{"id":138,"date":"2021-12-06T11:54:21","date_gmt":"2021-12-06T10:54:21","guid":{"rendered":"http:\/\/wordpress.p604513.webspaceconfig.de\/publikationen\/"},"modified":"2026-06-15T13:29:44","modified_gmt":"2026-06-15T11:29:44","slug":"publications","status":"publish","type":"page","link":"https:\/\/www.loewe-druid.de\/en\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-v31lm-c35655de6d409c7018f790346d06f4c7\">\n.flex_column.av-v31lm-c35655de6d409c7018f790346d06f4c7{\nborder-radius:0px 0px 0px 0px;\npadding:0px 0px 0px 0px;\n}\n<\/style>\n<div  class='flex_column av-v31lm-c35655de6d409c7018f790346d06f4c7 av_one_fourth  avia-builder-el-0  el_before_av_three_fourth  avia-builder-el-first  rahmen-headline-projects first flex_column_div av-zero-column-padding avia-link-column av-column-link avia-link-column-hover  '    data-link-column-url=\"https:\/\/www.loewe-druid.de\/forschung\/projektbereich-e\/\"   ><a class=\"av-screen-reader-only\" href=https:\/\/www.loewe-druid.de\/forschung\/projektbereich-e\/ >Link to: Projektbereich E<\/a><style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-kzr36j27-1bd6517c67bf24288c491307bd8a5aa2\">\n#top .av-special-heading.av-kzr36j27-1bd6517c67bf24288c491307bd8a5aa2{\npadding-bottom:10px;\n}\nbody .av-special-heading.av-kzr36j27-1bd6517c67bf24288c491307bd8a5aa2 .av-special-heading-tag .heading-char{\nfont-size:25px;\n}\n.av-special-heading.av-kzr36j27-1bd6517c67bf24288c491307bd8a5aa2 .av-subheading{\nfont-size:15px;\n}\n<\/style>\n<div  class='av-special-heading av-kzr36j27-1bd6517c67bf24288c491307bd8a5aa2 av-special-heading-h1 blockquote modern-quote  avia-builder-el-1  avia-builder-el-no-sibling '><h1 class='av-special-heading-tag '  itemprop=\"headline\"  >Publications<\/h1><div class=\"special-heading-border\"><div class=\"special-heading-inner-border\"><\/div><\/div><\/div><\/div>\n\n<style type=\"text\/css\" data-created_by=\"avia_inline_auto\" id=\"style-css-av-pj1r6-f3bf8292313bc2c586cc64a47113f00e\">\n.flex_column.av-pj1r6-f3bf8292313bc2c586cc64a47113f00e{\nborder-radius:0px 0px 0px 0px;\npadding:0px 0px 0px 0px;\n}\n<\/style>\n<div  class='flex_column av-pj1r6-f3bf8292313bc2c586cc64a47113f00e av_three_fourth  avia-builder-el-2  el_after_av_one_fourth  el_before_av_textblock  rahmen-accordion-projects border-left flex_column_div av-zero-column-padding  '     ><div  class='togglecontainer av-l1xa1h9i-b773ff57f53f00247b56297660ae698c  avia-builder-el-3  avia-builder-el-no-sibling  toggle_close_all' >\n<section class='av_toggle_section av-mojy2yvq-45a53510e92d1d3384904e6ff17716ed'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-1' data-fake-id='#toggle-id-1' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-1' data-slide-speed=\"200\" data-title=\"2026\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2026\" data-aria_expanded=\"Click to collapse: 2026\">2026<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-1' aria-labelledby='toggle-toggle-id-1' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Schmelzle SM, Bergmann M, Walber B, Shamsara J, Ziesmann T, Distler U, Miskey C, Childs L, <strong>Kolb P<\/strong>, Tenzer S, Bagola K, <strong>van Zandbergen G<\/strong> (2026) et al. (2026) p1\/s1, a 3\u2019-nucleotidase\/nuclease, allows Leishmania major to circumvent host innate immune response mechanisms. <strong><em>PLoS Pathog 22(5): e1014197<\/em><\/strong>. <a href=\"https:\/\/doi.org\/10.1371\/journal.ppat.1014197\">https:\/\/doi.org\/10.1371\/journal.ppat.1014197.<\/a><\/p>\n<p>R\u00f6ttgerding F, Reyer F, Gerlach E, Amborn M, Duschek N, Schultze TG, Fingerle V, Roome CM, Stumpf M, Becker K, <strong>Rahlfs S, Przyborski JM<\/strong>, <strong>Kraiczy P<\/strong>, Fritz-Wolf K (2026) Complement inhibition by a unique cluster of immunomodulatory outer surface proteins of <em>Borrelia recurrentis<\/em>. <strong><em>Nat Commun. 2026 Apr 29<\/em><\/strong>, https:\/\/<a href=\"https:\/\/doi.org\/10.1038\/s41467-026-72359-y\">doi: 10.1038\/s41467-026-72359-y.<\/a><\/p>\n<p>Ajmera S, Puckelwaldt O, Stroehlein AJ, <strong>Haeberlein S<\/strong> \u00a0(2026) Curation of the <em>Fasciola hepatica<\/em> kinome as a resource for drug target discovery. <strong><em>BMC Genomics<\/em><\/strong>. 2026;27(1):98,<a href=\"https:\/\/doi.org\/10.1186\/s12864-025-12513-w\"> https:\/\/doi.org\/10.1186\/s12864-025-12513-w.<\/a><\/p>\n<p>Barth J, Koch M, R\u00f6ssner LH, Eichhorn J, Pogoryelov D, Mayer MP, <strong>Przyborski JM<\/strong> (2026) Promiscuous stimulation of HSP70 ATPase activity by parasite-derived J-domains, <strong><em>FEBS J<\/em><\/strong>, <a href=\"https:\/\/doi.org\/10.1002\/2211-5463.70207\">doi:10.1002\/2211-5463.70207.<\/a><\/p>\n<p>Welsch S, Puckelwaldt O, Ajmera S, Magari F, <strong>Haeberlein S, Gr\u00fcnweller A, Grevelding CG<\/strong> (2026) The DEAD-box RNA helicase eIF4A is a crucial factor for stem-cell activity and reproduction of the parasite Schistosoma mansoni. <strong><em>Front. Cell. Infect. Microbiol, <a href=\"https:\/\/doi.org\/10.3389\/fcimb.2025.1731808\">https:\/\/doi.org\/10.3389\/fcimb.2025.1731808.<\/a><\/em><\/strong><\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-m8hg4pm5-ea2628eaef4058cb0aad54da1127b88f'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-2' data-fake-id='#toggle-id-2' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-2' data-slide-speed=\"200\" data-title=\"2025\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2025\" data-aria_expanded=\"Click to collapse: 2025\">2025<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-2' aria-labelledby='toggle-toggle-id-2' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Sone B, Ambe LA., Ampama MN,\u00a0 Ajohkoh C,\u00a0 Che D, Nguinkal\u00a0\u00a0 JA,\u00a0 <strong>Taubert A, Hermosilla C<\/strong>, Kamena F (2025) Prevalence and Molecular Characterization of Cryptosporidium Species in Diarrheic Children in Cameroon. <strong><em>Pathogens 2025<\/em><\/strong>. <a href=\"https:\/\/doi.org\/10.3390\/pathogens14030287\">https:\/\/doi.org\/10.3390\/pathogens14030287<\/a>.