of Cu(II) Complexes of Few Thiosemicarbazones Ligands." Journal of Scientific Research 15, no. 1 (2023): 275–83. http://dx.doi.org/10.3329/jsr.v15i1.60772.

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Thiosemicarbazones are class of compounds which are obtained by the condensation of thiosemicarbazide with carbonyl compounds. The transition metal complexes of thiosemicarbazones are widely considered due to their broad spectrum of biological activities such as antibacterial, antitumor and antifungal activities. In present research work a series of four novel Cu(II) aryl thiosemicarbazones complexes having the general composition [Cu(L1)2Cl2], [Cu(L2)2Cl2], [Cu(L3)2Cl2] and [Cu(L4)2Cl2]{where L1= 4-nitroacetophenone thiosemicarbazones (4NAT), L2 = 3-nitrobenzaldehyde thiosemicarbazone (3NBT),
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Vaishnav, Brijesh Kumar, and S. K. Verma. "Development of Nickel(II) Thiosemicarbazone Complexes as Potential Antibacterial Agents: Microwave Assisted Synthesis, Spectral Characterization and Antibacterial Studies." Oriental Journal Of Chemistry 41, no. 1 (2025): 193–200. https://doi.org/10.13005/ojc/410123.

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Some novel Nickel(II) aryl thiosemicarbazone complexes with the formula [Ni(LIGAND-1)2(NO3)2], [Ni(LIGAND-2)2(NO3)2], [Ni(LIGAND-3)2(NO3)2], and [Ni(LIGAND-4) 2(NO3)2] have been successfully synthesized. LIGAND-1 corresponds to 4-Phenyl-3-buten-2-one thiosemicarbazone (PBTSC), LIGAND-2 is 4-Hydroxy-3-methylbenzaldehyde thiosemicarbazone (HMBTSC), LIGAND-3 refers to 4-Methoxybenzaldehyde thiosemicarbazone (MBTSC), and LIGAND-4 represents Propiophenone thiosemicarbazone (PTSC). The Ligands were synthesized by reacting thiosemicarbazide with substituted aromatic aldehydes and ketones using microw
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Martínez-Estévez, Mónica, Soledad García-Fontán, Saray Argibay-Otero, Inmaculada Prieto, and Ezequiel M. Vázquez-López. "Synthesis, Characterization, and Cytotoxicity Studies of N-(4-Methoxybenzyl) Thiosemicarbazone Derivatives and Their Ruthenium(II)-p-cymene Complexes." Molecules 27, no. 22 (2022): 7976. http://dx.doi.org/10.3390/molecules27227976.

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The reaction of [Ru2Cl2(μ-Cl)2(η6-p-cymene)2] with two thiosemicarbazones obtained by the condensation of N-(4-methoxybenzyl) thiosemicarbazide and 1,4-hydroxy-3-methoxyphenyl)ethan-1-one (HL1) or 2-fluoro-4-hydroxybenzaldehyde (HL2) was studied. The cationic complexes of formula [RuCl(η6-p-cymene)(HL)]+ were isolated as solid chloride and trifluoromethylsulfate (TfO) salts. A study of the solid state and NMR spectra suggests the presence in the material of two isomers that differ in the configuration in the iminic bond, C2=N3, of the coordinated thiosemicarbazone in the triflate salts and onl
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P., Verma, K. Arya K., and Ahmad S. "Oxovanadium(Iv), oxomolybdenum(v) and manganese(II) complexes of Schiff bases derived from thiosemicarbazide." Journal of Indian Chemical Society Vol. 83, Apr 2006 (2006): 327–31. https://doi.org/10.5281/zenodo.5835686.

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Department of Chemistry, Bareilly College, Bareilly-243 00 I, Uttar Pradesh, India <em>Manuscript received 28 October 2003, revised 14 November 2005, accepted 2 December 2005</em> Metal complexes formed by the interaction of bis(furfuryl-2-aldehyde) thiosemicarbazonc [FAL TSC], bis(indole-3-aldehyde) thiosemicarbazone [IALTSC], bis(3-methyl salicylaldehyde) thiosemicarbazone [MSALTSC], bis(S-methyl salicylaldehyde) thiosemicarbazone [M&#39;SALTSC] and bis(S-bromo salicylaldehyde) thiosemicarbazone [BSALTSC] with oxovanadium(Iv), oxo&middot;molybdenum(v) and managanese(n) chloride have been pre
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Kamal, Kishor Verma, and Kumar Verma Suresh. "Microwave Assisted Synthesis, Spectroscopic Characterization and Antimicrobial Activities of Co(II) Complexes Containing Biologically Active Thiosemicarbazone Derivatives." Chemistry Research Journal 6, no. 5 (2021): 80–86. https://doi.org/10.5281/zenodo.11805215.

