@misc{BuchananLewisParisetal., author = {Buchanan, Erin M. and Lewis, Savannah C. and Paris, Bastien and Forscher, Patrick S. and Pavlacic, Jeffrey M. and Beshears, Julie E. and Drexler, Shira Meir and Gourdon-Kanhukamwe, Am{\´e}lie and Mallik, Peter R and Silan, Miguel Alejandro A. and Miller, Jeremy K. and IJzerman, Hans and Moshontz, Hannah and Beaudry, Jennifer L. and Suchow, Jordan W. and Chartier, Christopher R. and Coles, Nicholas A. and Sharifian, MohammadHasan and Todsen, Anna Louise and Levitan, Carmel A. and Azevedo, Fl{\´a}vio and Legate, Nicole and Heller, Blake and Rothman, Alexander J. and Dorison, Charles A. and Gill, Brian P. and Wang, Ke and Rees, Vaughan W. and Gibbs, Nancy and Goldenberg, Amit and Thi Nguyen, Thuy-vy and Gross, James J. and Kaminski, Gwena{\^e}l and von Bastian, Claudia C. and Paruzel-Czachura, Mariola and Mosannenzadeh, Farnaz and Azouaghe, Soufian and Bran, Alexandre and Ruiz-Fernandez, Susana and Santos, Anabela Caetano and Reggev, Niv and Zickfeld, Janis H. and Akkas, Handan and Pantazi, Myrto and Ropovik, Ivan and Korbmacher, Max and Arriaga, Patr{\´i}cia and Gjoneska, Biljana and Warmelink, Lara and Alves, Sara G. and de Holanda Coelho, Gabriel Lins and Stieger, Stefan and Schei, Vidar and Hanel, Paul H. P. and Szaszi, Barnabas and Fedotov, Maksim and Antfolk, Jan and Marcu, Gabriela-Mariana and Schr{\"o}tter, Jana and Kunst, Jonas R. and Geiger, Sandra J. and Adetula, Adeyemi and Kocalar, Halil Emre and Kielińska, Julita and Kačm{\´a}r, Pavol and Bokkour, Ahmed and Galindo-Caballero, Oscar J. and Djamai, Ikhlas and P{\"o}ntinen, Sara Johanna and AGESIN, Bamikole Emmanuel and Jerns{\"a}ther, Teodor and Urooj, Anum and Rachev, Nikolay R. and Koptjevskaja-Tamm, Maria and Kurfal{\i}, Murathan and Pit, Ilse L. and Li, Ranran and {\c{C}}oksan, Sami and Dubrov, Dmitrii and Paltrow, Tamar Elise and Ban{\´i}k, Gabriel and Korobova, Tatiana and Studzinska, Anna and Jiang, Xiaoming and Aruta, John Jamir Benzon R. and Vintr, J{\´a}chym and Chiu, Faith and Kaliska, Lada and Berkessel, Jana B. and T{\"u}mer, Murat and Morales-Izquierdo, Sara and Chuan-Peng, Hu and Vezirian, Kevin and Rosa, Anna Dalla and Bialobrzeska, Olga and Vasilev, Martin R. and Beitner, Julia and K{\´a}cha, Ondřej and Žuro, Barbara and Westerlund, Minja and Nedelcheva-Datsova, Mina and Findor, Andrej and Krupić, Dajana and Kowal, Marta and Askelund, Adrian Dahl and Pourafshari, Razieh and Đorđević, Jasna Milošević and Schmidt, Nadya-Daniela and Baklanova, Ekaterina and Szala, Anna and Zakharov, Ilya and Vranka, Marek A. and Ihaya, Keiko and Grano, Caterina and Cellini, Nicola and Białek, Michał and Anton-Boicuk, Lisa and Dalgar, Ilker and Ad{\i}g{\"u}zel, Arca and Verharen, Jeroen P. H. and Maturan, Princess Lovella G. and Kassianos, Angelos P. and Oliveira, Raquel and Čadek, Martin and Adoric, Vera Cubela and {\"O}zdoğru, Asil Ali and Sverdrup, Therese E. and Aczel, Balazs and Zambrano, Danilo and Ahmed, Afroja and Tamnes, Christian K. and Yamada, Yuki and Volz, Leonhard and Sunami, Naoyuki and Suter, Lilian and Vieira, Luc and Groyecka-Bernard, Agata and Kamburidis, Julia Arhondis and Reips, Ulf-Dietrich and Harutyunyan, Mikayel and Adetula, Gabriel Agboola and Allred, Tara Bulut and Barzykowski, Krystian and Antazo, Benedict G and Zsido, Andras N. and Šakan, Dušana Dušan and Cyrus-Lai, Wilson and Ahlgren, Lina Pernilla and Hruška, Matej and Vega, Diego and Manunta, Efisio and Mokady, Aviv and Capizzi, Mariagrazia and Martončik, Marcel and Say, Nicolas and Filip, Katarzyna and Vilar, Roosevelt and Staniaszek, Karolina and Vdovic, Milica and Adamkovic, Matus and Johannes, Niklas and Hajdu, Nandor and Cohen, Noga and Overkott, Clara and Krupić, Dino and Hubena, Barbora and Nilsonne, Gustav and Mioni, Giovanna and Solorzano, Claudio Singh and Ishii, Tatsunori and Chen, Zhang and Kushnir, Elizaveta and Karaarslan, Cemre and Ribeiro, Rafael R. and Khaoudi, Ahmed and Kossowska, Małgorzata and Bavolar, Jozef and Hoyer, Karlijn and Roczniewska, Marta and Karababa, Alper and Becker, Maja and Monteiro, Renan P. and Kunisato, Yoshihiko and Metin-Orta, Irem and Adamus, Sylwia and Kozma, Luca and Czarnek, Gabriela and Domurat, Artur and Štrukelj, Eva and Alvarez, Daniela Serrato and Parzuchowski, Michal and Massoni, S{\´e}bastien and Czamanski-Cohen, Johanna and Pronizius, Ekaterina and Muchembled, Fany and van Schie, Kevin and Sa{\c{c}}akl{\i}, Asl{\i} and Hristova, Evgeniya and Kuzminska, Anna O. and Charyate, Abdelilah and Bijlstra, Gijsbert and Afhami, Reza and Majeed, Nadyanna M. and Musser, Erica D. and Sirota, Miroslav and Ross, Robert M. and Yeung, Siu Kit and Papadatou-Pastou, Marietta and Foroni, Francesco and Almeida, In{\^e}s A. T. and Grigoryev, Dmitry and Lewis, David M. G. and Holford, Dawn L. and Janssen, Steve M. J. and Tatachari, Srinivasan and Batres, Carlota and Olofsson, Jonas K. and Daches, Shimrit and Belaus, Anabel and Pfuhl, Gerit and Corral-Frias, Nadia Sarai and Sousa, Daniela and R{\"o}er, Jan Philipp and Isager, Peder Mortvedt and Godbersen, Hendrik and Walczak, Radoslaw B. and Van Doren, Natalia and Ren, Dongning and Gill, Tripat and Voracek, Martin and DeBruine, Lisa M. and Anne, Michele and Očovaj, Sanja Batić and Thomas, Andrew G. and Arvanitis, Alexios and Ostermann, Thomas and Wolfe, Kelly and Arinze, Nwadiogo Chisom and Bundt, Carsten and Lamm, Claus and Calin-Jageman, Robert J and Davis, William E. and Karekla, Maria and Zorjan, Saša and Jaremka, Lisa M. and Uttley, Jim and Hricova, Monika and Koehn, Monica A and Kiselnikova, Natalia and Bai, Hui and Krafnick, Anthony J. and Balci, Busra Bahar and Ballantyne, Tonia and Lins, Samuel and Vally, Zahir and Esteban-Serna, Celia and Schmidt, Kathleen and Macapagal, Paulo Manuel L. and Szwed, Paulina and Zdybek, Przemysław Marcin and Moreau, David and Collins, W. Matthew and Joy-Gaba, Jennifer A. and Vilares, Iris and Tran, Ulrich S. and Boudesseul, Jordane and Albayrak-Aydemir, Nihan and Dixson, Barnaby James Wyld and Perillo, Jennifer T and Ferreira, Ana and Westgate, Erin C. and Aberson, Christopher L. and Arinze, Azuka Ikechukwu and Jaeger, Bastian and Butt, Muhammad Mussaffa and Silva, Jaime R. and Storage, Daniel Shafik and Janak, Allison P and Jim{\´e}nez-Leal, William and Soto, Jose A. and Sorokowska, Agnieszka and McCarthy, Randy and Tullett, Alexa M and Frias-Armenta, Martha and Ribeiro, Matheus Fernando Felix and Hartanto, Andree and Forbes, Paul A. G. and Willis, Megan L. and del Carmen Tejada R, Mar{\´i}a