<\/p>\n<p>Rein AS, Henke M, Br\u00fcnner S, Luckhardt S, Zodel AL, Sethmann A, <strong>Schiffmann S<\/strong> (2025) Influence of sodium Bituminosulfonate and Doxycycline on signal molecules relevant for rosacea symptoms. <strong><em>Sci Rep. 2025<\/em><\/strong>, <a href=\"https:\/\/doi.org\/10.1038\/s41598-025-02796-0\">https:\/\/doi.org\/10.1038\/s41598-025-02796-0.<\/a><\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-lryprxi9-272a6d04e1ad90a706fd00ce6a6e4f7e'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-3' data-fake-id='#toggle-id-3' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-3' data-slide-speed=\"200\" data-title=\"2024\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2024\" data-aria_expanded=\"Click to collapse: 2024\">2024<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-3' aria-labelledby='toggle-toggle-id-3' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Luh D, Ghezellou P, Heiles S, Gramberg S, <strong>Haeberlein S<\/strong>, <strong>Spengler B<\/strong>. Glycolipidomics of liver flukes and host tissues during fascioliasis: insights from mass spectrometry imaging. <strong>ACS Infect Dis (2024) <\/strong><a href=\"https:\/\/doi.org\/10.1021\/acsinfecdis.4c00551\">https:\/\/doi.org\/10.1021\/acsinfecdis.4c00551<\/a>.<\/p>\n<p>M\u00fcller H, Stra\u00dfmann JK, Baier AS, von B\u00fclow V, Stettler F, Hagen MJ, Schmidt FP, Tschuschner A, Schmid AR, Zahner D, K\u00f6hler K, Pons-K\u00fchnemann J, Leufkens D, Glebe D, Kaur S, M\u00f6scheid MF, <strong>Haeberlein S<\/strong>, Grevelding CG, Weiskirchen R, El-Kassas M, Zalata K, Roeb E, Roderfeld M. Liver fibrosis Is enhanced by a higher egg burden in younger mice infected with <em>S. mansoni<\/em>. <strong>Cells (2024) <\/strong><a href=\"https:\/\/doi.org\/10.3390\/cells13191643\">https:\/\/doi.org\/10.3390\/cells13191643<\/a>.<\/p>\n<p>Erkoc P, <strong>Schiffmann S<\/strong>, Ulsh\u00f6fer T, Henke M, Marner M, Kr\u00e4mer J, Predel R, Sch\u00e4ferle TF, Hurka S, Dersch L, Vilcinskas A, F\u00fcrst R, L\u00fcddecke T, Determining the pharmacological potential and biological role of linear pseudoscorpion toxins via functional profiling (2024) <strong>\u00a0iScience 27,\u00a0 <\/strong><a href=\"https:\/\/doi.org\/10.1016\/j.isci.2024.110209\">doi: 10.1016\/j.isci.2024.110209<\/a>.<\/p>\n<p><strong>Schiffmann S<\/strong>, Henke, M, Br\u00fcnner S, Bennett A.,\u00a0 Yagubi Y, \u00a0Magari F, Parnham MJ, <strong>Gr\u00fcnweller A<\/strong>, Immune Modulatory Profile of the Pateamines PatA and Des-Methyl Des-Amino PatA. (2024) <strong><em>Int. J. Mol. Sci<\/em><\/strong>,<a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/39518983\/\"> https:\/\/doi.org\/10.3390\/ijms252111430<\/a>.<\/p>\n<p>Gramberg S, Puckelwaldt O, Schmitt T, Lu Z, <strong>Haeberlein S<\/strong>. Spatial transcriptomics of a parasitic flatworm provides a molecular map of drug targets and drug resistance genes.<strong><em> Nat Commun.<\/em><\/strong> 2024;15(1):8918. <a href=\"https:\/\/www.nature.com\/articles\/s41467-024-53215-3\">doi: 10.1038\/s41467-024-53215-3<\/a>.<\/p>\n<p>Madhugiri R, Nguyen HV, Slanina H, <strong>Ziebuhr J<\/strong> (2024) Alpha- and betacoronavirus cis-acting RNA elements, <strong><em>Curr Opin Microbiol<\/em><\/strong> 79, 102483. <a href=\"doi: 10.1038\/s41467-024-53215-3.\"><span class=\"citation-doi\">doi: 10.1038\/s41467-024-53215-3<\/span>.<\/a><\/p>\n<p>Wannowius M, Neelen C, Lotz P, Daude M, Neubauer A, F\u00fchler B, <strong>Diederich WE<\/strong>, <strong>Geyer J<\/strong> (<strong>2024<\/strong>) Structure-Activity Relationships and Target Selectivity of Phenylsulfonylamino-Benzanilide Inhibitors Based on S1647 at the SLC10 Carriers ASBT, NTCP, and SOAT. <strong><em>J Med Chem<\/em><\/strong>, <a href=\"https:\/\/doi.org\/10.1021\/acs.jmedchem.4c01743\">https:\/\/doi.org\/10.1021\/acs.jmedchem.4c01743<\/a>.<\/p>\n<p>Hehner J, Schneider L, Woitalla A, Ott B, Vu KCT, Sch\u00f6bel A, Hain T, Schwudke D, <strong>Herker E<\/strong> (2024) Glycerophospholipid remodeling is critical for orthoflavivirus infection. <strong><em>Nat Commun<\/em> <\/strong>15, 8683. <a href=\"https:\/\/doi.org\/10.1038\/s41467-024-52979-y\">https:\/\/doi.org\/10.1038\/s41467-024-52979-y<\/a>.<\/p>\n<p>Sch\u00f6bel A, Pinho dos Reis V, Burkhard R, Hehner J, Schauflinger M, Vieyres G, <strong>Herker E<\/strong> (2024) Inhibition of sterol O-acyltransferase 1 blocks Zika virus infection in cell lines and cerebral organoids. <strong><em>Commun Biol<\/em><\/strong> 7, 1089. <a href=\"https:\/\/doi.org\/10.1038\/s42003-024-06776-4\">https:\/\/doi.org\/10.1038\/s42003-024-06776-4<\/a>.<\/p>\n<p>Adamu AR, Reyer F, Lawal N, Hassan AJ, Imam MU, Bello MB, <strong>Kraiczy P<\/strong> (2024) Aetiologies of bacterial tick-borne febrile illnesses in humans in Africa: Diagnostic limitations and the need for improvement. <strong><em>Front Med<\/em><\/strong> 11, <a href=\"https:\/\/www.frontiersin.org\/journals\/medicine\/articles\/10.3389\/fmed.2024.1419575\/abstract\">doi: 10.3389\/fmed.2024.1419575<\/a>.<\/p>\n<p>Karakus E, Proksch A-L, Moritz A, <strong>Geyer J<\/strong> (2024) Quantitative bile acid profiling in healthy adult dogs and pups from serum, plasma, urine, and feces using LC-MS\/MS. <strong><em>Front Vet Sci<\/em><\/strong> 11:1380920. <a href=\"https:\/\/doi.org\/10.3389\/fvets.2024.1380920\">https:\/\/doi.org\/10.3389\/fvets.2024.1380920<\/a>.<\/p>\n<p>Bestle D, Bittel L, Werner AD, K\u00e4mpfer L, Donik O, Kr\u00e4hling V, <strong>Steinmetzer T<\/strong>, <strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong> (2024) Novel proteolytic activation of Ebolavirus glycoprotein GP by TMPRSS2 and cathepsin L at an uncharted position can compensate for furin Viruses, <em><strong>Virus Res 347<\/strong><\/em>, <a href=\"https:\/\/doi.org\/10.1016\/j.virusres.2024.199430\">https:\/\/doi.org\/10.1016\/j.virusres.2024.199430<\/a>.