This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Adam R.D.: Giardia duodenalis: Biology and Pathogenesis. Clinical Microbiology Reviews. 34(4), e00024–19 (2021) doi:
10.1128/CMR.00024-19AdamR.D.Giardia duodenalis: Biology and PathogenesisClinical Microbiology Reviews.344e00024–19202110.1128/CMR.00024-19Open DOI
Alday P.H., Bruzual I., Nilsen A., Pou S., Winter R., Ben Mamoun C., Riscoe M.K., Doggett J.S.: Genetic Evidence for Cytochrome b Qi Site Inhibition by 4(1H)-Quinolone-3-Diarylethers and Antimycin in Toxoplasma gondii. Antimicrob Agents Chemother. 61(2) e01866–16 (2017) doi:
10.1128/AAC.01866-16AldayP.H.BruzualI.NilsenA.PouS.WinterR.Ben MamounC.RiscoeM.K.DoggettJ.S.Genetic Evidence for Cytochrome b Qi Site Inhibition by 4(1H)-Quinolone-3-Diarylethers and Antimycin in Toxoplasma gondiiAntimicrob Agents Chemother612e01866–16201710.1128/AAC.01866-16Open DOI
Allain T., Amat C.B., Motta J.P., Manko A., Buret A.G.: Interactions of Giardia sp. with the intestinal barrier: Epithelium, mucus, and microbiota. Tissue Barriers. 5(1), e1274354 (2017) doi:
10.1080/21688370.2016.1274354AllainT.AmatC.B.MottaJ.P.MankoA.BuretA.G.Interactions of Giardia sp. with the intestinal barrier: Epithelium, mucus, and microbiotaTissue Barriers.51e1274354201710.1080/21688370.2016.1274354Open DOI
Alshahethi M.A., Al-Hadheq A.A., Edrees W.H., Abdullah Q.Y., Al-Awar M.S.: Cutaneous leishmaniasis among attending hospitals and health centers in amran governorate, yemen. Electronic Journal of University of Aden for Basic and Applied Sciences. 5(3) 269–276 (2024) doi:
10.47372/ejua-ba.2024.3.373AlshahethiM.A.Al-HadheqA.A.EdreesW.H.AbdullahQ.Y.Al-AwarM.S.Cutaneous leishmaniasis among attending hospitals and health centers in amran governorate, yemenElectronic Journal of University of Aden for Basic and Applied Sciences53269276202410.47372/ejua-ba.2024.3.373Open DOI
Amelo W. and Makonnen E.: Efforts Made to Eliminate Drug-Resistant Malaria and Its Challenges. BioMed Research International. 2021(1), 5539544 (2021) doi:
10.1155/2021/5539544AmeloW.MakonnenE.Efforts Made to Eliminate Drug-Resistant Malaria and Its ChallengesBioMed Research International202115539544202110.1155/2021/5539544Open DOI
Andriantsoanirina V., Khim N., Ratsimbasoa A., Witkowski B., Benedet C., Canier L., Bouchier C., Tichit M., Durand R., Ménard D.: Plasmodium falciparum Na+/H+ Exchanger (pfnhe-1) Genetic Polymorphism in Indian Ocean Malaria-Endemic Areas. The American Journal of Tropical Medicine and Hygiene. 88(1), 37 (2013) doi:
10.4269/ajtmh.2012.12-0359AndriantsoanirinaV.KhimN.RatsimbasoaA.WitkowskiB.BenedetC.CanierL.BouchierC.TichitM.DurandR.MénardD.Plasmodium falciparum Na+/H+ Exchanger (pfnhe-1) Genetic Polymorphism in Indian Ocean Malaria-Endemic AreasThe American Journal of Tropical Medicine and Hygiene88137201310.4269/ajtmh.2012.12-0359Open DOI
Ángeles-Arvizu A., Enriquez-Flores S., Jiménez-Gutiérrez A., Pérez-Rangel A., Luna-Arias J.P., Castillo-Romero A., Hernández J.M., León-Avila G.: MDR1 protein (ABC-C1) Over Expression in Giardia Intestinalis Incubated with Albendazole and Nitazoxanide. Acta Parasit. 66(4) 1158–1166 (2021) doi:
10.1007/s11686-021-00385-5Ángeles-ArvizuA.Enriquez-FloresS.Jiménez-GutiérrezA.Pérez-RangelA.Luna-AriasJ.P.Castillo-RomeroA.HernándezJ.M.León-AvilaG.MDR1 protein (ABC-C1) Over Expression in Giardia Intestinalis Incubated with Albendazole and NitazoxanideActa Parasit66411581166202110.1007/s11686-021-00385-5Open DOI
Argüello-García R., Cruz-Soto M., González-Trejo R., Paz-Maldonado L.M.T., Bazán-Tejeda M.L., Mendoza-Hernández G., Ortega-Pierres G.: An antioxidant response is involved in resistance of Giardia duodenalis to albendazole. Front Microbiol. 6, 286 (2015) doi:
10.3389/fmicb.2015.00286Argüello-GarcíaR.Cruz-SotoM.González-TrejoR.Paz-MaldonadoL.M.T.Bazán-TejedaM.L.Mendoza-HernándezG.Ortega-PierresG.An antioxidant response is involved in resistance of Giardia duodenalis to albendazoleFront Microbiol6286201510.3389/fmicb.2015.00286Open DOI
Asare K.K., Africa J., Mbata J., Opoku Y.K.: The emergence of chloroquine-sensitive Plasmodium falciparum is influenced by selected communities in some parts of the Central Region of Ghana. Malar. J. 20(1) 447 (2021) doi:
10.1186/s12936-021-03985-8AsareK.K.AfricaJ.MbataJ.OpokuY.K.The emergence of chloroquine-sensitive Plasmodium falciparum is influenced by selected communities in some parts of the Central Region of GhanaMalar. J201447202110.1186/s12936-021-03985-8Open DOI
Avcı K.D., Karakuş M., Kart Yaşar K.: Molecular survey of pfmdr-1, pfcrt, and pfk13 gene mutations among patients returning from Plasmodium falciparum endemic areas to Turkey. Malar J. 23(1) 286 (2024) doi:
10.1186/s12936-024-05107-6.AvcıK.D.KarakuşM.Kart YaşarK.Molecular survey of pfmdr-1, pfcrt, and pfk13 gene mutations among patients returning from Plasmodium falciparum endemic areas to TurkeyMalar J231286202410.1186/s12936-024-05107-6Open DOI
Babokhov P., Sanyaolu A.O., Oyibo W.A., Fagbenro-Beyioku A.F., Iriemenam N.C.: A current analysis of chemotherapy strategies for the treatment of human African trypanosomiasis. Pathogens and Global Health. 107(5) 242–252 (2013) doi:
10.1179/2047773213Y.0000000105BabokhovP.SanyaoluA.O.OyiboW.A.Fagbenro-BeyiokuA.F.IriemenamN.C.A current analysis of chemotherapy strategies for the treatment of human African trypanosomiasisPathogens and Global Health1075242252201310.1179/2047773213Y.0000000105Open DOI
Baina M.T., Djontu J.C., Mbama Ntabi J.D., Mfoutou Mapanguy C.C., Lissom A., Vouvoungui C.J., Boumpoutou R.K., Mouanga A.M., Nguimbi E., Ntoumi F.: Polymorphisms in the Pfcrt, Pfmdr1, and Pfk13 genes of Plasmodium falciparum isolates from southern Brazzaville, Republic of Congo. Sci Rep. 14(1), 27988 (2024) doi:
10.1038/s41598-024-78670-2BainaM.T.DjontuJ.C.Mbama NtabiJ.D.Mfoutou MapanguyC.C.LissomA.VouvounguiC.J.BoumpoutouR.K.MouangaA.M.NguimbiE.NtoumiF.Polymorphisms in the Pfcrt, Pfmdr1, and Pfk13 genes of Plasmodium falciparum isolates from southern Brazzaville, Republic of CongoSci Rep14127988202410.1038/s41598-024-78670-2Open DOI
Balaji S.N., Deshmukh R., Trivedi V.: Severe malaria: Biology, clinical manifestation, pathogenesis and consequences. Journal of Vector Borne Diseases. 57(1) 1 (2020) doi:
10.4103/0972-9062.308793BalajiS.N.DeshmukhR.TrivediV.Severe malaria: Biology, clinical manifestation, pathogenesis and consequencesJournal of Vector Borne Diseases5711202010.4103/0972-9062.308793Open DOI
Berberian D.A.: Treatment and prophylaxis of malaria with aralen. J Palest Arab Med Assoc. 2(6) 143–151 (1947)BerberianD.A.Treatment and prophylaxis of malaria with aralenJ Palest Arab Med Assoc261431511947Search in Google Scholar
Bisetegn H., Zeleke A.J., Gadisa E., Shumie G., Damte D., Fenta T., Behaksra S., Bayih A.G.: Clinical, parasitological and molecular profiles of Cutaneous Leishmaniasis and its associated factors among clinically suspected patients attending Borumeda Hospital, North-East Ethiopia. PLoS Negl Trop Dis. 14(8) e0008507 (2020) doi:
10.1371/journal.pntd.0008507BisetegnH.ZelekeA.J.GadisaE.ShumieG.DamteD.FentaT.BehaksraS.BayihA.G.Clinical, parasitological and molecular profiles of Cutaneous Leishmaniasis and its associated factors among clinically suspected patients attending Borumeda Hospital, North-East EthiopiaPLoS Negl Trop Dis148e0008507202010.1371/journal.pntd.0008507Open DOI
Black M.W. and Boothroyd J.C.: Lytic Cycle of Toxoplasma gondii. Microbiol Mol Biol Rev. 64(3) 607–623 (2000) doi:
10.1128/MMBR.64.3.607-623.2000BlackM.W.BoothroydJ.C.Lytic Cycle of Toxoplasma gondiiMicrobiol Mol Biol Rev.643607623200010.1128/MMBR.64.3.607-623.2000Open DOI
Bogacz J.: 1954. [Comparative effect of various synthetic agents and various antibiotics, including spiramycin, on Toxoplasma]. Bull Soc Pathol Exot Filiales. 47(6) 903–915BogaczJ.1954[Comparative effect of various synthetic agents and various antibiotics, including spiramycin, on Toxoplasma]Bull Soc Pathol Exot Filiales476903915Search in Google Scholar