and Torres, Adriana Julieth Olaya and Stephen, Ian D and Vaidis, David C. and de la Rosa-G{\´o}mez, Anabel and Yu, Karen and Sutherland, Clare A. M. and Manavalan, Mathi and Behzadnia, Behzad and Urban, Jan and Baskin, Ernest and McFall, Joseph P. and Ogbonnaya, Chisom Esther and Fu, Cynthia H. Y. and Rahal, Rima-Maria and Ndukaihe, Izuchukwu L. G. and Hostler, Thomas J. and Kappes, Heather Barry and Sorokowski, Piotr and Khosla, Meetu and Lazarevic, Ljiljana B. and Eudave, Luis and Vilsmeier, Johannes K. and Luis, Elkin O. and Muda, Rafał and Agadullina, Elena and C{\´a}rcamo, Rodrigo A. and Reeck, Crystal and Anjum, Gulnaz and Venegas, M{\´o}nica Camila Toro and Misiak, Michal and Ryan, Richard M. and Nock, Nora L. and Travaglino, Giovanni A. and Mensink, Michael C. and Feldman, Gilad and Wichman, Aaron L. and Chou, Weilun and Ziano, Ignazio and Seehuus, Martin and Chopik, William J. and Kung, Franki Y. H. and Carpentier, Joelle and Vaughn, Leigh Ann and Du, Hongfei and Xiao, Qinyu and Lima, Tiago J. S. and Noone, Chris and Onie, Sandersan and Verbruggen, Frederick and Radtke, Theda and Primbs, Maximilian A.}, title = {The psychological science accelerator's COVID-19 rapid-response dataset}, series = {Scientific Data}, volume = {10}, journal = {Scientific Data}, number = {1}, publisher = {Springer Science and Business Media LLC}, issn = {2052-4463}, doi = {10.1038/s41597-022-01811-7}, pages = {1 -- 15}, language = {en} } @misc{ShipleyOesterMathieuResugeetal., author = {Shipley, J. Ryan and Oester, Rebecca and Mathieu-Resuge, Margaux and Parmar, Tarn Preet and Kowarik, Carmen and Il{\´i}ć, Maja and Kainz, Martin J. and Martin-Creuzburg, Dominik and Obrist, Martin K. and Graham, Catherine H. and Gossner, Martin M. and Matthews, Blake and Twining, Cornelia W.}, title = {Consumer biodiversity increases organic nutrient availability across aquatic and terrestrial ecosystems}, series = {Science}, volume = {386}, journal = {Science}, number = {6719}, publisher = {American Association for the Advancement of Science (AAAS)}, issn = {0036-8075}, doi = {10.1126/science.adp6198}, pages = {335 -- 340}, abstract = {Human land-use intensification threatens arthropod (for example, insect and spider) biodiversity across aquatic and terrestrial ecosystems. Insects and spiders play critical roles in ecosystems by accumulating and synthesizing organic nutrients such as polyunsaturated fatty acids (PUFAs). However, links between biodiversity and nutrient content of insect and spider communities have yet to be quantified. We relate insect and spider richness to biomass and PUFA-mass from stream and terrestrial communities encompassing nine land uses. PUFA-mass and biomass relate positively to biodiversity across ecosystems. In terrestrial systems, human-dominated areas have lower biomass and PUFA-mass than more natural areas, even at equivalent levels of richness. Aquatic ecosystems have consistently higher PUFA-mass than terrestrial ecosystems. Our findings reinforce the importance of conserving biodiversity and highlight the distinctive benefits of aquatic biodiversity.}, language = {en} } @misc{HallSchmidtWaggeetal., author = {Hall, Braeden and Schmidt, Kathleen and Wagge, Jordan and Lewis, Savannah C. and Weissgerber, Sophia C. and Kiunke, Felix and Pfuhl, Gerit and Stieger, Stefan and Tran, Ulrich S. and Barzykowski, Krystian and Bogatyreva, Natalia and Kowal, Marta and Massar, KarlIJn and Pernerstofer, Felizitas and Sorokowski, Piotr and Voracek, Martin and Chartier, Christopher R. and Brandt, Mark J. and Grahe, Jon E. and {\"O}zdoğru, Asil A. and Andreychik, Michael R. and Chen, Sau-Chin and Evans, Thomas R. and Hautekiet, Caro and IJzerman, Hans and Kačm{\´a}r, Pavol and Krafnick, Anthony J. and Musser, Erica D. and Vergauwe, Evie and Werner, Kaitlyn M. and Aczel, Balazs and Arriaga, Patr{\´i}cia and Batres, Carlota and Beaudry, Jennifer L. and Cova, Florian and Ďurbisov{\´a}, Simona and Cramblet Alvarez, Leslie D. and Feldman, Gilad and Godbersen, Hendrik and Gottfried, Jaroslav and Haeffel, Gerald J. and Hartanto, Andree and Isloi, Chris and McFall, Joseph P. and Milyavskaya, Marina and Moreau, David and Nos{\´a}ľov{\´a}, Ester and Papaioannou, Kostas and Ruiz-Fernandez, Susana and Schr{\"o}tter, Jana and Storage, Daniel and Vezirian, Kevin and Volz, Leonhard and Weisberg, Yanna J. and Xiao, Qinyu and Awlia, Dana and Branit, Hannah W. and Dunn, Megan R. and Groyecka-Bernard, Agata and Haneda, Ricky and Kielinska, Julita and Kolle, Caroline and Lubomski, Paweł and Miller, Alexys M. and M{\ae}kel{\ae}, Martin J. and Pantazi, Mytro and Ribeiro, Rafael R. and Ross, Robert M. and Sorokowska, Agnieszka and Aberson, Christopher L. and Vassiliou, Xanthippi Alexi and Baker, Bradley J. and Bognar, Miklos and Cong, Chin Wen and Danvers, Alex F. and Davis, William E. and Dranseika, Vilius and Dumbravă, Andrei and Farmer, Harry and Field, Andy P. and Forscher, Patrick S. and Graton, Aur{\´e}lien and Hajdu, Nandor and Howlett, Peter A. and Kabut, Radosław and Larsen, Emmett M. and Lee, Sean T. H. and Legate, Nicole and Levitan, Carmel A. and Levy, Neil and Lu, Jackson G. and Misiak, Michał and Morariu, Roxana E. and Novak, Jennifer and Pronizius, Ekaterina and Prusova, Irina and Rathnayake, Athulya S. and Romanova, Marina O. and R{\"o}er, Jan P. and Sampaio, Waldir M. and Schild, Christoph and Schulte-Mecklenbeck, Michael and Stephen, Ian D. and Szecsi, Peter and Takacs, Elizabeth and Teeter, Julia N. and Thiele-Evans, Elian H. and Valeiro-Paterlini, Julia and Vilares, Iris and Villafana, Louise and Wang, Ke and Wu, Raymond and {\´A}lvarez-Solas, Sara and Moshontz, Hannah and Buchanan, Erin M.