<\/p>\n<p>Cayo LS, Hammerbauerov\u00e1 I, Sommer J, Nemati Z, Ballhorn W, Tsukayama P, Dichter A, Vot\u00fdpka J, <strong>Kempf VAJ<\/strong> (2024) Genome sequences of three <em>Bartonella schoenbuchensis<\/em> strains from Czechia. <strong><em>Microbiol Resour Announc <\/em><\/strong>0:e00397-24, <a href=\"https:\/\/doi.org\/10.1128\/mra.00397-24\">https:\/\/doi.org\/10.1128\/mra.00397-24<\/a>.<\/p>\n<p>Magari F, Messner H, Salisch F, Schmelzle SM, <strong>van Zandbergen G<\/strong>, F\u00fcrstner A, <strong>Ziebuhr J<\/strong>, <strong>Heine A<\/strong>, M\u00fcller-Ruttloff C, <strong>Gr\u00fcnweller A<\/strong> (2024) Potent anti-coronaviral activity of pateamines and new insights into their mode of action, <strong><em>Heliyon<\/em><\/strong>, 10, e33409, <a href=\"https:\/\/doi.org\/10.1016\/j.heliyon.2024.e33409\">https:\/\/doi.org\/10.1016\/j.heliyon.2024.e33409<\/a>.<\/p>\n<p>Bley H, Krisp C, Schobel A, Hehner J, Schneider L, Becker M, Stegmann C, Heidenfels E, Nguyen-Dinh V, Schluter H, Gerold G, <strong>Herker E<\/strong> (2024) Proximity labeling of host factor ANXA3 in HCV infection reveals a novel LARP1 function in viral entry. <strong><em>J Biol Chem<\/em><\/strong>, <a href=\"http:\/\/dx.doi.org\/10.1016\/j.jbc.2024.107286\">http:\/\/dx.doi.org\/10.1016\/j.jbc.2024.107286<\/a>.<\/p>\n<p><strong>Herker E<\/strong> (2024) Lipid Droplets in Virus Replication.\u00a0<strong><em>FEBS Lett<\/em><\/strong>,\u00a0<a href=\"http:\/\/dx.doi.org\/10.1002\/1873-3468.14819\">http:\/\/dx.doi.org\/10.1002\/1873-3468.14819<\/a>.<\/p>\n<p>Monteil VM, Wright SC, Dyczynski M, Kellner MJ, Appelberg S, Platzer SW, Ibrahim A, Kwon H, Pittarokoilis I, Mirandola M, Michlits G, Devignot S, Elder E, Abdurahman S, Bereczky S, Bagci B, Youhanna S, Aastrup T, Lauschke VM, Salata C, Elaldi N, <strong>Weber F<\/strong>, Monserrat N, Hawman DW, Feldmann H, Horn M, Penninger JM, Mirazimi A (2024) Crimean\u2013Congo haemorrhagic fever virus uses LDLR to bind and enter host cells. <strong><em>Nat Microbiol<\/em><\/strong> 9, 1499\u20131512 (2024). <a href=\"https:\/\/doi.org\/10.1038\/s41564-024-01672-3\">https:\/\/doi.org\/10.1038\/s41564-024-01672-3<\/a>.<\/p>\n<p>Huber S, Braun NJ, Schmacke LC, Murra R, <strong>Bender D<\/strong>, <strong>Hildt E<\/strong>, <strong>Heine A<\/strong>, <strong>Steinmetzer T<\/strong> (2024) Synthesis and structural characterization of new macrocyclic inhibitors of the Zika virus NS2B\u2013NS3 protease. <strong><em>Arch Pharm<\/em>,<\/strong> <a href=\"https:\/\/doi.org\/10.1002\/ardp.202400250\">https:\/\/doi.org\/10.1002\/ardp.202400250<\/a>.<\/p>\n<p>Sprague DJ, Park SK, Gramberg S, Bauer L, Rohr CM, Chulkov EG, Smith E, Scampavia L, Spicer TP, <strong>Haeberlein S<\/strong>, Marchant JS (2024) Target-based discovery of a broad-spectrum flukicide. <strong><em>Nat Struct Mol Biol<\/em><\/strong><em>,<\/em> <a href=\"https:\/\/doi.org\/10.1038\/s41594-024-01298-3\">https:\/\/doi.org\/10.1038\/s41594-024-01298-3<\/a>.<\/p>\n<p>W\u00fclbern J, Windorfer L, Sato K, Nakao M, Hepner S, Margos G, Fingerle V, Kawabata H, Becker NS, <strong>Kraiczy P<\/strong> and Rollins RE (2024) Unprecedented genetic variability of PFam54 paralogs among Eurasian Lyme borreliosis-causing spirochetes. <strong><em>Ecology and Evolution<\/em><\/strong> 14, e11397. <a href=\"https:\/\/doi.org\/10.1002\/ece3.11397\">https:\/\/doi.org\/10.1002\/ece3.11397<\/a>.<\/p>\n<p>Ross R, Hasheminasab SS, Conejeros I, G\u00e4rtner U, Kamena F, Krueger A, <strong>Taubert A, Hermosilla C<\/strong> (2024) Human dendritic cell interactions with the zoonotic parasite <em>Cryptosporidium parvum<\/em> result in activation and maturation. <strong><em>Front Immunol<\/em><\/strong> 15:1388366. <a href=\"https:\/\/www.frontiersin.org\/journals\/immunology\/articles\/10.3389\/fimmu.2024.1388366\/full\">doi: 10.3389\/fimmu.2024.1388366<\/a>.<\/p>\n<p>Moreira BP, Gava SG, H\u00e4berlein S, Gava SG, Gueye S, Santos ES, Weber MH, Abramyan TM, <strong>Grevelding CG<\/strong>, Mour\u00e3o MM, <strong>Falcone FH<\/strong> (2024) Identification of potent schistosomicidal compounds predicted as type II-kinase inhibitors against Schistosoma mansoni c-Jun N-terminal kinase SMJNK. <strong><em>Front Parasitol, <\/em><\/strong><a href=\"https:\/\/doi.org\/10.3389\/fpara.2024.1394407\">doi: 10.3389\/fpara.2024.1394407.<\/a><\/p>\n<p>Damm AS, Reyer F, Langhoff L, Lin YP, <strong>Falcone FH<\/strong> and <strong>Kraiczy P<\/strong> (2024) Multifunctional interaction of CihC\/FbpC orthologs of relapsing fever spirochetes with host-derived proteins involved in adhesion, fibrinolysis, and complement evasion. <strong><em>Front Immunol<\/em><\/strong> 15:1390468. <a href=\"https:\/\/www.frontiersin.org\/journals\/immunology\/articles\/10.3389\/fimmu.2024.1390468\/full\">doi:10.3389\/fimmu.2024.1390468.<\/a><\/p>\n<p>Teixeira HC, Valle GPC, Mahdavi R, Dias PSM, de Oliveira EE, Aira CP, Heinz, D, Latz, A, Lana Md, Morgado FN, Porrozzi R, <strong>Steinhoff U<\/strong> (2024) Refinement of the rKLi8.3-Based Serodiagnostic ELISA Allows Detection of Canine Leishmaniosis in Dogs with Low Antibody Titers. <strong><em>Pathogens <\/em><\/strong>13, 246. <a href=\"https:\/\/doi.org\/10.3390\/pathogens13030246\">https:\/\/doi.org\/10.3390\/pathogens13030246<\/a>.<\/p>\n<p>Reyer F, Olesiuk O, R\u00f6ttgerding F, Fingerle V, Adamu A, Waithiru D, Njeru J, <strong>Kraiczy P<\/strong> (2024) Serological evidence of louse-borne relapsing fever in northern Kenya. <strong><em>Travel Med<\/em><\/strong> <strong><em>Infect Dis<\/em><\/strong> 59:102714, <a href=\"https:\/\/doi.org\/10.1016\/j.tmaid.2024.102714\">https:\/\/doi.org\/10.1016\/j.tmaid.2024.102714<\/a>.<\/p>\n<p>Springer E, Heimsch KC, <strong>Rahlfs S<\/strong>, Becker K, <strong>Przyborski JM<\/strong> (2024) Real-time measurements of ATP dynamics via ATeams in Plasmodium falciparum reveal drug-class-specific response patterns. <strong><em>Antimicrob Agents Chemother<\/em><\/strong> 19:e0169023. <a href=\"https:\/\/journals.asm.org\/doi\/epub\/10.1128\/aac.01690-23\">doi: 10.1128\/aac.01690-23<\/a>.