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<strong>Abstract </strong>In present study two thiosemicarbazone ligands i.e. 4HAT and 3NBT and their&nbsp; novel Cobal(II) aryl thiosemicarbazones complexes having the general composition [Co(L<sub>1</sub>)<sub>2</sub>Cl<sub>2</sub>], [Co(L<sub>2</sub>)<sub>2</sub>Cl<sub>2</sub>],{where L<sub>1</sub>= 4-Hydroxyacetophenone thiosemicarbazones (4HAT), L<sub>2 </sub>= 3-Nitrobenzaldehyde thiosemicarbazones (3NBT), have been synthesized by the reaction of thiosemicarbazide with substituted aromatic aldehydes and ketones by conventional heating as well as microwave irradiations method followed by
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Castiñeiras, Alfonso, Nuria Fernández-Hermida, Isabel García-Santos, Lourdes Gómez-Rodríguez, Antonio Frontera, and Juan Niclós-Gutiérrez. "Synthesis, Structural Characterisation, and Electrochemical Properties of Copper(II) Complexes with Functionalized Thiosemicarbazones Derived from 5-Acetylbarbituric Acid." Molecules 29, no. 10 (2024): 2245. http://dx.doi.org/10.3390/molecules29102245.

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The reaction between 5-acetylbarbituric acid and 4-dimethylthiosemicarbazide or 4-hexamethyleneiminyl thiosemicarbazide produces 5-acetylbarbituric-4-dimethylthiosemicarbazone (H2AcbDM) and 5-acetylbarbituric-4N-hexamethyleneiminyl thiosemicarbazone (H2Acbhexim). Eight new complexes with different copper(II) salts have been prepared and characterized using elemental analysis, molar conductance, UV–Vis, ESI-HRMS, FT-IR, magnetic moment, EPR, and cyclic voltammetry. In addition, three-dimensional molecular structures of [Cu(HAcbDM)(H2O)2](NO3)·H2O (3a), [Cu(HAcbDM)(H2O)2]ClO4 (4), and [Cu(HAcbHe
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Nagoor Meeran M and Narayanan Ravisankar. "Synthesis and characterization of substituted acetophenone-4, 4-dimethyl-3-thiosemicarbazone derivatives with an evaluation of antimicrobial and antioxidant activities." International Journal of Research in Pharmaceutical Sciences 11, no. 4 (2020): 7192–97. http://dx.doi.org/10.26452/ijrps.v11i4.3844.

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Thiosemicarbazones are organic compounds; these are widely used in the medical field. It is primarily in the manufacture of pharmaceutical drugs and bio molecules. These compounds have the azomethine functional group (-N=CH-) used to derive organic open chain and heterocyclic compounds. Thiosemicarbazones are similar to semicarbazones, and carbonyl group oxygen is replaced by sulphur. Thiosemicarbazone contains nitrogen and sulfur atoms, so they are used as ligands in coordination chemistry and form metal complexes. Thiosemicarbazone and its metal complexes are used in a variety of ways. It is
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Castiñeiras, Alfonso, Maria Gil, Elena Bermejo, and Douglas X. West. "Structural and Spectral Studies of Palladium (II) Complexes of Pyridil bis{3-Piperidyl-, bis{Hexamethyleneiminyl-, bis{N(4)-Diethyl- and bis{N(4)-Dipropylthiosemicarbazone}." Zeitschrift für Naturforschung B 55, no. 9 (2000): 863–70. http://dx.doi.org/10.1515/znb-2000-0910.

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Pyridil bis{N(4)-substituted thiosemicarbazones}, in which the substituents replacing the NH2 group on the thiosemicarbazone moieties are piperidyl, H2Plpip; hexamethyleneiminyl, H2Plhexim; diethylamino, H2Pl4DE; and dipropylamino, H2PI4 DP, have been synthesized. Representative palladium(II) complexes of these bis (thiosemicarbazones) have been characterized by IR, electronic, mass, and 1H and 13C NMR spectroscopy. Crystal structures have been determined for H2Plhexim and two of its palladium(II) complexes. H2Plhexim is in the Z isomeric form with intramolecular hydrogen bonding from both thi
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Pino-Cuevas, Arantxa, Ana Graña, Ulrich Abram, Rosa Carballo, and Ezequiel M. Vázquez-López. "Structural study of mono-, di- and tetranuclear complexes of the {Re(CO)3}+ fragment with thiosemicarbazone/thiosemicarbazonate ligands containing benzothiazole or benzoxazole groups." CrystEngComm 20, no. 33 (2018): 4781–92. http://dx.doi.org/10.1039/c8ce00874d.