}, title = {Registered Replication Report: A Large Multilab Cross-Cultural Conceptual Replication of Turri et al. (2015)}, series = {Advances in Methods and Practices in Psychological Science}, volume = {7}, journal = {Advances in Methods and Practices in Psychological Science}, number = {4}, publisher = {SAGE Publications}, issn = {2515-2459}, doi = {10.1177/25152459241267902}, pages = {1 -- 38}, language = {en} } @misc{JinksBottovanBemdenBunzlietal., author = {Jinks, Clare and Botto-van Bemden, Angie and Bunzli, Samantha and Bowden, Jocelyn and Egerton, Thorlene and Eyles, Jillian and Foster, Nadine and Healey, Emma L. and Maddison, John and O'Brien, Daniel and Quicke, Jonathan G. and Schiphof, Dieuwke and Parry, Emma and Thomas, Martin J. and Holden, Melanie A. and Allen, Kelli and Babatunde, Opeyemi O. and Bennel, Kim L. and Berry, Alice and Bierma-Zeinstra, Sita and Callahan, Leigh and Campbell, Laura and Dziedzic, Krysia S. and Finney, Andrew and French, Helen P. and Haber, Travis and Hadley-Barrows, Tina and Hall, Michelle and Hawker, Gillian and Henriksen, Marius and Hinman, Rana S. and Ho-Pham, Lan and Hunter, David J. and Lawford, Belinda J. and Mallen, Christian D. and McHugh, Gretl A. and Kopkow, Christian and Neogi, Tuhina and Nicholls, Elaine and Nicolson, Philippa J. A. and {\O}ster{\aa}s, Nina and Paskins, Zoe and Protheroe, Joanne and Roos, Ewa M. and Runhaar, Jos and Skou, Soren T. and Simkins, Joanna and Swaithes, Laura and Thomas, Geraint and Esch, Martin van der and Whittaker, Jackie and Zhang, Weiya}, title = {Changing the narrative on osteoarthritis: A call for global action}, series = {Osteoarthritis and Cartilage}, volume = {32}, journal = {Osteoarthritis and Cartilage}, number = {4}, issn = {1063-4584}, doi = {10.1016/j.joca.2024.02.004}, pages = {414 -- 420}, language = {en} } @misc{PileckyKaemmerMathieuResugeetal., author = {Pilecky, Matthias and K{\"a}mmer, Samuel K. and Mathieu-Resuge, Margaux and Wassenaar, Leonard I. and Taipale, Sami J. and Martin-Creuzburg, Dominik and Kainz, Martin J.}, title = {Hydrogen isotopes (δ2H) of polyunsaturated fatty acids track bioconversion by zooplankton}, series = {Functional Ecology}, volume = {36}, journal = {Functional Ecology}, number = {3}, issn = {1365-2435}, doi = {10.1111/1365-2435.13981}, pages = {538 -- 549}, language = {en} } @misc{ShipleyTwiningMathieuResugeetal., author = {Shipley, J. Ryan and Twining, Cornelia W. and Mathieu-Resuge, Margaux and Parmar, Tarn Preet and Kainz, Martin J. and Martin-Creuzburg, Dominik and Weber, Christine and Winkler, David W. and Graham, Catherine H. and Matthews, Blake}, title = {Climate change shifts the timing of nutritional flux from aquatic insects}, series = {Current Biology}, volume = {32}, journal = {Current Biology}, number = {6}, issn = {1342-1349}, doi = {10.1016/j.cub.2022.01.057}, language = {en} } @misc{EisenhauerFrankWeigeltetal., author = {Eisenhauer, Nico and Frank, Karin and Weigelt, Alexandra and Bartkowski, Bartosz and Beugnon, R{\´e}my and Liebal, Katja and Mahecha, Miguel and Quaas, Martin and Al-Halbouni, Djamil and Bastos, Ana and Bohn, Friedrich J. and Brito, Mariana Madruga de and Denzler, Joachim and Feilhauer, Hannes and Fischer, Rico and Fritsche, Immo and Guimaraes-Steinicke, Claudia and H{\"a}nsel, Martin and Haun, Daniel B. M. and Herrmann, Hartmut and Huth, Andreas and Kalesse-Los, Heike and Koetter, Michael and Kolleck, Nina and Krause, Melanie and Kretschmer, Marlene and Leit{\~a}o, Pedro J. and Masson, Torsten and Mora, Karin and M{\"u}ller, Birgit and Peng, Jian and P{\"o}hlker, Mira L. and Ratzke, Leonie and Reichstein, Markus and Richter, Solveig and R{\"u}ger, Nadja and S{\´a}nchez-Parra, Beatriz and Shadaydeh, Maha and Sippel, Sebastian and Tegen, Ina and Thr{\"a}n, Daniela and Umlauft, Josefine and Wendisch, Manfred and Wolf, Kevin and Wirth, Christian and Zacher, Hannes and Zaehle, S{\"o}nke and Quaas, Johannes}, title = {A belowground perspective on the nexus between biodiversity change, climate change, and human well-being}, series = {Journal of Sustainable Agriculture and Environment}, volume = {3}, journal = {Journal of Sustainable Agriculture and Environment}, number = {2}, publisher = {Wiley}, issn = {2767-035X}, doi = {10.1002/sae2.12108}, pages = {12}, abstract = {Soil is central to the complex interplay among biodiversity, climate, and society. This paper examines the interconnectedness of soil biodiversity, climate change, and societal impacts, emphasizing the urgent need for integrated solutions. Human-induced biodiversity loss and climate change intensify environmental degradation, threatening human well-being. Soils, rich in biodiversity and vital for ecosystem function regulation, are highly vulnerable to these pressures, affecting nutrient cycling, soil fertility, and resilience. Soil also crucially regulates climate, influencing energy, water cycles, and carbon storage. Yet, climate change poses significant challenges to soil health and carbon dynamics, amplifying global warming. Integrated approaches are essential, including sustainable land management, policy interventions, technological innovations, and societal engagement. Practices like agroforestry and organic farming improve soil health and mitigate climate impacts. Effective policies and governance are crucial for promoting sustainable practices and soil conservation. Recent technologies aid in monitoring soil biodiversity and implementing sustainable land management. Societal engagement, through education and collective action, is vital for environmental stewardship. By prioritizing interdisciplinary research and addressing key frontiers, scientists can advance understanding of the soil biodiversity-climate change-society nexus, informing strategies for environmental sustainability and social equity.}, language = {en} } @misc{TwiningBlancoDuttonetal., author = {Twining, Cornelia W. and Blanco, Andreu and Dutton, Christopher and Kainz, Martin J. and Harvey, Eric and Kowarik, Carmen and Kraus, Johanna M. and Razavi, N. Roxanna and Martin-Creuzburg, Dominik and Parmar, Tarn Preet and Richoux, Nicole and Saboret, Gregoire and Sarran, Charlie and Schmidt, Travis S. and Shipley, J. Ryan and Subalusky, Amanda L.}, title = {Integrating the bright and dark sides of aquatic resource subsidies—a synthesis}, series = {Ecology letters}, volume = {28}, journal = {Ecology letters}, number = {4}, publisher = {Wiley}, issn = {1461-0248}, doi = {10.1111/ele.70109}, pages = {1 -- 20}, abstract = {Aquatic and terrestrial ecosystems are linked through the reciprocal exchange of materials and organisms. Aquatic-to-terrestrial subsidies are relatively small in most terrestrial ecosystems, but they can provide high contents of limiting resources that increase consumer fitness and ecosystem production. However, they also may carry significant contaminant loads, particularly in anthropogenically impacted watersheds. Global change processes, including land use change, climate change and biodiversity declines, are altering the quantity and quality of aquatic subsidies, potentially shifting the balance of costs and benefits of aquatic subsidies for terrestrial consumers. Many global change processes interact and impact both the bright and dark sides of aquatic subsidies simultaneously, highlighting the need for future integrative research that bridges ecosystem as well as disciplinary boundaries. We identify key research priorities, including increased quantification of the spatiotemporal variability in aquatic subsidies across a range of ecosystems, greater understanding of the landscape-scale extent of aquatic subsidy impacts and deeper exploration of the relative costs and benefits of aquatic subsidies for consumers.