<\/p>\n<p>Heindl MR, Rupp AL, Schwerdtner M, Bestle D, Harbig A, De Rocher A, Schmacke LC, Staker B, <strong>Steinmetzer T<\/strong>, Stein DA, Moulton HM, <strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong> (2024) ACE2 acts as a novel regulator of TMPRSS2-catalyzed proteolytic activation of influenza A virus in airway cells. <strong><em>J Virol<\/em><\/strong> 0:e00102-24. <a href=\"https:\/\/doi.org\/10.1128\/jvi.00102-24\">https:\/\/doi.org\/10.1128\/jvi.00102-24<\/a>.<\/p>\n<p>Seidel L, Albuquerque W, Happel K, Ghezellou P, Gand M, <strong>Spengler B<\/strong>, Zorn H, Will F, Schweiggert R (2024) Composition, zeta potential and molar mass distribution of 20 must and wine colloids from five different cultivars obtained during four consecutive vintages. <strong><em>J Agricultural and Food Chem <\/em><\/strong><em>72<\/em>\u00a0(4), 1938-1948, <a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/36977334\/\">DOI: 10.1021\/acs.jafc.2c09048.<\/a><\/p>\n<p><strong>Bender D<\/strong>, Koulouri A, Wen X, Glitscher M, Schollmeier A, Fernandes da Costa L, Murra RO, Carra GP, Haberger V, Praefcke GJK, <strong>Hildt E<\/strong> (2024) Guanylate-binding protein 1 acts as a pro-viral factor for the life cycle of hepatitis C virus. <strong><em>PLoS Pathog <\/em><\/strong>20(2):e1011976. <a href=\"https:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC10868826\/\">doi: 10.1371\/journal.ppat.101197<\/a>.<\/p>\n<p>Ghezellou P, von B\u00fclow V, Luh D, Badin E, Albuquerque W, Roderfeld M, Roeb E, <strong>Grevelding CG,<\/strong> <strong>Spengler B<\/strong> (2024) Schistosoma mansoni infection induces hepatic metallothionein and S100 protein expression alongside metabolic dysfunction in hamsters. <strong><em>PNAS Nexus<\/em><\/strong>, <a href=\"https:\/\/doi.org\/10.1093\/pnasnexus\/pgae104\">https:\/\/doi.org\/10.1093\/pnasnexus\/pgae104<\/a>.<\/p>\n<p>Liu J, Corroyer-Dulmont S, Pra\u017e\u00e1k V, Pra\u017e\u00e1k V, Khusainov I, Bahrami K, Welsch S, Vasishtan D, Obarska-Kosi\u0144ska A, Thorkelsson SR, Gr\u00fcnewald K, Quemin ERJ, Turo\u0148ov\u00e1 B, <strong>Krijnse Locker J <\/strong>(2024) The palisade layer of the poxvirus core is composed of flexible A10 trimers. <strong><em>Nat Struct Mol Biol<\/em><\/strong>. <a href=\"https:\/\/doi.org\/10.1038\/s41594-024-01218-5\">https:\/\/doi.org\/10.1038\/s41594-024-01218-5.<\/a><\/p>\n<p>Lange RW, Bloch, K, Heindl RM, Wollenhaupt J, Weis MS, Brandstetter H, <strong>Klebe G<\/strong>, <strong>Falcone FH, B\u00f6ttcher-Friebertsh\u00e4user E<\/strong>, Dahms SO, <strong>Steinmetzer T<\/strong> (2024) Fragment-Based Design, Synthesis, and Characterization of Aminoisoindole-Derived Furin Inhibitors 2024. <strong><em>ChemMedChem<\/em><\/strong>;<a href=\"https:\/\/doi.org\/10.1002\/cmdc.202400057\">\u00a0https:\/\/doi.org\/10.1002\/cmdc.202400057<\/a>.<\/p>\n<p>Mahdavi R, Martinkovic F, Shams-Eldin H, Pereira IE, Reis AB, Latz A, Heinz D, Aira C, Fresco-Taboada A, Abass E, Romero-Olmedo J, Teixeira HC, <strong>Steinhoff U<\/strong> (2024) Comparative Study of a Novel Lateral Flow Rapid Test with Conventional Serological Test Systems for the Diagnosis of Canine Leishmaniosis in Croatia and Brazil<strong><em>. Pathogens<\/em><\/strong>; <a href=\"https:\/\/doi.org\/10.3390\/pathogens13020109\">https:\/\/doi.org\/10.3390\/pathogens13020109.<\/a><\/p>\n<p>Glitscher M, Spannaus IM, Behr F, Murra RO, Woytinek K, <strong>Bender D<\/strong>, <strong>Hildt E<\/strong> (2024) The Protease Domain in HEV pORF1 Mediates the Replicase\u2019s Localization to Multivesicular Bodies and Its Exosomal Release. <strong><em>Cell Mol Gastroenterol Hepatol<\/em><\/strong>; <a href=\"https:\/\/doi.org\/10.1016\/j.jcmgh.2024.01.001\">https:\/\/doi.org\/10.1016\/j.jcmgh.2024.01.001<\/a>.<\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-ldvuoqhg-890f85149b87b36350441b5df232125d'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-4' data-fake-id='#toggle-id-4' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-4' data-slide-speed=\"200\" data-title=\"2023\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2023\" data-aria_expanded=\"Click to collapse: 2023\">2023<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-4' aria-labelledby='toggle-toggle-id-4' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Volkmar K, Jaedtka M, Baars I, Walber B, Philipp MS, Bagola K, M\u00fcller AJ, Heine H, <strong>van Zandbergen G<\/strong> (2024) Investigating pyroptosis as a mechanism of <em> major<\/em> cell-to-cell spread in the human BLaER1 infection model. <strong><em>Mol Microbiol <\/em><\/strong>121(3):453-469, <a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/37612878\/\">doi: 10.1111\/mmi.15142.<\/a><\/p>\n<p>Nowak TA, Lown AL, Marcinkiewicz AL, S\u00fcrth V, <strong>Kraiczy P<\/strong>, Burke R, Lin YP (2023) Outer surface protein E (OspE) mediates <em>Borrelia burgdorferi<\/em> sensu stricto strain-specific complement evasion in the eastern fence lizard, <em>Sceloporus undulates.<\/em> <strong><em>Ticks Tick Borne Dis<\/em><\/strong> 14:102081, <a href=\"https:\/\/doi.org\/10.1016\/j.ttbdis.2022.102081\">DOI: 10.1016\/j.ttbdis.2022.102081<\/a>.<\/p>\n<p>Tufa TB, Margos G, Fingerle V, Hartberger C, Poppert S, Birtles RJ, <strong>Kraiczy P<\/strong>, <strong>Kempf VAJ<\/strong>, Frickmann H, Feldt T (2023) Evidence for <em>Bartonella quintana<\/em> in lice collected from the clothes of Ethiopian homeless individuals. <strong><em>Pathogens<\/em><\/strong> 12:1299. <a href=\"https:\/\/doi.org\/10.3390\/pathogens12111299\">doi: 10.3390\/pathogens12111299<\/a>.<\/p>\n<p>Roser LA, Luckhardt S, Ziegler N, Thomas D, Wagner PV, Damm G, Scheffschick A, Hewitt P, Parnham MJ, <strong>Schiffmann S<\/strong> (2023) Immuno-inflammatory in vitro hepatotoxicity models to assess side effects of biologicals exemplified by aldesleukin. <strong><em>Front Immunol<\/em><\/strong> 14:1275368. <a href=\"https:\/\/doi.org\/10.3389\/fimmu.2023.1275368\">doi: 10.3389\/fimmu.2023.1275368<\/a>.