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Muthukumar, Manisekar, and Periasamy Viswanathamurthi. "Synthesis, spectral characterization and catalytic studies of new ruthenium(II) chalcone thiosemicarbazone complexes." Open Chemistry 8, no. 1 (2010): 229–40. http://dx.doi.org/10.2478/s11532-009-0116-x.

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AbstractA series of new hexa-coordinated ruthenium(II) complexes of the type [Ru(CO)(EPh3)(B)(L)] (E = P or As; B = PPh3, AsPh3 or Py; L = chalcone thiosemicarbazone) have been prepared by reacting [RuHCl(CO)(EPh3)2(B)] (E = P or As; B = PPh3, AsPh3 or Py) with chalcone thiosemicarbazones in benzene under reflux. The new complexes have been characterized by analytical and spectroscopic (IR, UV-vis, 1H, 31P and 13C NMR) methods. On the basis of data obtained, an octahedral structure was assigned for all of the complexes. The chalcone thiosemicarbazones behave as dianionic tridentate O, N, S don
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Dissertations / Theses on the topic "Thiosemicarbazone complexes"

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Khanye, Setshaba David. "Synthesis and Antimalarial evaluation of Gold Thiosemicarbazone Complexes and Polyamine-Thiosemicarbazone Dendrimers." Doctoral thesis, University of Cape Town, 2010. http://hdl.handle.net/11427/6317.

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Malaria still remains one of the most dangerous widespread parasitic diseases in developing nations. Reported alarming figures of malaria infections annually highlight the âgapâ that remains to be filled to rid endemic of malaria. As cases of increasing spread of malaria and the emergence of resistance continue to exert pressure on health systems in most affected areas, novel antimalarial compounds are endlessly needed to overcome the problem of malaria infections. This thesis presents research investigating a series of thiosemicarbazones (TSCs) and their novel gold complexes and dendrimers as
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Claughton, Hannah J. "Towards radiopharmaceuticals based on copper bis(thiosemicarbazone) complexes." Thesis, University of Oxford, 2007. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.442381.

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Handley, Maxwell. "⁶⁴Cu-bis(thiosemicarbazone) complexes for delineating myocardial hypoxia." Thesis, King's College London (University of London), 2012. https://kclpure.kcl.ac.uk/portal/en/theses/64cubisthiosemicarbazone-complexes-for-delineating-myocardial-hypoxia(7dc930ac-e3cb-441d-95cc-6840e5b7a655).html.

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Coronary artery disease and coronary microvascular disease, as well as acute myocardial infarction and adverse remodelling are often characterised by tissue hypoxia. They benefit from the earliest possible diagnosis and treatment. Positron Emission Tomography (PET) is a highly sensitive technique capable of non-invasively imaging the biochemistry of the body, with the capacity to track biochemical changes over time. In this project, we aim to characterise a series of novel PET imaging agents able to identify and characterise hypoxic myocardium with a view to optimising the treatment of a range
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Noffke, Anna Louise. "Arene ruthenium(II) thiosemicarbazone complexes as anticancer agents." Thesis, University of Warwick, 2015. http://wrap.warwick.ac.uk/66956/.

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This thesis presents the synthesis and characterisation of thiosemicarbazones (TSCs) and their arene ruthenium complexes for the use as anticancer agents. Based on substituted benzaldehyde derivatives, 12 different TSCs were used as N,S-chelating ligands in 24 different ruthenium half-sandwich complexes. The variations in their general structure [(p-cymene)Ru(RTSC)Z]+[A] include the use of both chloride and iodide as monodentate Z ligand. Iodine substituents in the TSC (R = I) were used to introduce a possible tracer moiety. Structure and reactivity elucidations by NMR, ESI-MS and X-ray absorp
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Jaafar, Amani. "Synthèse, Caractérisation et Activité biologique des complexes à base de thiosemicarbazone." Thesis, Angers, 2017. http://www.theses.fr/2017ANGE0011/document.