}, language = {en} } @misc{PiontekStrittmatterUllrichetal., author = {Piontek, Klaus and Strittmatter, Eric and Ullrich, Ren{\´e} and Gr{\"o}be, Glenn and Pecyna, Marek J. and Kluge, Martin and Scheibner, Katrin and Hofrichter, Martin and Plattner, Dietmar A.}, title = {Structural basis of substrate conversion in a new aromatic peroxygenase: cytochrome P450 functionality with benefits}, series = {The Journal of Biological Chemistry}, journal = {The Journal of Biological Chemistry}, number = {288}, issn = {1083-351X}, doi = {10.1074/jbc.M113.514521}, pages = {34767 -- 34776}, abstract = {Aromatic peroxygenases (APOs) represent a unique oxidoreductase sub-subclass of heme proteins with peroxygenase and peroxidase activity and were thus recently assigned a distinct EC classification (EC 1.11.2.1). They catalyze, inter alia, oxyfunctionalization reactions of aromatic and aliphatic hydrocarbons with remarkable regio- and stereoselectivities. When compared with cytochrome P450, APOs appear to be the choice enzymes for oxyfunctionalizations in organic synthesis due to their independence from a cellular environment and their greater chemical versatility. Here, the first two crystal structures of a heavily glycosylated fungal aromatic peroxygenase (AaeAPO) are described. They reveal different pH-dependent ligand binding modes. We model the fitting of various substrates in AaeAPO, illustrating the way the enzyme oxygenates polycyclic aromatic hydrocarbons. Spatial restrictions by a phenylalanine pentad in the active-site environment govern substrate specificity in AaeAPO.}, language = {en} } @misc{UllrichPorajKobielskaScholzeetal., author = {Ullrich, Ren{\´e} and Poraj-Kobielska, Marzena and Scholze, Steffi and Halbout, Claire and Sandvoss, Martin and Pecyna, Marek J. and Scheibner, Katrin and Hofrichter, Martin}, title = {Side chain removal from corticosteroids by unspecific peroxygenase}, series = {Journal of Inorganic Biochemistry}, volume = {183}, journal = {Journal of Inorganic Biochemistry}, issn = {1873-3344}, doi = {10.1016/j.jinorgbio.2018.03.011}, pages = {84 -- 93}, abstract = {Two unspecific peroxygenases (UPO, EC 1.11.2.1) from the basidiomycetous fungi Marasmius rotula and Marasmius wettsteinii oxidized steroids with hydroxyacetyl and hydroxyl functionalities at C17 - such as cortisone, Reichstein's substance S and prednisone - via stepwise oxygenation and final fission of the side chain. The sequential oxidation started with the hydroxylation of the terminal carbon (C21) leading to a stable geminal alcohol (e.g. cortisone 21-gem-diol) and proceeded via a second oxygenation resulting in the corresponding α-ketocarboxylic acid (e.g. cortisone 21-oic acid). The latter decomposed under formation of adrenosterone (4-androstene-3,11,17-trione) as well as formic acid and carbonic acid (that is in equilibrium with carbon dioxide); fission products comprising two carbon atoms such as glycolic acid or glyoxylic acid were not detected. Protein models based on the crystal structure data of MroUPO (Marasmius rotula unspecific peroxygenase) revealed that the bulky cortisone molecule suitably fits into the enzyme's access channel, which enables the heme iron to come in close contact to the carbons (C21, C20) of the steroidal side chain. ICP-MS analysis of purified MroUPO confirmed the presence of magnesium supposedly stabilizing the porphyrin ring system.}, language = {en} } @misc{FehlingerMathieuResugePileckyetal., author = {Fehlinger, Lena and Mathieu-Resuge, Margaux and Pilecky, Matthias and Parmar, Tarn Preet and Twining, Cornelia W. and Martin-Creuzburg, Dominik and Kainz, Martin J.}, title = {Export of dietary lipids via emergent insects from eutrophic fishponds}, series = {Hydrobiologia}, volume = {Vol. 850}, journal = {Hydrobiologia}, number = {15}, issn = {1573-5117}, doi = {10.1007/s10750-022-05040-2}, pages = {3241 -- 3256}, language = {en} } @misc{PileckyMathieuResugeZavorkaetal., author = {Pilecky, Matthias and Mathieu-Resuge, Margaux and Z{\´a}vorka, Libor and Fehlinger, Lena and Winter, Katharina and Martin-Creuzburg, Dominik and Kainz, Martin J.}, title = {Common carp (Cyprinus carpio) obtain omega-3 long-chain polyunsaturated fatty acids via dietary supply and endogenous bioconversion in semi-intensive aquaculture ponds}, series = {Aquaculture}, volume = {561}, journal = {Aquaculture}, issn = {0044-8486}, doi = {10.1016/j.aquaculture.2022.738731}, pages = {1 -- 9}, language = {en} } @article{GraciaMartinConcepcionBarrancoetal., author = {Gracia, F. and Martin-Concepcion, A. I. and Barranco, A. and Holgado, J. P. and Espinos, J. P. and Yubero, F. and Batchelor, David R. and Schmeißer, Dieter and Gonzalez-Elipe, A. R.}, title = {XAS investigation of texture in TiO2 thin films prepared by IBICVD}, language = {en} } @article{MtchedlidzeArguirovKittleretal., author = {Mtchedlidze, T. and Arguirov, Tzanimir V. and Kittler, Martin and Hoang, T. and Hollemann, J. and Schmitz, J.}, title = {Influence of electric field on spectral positions of dislocation-related luminescence peaks in silicon: Stark effect}, language = {en} } @misc{MtchedlidzeArguirovKittleretal., author = {Mtchedlidze, T. and Arguirov, Tzanimir V. and Kittler, Martin and Hoang, T. and Hollemann, J. and LeMinh, P. and Schmitz, J.