<\/p>\n<p>Slanina H, Madhugiri R, Wenk K, Reinke T, Schultheiss K, Schultheis J, Karl N, Linne U, <strong>Ziebuhr J<\/strong><strong> (<\/strong>2023) Conserved characteristics of NMPylation activities of alpha- and betacoronavirus NiRAN domains. <strong><em>J Virol<\/em><\/strong> 97<strong>:<\/strong> <a href=\"https:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC10308930\/pdf\/jvi.00465-23.pdf\">doi: 10.1128\/jvi.00465-23<\/a>.<\/p>\n<p><strong>Spengler B<\/strong>, Sch\u00e4fer K, M\u00fcller M, Dreisbach D, Schneemann J, Strupat K (2023). High Resolution in Mass and Space: AP-SMALDI coupled with Orbitrap Exploris Mass Spectrometer for MS Imaging. <em><span class=\"ILfuVd\" lang=\"en\"><span class=\"hgKElc\"><b>Braz<\/b> <b>J<\/b> <b>Anal<\/b> <b>Chem<\/b><\/span><\/span><\/em>, <a href=\"https:\/\/brjac.com.br\/artigos\/brjac-38-thermo-report-AN000659.pdf\">128-137.<\/a><\/p>\n<p>Galli M, Jacob S, Zheng Y, Ghezellou P, Gand M, Albuquerque W, Imani J, Allasia V, Coustau C, <strong>Spengler B<\/strong>, Keller H, Thines E, Kogel K-H (2023). MIF-like domain containing protein orchestrates cellular differentiation and virulence in the fungal pathogen <em>Magnaporthe oryzae<\/em>. <em><strong>iScience<\/strong><\/em>, 107565. <a href=\"https:\/\/doi.org\/10.1016\/j.isci.2023.107565\">https:\/\/doi.org\/10.1016\/j.isci.2023.107565.<\/a><\/p>\n<p>Mojtahed Poor S, Henke M, Ulsh\u00f6fer T, K\u00f6hm M, Behrens F, Burkhardt H, <strong>Schiffmann S <\/strong>(2023) The role of antidrug antibodies in ustekinumab therapy and the impact of methotrexate. <strong><em>Rheumatology<\/em><\/strong>. <a href=\"https:\/\/doi.org\/10.1093\/rheumatology\/kead177\">doi: 10.1093\/rheumatology\/kead177<\/a>.<\/p>\n<p>Schollmeier A, Glitscher M, <strong>Hildt E<\/strong> (2023) Relevance of HBx for Hepatitis B Virus-Associated Pathogenesis. <strong><em>Int J Mol Sci <\/em><\/strong>24(5):4964. <a href=\"https:\/\/pubmed.ncbi.nlm.nih.gov\/36902395\/\">doi: 10.3390\/ijms24054964<\/a>.<\/p>\n<p>Flecks M, Fischer N, <strong>Krijnse Locker J<\/strong>, T\u00f6njes RR, Godehardt AW (2023) Analysis of PERV\u2011C superinfection resistance using HA\u2011tagged viruses. <strong><em>Retrovirology<\/em><\/strong> 20:14 <a href=\"https:\/\/doi.org\/10.1186\/s12977-023-00630-x\">https:\/\/doi.org\/10.1186\/s12977-023-00630-x<\/a>.<\/p>\n<p>Wu Q, Glitscher M, Tonnemacher S, Schollmeier A, Raupach J, Zahn T, Eberle R, <strong>Krijnse-Locker J<\/strong>, Basic M, <strong>Hildt E<\/strong> (2023) Presence of Intact Hepatitis B Virions in Exosomes. <strong><em>Cell Mol Gastroenterol Hepatol<\/em> <\/strong>15:237\u2013259; <a href=\"https:\/\/doi.org\/10.1016\/j.jcmgh.2022.09.012\">https:\/\/doi.org\/10.1016\/j.jcmgh.2022.09.012<\/a>.<\/p>\n<p>Hossain MD, Shabir S, Toye P, Thomas LF, <strong>Falcone FH<\/strong> (2023) Insights into the diagnosis, vaccines, and control of <em>Taenia solium<\/em>, a zoonotic, neglected parasite. <strong><em>Parasites Vectors<\/em><\/strong> 16, 380, <a href=\"https:\/\/doi.org\/10.1186\/s13071-023-05989-6\">https:\/\/doi.org\/10.1186\/s13071-023-05989-6.<\/a><\/p>\n<p>Dekevic G, Tertel T, Tasto L, Schmidt D, Giebel B, Czermak P &amp; <strong>Salzig D<\/strong> (2023) A Bioreactor-Based Yellow Fever Virus-like Particle Production Process with Integrated Process Analytical Technology Based on Transient Transfection. <strong><em>Viruses<\/em><\/strong>, 15, 2013. <a href=\"https:\/\/doi.org\/10.3390\/v15102013\">https:\/\/doi.org\/10.3390\/v15102013<\/a>.<\/p>\n<p>Dillenberger M, Werner AD, Velten AS, <strong>Rahlfs S<\/strong>, Becker K, Fritz-Wolf K (2023) Structural Analysis of <em>Plasmodium falciparum<\/em> Hexokinase Provides Novel Information about Catalysis Due to a <em>Plasmodium<\/em>-Specific Insertion. <strong><em>Int J Mol Sci<\/em><\/strong>, 24, 12739, <a href=\"https:\/\/doi.org\/10.3390\/ijms241612739\">https:\/\/doi.org\/10.3390\/ijms241612739<\/a>.<\/p>\n<p>Grabbe M, Conejeros I, Vel\u00e1squez ZD, Hasheminasab SS, Kamena F, Wehrend A, G\u00e4rtner U, <strong>Taubert A<\/strong>, <strong>Hermosilla CR<\/strong> (2023) <em>Cryptosporidium parvum<\/em>-induced neutrophil extracellular traps in neonatal calves is a stage-independent process. <strong><em>Front Vet Sci<\/em><\/strong>, 10:1256726, <a href=\"https:\/\/www.frontiersin.org\/articles\/10.3389\/fvets.2023.1256726\/full\">doi: 10.3389\/fvets.2023.1256726<\/a>.<\/p>\n<p>Ansch\u00fctz NH, Gerbig S, Ghezellou P, Silva LMR, V\u00e9lez JD, <strong>Hermosilla CR, Taubert A, Spengler B<\/strong> (2023) Mass spectrometry Imaging of <em>In Vitro<\/em> <em>Cryptosporidium parvum<\/em>-Infected Cells and Host Tissue. <strong><em>Biom<\/em><\/strong>, 13, 1200, \u00a0<a href=\"https:\/\/doi.org\/10.3390\/biom13081200\">https:\/\/doi.org\/10.3390\/biom13081200<\/a>.<\/p>\n<p>Vaca DJ, Frenzel F, Ballhorn W, Garcia Torres S, Leisegang MS, G\u00fcnther S, Bender D, <strong>Kraiczy P<\/strong>, G\u00f6ttig S, <strong>Kemp VAJ<\/strong> (2023) Adhesion of human pathogenic bacteria to endothelial cells is facilitated by fibronectin Interaction, <em><strong>Microbes Infect<\/strong><\/em>, <a href=\"https:\/\/doi.org\/10.1016\/j.micinf.2023.105172\">https:\/\/doi.org\/10.1016\/j.micinf.2023.105172<\/a>.<\/p>\n<p>Hasheminasab SS, Conejeros I, G\u00e4rtner U, Kamena F, <strong>Taubert A, Hermosilla CR<\/strong> (2023) MCT-Dependent Cryptosporidium parvum-Induced Bovine Monocyte Extracellular Traps (METs) under Physioxia. <em><strong>Biology<\/strong><\/em>, 12, 961, <a href=\"https:\/\/doi.org\/10.3390\/biology12070961\">https:\/\/doi.org\/10.3390\/biology12070961<\/a>.<\/p>\n<p>Werner AD, Schauflinger M, Norris MJ, Kl\u00fcver M, Trodler A, Herwig A, Brandst\u00e4dter C, Dillenberger M, Klebe G, <strong>Heine A<\/strong>, Ollmann Saphire E, Becker K, <strong>Becker S<\/strong> (2023) The C-terminus of Sudan ebolavirus VP40 contains a functionally important CX<sub>n<\/sub>C motif, a target for redox modifications. <strong>Structure<\/strong>, 31, 1\u201314, <a href=\"https:\/\/doi.org\/10.1016\/j.str.2023.06.004\">https:\/\/doi.org\/10.1016\/j.str.2023.06.004<\/a>.