Bouteille B., Oukem O., Bisser S., Dumas M.: Treatment perspectives for human African trypanosomiasis. Fundamental & Clinical Pharmacology. 17(2) 171–181 (2003) doi:
10.1046/j.1472-8206.2003.00167.xBouteilleB.OukemO.BisserS.DumasM.Treatment perspectives for human African trypanosomiasisFundamental & Clinical Pharmacology172171181200310.1046/j.1472-8206.2003.00167.xOpen DOI
Bridges D.J., Gould M.K., Nerima B., Mäser P., Burchmore R.J.S., Koning H.P.: Loss of the High-Affinity Pentamidine Transporter Is Responsible for High Levels of Cross-Resistance between Arsenical and Diamidine Drugs in African Trypanosomes. Mol Pharmacol. 71(4) 1098–1108 (2007) doi:
10.1124/mol.106.031351BridgesD.J.GouldM.K.NerimaB.MäserP.BurchmoreR.J.S.KoningH.P.Loss of the High-Affinity Pentamidine Transporter Is Responsible for High Levels of Cross-Resistance between Arsenical and Diamidine Drugs in African TrypanosomesMol Pharmacol.71410981108200710.1124/mol.106.031351Open DOI
Büscher P., Cecchi G., Jamonneau V., Priotto G.: Human African trypanosomiasis. Lancet. 390(10110) 2397–2409 (2017) doi:
10.1016/S0140-6736(17)31510-6BüscherP.CecchiG.JamonneauV.PriottoG.Human African trypanosomiasisLancet.3901011023972409201710.1016/S0140-6736(17)31510-6Open DOI
Camuset G., Remy V., Hansmann Y., Christmann D., Gomes de Albuquerque C., Sena Casseb G.A.: [Mucocutaneous leishmaniasis in Brazilian Amazonia]. Med Mal Infect. 37(6) 343–346 (2007) doi:
10.1016/j.medmal.2007.03.012.CamusetG.RemyV.HansmannY.ChristmannD.Gomes de AlbuquerqueC.Sena CassebG.A.[Mucocutaneous leishmaniasis in Brazilian Amazonia]Med Mal Infect.376343346200710.1016/j.medmal.2007.03.012Open DOI
Carnielli J.B.T., Monti-Rocha R., Costa D.L., Molina Sesana A., Pansini L.N.N., Segatto M., Mottram J.C., Costa C.H.N., Carvalho S.F.G., Dietze R.: Natural Resistance of Leishmania infantum to miltefosine Contributes to the Low Efficacy in the Treatment of Visceral Leishmaniasis in Brazil. Am J Trop Med Hyg. 101(4) 789–794 (2019) doi:
10.4269/ajtmh.18-0949CarnielliJ.B.T.Monti-RochaR.CostaD.L.Molina SesanaA.PansiniL.N.N.SegattoM.MottramJ.C.CostaC.H.N.CarvalhoS.F.G.DietzeR.Natural Resistance of Leishmania infantum to miltefosine Contributes to the Low Efficacy in the Treatment of Visceral Leishmaniasis in BrazilAm J Trop Med Hyg.1014789794201910.4269/ajtmh.18-0949Open DOI
CDC. 2019. CDC – DPDx – Amebiasis. https://www.cdc.gov/dpdx/amebiasis/index.html. [accessed 2024 Aug 27]CDC2019CDC – DPDx – Amebiasishttps://www.cdc.gov/dpdx/amebiasis/index.html. [accessed 2024 Aug 27]Search in Google Scholar
CDC. 2024a. CDC – DPDx – Malaria. https://www.cdc.gov/dpdx/malaria/index.html. [accessed 2024 Aug 26]CDC2024aCDC – DPDx – Malariahttps://www.cdc.gov/dpdx/malaria/index.html. [accessed 2024 Aug 26]Search in Google Scholar
CDC. 2024b. Appendix A: Malaria in the United States: Treatment Tables. Malaria. https://www.cdc.gov/malaria/hcp/clinical-guidance/malaria-treatment-tables.html. [accessed 2024 Sep 7]CDC2024bAppendix A: Malaria in the United States: Treatment Tables. Malariahttps://www.cdc.gov/malaria/hcp/clinical-guidance/malaria-treatment-tables.html. [accessed 2024 Sep 7]Search in Google Scholar
CDC. 2024c. About Toxoplasmosis. Toxoplasmosis. https://www.cdc.gov/toxoplasmosis/about/index.html. [accessed 2024 Sep 15]CDC2024cAbout Toxoplasmosis. Toxoplasmosishttps://www.cdc.gov/toxoplasmosis/about/index.html. [accessed 2024 Sep 15]Search in Google Scholar
CDC. 2024d. Clinical Care of Human African Trypanosomiasis. Sleeping Sickness (African Trypanosomiasis). https://www.cdc.gov/sleeping-sickness/hcp/clinical-care/index.html [accessed 2024 Sep 9]CDC2024dClinical Care of Human African Trypanosomiasis. Sleeping Sickness (African Trypanosomiasis)https://www.cdc.gov/sleeping-sickness/hcp/clinical-care/index.html [accessed 2024 Sep 9]Search in Google Scholar
CDC. 2024e. Patient Care for Giardia Infection. Giardia. https://www.cdc.gov/giardia/hcp/clinical-care/index.html. [accessed 2024 Sep 15]CDC2024ePatient Care for Giardia Infection. Giardiahttps://www.cdc.gov/giardia/hcp/clinical-care/index.html. [accessed 2024 Sep 15]Search in Google Scholar
Cernikova L., Faso C., Hehl A.B.: Five facts about Giardia lamblia. PLOS Pathogens. 14(9) e1007250 (2018) doi:
10.1371/journal.ppat.1007250CernikovaL.FasoC.HehlA.B.Five facts about Giardia lambliaPLOS Pathogens149e1007250201810.1371/journal.ppat.1007250Open DOI
Certad G., Viscogliosi E., Chabé M., Cacciò S.M.: Pathogenic Mechanisms of Cryptosporidium and Giardia. Trends in Parasitology. 33(7) 561–576 (2017) doi:
10.1016/j.pt.2017.02.006CertadG.ViscogliosiE.ChabéM.CacciòS.M.Pathogenic Mechanisms of Cryptosporidium and GiardiaTrends in Parasitology.337561576201710.1016/j.pt.2017.02.006Open DOI
Ciuca L., Pepe P., Bosco A., Caccio S.M., Maurelli M.P., Sannella A.R., Vismarra A., Cringoli G., Kramer L., Rinaldi L., et al. Effectiveness of Fenbendazole and Metronidazole Against Giardia Infection in Dogs Monitored for 50-Days in Home-Conditions. Front Vet Sci. 8 626424 (2021) doi:
10.3389/fvets.2021.626424CiucaL.PepeP.BoscoA.CaccioS.M.MaurelliM.P.SannellaA.R.VismarraA.CringoliG.KramerL.RinaldiL.Effectiveness of Fenbendazole and Metronidazole Against Giardia Infection in Dogs Monitored for 50-Days in Home-ConditionsFront Vet Sci8626424202110.3389/fvets.2021.626424Open DOI
Cowell A.N., Winzeler E.A.: The genomic architecture of anti-malarial drug resistance. Brief Funct Genomics. 18(5) 314–328 (2019) doi:
10.1093/bfgp/elz008CowellA.N.WinzelerE.A.The genomic architecture of anti-malarial drug resistanceBrief Funct Genomics.185314328201910.1093/bfgp/elz008Open DOI
Cui Z., Li J., Chen Y., Zhang L.: Molecular epidemiology, evolution, and phylogeny of Entamoeba spp. Infection, Genetics and Evolution. 75, 104018 (2019) doi:
10.1016/j.meegid.2019.104018CuiZ.LiJ.ChenY.ZhangL.Molecular epidemiology, evolution, and phylogeny of Entamoeba sppInfection, Genetics and Evolution75104018201910.1016/j.meegid.2019.104018Open DOI
Dama S., Diakite B., Dinkorma O.T., Niangaly A., Kone A.K., Dara A., Kone A., Bamadio A., Kodio A., Doumbia D., et al.: Dynamics of Pfcrt K76T and Pfmdr1N86Y fifteen years after the withdrawal of chloroquine in Mali. AJPME. 2(1), 0–0 (2024) doi:
10.35995/ajpme2010004DamaS.DiakiteB.DinkormaO.T.NiangalyA.KoneA.K.DaraA.KoneA.BamadioA.KodioA.DoumbiaD.Dynamics of Pfcrt K76T and Pfmdr1N86Y fifteen years after the withdrawal of chloroquine in MaliAJPME2100202410.35995/ajpme2010004Open DOI
Doliwa C., Escotte-Binet S., Aubert D., Sauvage V., Velard F., Schmid A., Villena I.: Sulfadiazine resistance in Toxoplasma gondii: no involvement of overexpression or polymorphisms in genes of therapeutic targets and ABC transporters. Parasite. 20, 19 (2013) doi:
10.1051/parasite/2013020DoliwaC.Escotte-BinetS.AubertD.SauvageV.VelardF.SchmidA.VillenaI.Sulfadiazine resistance in Toxoplasma gondii: no involvement of overexpression or polymorphisms in genes of therapeutic targets and ABC transportersParasite2019201310.1051/parasite/2013020Open DOI
Dubey J.P.: Toxoplasmosis of Animals and Humans. 3rd ed. Boca Raton: CRC Press. (2021)DubeyJ.P.Toxoplasmosis of Animals and Humans3rd edBoca RatonCRC Press2021Search in Google Scholar
Dubey J.P. and Jones J.L.: Toxoplasma gondii infection in humans and animals in the United States. Int J Parasitol. 38(11) 1257–1278 (2008) doi:
10.1016/j.ijpara.2008.03.007DubeyJ.P.JonesJ.L.Toxoplasma gondii infection in humans and animals in the United StatesInt J Parasitol.381112571278200810.1016/j.ijpara.2008.03.007Open DOI
Dunay I.R., Gajurel K., Dhakal R., Liesenfeld O., Montoya J.G.: Treatment of Toxoplasmosis: Historical Perspective, Animal Models, and Current Clinical Practice. Clin Microbiol Rev. 31(4), e00057–17 (2018) doi:
10.1128/CMR.00057-17DunayI.R.GajurelK.DhakalR.LiesenfeldO.MontoyaJ.G.Treatment of Toxoplasmosis: Historical Perspective, Animal Models, and Current Clinical PracticeClin Microbiol Rev.314e00057–17201810.1128/CMR.00057-17Open DOI