}, title = {Engineering of dislocation loops for light emission from silicon diodes}, series = {Solid State Phenomena}, volume = {131/133}, journal = {Solid State Phenomena}, issn = {1012-0394}, pages = {303 -- 308}, language = {en} } @misc{HoangHollemannLeMinhetal., author = {Hoang, T. and Hollemann, J. and LeMinh, P. and Schmitz, J. and Mtchedlidze, T. and Arguirov, Tzanimir V. and Kittler, Martin}, title = {Influence of Dislocation Loops on the Near-Infrared Light Emission From Silicon Diodes}, series = {IEEE transactions on electron devices}, volume = {54}, journal = {IEEE transactions on electron devices}, number = {8}, issn = {0018-9383}, pages = {1860 -- 1866}, language = {en} } @misc{MartinezRuizDuenasCamareroetal., author = {Martinez, Angel T. and Ruiz-Duenas, Francisco J. and Camarero, Susana and Serrano, Ana and Linde, Dolores and Lund, Henrik and Vind, Jesper and Tovborg, Morton and Herold-Majumdar, Owik M. and Hofrichter, Martin and Liers, Christiane and Ullrich, Ren{\´e} and Scheibner, Katrin and Sannia, Giovanni and Piscitelli, Alessandra and Sener, Mehmet E. and Kilic, Sibel and Berkel, Willem J. H. van and Guallar, V{\´i}ctor and Lucas, Maria F{\´a}tima and Zuhse, Ralf and Ludwig, Roland and Hollmann, Frank and Fern{\´a}ndez-Fueyo, Elena and Record, Eric and Faulds, Craig B. and Tortajada, Marta and Winckelmann, Ib and Rasmussen, Jo-Anne and Gelo-Pujic, Mirjana and Guti{\´e}rrez, Ana and Rio, Jos{\´e} C. del and Rencoret, Jorge and Alcalde, Miguel}, title = {Oxidoreductases on their way to industrial biotransformations}, series = {Biotechnology Advances}, volume = {35}, journal = {Biotechnology Advances}, number = {6}, issn = {1873-1899}, doi = {10.1016/j.biotechadv.2017.06.003}, pages = {815 -- 831}, abstract = {Fungi produce heme-containing peroxidases and peroxygenases, flavin-containing oxidases and dehydrogenases, and different copper-containing oxidoreductases involved in the biodegradation of lignin and other recalcitrant compounds. Heme peroxidases comprise the classical ligninolytic peroxidases and the new dye-decolorizing peroxidases, while heme peroxygenases belong to a still largely unexplored superfamily of heme-thiolate proteins. Nevertheless, basidiomycete unspecific peroxygenases have the highest biotechnological interest due to their ability to catalyze a variety of regio- and stereo-selective monooxygenation reactions with H2O2 as the source of oxygen and final electron acceptor. Flavo-oxidases are involved in both lignin and cellulose decay generating H2O2 that activates peroxidases and generates hydroxyl radical. The group of copper oxidoreductases also includes other H2O2 generating enzymes - copper-radical oxidases - together with classical laccases that are the oxidoreductases with the largest number of reported applications to date. However, the recently described lytic polysaccharide monooxygenases have attracted the highest attention among copper oxidoreductases, since they are capable of oxidatively breaking down crystalline cellulose, the disintegration of which is still a major bottleneck in lignocellulose biorefineries, along with lignin degradation. Interestingly, some flavin-containing dehydrogenases also play a key role in cellulose breakdown by directly/indirectly "fueling" electrons for polysaccharide monooxygenase activation. Many of the above oxidoreductases have been engineered, combining rational and computational design with directed evolution, to attain the selectivity, catalytic efficiency and stability properties required for their industrial utilization. Indeed, using ad hoc software and current computational capabilities, it is now possible to predict substrate access to the active site in biophysical simulations, and electron transfer efficiency in biochemical simulations, reducing in orders of magnitude the time of experimental work in oxidoreductase screening and engineering. What has been set out above is illustrated by a series of remarkable oxyfunctionalization and oxidation reactions developed in the frame of an intersectorial and multidisciplinary European RTD project. The optimized reactions include enzymatic synthesis of 1-naphthol, 25-hydroxyvitamin D3, drug metabolites, furandicarboxylic acid, indigo and other dyes, and conductive polyaniline, terminal oxygenation of alkanes, biomass delignification and lignin oxidation, among others. These successful case stories demonstrate the unexploited potential of oxidoreductases in medium and large-scale biotransformations.}, language = {en} } @misc{EmmeneggerKumarEmmeneggeretal., author = {Emmenegger, Marc and Kumar, Sreedhar Saseendran and Emmenegger, Vishalini and Malinauskas, Tomas and B{\"u}ttner, Thomas and Rose, Laura and Schierack, Peter and Sprinzl, Martin F. and Sommer, Clemens J. and Lackner, Karl J. and Aguzzi, Adriano and Roggenbuck, Dirk and Frauenknecht, Katrin B. M.}, title = {Anti-prothrombin autoantibodies enriched after infection with SARS-CoV-2 and influenced by strength of antibody response against SARS-CoV-2 proteins}, series = {PLoS pathogens}, volume = {17}, journal = {PLoS pathogens}, number = {12}, issn = {1553-7374}, doi = {10.1371/journal.ppat.1010118}, language = {en} } @misc{LaineMartinCreuzburgLitmanenetal., author = {Laine, Miikka Benjami and Martin-Creuzburg, Dominik and Litmanen, Jaakko J. and Taipale, Sami J.}, title = {Sterol limitation of Daphnia on eukaryotic phytoplankton: A combined supplementation and compound-specific stable isotope labeling approach}, series = {Oikos}, journal = {Oikos}, issn = {1600-0706}, doi = {10.1111/oik.10359}, pages = {1 -- 14}, language = {en} } @article{KittlerSeifertYuetal., author = {Kittler, Martin and Seifert, Winfried and Yu, Xuegong and Jia, G. and Vyvenko, Oleg F. and Mtchedlidze, T. and Reiche, Manfred and Sha, J. and Yang, D. and Arguirov, Tzanimir V.}, title = {Silicon naostructures for IR light emitters}, series = {Materials Sience and Engineering C}, volume = {27}, journal = {Materials Sience and Engineering C}, number = {5-8}, issn = {1873-0191}, pages = {1252 -- 1259}, language = {en} } @misc{ParkLeeKupniketal., author = {Park, Kwan Kyu and Lee, Hyunjoo J. and Kupnik, Mario and Oralkan, {\"O}mer and Ramseyer, Jean-Pierre and Lang, Hans Peter and Hegner, Martin and Gerber, Christoph and Khuri-Yakub, Butrus T.}, title = {Capacitive micromachined ultrasonic transducer (CMUT) as a chemical sensor for DMMP detection}, series = {Sensors and Actuators B: Chemical}, volume = {160}, journal = {Sensors and Actuators B: Chemical}, number = {1}, issn = {0925-4005}, doi = {10.1016/j.snb.2011.09.036}, pages = {1120 -- 1127}, language = {en} } @misc{PecynaUllrichBittneretal., author = {Pecyna, Marek J. and Ullrich, Ren{\´e} and Bittner, Britta and Clemens, Andr{\´e} and Scheibner, Katrin and Schubert, Roland and Hofrichter, Martin}, title = {Molecular characterization of aromatic peroxygenase from Agrocybe aegerita}, series = {Applied Microbiology and Biotechnology}, volume = {84}, journal = {Applied Microbiology and Biotechnology}, number = {5}, issn = {1432-0614}, doi = {10.1007/s00253-009-2000-1}, pages = {885 -- 897}, abstract = {Recently, a novel group of fungal peroxidases, known as the aromatic peroxygenases (APO), has been discovered. Members of these extracellular biocatalysts