<\/p>\n<p>Marcinkiewicz AL, Brangulis K, Dupuis II AP, Hart TM, Zamba\u2010Campero M, Nowak TA, Stout JL, Akopjana I, Kazaks A, Bogans J, Ciota AT, <strong>Kraiczy P<\/strong>, Kolokotronis SO, Lin YP (2023) Structural evolution of an immune evasion determinant shapes pathogen host tropism. <em><strong>PNAS<\/strong><\/em>, 120(27), <a href=\"https:\/\/doi.org\/10.1073\/pnas.2301549120\">https:\/\/doi.org\/10.1073\/pnas.2301549120.<\/a><\/p>\n<p>Moescheid MF, Puckelwaldt O, Beutler M, <strong>Haeberlein S<\/strong>, <strong>Grevelding CG<\/strong> (2023) Defining an optimal control for RNAi experiments with adult <em>Schistosoma mansoni<\/em>. <strong><em>Sci Rep<\/em><\/strong>, 13:9766. <a href=\"https:\/\/doi.org\/10.1038\/s41598-023-36826-6\">https:\/\/doi.org\/10.1038\/s41598-023-36826-6<\/a>.<\/p>\n<p>Obermann W, Azri MFD, Konopka L, Schmidt N, Magari F, Sherman J, Silva LMR, <strong>Hermosilla C<\/strong>, Ludewig AH, Houhou H, <strong>Haeberlein S<\/strong>, Luo MY, H\u00e4cker I, Schetelig MF, <strong>Grevelding CG<\/strong>, Schroeder FC, Lau GSK, Taubert A, Rodriguez A, <strong>Heine A<\/strong>, Yeo TC, <strong>Gr\u00fcnweller A<\/strong>, Taroncher-Oldenburg G (2023) Broad anti-pathogen potential of DEAD box RNA helicase eIF4A-targeting rocaglates. <strong><em>Sci Rep<\/em><\/strong>, 13(1):9297. <a href=\"https:\/\/www.ncbi.nlm.nih.gov\/pmc\/articles\/PMC10250355\/pdf\/41598_2023_Article_35765.pdf\">doi: 10.1038\/s41598-023-35765-6<\/a>.<\/p>\n<p>Berneburg I, Stumpf M, Velten AS, <strong>Rahlfs S<\/strong>, <strong>Przyborski J<\/strong>, Becker K , Fritz-Wolf K (2023) Structure of <em>Leishmania donovani<\/em> 6-Phosphogluconate Dehydrogenase and Inhibition by Phosphine Gold(I)Complexes: A Potential Approach to Leishmaniasis Treatment. <em><strong>Int J Mol Sci<\/strong><\/em>, 24, 8615. <a href=\"https:\/\/doi.org\/10.3390\/ijms24108615\">https:\/\/doi.org\/10.3390\/ijms24108615<\/a>.<\/p>\n<p>Mahdavi R, Shams-Eldin H, Witt S, Latz A, Heinz D, Fresco-Taboada A, Aira C, H\u00fcbner MP, Sukyte D, Visekruna A, Teixeira HC, Abass E, <strong>Steinhoff<\/strong> U (2023) Development of a Novel Enzyme-Linked Immunosorbent Assay and Lateral Flow Test System for Improved Serodiagnosis of Visceral Leishmaniasis in Different Areas of Endemicity. <strong><em>Microbiol Spectr<\/em><\/strong>, <a href=\"https:\/\/journals.asm.org\/doi\/epub\/10.1128\/spectrum.04338-22\">DOI:10.1128\/spectrum.04338-22<\/a>.<\/p>\n<p><strong>Schiffmann S<\/strong>, Henke M, Seifert M, Ulsh\u00f6fer T, Roser LA, Magari F, Wendel HG, <strong>Gr\u00fcnweller A<\/strong>, Parnham MJ (2023) Comparing the Effects of Rocaglates on Energy Metabolism and Immune Modulation on Cells of the Human Immune System. <strong><em>Int J Mol Sci<\/em><\/strong>, 24(6):5872, <span class=\"identifier doi\"><span 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58:101303, <a href=\"https:\/\/doi.org\/10.1016\/j.coviro.2023.101303\">https:\/\/doi.org\/10.1016\/j.coviro.2023.101303<\/a>.<\/p>\n<p>Gunne S, Schwerdtner M, Henke M , Schneider AK, Keutmann L, <strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong>, <strong>Schiffmann S<\/strong> (2023) TMPRSS2 Impacts Cytokine Expression in Murine Dendritic Cells. <em><strong>Biomedicines<\/strong><\/em>, 11, 419. <a href=\"https:\/\/doi.org\/10.3390\/biomedicines11020419\">https:\/\/doi.org\/10.3390\/biomedicines11020419<\/a>.<\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-l1xa1g12-b62f0e5a8fb15f90eac3cf66a92e17bb'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-5' data-fake-id='#toggle-id-5' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-5' data-slide-speed=\"200\" data-title=\"2022\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2022\" data-aria_expanded=\"Click to collapse: 2022\">2022<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-5' aria-labelledby='toggle-toggle-id-5' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><div>\n<p>Garikapati V, Colasante C, Baumgart-Vogt E, <strong>Spengler B<\/strong> (2022) Sequential lipidomic, metabolomic, and proteomic analyses of serum, liver, and heart tissue specimens from peroxisomal biogenesis factor 11\u03b1 knockout mice. <em><strong>Anal Bioanal Chem<\/strong><\/em> 414, 2235\u20132250, <a href=\"https:\/\/doi.org\/10.1007\/s00216-021-03860-0\">https:\/\/doi.org\/10.1007\/s00216-021-03860-0<\/a>.<\/p>\n<p>von Buelow V, Gindner S, Baier A, Hehr L, Buss N, Wirth V, Russ L, Wrobel S, Tabatabai K, Quack T, <strong>H\u00e4berlein S<\/strong>, Kadesch P, Gerbig S, 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doi.org\/10.1007\/s00436-021-07388-1<\/a>.<\/p>\n<p><a class=\"author size-m workspace-trigger\" href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S2211124722007008?via%3Dihub#!\" name=\"bau15\"><\/a><\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-l1xbf440-d317e7d0b8bd80aa5f50ff1effcc700d'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-6' data-fake-id='#toggle-id-6' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-6' data-slide-speed=\"200\" data-title=\"2021\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2021\" data-aria_expanded=\"Click to collapse: 2021\">2021<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-6' aria-labelledby='toggle-toggle-id-6' role='region' 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cells for baculovirus-mediated gene transfer into human mesenchymal stem cells.\u00a0<strong><em>Methods Mol Biol<\/em><\/strong>, 2183:367-390, <a href=\"doi: 10.1007\/978-1-0716-0795-4_19\">doi: 10.1007\/978-1-0716-0795-4_19<\/a>.<\/p>\n<p>Lothert K, Dekevic G, Loewe D, Salzig D,\u00a0<strong>Czermak P<\/strong>, Wolff MW (2021) Upstream and Downstream Processes for Viral Nanoplexes as Vaccines. <strong><em>Methods Mol Biol<\/em><\/strong>, 2183:217-248, <a href=\"doi: 10.1007\/978-1-0716-0795-4_12\">doi: 10.1007\/978-1-0716-0795-4_12<\/a>.<\/p>\n<p>M\u00fcller MA, Kompauer M, Strupat K, Heiles S,\u00a0<strong>Spengler B<\/strong>\u00a0(2021) Implementation of a high-repetition-rate laser in an AP-SMALDI MSI system for enhanced measurement performance,\u00a0<strong><em>J Am Soc Mass Spectrom<\/em><\/strong>, 32(2):465-472. <a href=\"doi: 10.1021\/jasms.0c00368\">doi: 10.1021\/jasms.0c00368<\/a>.