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Le thiosemicarbazide et le 4-méthylthiosemicarbazide réagissent par condensation avec des dérivés benzaldéhyde pour donner des produits de type thiosemicarbazone pouvant jouer le rôle de ligands.Ces derniers peuvent conduire en milieu éthanolique à la formation de divers complexes en réagissant avec des sels métalliques comme les chlorures et/ou bromures de cuivre(II), de nickel(II), de zinc(II), de cobalt(II) et de cadmium(II). La structure de ces ligands et de leurs complexes a été déterminée par spectroscopie infrarouge, par des analyses élémentaires et par cristallographie. Les ligands se
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Morrison, E. C. "Synthesis and reactions of organo-metal thiosemicarbazone complexes and closely related compounds." Thesis, University of Greenwich, 1987. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.378049.

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Brown, Oliver. "Novel dissymmetric copper bis(thiosemicarbazone) complexes for medical diagnostic imaging by positron emission tomography." Thesis, University of Kent, 2015. https://kar.kent.ac.uk/53590/.

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Bis(thiosemicarbazone) ligand derivatives and their metal complexes have long been of interest as they have applications as anticonvulsants, super-oxide dismutase-like radical scavengers, in the investigation of Alzheimer’s disease and diagnostic imaging. Copper (II) bis(thiosemicarbazone) derivatives have been used extensively in the imaging of oxygen deficient (hypoxic) cells for the detection and imaging of cancerous tissues and heart disease via Positron Emission Tomography (PET). It is possible to fine tune the bis(thiosemicarbazone) complexes redox potentials and lipophilicity by alterin
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VENN, VUTEY. "Interaction of thiosemicarbazone metal complexes with human topoisomerase IB and inhibitory effect of a cyclopalladated complex on leishmania donovani topoisomerase IB." Doctoral thesis, Università degli Studi di Roma "Tor Vergata", 2015. http://hdl.handle.net/2108/202997.

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DNA topoisomerases are ubiquitous enzymes, catalyzing changes in the topological state of duplex DNA during replication, transcription, recombination and DNA-repair processes. Topoisomerase IB (TopIB) has a considerable medical interest because it is the sole cellular target of camptothecins (CPT), a family of compounds used in cancer therapy, with topotecan and irinotecan approved for clinical use by the FDA. CPT stabilizes the covalent intermediate enzyme-DNA transforming TopIB in a poison for the cell. Other compounds are able to inhibit TopIB, affecting binding to DNA and/or chemistry of c
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VENN, VUTEY. "Interaction of thiosemicarbazone metal complexes with human topoisomerase IB & inhibitory effect of a cyclopalladated complex on leishmania donovani topoisomerase IB." Doctoral thesis, Università degli Studi di Roma "Tor Vergata", 2015. http://hdl.handle.net/2108/211877.

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DNA topoisomerases are ubiquitous enzymes, catalyzing changes in the topological state of duplex DNA during replication, transcription, recombination and DNA-repair processes. Topoisomerase IB (TopIB) has a considerable medical interest because it is the sole cellular target of camptothecins (CPT), a family of compounds used in cancer therapy, with topotecan and irinotecan approved for clinical use by the FDA. CPT stabilizes the covalent intermediate enzyme-DNA transforming TopIB in a poison for the cell. Other compounds are able to inhibit TopIB, affecting binding to DNA and/or chemis
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Betts, Helen May. "Novel copper-64 complexes for applications in positron emission tomography." Thesis, University of Oxford, 2009. http://ora.ox.ac.uk/objects/uuid:8e10fd02-8f20-43d6-8b32-d99e897257cc.

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Book chapters on the topic "Thiosemicarbazone complexes"

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Domopoulou, A. E., M. A. Demertzis, and D. Kovala-Demertzi. "Spectroscopic Studies of Complexes of Pd(II) with 2-Acetylpyridine Thiosemicarbazone." In Fifth International Conference on the Spectroscopy of Biological Molecules. Springer Netherlands, 1993. http://dx.doi.org/10.1007/978-94-011-1934-4_74.

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West, Douglas X., Subhash B. Padhye, and Pramila B. Sonawane. "Structural and physical correlations in the biological properties of transition metal heterocyclic thiosemicarbazone and S-alkyldithiocarbazate complexes." In Complex Chemistry. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/3-540-53499-7_1.

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Kovala-Demertzi, Dimitra, Asimina Domopoulou, and Mavroudis A. Demertzis. "Synthesis, Spectroscopy and Structures of Complexes of PD(II) with 4N-Substituted Derivatives of 2-Acetylpyridine Thiosemicarbazone." In Cytotoxic, Mutagenic and Carcinogenic Potential of Heavy Metals Related to Human Environment. Springer Netherlands, 1997. http://dx.doi.org/10.1007/978-94-011-5780-3_29.