produced by agaric basidiomycetes such as Agrocybe aegerita or Coprinellus radians catalyze reactions—for example, the peroxygenation of naphthalene, toluene, dibenzothiophene, or pyridine—which are actually attributed to cytochrome P450 monooxygenases. Here, for the first time, genetic information is presented on this new group of peroxide-consuming enzymes. The gene of A. aegerita peroxygenase (apo1) was identified on the level of messenger RNA and genomic DNA. The gene sequence was affirmed by peptide sequences obtained through an Edman degradation and de novo peptide sequencing of the purified enzyme. Quantitative real-time reverse transcriptase polymerase chain reaction demonstrated that the course of enzyme activity correlated well with that of mRNA signals for apo1 in A. aegerita. The full-length sequences of A. aegerita peroxygenase as well as a partial sequence of C. radians peroxygenase confirmed the enzymes' affiliation to the heme-thiolate proteins. The sequences revealed no homology to classic peroxidases, cytochrome P450 enzymes, and only little homology (<30\%) to fungal chloroperoxidase produced by the ascomycete Caldariomyces fumago (and this only in the N-terminal part of the protein comprising the heme-binding region and part of the distal heme pocket). This fact reinforces the novelty of APO proteins. On the other hand, homology retrievals in genetic databases resulted in the identification of various APO homologous genes and transcripts, particularly among the agaric fungi, indicating APO's widespread occurrence in the fungal kingdom.}, language = {en} } @misc{GroebeUllrichPecynaetal., author = {Gr{\"o}be, Glenn and Ullrich, Ren{\´e} and Pecyna, Marek J. and Kapturska, Danuta and Friedrich, Stephanie and Hofrichter, Martin and Scheibner, Katrin}, title = {High-yield production of aromatic peroxygenase by the agaric fungus Marasmius rotula}, series = {AMB Express}, journal = {AMB Express}, issn = {2191-0855}, abstract = {An extracellular peroxygenase from Marasmius rotula was produced in liquid culture, chromatographically purified and partially characterized. This is the third aromatic peroxygenase (APO) that has been characterized in detail and the first one that can be produced in high yields. The highest enzyme levels of about 41,000 U l-1 (corresponding to appr. 445 mg l-1 APO protein) exceeded the hitherto reported levels more than 40-fold and were detected in carbon- and nitrogen-rich complex media. The enzyme was purified by FPLC to apparent homogeneity (SDS-PAGE) with a molecular mass of 32 kDa (27 kDa after deglycosylation) and isoelectric points between 4.97 and 5.27. The UV-visible spectrum of the native enzyme showed a characteristic maximum (Soret band) at 418 nm that shifted after reduction with sodium dithionite and flushing with carbon monoxide to 443 nm. The pH optimum of the M. rotula enzyme was found to vary between pH 5 and 6 for most reactions studied. The apparent Km-values for 2,6-dimethoxyphenol, benzyl alcohol, veratryl alcohol, naphthalene and H2O2 were 0.133, 0.118, 0.279, 0.791 and 3.14 mM, respectively. M. rotula APO was found to be highly stable in a pH range from 5 to 10 as well as in the presence of organic solvents (50\% vol/vol) such as methanol, acetonitrile and N,N-dimethylformamide. Unlike other APOs, the peroxygenase of M. rotula showed neither brominating nor chlorinating activities.}, language = {en} } @misc{MartinezRuizDuenasGutierrezetal., author = {Mart{\´i}nez, Angel T. and Ruiz-Due{\~n}as, Francisco J. and Guti{\´e}rrez, Ana and R{\´i}o, Jos{\´e} C. del and Alcalde, Miguel and Liers, Christiane and Ullrich, Ren{\´e} and Hofrichter, Martin and Scheibner, Katrin and Kalum, Lisbeth and Vind, Jesper and Lund, Henrik}, title = {Search, engineering, and applications of new oxidative biocatalysts}, series = {Biofuels, Bioproducts and Biorefining}, volume = {8}, journal = {Biofuels, Bioproducts and Biorefining}, number = {6}, issn = {1932-1031}, doi = {10.1002/bbb.1498}, pages = {819 -- 835}, abstract = {Most industrial enzymes are hydrolases, such as glycosidases and esterases. However, oxidoreductases have an unexploited potential for substituting harsh (and scarcely selective) chemical processes. A group of basidiomycetes are the only organisms degrading the aromatic lignin polymer, enabling the subsequent use of plant polysaccharides. Therefore, these fungi and their ligninolytic peroxidases are the biocatalysts of choice for industrial delignification and oxidative biotransformations of aromatic and other organic compounds. The latter also include oxygenation reactions, which are catalyzed with high regio/stereo selectivity by fungal peroxygenases. In search for novel and more robust peroxidases/peroxygenases, basidiomycetes from unexplored habitats were screened, and hundreds of genes identified in basidiomycete genomes (in collaboration with the DOE JGI). The most interesting genes were heterologously expressed, and the corresponding enzymes structurally-functionally characterized. The information obtained enabled us to improve the enzyme operational and catalytic properties by directed mutagenesis. However, the structural-functional relationships explaining some desirable properties are not established yet and, therefore, their introduction was addressed by 'non-rational' directed evolution. Then, over 100 oxidative biotransformations were analyzed. Among them, it is noteworthy to mention the regio/stereo selective hydroxylation of long/short-chain alkanes (a chemically challenging reaction), epoxidation of alkenes, and production of hydroxy-fatty acids. Concerning aromatic oxygenations, the regioselective hydroxylation of flavonoids, and stereoselective hydroxylation/epoxidation of alkyl/alkenyl-benzenes were among the most remarkable reactions, together with enzymatic hydroxylation of benzene (as an alternative for harsh chemical process). Finally, peroxidases and peroxygenases also showed a potential as delignification biocatalysts and in the decolorization of contaminant dyes from textile industries.