<\/p>\n<p>Ghezellou P, Heiles S, Kadesch P, Ghassempour A,\u00a0<strong>Spengler B<\/strong>\u00a0(2021) Venom Gland Mass Spectrometry Imaging of Saw-Scaled Viper,\u00a0<em>Echis carinatus sochureki<\/em>, at High Lateral Resolution,\u00a0<strong><em>J Am Soc Mass Spectrom<\/em><\/strong>, <a href=\"doi: 10.1021\/jasms.1c00042\">doi: 10.1021\/jasms.1c00042<\/a>.<\/p>\n<p>Mokosch A, Gerbig S,\u00a0<strong>Grevelding CG<\/strong>,\u00a0<strong>Haeberlein S<\/strong>,\u00a0<strong>Spengler B<\/strong>\u00a0(2021) High-resolution AP-SMALDI MSI as a tool for drug imaging in <em>Schistosoma mansoni<\/em>.\u00a0<strong><em>Anal Bioanal Chem<\/em><\/strong>,\u00a0<a href=\"https:\/\/doi.org\/10.1007\/s00216-021-03230-w\">https:\/\/doi.org\/10.1007\/s00216-021-03230-w<\/a>.<\/p>\n<p>Taroncher-Oldenburg G, M\u00fcller C, Obermann W,\u00a0<strong>Ziebuhr J<\/strong>, Hartmann RK,\u00a0<strong>Gr\u00fcnweller A<\/strong>\u00a0(2021) Targeting the DEAD-Box RNA Helicase eIF4A with Rocaglates &#8211; A Pan-Antiviral Strategy for Minimizing the Impact of Future RNA Virus Pandemics.\u00a0<strong><em>Microorganisms 9<\/em><\/strong><em>,\u00a0<\/em><a href=\"https:\/\/doi.org\/10.3390\/microorganisms9030540\">https:\/\/doi.org\/10.3390\/microorganisms9030540<\/a>.<\/p>\n<p>Frese N, Schmerer P, Wortmann M, Sch\u00fcrmann M, K\u00f6nig M, Westphal M,\u00a0<strong>Weber F<\/strong>, Sudhoff H, G\u00f6lzh\u00e4user A (2021) Imaging of SARS-CoV-2 infected Vero E6 cells by helium ion microscopy.\u00a0<strong><em>Beilstein J Nanotechnology<\/em><\/strong>, <a href=\"https:\/\/doi.org\/10.3762\/bjnano.12.13\">https:\/\/doi.org\/10.3762\/bjnano.12.13<\/a>.<\/p>\n<p>Glitscher M, Mart\u00edn DH, Woytinek K, Schmidt B, Tabari D, Scholl C, Stingl JC, Seelow E, Choi M,\u00a0<strong>Hildt E\u00a0<\/strong>(2021) Targeting cholesterol metabolism as an efficient antiviral strategy against the hepatitis E virus.\u00a0<strong><em>Cell Mol Gastroenter<\/em><\/strong>,<a href=\"https:\/\/doi.org\/10.1016\/j.jcmgh.2021.02.002\">\u00a0https:\/\/doi.org\/10.1016\/j.jcmgh.2021.02.002<\/a>.<\/p>\n<p>Lam van TV, Heindl MR, Schlutt C,\u00a0<strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong>, Bartenschlager R, Klebe G, Brandstetter H, Dahms SO,\u00a0<strong>Steinmetzer T<\/strong>\u00a0(2021) The basicity makes the difference \u2013 Improved canavanine-derived inhibitors of the proprotein convertase furin.\u00a0<strong><em>ACS Med Chem Lett<\/em><\/strong><em>,<\/em>\u00a0<a href=\"https:\/\/doi.org\/10.1021\/acsmedchemlett.0c00651\">https:\/\/doi.org\/10.1021\/acsmedchemlett.0c00651<\/a>.<\/p>\n<p>Glitscher M, Himmelsbach K, Woytinek K, Schollmeier A, Johne R, Praefcke GJK,\u00a0<strong>Hildt E<\/strong>\u00a0(2021)\u00a0Identification of the interferon-inducible GTPase GBP1 as major restriction factor for the Hepatitis E virus.\u00a0<strong><em>J Virol<\/em><\/strong>,\u00a0<a href=\"doi: 10.1128\/JVI.01564-20\">doi: 10.1128\/JVI.01564-20<\/a>.<\/p>\n<p>Kr\u00e4hling V, Halwe S, Rohde C, Becker D, Bergh\u00f6fer S, Dahlke C, Eickmann M, Ercanoglu MS, Gieselmann L, Herwig A, Kupke A, M\u00fcller H, Neubauer-R\u00e4del P, Klein F, Keller C,\u00a0<strong>Becker S<\/strong>\u00a0(2021) Development and characterization of an indirect ELISA to detect SARS-CoV-2 spike protein-specific antibodies.\u00a0<strong><em>J Immunol Methods<\/em><\/strong>, 490, 112958.<\/p>\n<p>M\u00fcller C, Obermann W, Karl N, Wendel HG, Taroncher-Oldenburg G, Pleschka S, Hartmann RK,\u00a0<strong>Gr\u00fcnweller A<\/strong>,\u00a0<strong>Ziebuhr J<\/strong>\u00a0(2021) The rocaglate CR-31-B (-) inhibits SARS-CoV-2 replication at non-cytotoxic, low nanomolar concentrations\u00a0<em>in vitro<\/em>\u00a0and\u00a0<em>ex vivo<\/em>.\u00a0<strong><em>Antiviral Res<\/em><\/strong>, 7:105012.<a href=\"doi: 10.1016\/j.antiviral.2021.105012\"> doi: 10.1016\/j.antiviral.2021.105012<\/a>.<\/p>\n<p>Pritchard DI,\u00a0<strong>Falcone FH<\/strong>, Mitchell PD (2021) The evolution of IgE-mediated type I hypersensitivity and its immunological value.<strong>\u00a0<em>Allergy<\/em><\/strong>,\u00a000:\u00a01\u2013\u00a017.\u00a0https:\/\/<a href=\"https:\/\/doi.org\/10.1111\/all.14570\">doi.org\/10.1111\/all.14570<\/a>.<\/p>\n<\/div><\/div><\/div><\/section>\n<section class='av_toggle_section av-25lbe-a4d273ab9f5aad95e6dcc070916d0f2c'  itemscope=\"itemscope\" itemtype=\"https:\/\/schema.org\/CreativeWork\" ><div role=\"tablist\" class=\"single_toggle\" data-tags=\"{All} \"  ><p id='toggle-toggle-id-7' data-fake-id='#toggle-id-7' class='toggler  av-title-above '  itemprop=\"headline\"  role='tab' tabindex='0' aria-controls='toggle-id-7' data-slide-speed=\"200\" data-title=\"2020\" data-title-open=\"\" data-aria_collapsed=\"Click to expand: 2020\" data-aria_expanded=\"Click to collapse: 2020\">2020<span class=\"toggle_icon\"><span class=\"vert_icon\"><\/span><span class=\"hor_icon\"><\/span><\/span><\/p><div id='toggle-id-7' aria-labelledby='toggle-toggle-id-7' role='region' class='toggle_wrap  av-title-above'  ><div class='toggle_content invers-color '  itemprop=\"text\" ><p>Roderfeld M, Padem M, Lichtenberger J, Quack T, Weiskirchen R, Longerich T, Schramm G, Churin Y, Irungbam K, Tschuschner A, Windhorst A, <strong>Grevelding CG<\/strong>, Roeb E (2020) Schistosoma mansoni Egg-Secreted Antigens Activate Hepatocellular Carcinoma-Associated Transcription Factors c-Jun and STAT3 in Hamster and Human Hepatocytes, <strong><em>Hepatology<\/em><\/strong> 72(2):626-641, doi: 10.1002\/hep.30192.<\/p>\n<p>Schreiner S, Didio A, Hung LH, <strong>Bindereif A<\/strong> (2020) Design and application of circular RNAs with protein-sponge function, <strong><em>Nucleic Acids Res<\/em><\/strong> 48:12326-12335, doi: 10.1093\/nar\/gkaa1085.