Faucher B., Pomares C., Fourcade S., Benyamine A., Marty P., Pratlong L., Faraut F., Mary C., Piarroux R., Dedet J.P., et al.: Mucosal Leishmania infantum leishmaniasis: specific pattern in a multicentre survey and historical cases. J Infect. 63(1), 76–82 (2011) doi:
10.1016/j.jinf.2011.03.012FaucherB.PomaresC.FourcadeS.BenyamineA.MartyP.PratlongL.FarautF.MaryC.PiarrouxR.DedetJ.P.Mucosal Leishmania infantum leishmaniasis: specific pattern in a multicentre survey and historical casesJ Infect6317682201110.1016/j.jinf.2011.03.012Open DOI
Reed D.A., Nomura T., Talley A.K., Cooper R.A., Dzekunov S.M., Ferdig M.T., Ursos L.M., Sidhu A.B., Naudé B., Deitsch K.W., et al.: Mutations in the P. falciparum digestive vacuole transmembrane protein PfCRT and evidence for their role in chloroquine resistance. Mol Cell. 6(4), 861–871 (2000) doi:
10.1016/s1097-2765(05)00077-8ReedD.A.NomuraT.TalleyA.K.CooperR.A.DzekunovS.M.FerdigM.T.UrsosL.M.SidhuA.B.NaudéB.DeitschK.W.Mutations in the P. falciparum digestive vacuole transmembrane protein PfCRT and evidence for their role in chloroquine resistanceMol Cell64861871200010.1016/s1097-2765(05)00077-8Open DOI
Franco J.R., Priotto G., Paone M., Cecchi G., Ebeja A.K., Simarro P.P., Sankara D., Metwally S.B.A., Argaw D.D.: The elimination of human African trypanosomiasis: Monitoring progress towards the 2021–2030 WHO road map targets. PLOS Neglected Tropical Diseases18(4), e0012111 (2024) doi:
10.1371/journal.pntd.0012111FrancoJ.R.PriottoG.PaoneM.CecchiG.EbejaA.K.SimarroP.P.SankaraD.MetwallyS.B.A.ArgawD.D.The elimination of human African trypanosomiasis: Monitoring progress towards the 2021–2030 WHO road map targetsPLOS Neglected Tropical Diseases184e0012111202410.1371/journal.pntd.0012111Open DOI
Gelaw Y.M., Dagnew G.W., Alene G.D., Gangneux J.P., Robert-Gangneux F.: Toxoplasma gondii seroprevalence among pregnant women in Africa: A systematic review and meta-analysis. PLOS Neglected Tropical Diseases. 18(5), e0012198 (2024) doi:
10.1371/journal.pntd.0012198GelawY.M.DagnewG.W.AleneG.D.GangneuxJ.P.Robert-GangneuxF.Toxoplasma gondii seroprevalence among pregnant women in Africa: A systematic review and meta-analysisPLOS Neglected Tropical Diseases.185e0012198202410.1371/journal.pntd.0012198Open DOI
Ghosal A., Sardar S.K., Haldar T., Maruf M., Saito-Nakano Y., Dutta S., Nozaki T., Ganguly S.: Genotyping and epidemiological distribution of diarrhea-causing isolates of Giardia duodenalis in southeastern part of West Bengal, India. Parasitol Res. 122(11), 2567–2584 (2023) doi:
10.1007/s00436-023-07956-7.44GhosalA.SardarS.K.HaldarT.MarufM.Saito-NakanoY.DuttaS.NozakiT.GangulyS.Genotyping and epidemiological distribution of diarrhea-causing isolates of Giardia duodenalis in southeastern part of West Bengal, IndiaParasitol Res1221125672584202310.1007/s00436-023-07956-7.44Open DOI
Gibb H., Devleesschauwer B., Bolger P.M., Wu F., Ezendam J., Cliff J., Zeilmaker M., Verger P., Pitt J., Baines J., et al. World Health Organization estimates of the global and regional disease burden of four foodborne chemical toxins, 2010: a data synthesis. F1000Res. 4, 1393 (2015) doi:
10.12688/f1000research.7340.1GibbH.DevleesschauwerB.BolgerP.M.WuF.EzendamJ.CliffJ.ZeilmakerM.VergerP.PittJ.BainesJ.World Health Organization estimates of the global and regional disease burden of four foodborne chemical toxins, 2010: a data synthesisF1000Res41393201510.12688/f1000research.7340.1Open DOI
Gil J.P. and Fançony C.: Plasmodium falciparum Multidrug Resistance Proteins (pfMRPs). Front Pharmacol. 12 (2021) doi:
10.3389/fphar.2021.759422 [accessed 2024 Aug 31] https://www.frontiersin.org/journals/pharmacology/articles/10.3389/fphar.2021.759422/fullGilJ.P.FançonyC.Plasmodium falciparum Multidrug Resistance Proteins (pfMRPs)Front Pharmacol12202110.3389/fphar.2021.759422[accessed 2024 Aug 31] https://www.frontiersin.org/journals/pharmacology/articles/10.3389/fphar.2021.759422/fullOpen DOI
Keating G.M.: Fosfomycin trometamol: A review of its use as a single-dose oral treatment for patients with acute lower urinary tract infections and pregnant women with asymptomatic bacteriuria. Drugs. 73, 1951–1966 (2013) https://doi.org/10.1007/s40265-013-0143-yKeatingG.M.Fosfomycin trometamol: A review of its use as a single-dose oral treatment for patients with acute lower urinary tract infections and pregnant women with asymptomatic bacteriuriaDrugs73195119662013https://doi.org/10.1007/s40265-013-0143-ySearch in Google Scholar
Graf F.E., Ludin P., Wenzler T., Kaiser M., Brun R., Pyana P.P., Büscher P., Koning H.P. de, Horn D., Mäser P.: Aquaporin 2 Mutations in Trypanosoma brucei gambiense Field Isolates Correlate with Decreased Susceptibility to Pentamidine and Melarsoprol. PLOS Neglected Tropical Diseases. 7(10), e2475 (2013) doi:
10.1371/journal.pntd.0002475GrafF.E.LudinP.WenzlerT.KaiserM.BrunR.PyanaP.P.BüscherP.KoningH.P. deHornD.MäserP.Aquaporin 2 Mutations in Trypanosoma brucei gambiense Field Isolates Correlate with Decreased Susceptibility to Pentamidine and MelarsoprolPLOS Neglected Tropical Diseases.710e2475201310.1371/journal.pntd.0002475Open DOI
Guimaraes J.L., Lourie E.M.: The inhibition of some pharmacological actions of pentamidine by suramin. British Journal of Pharmacology and Chemotherapy. 6(3), 514 (1951) doi:
10.1111/j.1476-5381.1951.tb00663.xGuimaraesJ.L.LourieE.M.The inhibition of some pharmacological actions of pentamidine by suraminBritish Journal of Pharmacology and Chemotherapy63514195110.1111/j.1476-5381.1951.tb00663.xOpen DOI
Gupta P., Singh K., Balodhi A., Jain K., Deeba F., Salam N.: Prevalence of Amoebiasis and Associated Complications in India: A Systematic Review. Acta Parasitologica. 67 (2022) doi:
10.1007/s11686-022-00547-z.GuptaP.SinghK.BalodhiA.JainK.DeebaF.SalamN.Prevalence of Amoebiasis and Associated Complications in India: A Systematic ReviewActa Parasitologica67202210.1007/s11686-022-00547-zOpen DOI
Hajj R.E., Tawk L., Itani S., Hamie M., Ezzeddine J., El Sabban M., El Hajj H.: Toxoplasmosis: Current and Emerging Parasite Druggable Targets. Microorganisms. 9(12), 2531 (2021) doi:
10.3390/microorganisms9122531HajjR.E.TawkL.ItaniS.HamieM.EzzeddineJ.El SabbanM.El HajjH.Toxoplasmosis: Current and Emerging Parasite Druggable TargetsMicroorganisms9122531202110.3390/microorganisms9122531Open DOI
Hammershaimb E.A. and Berry A.A.: Pre-erythrocytic malaria vaccines: RTS,S, R21, and beyond. Expert Review of Vaccines. 23(1), 49–52 (2024) doi:
10.1080/14760584.2023.2292204HammershaimbE.A.BerryA.A.Pre-erythrocytic malaria vaccines: RTS,S, R21, and beyondExpert Review of Vaccines2314952202410.1080/14760584.2023.2292204Open DOI
Hassen J., Alemayehu G.S., Dinka H., Golassa L.: High prevalence of Pfcrt 76T and Pfmdr1 N86 genotypes in malaria infected patients attending health facilities in East Shewa zone, Oromia Regional State, Ethiopia. Malaria Journal. 21(1), 286 (2022) doi:
10.1186/s12936-022-04304-5HassenJ.AlemayehuG.S.DinkaH.GolassaL.High prevalence of Pfcrt 76T and Pfmdr1 N86 genotypes in malaria infected patients attending health facilities in East Shewa zone, Oromia Regional State, EthiopiaMalaria Journal211286202210.1186/s12936-022-04304-5Open DOI
Herwaldt B.L., Berman J.D.: Recommendations for treating leishmaniasis with sodium stibogluconate (Pentostam) and review of pertinent clinical studies. Am J Trop Med Hyg. 46(3), 296–306 (1992) doi:
10.4269/ajtmh.1992.46.296HerwaldtB.L.BermanJ.D.Recommendations for treating leishmaniasis with sodium stibogluconate (Pentostam) and review of pertinent clinical studiesAm J Trop Med Hyg463296306199210.4269/ajtmh.1992.46.296Open DOI
Hung D.T., Tran L., Tam D.N.H., Elshafei G., Cuong N.T.K., Ha N.X., Khader S.A.E., Le Quang L., Shaikhkhalil H.W., Abdallfatah A., et al.: The prevalence of Pfk13 polymorphism in malaria patients treated with artemisinin-based therapy: a systematic review and meta-analysis. Parasitol Res. 123(5), 209 (2024) doi:
10.1007/s00436-024-08203-3HungD.T.TranL.TamD.N.H.ElshafeiG.CuongN.T.K.HaN.X.KhaderS.A.E.Le QuangL.ShaikhkhalilH.W.AbdallfatahA.The prevalence of Pfk13 polymorphism in malaria patients treated with artemisinin-based therapy: a systematic review and meta-analysisParasitol Res1235209202410.1007/s00436-024-08203-3Open DOI
Imwong M., Pukrittakayamee S., Looareesuwan S., Pasvol G., Poirreiz J., White N.J., Snounou G.: Association of Genetic Mutations in Plasmodium vivax dhfr with Resistance to Sulfadoxine-Pyrimethamine: Geographical and Clinical Correlates. Anti microbial Agents and Chemotherapy. 45(11), 3122–3127 (2001) doi:
10.1128/aac.45.11.3122-3127.2001ImwongM.PukrittakayameeS.LooareesuwanS.PasvolG.PoirreizJ.WhiteN.J.SnounouG.Association of Genetic Mutations in Plasmodium vivax dhfr with Resistance to Sulfadoxine-Pyrimethamine: Geographical and Clinical CorrelatesAnti microbial Agents and Chemotherapy451131223127200110.1128/aac.45.11.3122-3127.2001Open DOI
Issa I., Lamine M.M., Hubert V., Ilagouma A., Adehossi E., Mahamadou A., Lobo N.F., Sarr D., Shollenberger L.M., Sandrine H., et al. Prevalence of Mutations in the Pfdhfr, Pfdhps, and Pfmdr1 Genes of Malarial Parasites Isolated from Symptomatic Patients in Dogondoutchi, Niger. Tropical Medicine and Infectious Disease. 7(8), 155 (2022) doi:
10.3390/tropicalmed7080155IssaI.LamineM.M.HubertV.IlagoumaA.AdehossiE.MahamadouA.LoboN.F.SarrD.ShollenbergerL.M.SandrineH.Prevalence of Mutations in the Pfdhfr, Pfdhps, and Pfmdr1 Genes of Malarial Parasites Isolated from Symptomatic Patients in Dogondoutchi, NigerTropical Medicine and Infectious Disease78155202210.3390/tropicalmed7080155Open DOI
Jackson D., Salem A., Coombs G.H.: The invitro activity of metronidazole against strains of Escherichia coli with impaired DNA repair systems. Journal of Antimicrobial Chemotherapy. 13(3), 227–236 (1984) doi:
10.1093/jac/13.3.227JacksonD.SalemA.CoombsG.H.The invitro activity of metronidazole against strains of Escherichia coli with impaired DNA repair systemsJournal of Antimicrobial Chemotherapy133227236198410.1093/jac/13.3.227Open DOI
Johnson A.M.: Toxoplasma: Biology, Pathology, Immunology, and Treatment. In: Coccidiosis of Man and Domestic Animals. CRC Press. 34 p. (1990)JohnsonA.M.Toxoplasma: Biology, Pathology, Immunology, and TreatmentIn:Coccidiosis of Man and Domestic AnimalsCRC Press341990Search in Google Scholar
Jones J.L., Kruszon-Moran D., Elder S., Rivera H.N., Press C., Montoya J.G., McQuillan G.M.: Toxoplasma gondii Infection in the United States. Am J Trop Med Hyg. 98(2), 551–557 (2018) doi:
10.4269/ajtmh.17-0677JonesJ.L.Kruszon-MoranD.ElderS.RiveraH.N.PressC.MontoyaJ.G.McQuillanG.M.Toxoplasma gondii Infection in the United StatesAm J Trop Med Hyg982551557201810.4269/ajtmh.17-0677Open DOI
Kalavani S, Matin S., Rahmanian V., Meshkin A., Bahadori Mazidi B., Taghipour A., Abdoli A.: Prevalence of Giardia duodenalis among African children: A systematic review and meta-analysis. Parasite Epidemiology and Control. 26, e00365 (2024) doi:
10.1016/j.parepi.2024.e00365KalavaniSMatinS.RahmanianV.MeshkinA.Bahadori MazidiB.TaghipourA.AbdoliA.Prevalence of Giardia duodenalis among African children: A systematic review and meta-analysisParasite Epidemiology and Control26e00365202410.1016/j.parepi.2024.e00365Open DOI
Kaplan B., Kahn L.H., Monath T.P., Woodall J.: “ONE HEALTH” and parasitology. Parasites & Vectors. 2(1), 36 (2009) doi:
10.1186/1756-3305-2-36KaplanB.KahnL.H.MonathT.P.WoodallJ.“ONE HEALTH” and parasitologyParasites & Vectors2136200910.1186/1756-3305-2-36Open DOI
Koné M., Kaba D., Kaboré J., Thomas L.F., Falzon L.C., Koffi M., Kouamé C.M., Ahouty B., Compaoré C.F.A., N’Gouan E.K., et al.: Passive surveillance of human African trypanosomiasis in Côte d’Ivoire: Understanding prevalence, clinical symptoms and signs, and diagnostic test characteristics. PLOS Neglected Tropical Diseases. 15(8) e0009656 (2021) doi:
10.1371/journal.pntd.0009656KonéM.KabaD.KaboréJ.ThomasL.F.FalzonL.C.KoffiM.KouaméC.M.AhoutyB.CompaoréC.F.A.N’GouanE.K.Passive surveillance of human African trypanosomiasis in Côte d’Ivoire: Understanding prevalence, clinical symptoms and signs, and diagnostic test characteristicsPLOS Neglected Tropical Diseases158e0009656202110.1371/journal.pntd.0009656Open DOI
de Koning H.P., Anderson L.F., Stewart M., Burchmore R.J.S., Wallace L.J.M., Barrett M.P.: The Trypanocide Diminazene Aceturate Is Accumulated Predominantly through the TbAT1 Purine Transporter: Additional Insights on Diamidine Resistance in African Trypanosomes. Antimicrobial Agents and Chemotherapy. 48(5), 1515–1519 (2004) doi:
10.1128/aac.48.5.1515-1519.2004de KoningH.P.AndersonL.F.StewartM.BurchmoreR.J.S.WallaceL.J.M.BarrettM.P.The Trypanocide Diminazene Aceturate Is Accumulated Predominantly through the TbAT1 Purine Transporter: Additional Insights on Diamidine Resistance in African TrypanosomesAntimicrobial Agents and Chemotherapy48515151519200410.1128/aac.48.5.1515-1519.2004Open DOI
Konstantinovic N, Guegan H, Stäjner T, Belaz S, Robert-Gangneux F. 2019. Treatment of toxoplasmosis: Current options and future perspectives. Food and Waterborne Parasitology. 15:e00036. doi:10.1016/j.fawpar.2019.e00036.KonstantinovicNGueganHStäjnerTBelazSRobert-GangneuxF2019Treatment of toxoplasmosis: Current options and future perspectivesFood and Waterborne Parasitology15e0003610.1016/j.fawpar.2019.e00036Open DOISearch in Google Scholar
Krakovka S., Ribacke U., Miyamoto Y., Eckmann L., Svärd S.: Characterization of Metronidazole-Resistant Giardia intestinalis Lines by Comparative Transcriptomics and Proteomics. Front Microbiol. 13 (2022) doi:
10.3389/fmicb.2022.834008 [accessed 2024 Aug 27] https://www.frontiersin.org/journals/microbiology/articles/10.3389/fmicb.2022.834008/fullKrakovkaS.RibackeU.MiyamotoY.EckmannL.SvärdS.Characterization of Metronidazole-Resistant Giardia intestinalis Lines by Comparative Transcriptomics and ProteomicsFront Microbiol13202210.3389/fmicb.2022.834008[accessed 2024 Aug 27] https://www.frontiersin.org/journals/microbiology/articles/10.3389/fmicb.2022.834008/fullOpen DOI
Lagunas-Rangel F.A., Yee J., Bermúdez-Cruz R.M.: An update on cell division of Giardia duodenalis trophozoites. Microbiological Research. 250, 126807 (2021) doi:
10.1016/j.micres.2021.126807Lagunas-RangelF.A.YeeJ.Bermúdez-CruzR.M.An update on cell division of Giardia duodenalis trophozoitesMicrobiological Research250126807202110.1016/j.micres.2021.126807Open DOI
Lapinskas P.J. and Ben-Harari R.R.: Perspective on current and emerging drugs in the treatment of acute and chronic toxoplasmosis. Postgraduate Medicine. 131(8), 589–596 (2019) doi:
10.1080/00325481.2019.1655258LapinskasP.J.Ben-HarariR.R.Perspective on current and emerging drugs in the treatment of acute and chronic toxoplasmosisPostgraduate Medicine1318589596201910.1080/00325481.2019.1655258Open DOI
Makarov A., Began J., Mautone I.C., Pinto E., Ferguson L., Zoltner M., Zoll S., Field M.C.: The role of invariant surface glycoprotein 75 in xenobiotic acquisition by African trypanosomes. Microb Cell. 10(2), 18–35 (2023) doi:
10.15698/mic2023.02.790MakarovA.BeganJ.MautoneI.C.PintoE.FergusonL.ZoltnerM.ZollS.FieldM.C.The role of invariant surface glycoprotein 75 in xenobiotic acquisition by African trypanosomesMicrob Cell1021835202310.15698/mic2023.02.790Open DOI
Mann S., Frasca K., Scherrer S., Henao-Martínez A.F., Newman S., Ramanan P., Suarez J.A.: A Review of Leishmaniasis: Current Knowledge and Future Directions. Curr Trop Med Rep. 8(2), 121–132 (2021) doi:
10.1007/s40475-021-00232-7MannS.FrascaK.ScherrerS.Henao-MartínezA.F.NewmanS.RamananP.SuarezJ.A.A Review of Leishmaniasis: Current Knowledge and Future DirectionsCurr Trop Med Rep82121132202110.1007/s40475-021-00232-7Open DOI
Marques M.M., Costa M.R.F., Santana Filho F.S., Vieira J.L.F., Nascimento M.T.S., Brasil L.W., Nogueira F., Silveira H., Reyes-Lecca R.C., Monteiro W.M., et al.: Plasmodium vivax Chloroquine Resistance and Anemia in the Western Brazilian Amazon. Antimicrobial Agents and Chemotherapy. 58(1), 342–347 (2014) doi:
10.1128/aac.02279-12MarquesM.M.CostaM.R.F.Santana FilhoF.S.VieiraJ.L.F.NascimentoM.T.S.BrasilL.W.NogueiraF.SilveiraH.Reyes-LeccaR.C.MonteiroW.M.Plasmodium vivax Chloroquine Resistance and Anemia in the Western Brazilian AmazonAntimicrobial Agents and Chemotherapy581342347201410.1128/aac.02279-12Open DOI
Matovu E., Stewart M.L., Geiser F., Brun R., Mäser P., Wallace L.J.M., Burchmore R.J., Enyaru J.C.K., Barrett M.P., Kaminsky R., et al.: Mechanisms of Arsenical and Diamidine Uptake and Resistance in Trypanosoma brucei. Eukaryotic Cell. 2(5), 1003–1008 (2003) doi:
10.1128/ec.2.5.1003-1008.2003MatovuE.StewartM.L.GeiserF.BrunR.MäserP.WallaceL.J.M.BurchmoreR.J.EnyaruJ.C.K.BarrettM.P.KaminskyR.Mechanisms of Arsenical and Diamidine Uptake and Resistance in Trypanosoma bruceiEukaryotic Cell2510031008200310.1128/ec.2.5.1003-1008.2003Open DOI
McFadden D.C., Tomavo S., Berry E.A., Boothroyd J.C.: Characterization of cytochrome b from Toxoplasma gondii and Qo domain mutations as a mechanism of atovaquone-resistance. Molecular and Biochemical Parasitology. 108(1), 1–12 (2000) doi:
10.1016/S0166-6851(00)00184-5McFaddenD.C.TomavoS.BerryE.A.BoothroydJ.C.Characterization of cytochrome b from Toxoplasma gondii and Qo domain mutations as a mechanism of atovaquone-resistanceMolecular and Biochemical Parasitology1081112200010.1016/S0166-6851(00)00184-5Open DOI
Meneceur P., Bouldouyre M.A., Aubert D., Villena I., Menotti J., Sauvage V., Garin J.F., Derouin F.: In Vitro Susceptibility of Various Genotypic Strains of Toxoplasma gondii to Pyrimethamine, Sulfadiazine, and Atovaquone. Antimicrob Agents Chemother. 52(4), 1269–1277 (2008) doi:
10.1128/AAC.01203-07MeneceurP.BouldouyreM.A.AubertD.VillenaI.MenottiJ.SauvageV.GarinJ.F.DerouinF.In Vitro Susceptibility of Various Genotypic Strains of Toxoplasma gondii to Pyrimethamine, Sulfadiazine, and AtovaquoneAntimicrob Agents Chemother52412691277200810.1128/AAC.01203-07Open DOI
Meshnick S.R. and Dobson M.J.: The History of Antimalarial Drugs. In: Rosenthal PJ, editor. Antimalarial Chemotherapy: Mechanisms of Action, Resistance, and New Directions in Drug Discovery. Totowa, NJ: Humana Press. p. 15–25 (2001) [accessed 2024 Sep 7] https://doi.org/10.1007/978-1-59259-111-4_2MeshnickS.R.DobsonM.J.The History of Antimalarial DrugsIn:RosenthalPJeditorAntimalarial Chemotherapy: Mechanisms of Action, Resistance, and New Directions in Drug DiscoveryTotowa, NJHumana Press15252001[accessed 2024 Sep 7] https://doi.org/10.1007/978-1-59259-111-4_2Search in Google Scholar
Minbaeva G., Schweiger A., Bodosheva A., Kuttubaev O., Hehl A.B., Tanner I., Ziadinov I., Torgerson P.R., Deplazes P.: Toxoplasma gondii infection in Kyrgyzstan: seroprevalence, risk factor analysis, and estimate of congenital and AIDS-related toxoplasmosis. PLoS Negl Trop Dis. 7(2), e2043 (2013) doi:
10.1371/journal.pntd.0002043MinbaevaG.SchweigerA.BodoshevaA.KuttubaevO.HehlA.B.TannerI.ZiadinovI.TorgersonP.R.DeplazesP.Toxoplasma gondii infection in Kyrgyzstan: seroprevalence, risk factor analysis, and estimate of congenital and AIDS-related toxoplasmosisPLoS Negl Trop Dis.72e2043201310.1371/journal.pntd.0002043Open DOI
Monis P.T., Caccio S.M., Thompson R.C.A.: Variation in Giardia: towards a taxonomic revision of the genus. Trends in Parasitology. 25(2), 93–100 (2009) doi:
10.1016/j.pt.2008.11.006MonisP.T.CaccioS.M.ThompsonR.C.A.Variation in Giardia: towards a taxonomic revision of the genusTrends in Parasitology25293100200910.1016/j.pt.2008.11.006Open DOI
Moreira E.T. de S., Castro Faria Neto H.C. de, Reis P.A.: Chapter 17 – Cerebral malaria: Understanding the parasite pathogenesis in the brain. In: De Quevedo JL, Barichello T, Hasbun R, Dal-Pizzol F, editors. Neurobiology of Infectious Diseases. Academic Press. (Neurobiology of Disease). p. 291–304 (2025)MoreiraE.T. de S.Castro Faria NetoH.C. deReisP.A.Chapter 17 – Cerebral malaria: Understanding the parasite pathogenesis in the brainIn:De QuevedoJLBarichelloTHasbunRDal-PizzolFeditorsNeurobiology of Infectious DiseasesAcademic Press(Neurobiology of Disease)2913042025Search in Google Scholar
Moss S., Mańko E., Krishna S., Campino S., Clark T.G., Last A.: How has mass drug administration with dihydroartemisininpiperaquine impacted molecular markers of drug resistance? A systematic review. Malar J. 21(1), 186 (2022) doi:
10.1186/s12936-022-04181-yMossS.MańkoE.KrishnaS.CampinoS.ClarkT.G.LastA.How has mass drug administration with dihydroartemisininpiperaquine impacted molecular markers of drug resistance? A systematic reviewMalar J211186202210.1186/s12936-022-04181-yOpen DOI
Mukherjee A., Padmanabhan P.K., Singh S., Roy G., Girard I., Chatterjee M., Ouellette M., Madhubala R.: Role of ABC transporter MRPA, γ-glutamylcysteine synthetase and ornithine decarboxylase in natural antimony-resistant isolates of Leishmania donovani. Journal of Antimicrobial Chemotherapy. 59(2), 204–211 (2007) doi:
10.1093/jac/dkl494MukherjeeA.PadmanabhanP.K.SinghS.RoyG.GirardI.ChatterjeeM.OuelletteM.MadhubalaR.Role of ABC transporter MRPA, γ-glutamylcysteine synthetase and ornithine decarboxylase in natural antimony-resistant isolates of Leishmania donovaniJournal of Antimicrobial Chemotherapy592204211200710.1093/jac/dkl494Open DOI
Munday J.C., Eze A.A., Baker N., Glover L., Clucas C., Aguinaga Andrés D., Natto M.J., Teka I.A., McDonald J., Lee R.S., et al. Trypanosoma brucei aquaglyceroporin 2 is a high-affinity transporter for pentamidine and melaminophenyl arsenic drugs and the main genetic determinant of resistance to these drugs. Journal of Antimicrobial Chemotherapy. 69(3), 651–663 (2014) doi:
10.1093/jac/dkt442MundayJ.C.EzeA.A.BakerN.GloverL.ClucasC.Aguinaga AndrésD.NattoM.J.TekaI.A.McDonaldJ.LeeR.S.Trypanosoma brucei aquaglyceroporin 2 is a high-affinity transporter for pentamidine and melaminophenyl arsenic drugs and the main genetic determinant of resistance to these drugsJournal of Antimicrobial Chemotherapy693651663201410.1093/jac/dkt442Open DOI
Munday J.C., Settimo L., de Koning H.P.: Transport proteins determine drug sensitivity and resistance in a protozoan parasite, Trypanosoma brucei. Front Pharmacol. 6 (2015) doi:
10.3389/fphar.2015.00032MundayJ.C.SettimoL.de KoningH.P.Transport proteins determine drug sensitivity and resistance in a protozoan parasite, Trypanosoma bruceiFront Pharmacol6201510.3389/fphar.2015.00032Open DOI
Naghavi M., Mestrovic T., Gray A., Hayoon A.G., Swetschinski L.R., Aguilar G.R., Weaver N.D., Ikuta K.S., Chung E., Wool E.E., et al.: Global burden associated with 85 pathogens in 2019: a systematic analysis for the Global Burden of Disease Study 2019. The Lancet Infectious Diseases. 24(8), 868–895 (2024) doi:
10.1016/S1473-3099(24)00158-0NaghaviM.MestrovicT.GrayA.HayoonA.G.SwetschinskiL.R.AguilarG.R.WeaverN.D.IkutaK.S.ChungE.WoolE.E.Global burden associated with 85 pathogens in 2019: a systematic analysis for the Global Burden of Disease Study 2019The Lancet Infectious Diseases248868895202410.1016/S1473-3099(24)00158-0Open DOI
Nok A.J.: Arsenicals (melarsoprol), pentamidine and suramin in the treatment of human African trypanosomiasis. Parasitol Res. 90(1), 71–79 (2003) doi:
10.1007/s00436-002-0799-9NokA.J.Arsenicals (melarsoprol), pentamidine and suramin in the treatment of human African trypanosomiasisParasitol Res9017179200310.1007/s00436-002-0799-9Open DOI
Noronha M., Pawar V., Prajapati A., Subramanian R.B.: A literature review on traditional herbal medicines for malaria. South African Journal of Botany. 128 292–303 (2020) doi:
10.1016/j.sajb.2019.11.017NoronhaM.PawarV.PrajapatiA.SubramanianR.B.A literature review on traditional herbal medicines for malariaSouth African Journal of Botany128292303202010.1016/j.sajb.2019.11.017Open DOI
Nsobya S.L., Dokomajilar C., Joloba M., Dorsey G., Rosenthal P.J.: Resistance-Mediating Plasmodium falciparum pfcrt and pfmdr1 Alleles after Treatment with Artesunate-Amodiaquine in Uganda. Antimicrobial Agents and Chemotherapy. 51(8), 3023–3025 (2007) doi:
10.1128/aac.00012-07NsobyaS.L.DokomajilarC.JolobaM.DorseyG.RosenthalP.J.Resistance-Mediating Plasmodium falciparum pfcrt and pfmdr1 Alleles after Treatment with Artesunate-Amodiaquine in UgandaAntimicrobial Agents and Chemotherapy51830233025200710.1128/aac.00012-07Open DOI
O’Neill P.M., Barton V.E., Ward S.A.: The molecular mechanism of action of artemisinin-the debate continues. Molecules. 15(3), 1705–1721 (2010) doi:
10.3390/molecules15031705O’NeillP.M.BartonV.E.WardS.A.The molecular mechanism of action of artemisinin-the debate continuesMolecules15317051721201010.3390/molecules15031705Open DOI
Pacheco M.A., Schneider K.A., Cheng Q., Munde E.O., Ndege C., Onyango C., Raballah E., Anyona S.B., Ouma C., Perkins D.J., et al. Changes in the frequencies of Plasmodium falciparum dhps and dhfr drug-resistant mutations in children from Western Kenya from 2005 to 2018: the rise of Pfdhps S436H. Malar J. 19(1), 378 (2020) doi:
10.1186/s12936-020-03454-8PachecoM.A.SchneiderK.A.ChengQ.MundeE.O.NdegeC.OnyangoC.RaballahE.AnyonaS.B.OumaC.PerkinsD.J.Changes in the frequencies of Plasmodium falciparum dhps and dhfr drug-resistant mutations in children from Western Kenya from 2005 to 2018: the rise of Pfdhps S436HMalar J191378202010.1186/s12936-020-03454-8Open DOI
Patel P., Bharti P.K., Bansal D., Ali N.A., Raman R.K., Mohapatra P.K., Sehgal R., Mahanta J., Sultan A.A., Singh N.: Prevalence of mutations linked to antimalarial resistance in Plasmodium falciparum from Chhattisgarh, Central India: A malaria elimination point of view. Sci Rep. 7(1), 16690 (2017) doi:
10.1038/s41598-017-16866-5PatelP.BhartiP.K.BansalD.AliN.A.RamanR.K.MohapatraP.K.SehgalR.MahantaJ.SultanA.A.SinghN.Prevalence of mutations linked to antimalarial resistance in Plasmodium falciparum from Chhattisgarh, Central India: A malaria elimination point of viewSci Rep7116690201710.1038/s41598-017-16866-5Open DOI
Pérez-Victoria J.M., Bavchvarov B.I., Torrecillas I.R., Martínez-García M., López-Martín C., Campillo M., Castanys S., Gamarro F.: Sitamaquine overcomes ABC-mediated resistance to miltefosine and antimony in Leishmania. Antimicrob Agents Chemother. 55(8), 3838–3844 (2011) doi:
10.1128/AAC.00065-11Pérez-VictoriaJ.M.BavchvarovB.I.TorrecillasI.R.Martínez-GarcíaM.López-MartínC.CampilloM.CastanysS.GamarroF.Sitamaquine overcomes ABC-mediated resistance to miltefosine and antimony in LeishmaniaAntimicrob Agents Chemother55838383844201110.1128/AAC.00065-11Open DOI
Perry D., Dixon K., Garlapati R., Gendernalik A., Poché D., Poché R.: Visceral Leishmaniasis Prevalence and Associated Risk Factors in the Saran District of Bihar, India, from 2009 to July of 2011. Am J Trop Med Hyg. 88(4), 778–784 (2013) doi:
10.4269/ajtmh.12-0442PerryD.DixonK.GarlapatiR.GendernalikA.PochéD.PochéR.Visceral Leishmaniasis Prevalence and Associated Risk Factors in the Saran District of Bihar, India, from 2009 to July of 2011Am J Trop Med Hyg884778784201310.4269/ajtmh.12-0442Open DOI
Pinart M., Rueda J.R., Romero G.A., Pinzón-Flórez C.E., Osorio-Arango K., Silveira Maia-Elkhoury A.N., Reveiz L., Elias V.M., Tweed J.A.: Interventions for American cutaneous and mucocutaneous leishmaniasis. Cochrane Database Syst Rev. 2020(8), CD004834 92020) doi:
10.1002/14651858.CD004834.pub3PinartM.RuedaJ.R.RomeroG.A.Pinzón-FlórezC.E.Osorio-ArangoK.Silveira Maia-ElkhouryA.N.ReveizL.EliasV.M.TweedJ.A.Interventions for American cutaneous and mucocutaneous leishmaniasisCochrane Database Syst Rev20208CD004834 9202010.1002/14651858.CD004834.pub3Open DOI
Pluijm R.W. van der, Amaratunga C., Dhorda M., Dondorp A.M.: Triple Artemisinin-Based Combination Therapies for Malaria – A New Paradigm? Trends in Parasitology37(1), 15–24 (2021) doi:
10.1016/j.pt.2020.09.011PluijmR.W. van derAmaratungaC.DhordaM.DondorpA.M.Triple Artemisinin-Based Combination Therapies for Malaria – A New Paradigm?Trends in Parasitology3711524202110.1016/j.pt.2020.09.011Open DOI
Ponte-Sucre A., Gamarro F., Dujardin J.C., Barrett M.P., López-Vélez R., García-Hernández R., Pountain A.W., Mwenechanya R., Papadopoulou B.: Drug resistance and treatment failure in leishmaniasis: A 21st century challenge. PLOS Neglected Tropical Diseases11(12), e0006052 (2017) doi:
10.1371/journal.pntd.0006052Ponte-SucreA.GamarroF.DujardinJ.C.BarrettM.P.López-VélezR.García-HernándezR.PountainA.W.MwenechanyaR.PapadopoulouB.Drug resistance and treatment failure in leishmaniasis: A 21st century challengePLOS Neglected Tropical Diseases1112e0006052201710.1371/journal.pntd.0006052Open DOI
Potvin J.E., Leprohon P., Queffeulou M., Sundar S., Ouellette M.: Mutations in an Aquaglyceroporin as a Proven Marker of Antimony Clinical Resistance in the Parasite Leishmania donovani. Clin Infect Dis. 72(10), e526–e532 (2020) doi:
10.1093/cid/ciaa1236PotvinJ.E.LeprohonP.QueffeulouM.SundarS.OuelletteM.Mutations in an Aquaglyceroporin as a Proven Marker of Antimony Clinical Resistance in the Parasite Leishmania donovaniClin Infect Dis.7210e526e532202010.1093/cid/ciaa1236Open DOI
Pountain A.W., Weidt S.K., Regnault C., Bates P.A., Donachie A.M., Dickens N.J., Barrett M.P.: Genomic instability at the locus of sterol C24-methyltransferase promotes amphotericin B resistance in Leishmania parasites. PLoS Negl Trop Dis. 13(2), e0007052 (2019) doi:
10.1371/journal.pntd.0007052PountainA.W.WeidtS.K.RegnaultC.BatesP.A.DonachieA.M.DickensN.J.BarrettM.P.Genomic instability at the locus of sterol C24-methyltransferase promotes amphotericin B resistance in Leishmania parasitesPLoS Negl Trop Dis.132e0007052201910.1371/journal.pntd.0007052Open DOI
Prusa A.R., Kasper D.C., Pollak A., Olischar M., Gleiss A., Hayde M.: Amniocentesis for the detection of congenital toxoplasmosis: results from the nationwide Austrian prenatal screening program. Clinical Microbiology and Infection. 21(2), 191.e1–191.e8 (2015) doi:
10.1016/j.cmi.2014.09.018PrusaA.R.KasperD.C.PollakA.OlischarM.GleissA.HaydeM.Amniocentesis for the detection of congenital toxoplasmosis: results from the nationwide Austrian prenatal screening programClinical Microbiology and Infection.212191.e1191.e8201510.1016/j.cmi.2014.09.018Open DOI
Pulcini S., Staines H.M., Lee A.H., Shafik S.H., Bouyer G., Moore C.M., Daley D.A., Hoke M.J., Altenhofen L.M., Painter H.J., et al.: Mutations in the Plasmodium falciparum chloroquine resistance transporter, PfCRT, enlarge the parasite’s food vacuole and alter drug sensitivities. Sci Rep. 5(1), 14552 (2015) doi:
10.1038/srep14552PulciniS.StainesH.M.LeeA.H.ShafikS.H.BouyerG.MooreC.M.DaleyD.A.HokeM.J.AltenhofenL.M.PainterH.J.Mutations in the Plasmodium falciparum chloroquine resistance transporter, PfCRT, enlarge the parasite’s food vacuole and alter drug sensitivitiesSci Rep5114552201510.1038/srep14552Open DOI
Reed M.B., Saliba K.J., Caruana S.R., Kirk K., Cowman A.F.: Pgh1 modulates sensitivity and resistance to multiple antimalarials in Plasmodium falciparum. Nature. 403(6772), 906–909 (2000) doi:
10.1038/35002615ReedM.B.SalibaK.J.CaruanaS.R.KirkK.CowmanA.F.Pgh1 modulates sensitivity and resistance to multiple antimalarials in Plasmodium falciparumNature4036772906909200010.1038/35002615Open DOI
Rénia L. and Goh Y.S.: Malaria Parasites: The Great Escape. Front Immunol. 7 (2016) doi:
10.3389/fimmu.2016.00463RéniaL.GohY.S.Malaria Parasites: The Great EscapeFront Immunol7201610.3389/fimmu.2016.00463Open DOI
Riches A., Hart C.J.S., Trenholme K.R., Skinner-Adams T.S.: Anti-Giardia Drug Discovery: Current Status and Gut Feelings. J Med Chem. 63(22), 13330–13354 (2020) doi:
10.1021/acs.jmedchem.0c00910RichesA.HartC.J.S.TrenholmeK.R.Skinner-AdamsT.S.Anti-Giardia Drug Discovery: Current Status and Gut FeelingsJ Med Chem63221333013354202010.1021/acs.jmedchem.0c00910Open DOI
Robert-Gangneux F., Murat J.B., Fricker-Hidalgo H., Brenier-Pinchart M.P., Gangneux J.P., Pelloux H.: The placenta: a main role in congenital toxoplasmosis? Trends Parasitol. 27(12), 530–536 (2011) doi:
10.1016/j.pt.2011.09.005Robert-GangneuxF.MuratJ.B.Fricker-HidalgoH.Brenier-PinchartM.P.GangneuxJ.P.PellouxH.The placenta: a main role in congenital toxoplasmosis?Trends Parasitol2712530536201110.1016/j.pt.2011.09.005Open DOI
Rodrigo C., Rajapakse S., Fernando D.: Tafenoquine for preventing relapse in people with Plasmodium vivax malaria. Cochrane Database Syst Rev.2020(9), CD010458 (2020) doi:
10.1002/14651858.CD010458.pub3RodrigoC.RajapakseS.FernandoD.Tafenoquine for preventing relapse in people with Plasmodium vivax malariaCochrane Database Syst Rev20209CD010458202010.1002/14651858.CD010458.pub3Open DOI
Roro G.B., Eriso F., Al-Hazimi A.M., Kuddus M., Singh S.C., Upadhye V., Hajare S.T.: Prevalence and associated risk factors of Entamoeba histolytica infection among school children from three primary schools in Arsi Town, West Zone, Ethiopia. J Parasit Dis. 46(3), 776–784 (2022) doi:
10.1007/s12639-022-01495-1RoroG.B.ErisoF.Al-HazimiA.M.KuddusM.SinghS.C.UpadhyeV.HajareS.T.Prevalence and associated risk factors of Entamoeba histolytica infection among school children from three primary schools in Arsi Town, West Zone, EthiopiaJ Parasit Dis463776784202210.1007/s12639-022-01495-1Open DOI
SA Maternal & Neonatal Clinical Network. South Australian Perinatal Practice Guidelines toxoplasmosis in pregnancy. (2015)SA Maternal & Neonatal Clinical NetworkSouth Australian Perinatal Practice Guidelines toxoplasmosis in pregnancy2015Search in Google Scholar
Sands M., Kron M.A., Brown R.B.: Pentamidine: A Review. Reviews of Infectious Diseases. 7(5), 625–6344 (1985) doi:
10.1093/clinids/7.5.625SandsM.KronM.A.BrownR.B.Pentamidine: A ReviewReviews of Infectious Diseases756256344198510.1093/clinids/7.5.625Open DOI
Sasidharan S. and Saudagar P.: Leishmaniasis: where are we and where are we heading? Parasitol Res. 120(5), 1541–1554 (2021) doi:
10.1007/s00436-021-07139-2SasidharanS.SaudagarP.Leishmaniasis: where are we and where are we heading?Parasitol Res120515411554202110.1007/s00436-021-07139-2Open DOI
Sawyer P.R., Brogden R.N., Pinder R.M., Speight T.M., Avery G.S.: Tinidazole: a review of its antiprotozoal activity and therapeutic efficacy. Drugs. 11(6), 423–440 (1976) doi:
10.2165/00003495-197611060-00003SawyerP.R.BrogdenR.N.PinderR.M.SpeightT.M.AveryG.S.Tinidazole: a review of its antiprotozoal activity and therapeutic efficacyDrugs116423440197610.2165/00003495-197611060-00003Open DOI
Schousboe M.L., Ranjitkar S., Rajakaruna R.S., Amerasinghe P.H., Morales F., Pearce R., Ord R., Leslie T., Rowland M., Gadalla N.B, et al. Multiple Origins of Mutations in the mdr1 Gene-A Putative Marker of Chloroquine Resistance in P. vivax. PLOS Neglected Tropical Diseases. 9(11), e0004196 (2015) doi:
10.1371/journal.pntd.0004196SchousboeM.L.RanjitkarS.RajakarunaR.S.AmerasingheP.H.MoralesF.PearceR.OrdR.LeslieT.RowlandM.GadallaN.BMultiple Origins of Mutations in the mdr1 Gene-A Putative Marker of Chloroquine Resistance in P. vivaxPLOS Neglected Tropical Diseases911e0004196201510.1371/journal.pntd.0004196Open DOI
Semedo M.G., Pereira A.L., Pita J.R.: The influence of German science on Cinchona and quinine research in Portugal in the second half of the 19th century. Pharmazie. 76(8), 396–402 (2021) doi:
10.1691/ph.2021.1050SemedoM.G.PereiraA.L.PitaJ.R.The influence of German science on Cinchona and quinine research in Portugal in the second half of the 19th centuryPharmazie768396402202110.1691/ph.2021.1050Open DOI
Servián A., Helman E., Iglesias M. del R., Panti-May J.A., Zonta M.L., Navone G.T.: Prevalence of Human Intestinal Entamoeba spp. in the Americas: A Systematic Review and Meta-Analysis 1990–2022. Pathogens. 11(11), 1365 (2022) doi:
10.3390/pathogens11111365ServiánA.HelmanE.IglesiasM. del R.Panti-MayJ.A.ZontaM.L.NavoneG.T.Prevalence of Human Intestinal Entamoeba spp. in the Americas: A Systematic Review and Meta-Analysis 1990–2022Pathogens11111365202210.3390/pathogens11111365Open DOI
Sharpton T.J., Combrink L., Arnold H.K., Gaulke C.A., Kent M.: Harnessing the Gut Microbiome in the Fight against Anthelminthic Drug Resistance. Curr Opin Microbiol. 53, 26–34 (2020) doi:
10.1016/j.mib.2020.01.017SharptonT.J.CombrinkL.ArnoldH.K.GaulkeC.A.KentM.Harnessing the Gut Microbiome in the Fight against Anthelminthic Drug ResistanceCurr Opin Microbiol532634202010.1016/j.mib.2020.01.017Open DOI
Silva L.A., Reis-Cunha J.L., Bartholomeu D.C., Vítor R.W.A.: Genetic Polymorphisms and Phenotypic Profiles of Sulfadiazine-Resistant and Sensitive Toxoplasma gondii Isolates Obtained from Newborns with Congenital Toxoplasmosis in Minas Gerais, Brazil. PLOS ONE12(1), e0170689 (2017) doi:
10.1371/journal.pone.0170689SilvaL.A.Reis-CunhaJ.L.BartholomeuD.C.VítorR.W.A.Genetic Polymorphisms and Phenotypic Profiles of Sulfadiazine-Resistant and Sensitive Toxoplasma gondii Isolates Obtained from Newborns with Congenital Toxoplasmosis in Minas Gerais, BrazilPLOS ONE121e0170689201710.1371/journal.pone.0170689Open DOI
Singh A., Banerjee T., Shukla S.K., Upadhyay S., Verma A.: Creep in nitroimidazole inhibitory concentration among the Entamoeba histolytica isolates causing amoebic liver abscess and screening of andrographolide as a repurposing drug. Sci Rep. 13(1), 12192 (2023) doi:
10.1038/s41598-023-39382-1SinghA.BanerjeeT.ShuklaS.K.UpadhyayS.VermaA.Creep in nitroimidazole inhibitory concentration among the Entamoeba histolytica isolates causing amoebic liver abscess and screening of andrographolide as a repurposing drugSci Rep13112192202310.1038/s41598-023-39382-1Open DOI
Singh A., Houpt E., Petri W.A.: Rapid Diagnosis of Intestinal Parasitic Protozoa, with a Focus on Entamoeba histolytica. Interdisciplinary Perspectives on Infectious Diseases2009(1), 547090 (2009) doi:
10.1155/2009/547090SinghA.HouptE.PetriW.A.Rapid Diagnosis of Intestinal Parasitic Protozoa, with a Focus on Entamoeba histolyticaInterdisciplinary Perspectives on Infectious Diseases20091547090200910.1155/2009/547090Open DOI
Sosa N., Pascale J.M., Jiménez A.I., Norwood J.A., Kreishman-Detrick M., Weina P.J., Lawrence K., McCarthy W.F., Adams R.C., Scott C., et al. Topical paromomycin for New World cutaneous leishmaniasis. PLoS Negl Trop Dis. 13(5), e0007253 (2019) doi:
10.1371/journal.pntd.0007253SosaN.PascaleJ.M.JiménezA.I.NorwoodJ.A.Kreishman-DetrickM.WeinaP.J.LawrenceK.McCarthyW.F.AdamsR.C.ScottC.Topical paromomycin for New World cutaneous leishmaniasisPLoS Negl Trop Dis135e0007253201910.1371/journal.pntd.0007253Open DOI
Srivastava S., Mishra J., Gupta A.K., Singh A., Shankar P., Singh S.: Laboratory confirmed miltefosine resistant cases of visceral leishmaniasis from India. Parasit Vectors. 10, 49 (2017) doi:
10.1186/s13071-017-1969-zSrivastavaS.MishraJ.GuptaA.K.SinghA.ShankarP.SinghS.Laboratory confirmed miltefosine resistant cases of visceral leishmaniasis from IndiaParasit Vectors1049201710.1186/s13071-017-1969-zOpen DOI
Staines H.M., Burrow R., Teo B.H.Y., Chis Ster I., Kremsner P.G., Krishna S.: Clinical implications of Plasmodium resistance to atovaquone/proguanil: a systematic review and meta-analysis. J Antimicrob Chemother. 73(3), 581–595 (2018) doi:
10.1093/jac/dkx431StainesH.M.BurrowR.TeoB.H.Y.Chis SterI.KremsnerP.G.KrishnaS.Clinical implications of Plasmodium resistance to atovaquone/proguanil: a systematic review and meta-analysisJ Antimicrob Chemother733581595201810.1093/jac/dkx431Open DOI
Steverding D.: The spreading of parasites by human migratory activities. Virulence. 11(1), 1177–1191 (2020) doi:
10.1080/21505594.2020.1809963SteverdingD.The spreading of parasites by human migratory activitiesVirulence11111771191202010.1080/21505594.2020.1809963Open DOI
Takala-Harrison S., Jacob C.G., Arze C., Cummings M.P., Silva J.C., Dondorp A.M., Fukuda M.M., Hien T.T., Mayxay M., Noedl H., et al. Independent emergence of artemisinin resistance mutations among Plasmodium falciparum in Southeast Asia. J Infect Dis. 211(5), 670–679 (2015) doi:
10.1093/infdis/jiu491Takala-HarrisonS.JacobC.G.ArzeC.CummingsM.P.SilvaJ.C.DondorpA.M.FukudaM.M.HienT.T.MayxayM.NoedlH.Independent emergence of artemisinin resistance mutations among Plasmodium falciparum in Southeast AsiaJ Infect Dis2115670679201510.1093/infdis/jiu491Open DOI