}, language = {en} } @inproceedings{SchwabBrauerBłaszkiewiczetal., author = {Schwab, Markus J. and Brauer, Achim and Błaszkiewicz, Mirosław and Raab, Thomas and Wilmking, Martin}, title = {Bridging long proxy data time series and instrumental observation in the Virtual Institute of Integrated Climate and Landscape Evolution Analyses - ICLEA}, series = {European Geosciences Union, General Assembly 2015, Vienna, Austria, 13 April - 17 May 2015}, booktitle = {European Geosciences Union, General Assembly 2015, Vienna, Austria, 13 April - 17 May 2015}, publisher = {European Geophysical Society}, address = {Katlenburg-Lindau}, language = {en} } @misc{SchwartzSaringArguirovetal., author = {Schwartz, Bernhard and Saring, Philipp and Arguirov, Tzanimir V. and Oehme, Michael and Kostecki, Konrad and Kasper, Erich and Schulze, J. and Kittler, Martin}, title = {Analysis of EL Emitted by LEDs on Si Substrates Containing GeSn/Ge Multi Quantum Wells as Active Layers}, series = {Solid State Phenomena}, volume = {242}, journal = {Solid State Phenomena}, issn = {1012-0394}, doi = {10.4028/www.scientific.net/SSP.242.361}, pages = {361 -- 367}, language = {en} } @misc{SchnellenbachBorchardDoeringetal., author = {Schnellenbach, Jan and Borchard, Michael and Doering, Detmar and Freytag, Andreas and Habermann, Gerd and Hagen, Albrecht von der and Hasse, Rolf and Horn, Karen and Kolev, Stefan and K{\"o}ster, Thomas and Roth, Steffen J. and Starbatty, Joachim and Wilde, Martin and Wohlgemuth, Michael}, title = {Wirtschaftsverfassung statt Wirtschaftsregierung, Frankfurter Aufruf f{\"u}r eine ordnungspolitische Weichenstellung in Europa}, series = {Frankfurter Allgemeine Zeitung}, journal = {Frankfurter Allgemeine Zeitung}, number = {22.06.2012}, language = {de} } @misc{SchulzSkrzypczakSchneideretal., author = {Schulz, Christian M. and Skrzypczak, M. and Schneider, Erich and Hapfelmeier, Alexander and Martin, J. and Kochs, Eberhard F. and Schneider, G.}, title = {Assessment of subjective workload in an anaesthesia simulator environment: reliability and validity}, series = {European Journal of Anaesthesiology}, volume = {28}, journal = {European Journal of Anaesthesiology}, number = {7}, issn = {0265-0215}, pages = {502 -- 505}, language = {en} } @misc{MuellerTorgerAllertzetal., author = {M{\"u}ller, Felix and Torger, Bernhard and Allertz, Peter J. and J{\"a}hnichen, Klaus and Keßler, Stefan and M{\"u}ller, Martin and Simon, Frank and Salchert, Katrin and M{\"a}urer, Haike and Pospiech, Doris}, title = {Multifunctional crosslinkable itaconic acid copolymers for enzyme immobilization}, series = {European Polymer Journal}, volume = {102}, journal = {European Polymer Journal}, doi = {10.1016/j.eurpolymj.2018.03.014}, pages = {47 -- 55}, abstract = {UV-Crosslinkable itaconic copolymers are developed to provide new multifunctional materials for coatings which combine crosslinkable functionalities and the possibility to immobilize enzymes. The polymer-immobilized enzymes were used for water treatment to decompose persistent organic molecules. Introduction of suitable comonomers allows tailoring the mechanical and chemical properties for special applications. Copolymers containing MMA and itaconic anhydride were chosen because of the formation of long-term stable anhydride functionalities. These anhydride functionalities are employed to attach enzymes covalently. 4-Benzoylphenyl methacrylate is used as comonomer for UV-initiated crosslinking. Terpolymers are successfully obtained by radical copolymerization in solution. The copolymers are compared to poly(ethylene-alt-maleic anhydride) [P(EMA)] often used with respect to enzyme immobilization, activity and hydrolytic stability. The hydrolysis stability of the copolymers against water is studied by ATR-FTIR spectroscopy. Thin films are prepared on glass substrates in a layer-by-layer procedure by spin-coating. The layer formation is monitored by ATR-FTIR spectroscopy. UV-crosslinking of the copolymer films is performed taking the optimal irradiation dose that avoids polymer degradation. ATR-FTIR spectroscopy verifies the coupling reaction between amino groups of the enzyme and the anhydride groups on the surface of the crosslinked polymer film. The syringaldazine (4-hydroxy-3,5-dimethoxybenzaldehyde azine) test and 2,2´-azino-bis(3-ethylbenzothiazoline-6-sulphonic acid) (ABTS) assay demonstrate that the immobilized enzymes maintain their activities. The functional copolymers showed a significant effect in reduction of persistent organic pollutants in contaminated waste water.}, language = {de} } @misc{RaabRaabBonhageetal., author = {Raab, Thomas and Raab, Alexandra and Bonhage, Alexander and Schneider, Anna and Hirsch, Florian and Birkhofer, Klaus and Drohan, Patrick J. and Wilmking, Martin and Kreyling, J{\"u}rgen and Malik, Ireneusz and Wistuba, Małgorzata and Maaten, Ernst van der and Maaten-Theunissen, Marieke van der and Urich, Tim}, title = {Do small landforms have large effects? A review on the legacies of pre-industrial charcoal burning}, series = {Geomorphology}, volume = {413}, journal = {Geomorphology}, issn = {0169-555X}, doi = {10.1016/j.geomorph.2022.108332}, pages = {16}, abstract = {Relict charcoal hearths (RCHs) are small, anthropogenic landforms resulting from past charcoal burning and reaching significant land coverage in pre-industrial mining areas. We review three coupled legacies linked by RCH development: (i) a landscape-scale geomorphic effect, (ii) a unique soil fingerprint, and (iii) an evolving novel ecosystem. The history and technique of charcoal production are described to clarify legacy effects. Applying a recently presented morpho-genetic catalogue is useful for classified mapping of RCH findings. The RCH numbers and calculated RCH densities per study region vary greatly and impose uncertainties due to insufficient methods causing over- or underestimations. Areas with high RCH densities between 50 and 500 RCH/km2 seem reasonable. Machine learning-based remote sensing techniques are promising approaches with which to better assess the full scale of charcoal burning legacies. RCH soil properties feature dark charcoal-rich technogenic substrate layers classified as Auh horizons according to the World Reference Base with significantly increased C contents. These Auh horizons can also exhibit specific physical and chemical properties, such as relatively low bulk density, high porosity, high plant available water content, low thermal conductivity and differences in cation exchange capacity or nutrient status. However, relevant studies are rare, and thus, the effects may differ by study region. Regarding vegetation, there seem to be four main effects: changes in forest structure, species composition, recruitment pattern and productivity. The number of studies on this issue is, however, also very limited. Even fewer studies have examined the soil fauna in RCHs; thus, the reported effects cannot be used to draw general conclusions. Notably, RCH research has made considerable progress in the last five years, especially in the Light Detection and Ranging-based mapping of these small landforms and identification of RCH-specific soil properties, but ecological legacies are not well understood; thus, more interdisciplinary and integrative studies are needed.