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Green, Mark A., Carla J. Mathias, Nathaniel J. Smith, Monica Cheng, and Gary D. Hutchins. "In Vivo Quantitative Whole-Body Perfusion Imaging Using Radiolabeled Copper(II) Bis(Thiosemicarbazone) Complexes and Positron Emission Tomography (PET)." In Methods in Molecular Biology. Springer US, 2021. http://dx.doi.org/10.1007/978-1-0716-1803-5_40.

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Rathore, Uma, Raja Ram, Kamal Kishor Verma, and N. Bhojak. "Micellar Potentiometric Determination of Stability Constant and Antibacterial Investigations on Complexes of Cu (II) with 3, 4, 5-Trimethoxybenzaldehyde Thiosemicarbazone." In Lecture Notes in Mechanical Engineering. Springer Singapore, 2022. http://dx.doi.org/10.1007/978-981-16-8341-1_10.

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Carvalho Souza, Rafael Aparecido, Carolina Gonçalves Oliveira, Gustavo Martins de Almeida, Aline da Silva Xavier da Cruz, and Thais Cristina Prado de Souza. "A MINIREVIEW OF THERAPEUTIC STRATEGIES AND STUDIES INVOLVING THIOSEMICARBAZONE DERIVATIVES IN TUBERCULOSIS TREATMENT." In Open Science Research XIII. Editora Científica Digital, 2023. http://dx.doi.org/10.37885/231114979.

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Tuberculosis (TB) is a chronic infectious disease caused by Mycobacterium tuberculosis (MTB), mainly affecting the lungs, but can manifest itself in other organs. It stands as a major contributor to global morbidity and mortality due to increasing resistance to traditional antibiotics. In this context, thiosemicarbazones class of ligands have received attention in research due to their remarkable antimicrobial activity. Conjugation of thiosemicarbazone ligands with metal ions allows the creation of new compounds with different substituent groups, influencing their antimicrobial activity and se
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Algarra, Andrés G., Carmen E. Castillo, M. Jesús Fernández-Trujillo, et al. "Pyridine-appended thiosemicarbazone complexes of iron: A complex mechanistic behaviour." In Advances in Inorganic Chemistry. Elsevier, 2024. http://dx.doi.org/10.1016/bs.adioch.2024.05.005.

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"Aryl- and Heteroaryl-Thiosemicarbazone Derivatives and Their Metal Complexes: A Template for Pharmacological Activities." In Topics in Anti-Cancer Research, edited by Narayana S.H.N. Moorthy, Nuno M.F.S.A. Cerqueira, Maria J. Ramos, and Pedro A. Fernandes. BENTHAM SCIENCE PUBLISHERS, 2014. http://dx.doi.org/10.2174/9781608059089114030015.

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Rama Jyothi, Narjala, and Snehalatha Pulivarthi. "Cytotoxic Activity of Schiff Bases and their Complexes." In Schiff Base in Organic, Inorganic and Physical Chemistry [Working Title]. IntechOpen, 2022. http://dx.doi.org/10.5772/intechopen.108570.

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Various organic chelating agents have many applications in treating the several diseases and they act as antibacterial, antiviral, antimalarial and cytotoxic agents. Among the organic chelating agents thiosemicarbazones and their derivatives play a unique role in various fields of medicine. Thiosemicarbazones and their derivatives find a numerous applications and among them cytotoxic activity occupies a major portion due to the severity of the cancer treatment. In this present chapter we described and discussed the cytotoxic activity of thiosemicarbazones, their derivatives and various metal c
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"Gold Complexes as Antiparasitic Agents." In The Therapeutic Potential of Gold Complexes. Royal Society of Chemistry, 2025. https://doi.org/10.1039/9781837678891-00067.

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The impetus for the rational design and development of antiparasitic gold complexes started with the study of the antimalarial properties of gold(iii) complexes of the antimalarial agents primaquine and amodiaquine. The complexes showed interesting activity against Plasmodium falciparum, one of the causative parasites for malaria. The last few decades have witnessed a huge increase in the rational design of gold complexes for the development of antiparasitic drugs and several gold complexes with a plethora of ligand systems have displayed exciting antiparasitic properties. This chapter focuses
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Conference papers on the topic "Thiosemicarbazone complexes"

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Reigosa Chamorro, Francisco, Fátima Lucio, Adolfo Fernández-Figueiras, et al. "Functionalized thiosemicarbazone ligands and their complexes." In The 20th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2016. http://dx.doi.org/10.3390/ecsoc-20-a041.