Tharmaratnam T., Kumanan T., Iskandar M.A., D’Urzo K., Gopee-Ramanan P., Loganathan M., Tabobondung T., Tabobondung T.A., Sivagurunathan S., Patel M., et al. Entamoeba histolytica and amoebic liver abscess in northern Sri Lanka: a public health problem. Trop Med Health. 48(1), 2 (2020) doi:
10.1186/s41182-020-0193-2TharmaratnamT.KumananT.IskandarM.A.D’UrzoK.Gopee-RamananP.LoganathanM.TabobondungT.TabobondungT.A.SivagurunathanS.PatelM.Entamoeba histolytica and amoebic liver abscess in northern Sri Lanka: a public health problemTrop Med Health4812202010.1186/s41182-020-0193-2Open DOI
Tjitra E., Baker J., Suprianto S., Cheng Q., Anstey N.M.: Therapeutic Efficacies of Artesunate-Sulfadoxine-Pyrimethamine and Chloroquine-Sulfadoxine-Pyrimethamine in Vivax Malaria Pilot Studies: Relationship to Plasmodium vivax dhfr Mutations. Antimicrob Agents Chemother. 46(12), 3947–3953 (2002) doi:
10.1128/AAC.46.12.3947-3953.2002TjitraE.BakerJ.SupriantoS.ChengQ.AnsteyN.M.Therapeutic Efficacies of Artesunate-Sulfadoxine-Pyrimethamine and Chloroquine-Sulfadoxine-Pyrimethamine in Vivax Malaria Pilot Studies: Relationship to Plasmodium vivax dhfr MutationsAntimicrob Agents Chemother461239473953200210.1128/AAC.46.12.3947-3953.2002Open DOI
Torgerson P.R. and Mastroiacovo P.: The global burden of congenital toxoplasmosis: a systematic review. Bull World Health Organ. 91(7), 501–508 (2013) doi:
10.2471/BLT.12.111732TorgersonP.R.MastroiacovoP.The global burden of congenital toxoplasmosis: a systematic reviewBull World Health Organ917501508201310.2471/BLT.12.111732Open DOI
Tripathi L.K., Nailwal T.K.: Chapter 1 – Leishmaniasis: an overview of evolution, classification, distribution, and historical aspects of parasite and its vector. In: Samant M, Chandra Pandey S, editors. Pathogenesis, Treatment and Prevention of Leishmaniasis. Academic Press. p. 1–25 (2021) https://www.sciencedirect.com/science/article/pii/B9780128228005000044TripathiL.K.NailwalT.K.Chapter 1 – Leishmaniasis: an overview of evolution, classification, distribution, and historical aspects of parasite and its vectorIn:SamantMChandra PandeySeditorsPathogenesis, Treatment and Prevention of LeishmaniasisAcademic Press1252021https://www.sciencedirect.com/science/article/pii/B9780128228005000044Search in Google Scholar
Tse E.G., Korsik M., Todd M.H.: The past, present and future of antimalarial medicines. Malaria Journal. 18(1), 93 (2019) doi:
10.1186/s12936-019-2724-zTseE.G.KorsikM.ToddM.H.The past, present and future of antimalarial medicinesMalaria Journal18193201910.1186/s12936-019-2724-zOpen DOI
Ungogo M.A., Campagnaro G.D., Alghamdi A.H., Natto M.J., de Koning H.P.: Differences in Transporters Rather than Drug argets Are the Principal Determinants of the Different Innate Sensitivities of Trypanosoma congolense and Trypanozoon Subgenus Trypanosomes to Diamidines and Melaminophenyl Arsenicals. International Journal of Molecular Sciences23(5), 2844 (2022) doi:
10.3390/ijms23052844UngogoM.A.CampagnaroG.D.AlghamdiA.H.NattoM.J.de KoningH.P.Differences in Transporters Rather than Drug argets Are the Principal Determinants of the Different Innate Sensitivities of Trypanosoma congolense and Trypanozoon Subgenus Trypanosomes to Diamidines and Melaminophenyl ArsenicalsInternational Journal of Molecular Sciences2352844202210.3390/ijms23052844Open DOI
Waithera M.W., Sifuna M.W., Kimani S.K., Takei M.:. Drug selection pressure and fitness cost for artemether-resistant Plasmodium berghei ANKA parasites in vivo. International Journal of Antimicrobial Agents62(6), 107012 (2023) doi:
10.1016/j.ijantimicag.2023.107012WaitheraM.W.SifunaM.W.KimaniS.K.TakeiM.Drug selection pressure and fitness cost for artemether-resistant Plasmodium berghei ANKA parasites in vivoInternational Journal of Antimicrobial Agents626107012202310.1016/j.ijantimicag.2023.107012Open DOI
WHO. 2020. Sustained decline in sleeping sickness cases puts elimination within reach. [accessed 2024 Oct 4]. https://www.who.int/news/item/23-06-2020-sustained-decline-in-sleeping-sickness-cases-puts-elimination-within-reach.WHO2020Sustained decline in sleeping sickness cases puts elimination within reach[accessed 2024 Oct 4]. https://www.who.int/news/item/23-06-2020-sustained-decline-in-sleeping-sickness-cases-puts-elimination-within-reachSearch in Google Scholar
Wicht K.J., Mok S., Fidock D.A.: Molecular Mechanisms of Drug Resistance in Plasmodium falciparum Malaria. Annual Review of Microbiology. 74, 431–454 (2020) doi:
10.1146/annurev-micro-020518-115546WichtK.J.MokS.FidockD.A.Molecular Mechanisms of Drug Resistance in Plasmodium falciparum MalariaAnnual Review of Microbiology.74431454202010.1146/annurev-micro-020518-115546Open DOI
Wijnant G.J, Dumetz F., Dirkx L., Bulté D., Cuypers B., Van Bocxlaer K., Hendrickx S.: Tackling Drug Resistance and Other Causes of Treatment Failure in Leishmaniasis. Front Trop Dis. 3 (2022) doi:
10.3389/fitd.2022.837460WijnantG.JDumetzF.DirkxL.BultéD.CuypersB.Van BocxlaerK.HendrickxS.Tackling Drug Resistance and Other Causes of Treatment Failure in LeishmaniasisFront Trop Dis3202210.3389/fitd.2022.837460Open DOI
WHO. 2024a. Leishmaniasis. [accessed 2024 Aug 26]. https://www.who.int/news-room/fact-sheets/detail/leishmaniasis.WHO2024aLeishmaniasis[accessed 2024 Aug 26]. https://www.who.int/news-room/fact-sheets/detail/leishmaniasisSearch in Google Scholar
WHO. 2024b. Guidelines for the treatment of human African trypanosomiasis.[accessed 2024 Sep 3]. https://www.who.int/publications/i/item/9789240096035.WHO2024bGuidelines for the treatment of human African trypanosomiasis[accessed 2024 Sep 3]. https://www.who.int/publications/i/item/9789240096035Search in Google Scholar
WHO. 2023. World Malaria Report 2023. [accessed 2024 Aug 26]. https://www.who.int/teams/global-malaria-programme/reports/world-malaria-report-2023.WHO2023World Malaria Report 2023[accessed 2024 Aug 26]. https://www.who.int/teams/global-malaria-programme/reports/world-malaria-report-2023Search in Google Scholar
Xie S.C., Ralph S.A., Tilley L.:. K13, the Cytostome, and Artemisinin Resistance. Trends Parasitol. 36(6), 533–544 (2020) doi:
10.1016/j.pt.2020.03.006XieS.C.RalphS.A.TilleyL.K13, the Cytostome, and Artemisinin ResistanceTrends Parasitol366533544202010.1016/j.pt.2020.03.006Open DOI
Yoshida N., Yamauchi M., Morikawa R., Hombhanje F., Mita T.: Increase in the proportion of Plasmodium falciparum with kelch13 C580Y mutation and decline in pfcrt and pfmdr1 mutant alleles in Papua New Guinea. Malar J.20(1), 410 (2021) doi:
10.1186/s12936-021-03933-6YoshidaN.YamauchiM.MorikawaR.HombhanjeF.MitaT.Increase in the proportion of Plasmodium falciparum with kelch13 C580Y mutation and decline in pfcrt and pfmdr1 mutant alleles in Papua New GuineaMalar J201410202110.1186/s12936-021-03933-6Open DOI
Zajaczkowski P., Lee R., Fletcher-Lartey S.M., Alexander K., Mahimbo A., Stark D., Ellis J.T.: The controversies surrounding Giardia intestinalis assemblages A and B. Current Research in Parasitology & VectorBorne Diseases1, 100055 (2021) doi:
10.1016/j.crpvbd.2021.100055ZajaczkowskiP.LeeR.Fletcher-LarteyS.M.AlexanderK.MahimboA.StarkD.EllisJ.T.The controversies surrounding Giardia intestinalis assemblages A and BCurrent Research in Parasitology & VectorBorne Diseases1100055202110.1016/j.crpvbd.2021.100055Open DOI
Zoltner M., Campagnaro G.D., Taleva G., Burrell A., Cerone M., Leung K.F., Achcar F., Horn D., Vaughan S., Gadelha C., et al. Suramin exposure alters cellular metabolism and mitochondrial energy production in African trypanosomes. Journal of Biological Chemistry. 295(24), 8331–8347 (2020) doi:
10.1074/jbc.RA120.012355ZoltnerM.CampagnaroG.D.TalevaG.BurrellA.CeroneM.LeungK.F.AchcarF.HornD.VaughanS.GadelhaC.Suramin exposure alters cellular metabolism and mitochondrial energy production in African trypanosomesJournal of Biological Chemistry2952483318347202010.1074/jbc.RA120.012355Open DOI