}, language = {en} } @misc{HeymanProniziusLewisetal., author = {Heyman, Tom and Pronizius, Ekaterina and Lewis, Savannah C. and Acar, Oguz A. and Adamkovič, Mat{\´u}š and Ambrosini, Ettore and Antfolk, Jan and Barzykowski, Krystian and Baskin, Ernest and Batres, Carlota and Boucher, Leanne and Boudesseul, Jordane and Brandst{\"a}tter, Eduard and Collins, W. Matthew and Filipović Ðurđević, Dušica and Egan, Ciara and Era, Vanessa and Ferreira, Paulo and Fini, Chiara and Garrido-V{\´a}squez, Patricia and Godbersen, Hendrik and Gomez, Pablo and Graton, Aurelien and Gurkan, Necdet and He, Zhiran and Johnson, Dave C. and Kačm{\´a}r, Pavol and Koch, Chris and Kowal, Marta and Kratochvil, Tomas and Marelli, Marco and Marmolejo-Ramos, Fernando and Mart{\´i}nez, Mart{\´i}n and Mattiassi, Alan and Maxwell, Nicholas P. and Montefinese, Maria and Morvinski, Coby and Neta, Maital and Nielsen, Yngwie A. and Ocklenburg, Sebastian and Onič, Jaš and Papadatou-Pastou, Marietta and Parker, Adam J. and Paruzel-Czachura, Mariola and Pavlov, Yuri G. and Perea, Manuel and Pfuhl, Gerit and Roembke, Tanja C. and R{\"o}er, Jan P. and Roettger, Timo B and Ruiz-Fernandez, Susana and Schmidt, Kathleen}, title = {Crowdsourcing multiverse analyses to explore the impact of different data-processing and analysis decisions : a tutorial}, series = {Psychological methods}, journal = {Psychological methods}, publisher = {American Psychological Association (APA)}, address = {Washington, DC}, issn = {1939-1463}, doi = {10.1037/met0000770}, abstract = {When processing and analyzing empirical data, researchers regularly face choices that may appear arbitrary (e.g., how to define and handle outliers). If one chooses to exclusively focus on a particular option and conduct a single analysis, its outcome might be of limited utility. That is, one remains agnostic regarding the generalizability of the results, because plausible alternative paths remain unexplored. A multiverse analysis offers a solution to this issue by exploring the various choices pertaining to data-processing and/or model building, and examining their impact on the conclusion of a study. However, even though multiverse analyses are arguably less susceptible to biases compared to the typical single-pathway approach, it is still possible to selectively add or omit pathways. To address this issue, we outline a novel, more principled approach to conducting multiverse analyses through crowdsourcing. The approach is detailed in a step-by-step tutorial to facilitate its implementation. We also provide a worked-out illustration featuring the Semantic Priming Across Many Languages project, thereby demonstrating its feasibility and its ability to increase objectivity and transparency. (PsycInfo Database Record (c) 2026 APA, all rights reserved).}, language = {en} } @misc{WaetzoldJohstDrechsleretal., author = {W{\"a}tzold, Frank and Johst, Karin and Drechsler, Martin and Teeffelen, Astrid J.A. van and Hartig, Florian and Vos, Claire C. and Wissel, Silvia and Opdam, Paul}, title = {Biodiversity conservation in dynamic landscapes: trade-offs between number, connectivity and turnover of habitat patches}, language = {en} } @misc{WaetzoldTeeffelenOpdametal., author = {W{\"a}tzold, Frank and Teeffelen, Astrid J.A. van and Opdam, Paul and Drechsler, Martin and Hartig, Florian and Johst, Karin and Vos, Claire C. and Wissel, Silvia and Qu{\´e}tier, Fabien}, title = {Ecological and economic conditions and associated institutional challenges for conservation banking in dynamic landscapes}, series = {Landscape and Urban Planning}, volume = {Vol. 130}, journal = {Landscape and Urban Planning}, issn = {0169-2046}, doi = {10.1016/j.landurbplan.2014.06.004}, pages = {64 -- 72}, language = {en} } @misc{CosmaMartinLoozeetal., author = {Cosma, Alina and Martin, Gina and Looze, Margreet E. de and Walsh, Sophie D. and Paakkari, Leena and Bilz, Ludwig and Gobina, Inese and Page, Nicholas and Hulbert, Sabina and Inchley, Jo and Ravens-Sieberer, Ulrike and Gaspar, Tania and Stevens, Gonneke W.J.M.}, title = {Cross-national trends in adolescents psychological and somatic complaints before and after the onset of COVID-19 Pandemic}, series = {Journal of Adolescent Health}, journal = {Journal of Adolescent Health}, publisher = {Elsevier BV}, issn = {1054-139X}, doi = {10.1016/j.jadohealth.2024.09.028}, pages = {11}, abstract = {Purpose Building on research suggesting that the COVID-19 pandemic may have led to an exacerbation of deteriorating trends in mental health among adolescents, this paper examined trends in adolescents' psychological and somatic complaints across 35 countries from 2010 to 2022, and tested trends in sociodemographic inequalities in these outcomes between 2018 and 2022. Methods Using data from 792,606 adolescents from 35 countries (51\% girls; mean age = 13.5; standard deviation 1.6) across four Health Behaviour in School-aged Children surveys (2010, 2014, 2018, 2022), hierarchical multilevel models estimated cross-national trends in adolescent psychological and somatic complaints. We tested whether observed values in 2022 were in line with predicted values based on 2010-2018 linear trends. Finally, moderation effects of age, family affluence, and family structures on the outcomes were tested (2018-2022). Results Both girls and boys showed substantially higher levels of psychological complaints in 2022 compared with the predicted values. For somatic complaints, higher levels than predicted in 2022 were observed only in girls. Moderation analyses revealed an increase from 2018 to 2022 in age gaps and a narrowing in the socioeconomic gap for both outcomes. Also, there was a widening gap between adolescents living with 2 parents and those living in a single parent household in 2022 compared to 2018. Discussion Cross-national increases in adolescent psychological and somatic complaints were higher than expected in 2022, based on previous trends. Magnitudes of change varied across different sociodemographics groups, with implications for pre-existing mental health inequalities.}, language = {en} }