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Reigosa Chamorro, Francisco, Adolfo Fernández-Figueiras, Fátima Lucio, et al. "Reactivity of functionalized thiosemicarbazone complexes towards phosphines." In The 21st International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2017. http://dx.doi.org/10.3390/ecsoc-21-04744.

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Sampath, K., and S. Krithika. "Synthesis, characterization and NLO property of ruthenium(II) thiosemicarbazone complexes." In PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS: ICAM 2019. AIP Publishing, 2019. http://dx.doi.org/10.1063/1.5130328.

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Bermudez, Sara, Raquel Diz-Gil, Paula Munín-Cruz, Marcos Rúa-Sueiro, Juan Ortigueira, and José Vila. "Preparation of novel complexes bearing diphosphine (dppm) derived from thiosemicarbazone palladacycles." In The 24th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2020. http://dx.doi.org/10.3390/ecsoc-24-08320.

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Mahjoub, Omima Abdalla, and Yang Farina. "Spectral studies of copper(II) complexes of 6-(3-thienyl) pyridine-2-thiosemicarbazone." In THE 2014 UKM FST POSTGRADUATE COLLOQUIUM: Proceedings of the Universiti Kebangsaan Malaysia, Faculty of Science and Technology 2014 Postgraduate Colloquium. AIP Publishing LLC, 2014. http://dx.doi.org/10.1063/1.4895193.

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Gupta, Sakshi, Seema Joshi, Kulsum Hashmi, and Satya. "Computational Insights into Thiosemicarbazone Metal Complexes: Structural Elucidation, Reactivity Patterns, and Biomedical Implications." In International Electronic Conference on Processes. MDPI, 2024. https://doi.org/10.3390/proceedings2024105156.

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Nimir, Hassan, Norah Al Mohaideb, Mariem Hamad, et al. "Synthesis, Characterization, Crystal Structures, and in vitro Antitumor Activity of Palladium and Platinum (Ii) Complexes with 2-Acetyl-4-Methylthiazole Thiosemicarbazone and 2-Acetylpyrazine Thiosemicarbazone." In Qatar Foundation Annual Research Conference Proceedings. Hamad bin Khalifa University Press (HBKU Press), 2016. http://dx.doi.org/10.5339/qfarc.2016.hbpp3347.

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Tadjarodi, Azadeh, and Homayoun Gholipour. "Microwave-assisted synthesis of Cd (II) complex of 4-pyridinecarboxaldehyde thiosemicarbazone." In The 17th International Electronic Conference on Synthetic Organic Chemistry. MDPI, 2013. http://dx.doi.org/10.3390/ecsoc-17-c007.

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Tao, Xu Tang, Nan Zhang, Duorong Yuan, Dong Xu, Wen-Tao Yu, and Minhua Jiang. "New organometallic complex nonlinear optical crystal: Thiosemicarbazide cadmium thiocyanate." In San Dieg - DL Tentative, edited by Garo Khanarian. SPIE, 1990. http://dx.doi.org/10.1117/12.22966.

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Verma, K. K., Raja Ram, U. Rathore, and N. Bhojak. "Novel synthesis, spectral and biological investigations on complexes of Ni (II) with thiosemicarbazones ligands." In NATIONAL CONFERENCE ON PHYSICS AND CHEMISTRY OF MATERIALS: NCPCM2020. AIP Publishing, 2021. http://dx.doi.org/10.1063/5.0060987.

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Reports on the topic "Thiosemicarbazone complexes"

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Ruangpornvisuti, Vithaya. A Study of conformational equilibrium of semicarbazone derivatives and their complexes with cations : research report. Chulalongkorn University, 2006. https://doi.org/10.58837/chula.res.2006.36.

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The structure optimizations of picolinaldehyde N-oxide thiosemicarbazone (Hpiotsc), 2-benzoylpyridine semicarbazone (H2BzPS), their imino tautomers and their complexes with Ni(II), Cu(II) and Zn(II) were carried out using DFT calculations at the B3LYP/LANL2DZ level of theory. Thermodynamic properties of tautomerizations of Hpiotsc and H2BzPS and complexations of their complexes derived from the frequency calculations at the same level were obtained. The B3LYP/LANL2DZ-optimized geometry parameters for the complexes of [[Ni(Hpiotsc)[subscript 2]][superscript 2+]], [Cu(Hpiotsc).Cl[subscript 2]] a
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