<\/p>\n<p>Tabari D, Scholl C, Steffens M, Weickhardt S, Elgner F, <strong>Bender D<\/strong>, Herrlein ML, Sabino C, Semkova V, Peitz M, Till A, Br\u00fcstle O, 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rescues Pompe disease in a novel mouse model with early-onset spinal cord and respiratory defects, <strong><em>EBioMedicine<\/em><\/strong> 61:103052, doi: 10.1016\/j.ebiom.2020.103052.<\/p>\n<p>Cagin U, Puzzo F, Gomez MJ, Moya-Nilges M, Sellier P, Abad C, van Wittenberghe L, Daniele N, Guerchet N, Gjata B, Collaud F, Charles S, Simon-Sola M, Boyer O, <strong>Krijnse-Locker J<\/strong>, Ronzitti G, Colella P, Mingozzi F (2020) Rescue of Advanced Pompe Disease in Mice with Hepatic Expression of Secretable Acid \u03b1-Glucosidase, <strong><em>Mol Ther<\/em><\/strong> 28(9):2056-2072, doi: 10.1016\/j.ymthe.2020.05.025.<\/p>\n<p>Nkamba I, Mulet C, Dubey GP, Gorgette O, Couesnon A, Salles A, Moya-Nilges M, Jung V, Gaboriau-Routhiau V, Guerrera ID, Shima T, Umesaki Y, Nigro G, <strong>Krijnse-Locker J<\/strong>, B\u00e9rard M, Cerf-Bensussan N, Sansonetti PJ, Schnupf P (2020) <strong><em>Nat Microbiol<\/em><\/strong>, 5(1):34-39, doi: 10.1038\/s41564-019-0608-1.<\/p>\n<p>Blanco-Rodriguez G, Gazi A, Monel B, Frabetti S, Scoca V, Mueller F, Schwartz O, <strong>Krijnse-Locker J<\/strong>, Charneau P, Di Nunzio F (2020) Remodeling of the Core Leads HIV-1 Preintegration Complex into the Nucleus of Human Lymphocytes, <strong><em>J Virol<\/em><\/strong> 94(11) :e00135-20, doi: 10.1128\/JVI.00135-20.<\/p>\n<p>Cagin U, Puzzo F, Gomez MJ, Moya-Nilges M, Sellier P, Abad C, Van Wittenberghe L, Daniele N, Guerchet N, Gjata B, Collaud F, Charles S, Simon-Sola M, Boyer, <strong>Krijnse-Locker J<\/strong>, Ronzitti G, Colella P, Mingozzi F (2020) Liver expression of secretable GAA rescues advanced Pompe disease at the biochemical, functional, and transcriptional level in Gaa\u2212\/\u2212 mice, <strong><em>Mol Genet Metab<\/em><\/strong> 129(2):S36-S37.<\/p>\n<p>Morty RE, <strong>Ziebuhr J<\/strong> (2020) Call for Papers: The Pathophysiology of COVID-19 and SARS-CoV-2 Infection, <strong><em>Am J Physiol Lung Cell Mol Physiol<\/em><\/strong>, 318(5):L1016-L1019, doi: 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Teixeira HC (2020) Performance of recombinant proteins in diagnosis and differentiation of canine visceral leishmaniasis infected and vaccinated dogs. <strong><em>Eur J Microbiol Immunol<\/em><\/strong>, doi: 10.1556\/1886.2020.00018.<\/p>\n<p>Harbig A, Mernberger M, Bittel L, Pleschka S, Schughart K, <strong>Steinmetzer T<\/strong>, Stiewe T, Nist A &amp; <strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong> (2020) Transcriptome profiling and protease inhibition experiments identify proteases that activate H3N2 influenza A and influenza B viruses in murine airways. <strong><em>J Biol Chem<\/em><\/strong>, 295(33), doi:10.1074\/jbc.RA120.012635.<\/p>\n<p>R\u00f6ttgerding F &amp; <strong>Kraiczy P<\/strong> (2020) Immune evasion strategies of relapsing fever spirochetes. <strong><em>Front Immunol<\/em><\/strong>, 11:1560. doi: 10.3389\/fimmu.2020.01560.<\/p>\n<p>Bestle D, Heindl MR, Limburg H, Lam van TV, Pilgram O, Moulton H, Stein AD, Hardes K, Eickmann M, Dolnik O, Rohde C, Klenk HD, Garten W, <strong>Steinmetzer T<\/strong>, <strong>B\u00f6ttcher-Friebertsh\u00e4user E<\/strong> (2020) TMPRSS2 and furin are both essential for proteolytic activation of SARS-CoV-2 in human airway cells. <strong><em>Life<\/em><\/strong><em> <strong>Sci<\/strong> <strong>Alliance<\/strong><\/em>, doi:10.26508\/lsa.202000786.<\/p>\n<p>Braun NJ, Quek JP, Huber S, Kouretova J, Rogge D, Lang-Henkel H, Cheong EZK, Chew BLA, <strong>Heine A<\/strong>, Luo D, <strong>Steinmetzer T<\/strong> (2020)\u00a0Structure-based macrocyclization of substrate analogue NS2B-NS3 protease inhibitors of Zika, West Nile and Dengue viruses. <strong><em>ChemMedChem<\/em><\/strong>, doi:10.1002\/cmdc.202000237.<\/p>\n<p>Lin YP, Diuk-Wasser M, Stevenson B, <strong>Kraiczy P<\/strong> (2020) Complement evasion contributes to Lyme borreliae host association. <strong><em>Trends Parasitol<\/em><\/strong>, 16:634-645. doi.org\/10.1016\/j.pt.2020.04.011.<\/p>\n<p>Blum L, <strong>Geisslinger G<\/strong>, <strong>Parnham MJ<\/strong>, <strong>Gr\u00fcnweller A<\/strong>, Schiffmann S (2020) Natural antiviral compound silvestrol modulates human monocyte-derived macrophages and dendritic cells. <strong><em>J Cell Mol Med<\/em><\/strong>, 10.1111\/jcmm.15360. doi:10.1111\/jcmm.15360.<\/p>\n<p>Frye AM, Hart TM, Tufts DM, Ram S, Diuk-Wasser MA, <strong>Kraiczy P<\/strong>, Blom AM, Lin YP (2020) A soft tick <em>Ornithodoros moubata<\/em> salivary protein OmCI is a potent inhibitor to prevent avian complement activation. <strong><em>Ticks Tick Borne Dis<\/em><\/strong>, 11:101354, doi: 10.1016\/j.ttbdis.2019.101354.<\/p>\n<p>Moreira BP, Armstrong T, Batista ICA, Clemente Tavares N, Pires CV, de Moraes Moura\u0303o M, <strong>Falcone FH<\/strong>, Dekker LV (2020) Use of BODIPY-Labeled ATP Analogues in the Development and Validation of a Fluorescence Polarization-Based Assay for Screening of Kinase Inhibitors. <strong><em>ACS Publications<\/em><\/strong>. doi.org\/10.1021\/acsomega.9b03344.s001.<\/p>\n<p>Haberger V, Elgner F, Roos J, <strong>Bender D<\/strong>, <strong>Hildt E<\/strong> (2020) Regulation of the Transferrin Receptor Recycling in Hepatitis C Virus-Replicating Cells. <strong><em>Front Cell Dev Biol<\/em><\/strong> 8:44. doi:\u00a010.3389\/fcell.2020.00044.<\/p>\n<p>M\u00fcller C, Obermann W, Schulte FW, Lange-Gr\u00fcnweller K, Oestereich L, Elgner F, Glitscher M, <strong>Hildt E<\/strong>, Singh K, Wendel HG, Hartmann RK, <strong>Ziebuhr J<\/strong>, <strong>Gr\u00fcnweller A<\/strong> (2020) Comparison of Broad-Spectrum Antiviral Activities of the Synthetic Rocaglate CR-31-B (-) and the eIF4A-inhibitor Silvestrol. <strong><em>Antiviral Res <\/em><\/strong>175, 104706, doi: 10.1016\/j.antiviral.2020.104706.<\/p>\n<p>Dichter AA, Schultze TG, Becker SA, Tsukayama P,<strong> Kempf VAJ<\/strong> (2020)\u00a0Complete Genome Sequence of Bartonella bacilliformis Strain KC584 (ATCC 35686).\u00a0<strong><em>Microbiol Resour 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