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Ecology · 2022 · Vol. 103 · Issue 3 · Wiley
Alfonso Allen‐Perkins; Ainhoa Magrach; Matteo Dainese; Lucas A. Garibaldi; David Kleijn; Romina Rader; James R. Reilly; Rachael Winfree; Ola Lundin; Carley M. McGrady; Claire Brittain; David J. Biddinger; Derek R. Artz; Elizabeth Elle; George Hoffman; James D. Ellis; Jaret Daniels; Jason Gibbs; Joshua W. Campbell; Julia Brokaw; Julianna K. Wilson; Keith Mason; Kimiora L. Ward; Knute B. Gundersen; Kyle Bobiwash; Larry Gut; Logan M. Rowe; Natalie K. Boyle; Neal M. Williams; Neelendra K. Joshi; Nikki Rothwell; Robert L. Gillespie; Rufus Isaacs; Shelby J. Fleischer; Stephen S. Peterson; Sujaya Rao; Theresa L. Pitts‐Singer; Thijs Fijen; Virginie Boreux; Maj Rundlöf; Blandina Felipe Viana; Alexandra‐Maria Klein; Henrik G. Smith; Riccardo Bommarco; Luísa G. Carvalheiro; Taylor H. Ricketts; Jaboury Ghazoul; Smitha Krishnan; Faye E. Benjamin; João Loureiro; Sílvia Castro; Nigel E. Raine; Gerard Arjen de Groot; Finbarr G. Horgan; Juliana Hipólito; Guy Smagghe; Ivan Meeus; Maxime Eeraerts; Simon G. Potts; Claire Kremen; Daniel García; Marcos Miñarro; David W. Crowder; Gideon Pisanty; Yael Mandelik; Nicolas J. Vereecken; Nicolas Leclercq; Timothy Weekers; Sandra A. M. Lindstrom; Dara A. Stanley; Carlos Zaragoza‐Trello; Charlie C. Nicholson; Jeroen Scheper; Carlos Rad; Evan A. N. Marks; Lucie Mota; Bryan Danforth; Mia Park; Antônio Diego M. Bezerra; Breno M. Freitas; Rachel E. Mallinger; Fabiana Oliveira da Silva; Bryony Willcox; Davi L. Ramos; Felipe D. da Silva e Silva; Amparo Lázaro; David Alomar; Miguel A. González‐Estévez; Hisatomo Taki; Daniel P. Cariveau; Michael P. D. Garratt; Diego N. Nabaes Jodar; Rebecca I. A. Stewart; Daniel Ariza; Matti Pisman; Elinor M. Lichtenberg; Christof Schüepp; Felix Herzog; Martin H. Entling; Yoko L. Dupont; Charles D. Michener; Gretchen C. Daily; Paul R. Ehrlich; Katherine L. W. Burns; Montserrat Vilà; Andrew Robson; Brad Howlett; Leah Blechschmidt; Frank Jauker; Franziska Schwarzbach; Maike Nesper; Tim Diekötter; Volkmar Wolters; Helena Castro; Hugo Gaspar; Brian A. Nault; Isabelle Badenhausser; Jessica D. Petersen; Teja Tscharntke; Vincent Bretagnolle; D. Susan Willis Chan; Natacha Chacoff; Georg K. S. Andersson; Shalene Jha; Jonathan F. Colville; Ruan Veldtman; Jeferson Coutinho; Felix J. J. A. Bianchi; Louis Sutter; Matthias Albrecht; Philippe Jeanneret; Yi Zou; Anne L. Averill; Agustin Saez; Amber R. Sciligo; Carlos H. Vergara; Elias H. Bloom; Elisabeth Oeller; Ernesto I. Badano; Gregory M. Loeb; Heather Grab; Johan Ekroos; Vesna Gagic; Saul A. Cunningham; Jens Åström; Pablo Cavigliasso; Alejandro Trillo; Alice Classen; Alice L. Mauchline; Ana Montero‐Castaño; Andrew Wilby; Ben A. Woodcock; C. Sheena Sidhu; Ingolf Steffan‐Dewenter; Ioannis N. Vogiatzakis; José M. Herrera; Mark Otieno; Mary W. Gikungu; Sarah J. Cusser; Thomas Nauss; Lovisa Nilsson; Jessica Knapp; Jorge J. Ortega‐Marcos; José A. González; Juliet L. Osborne; Rosalind Blanche; Rosalind F. Shaw; Violeta Hevia; Jane Stout; Anthony D. Arthur; Betina Blochtein; Hajnalka Szentgyorgyi; Jin Li; Margaret M. Mayfield; Michał Woyciechowski; Patrícia Nunes‐Silva; Rosana Halinski de Oliveira; Steve Henry; Benno I. Simmons; Bo Dalsgaard; Katrine Hansen; Tuanjit Sritongchuay; Alison D. O'Reilly; Fermín José Chamorro García; Guiomar Nates Parra; Camila Magalhães Pigozo; Ignasi Bartomeus
Seventy five percent of the world's food crops benefit from insect pollination. Hence, there has been increased interest in how global change drivers impact this critical ecosystem service. Because standardized data on crop pollination are rarely available, we are limited in our capacity to understand the variation in pollination benefits to crop yield, as well as to anticipate changes in this service, develop predictions, and...
Zoologica Scripta · 2019 · Vol. 48 · Issue 2 · Wiley
The biogeography of colletid bees as a whole can be explained by several South American‐Australian trans‐Antarctic interchanges. Within Colletidae, neopasiphaeine bees form a large group that has not been adequately studied, even though they are interesting both from the biogeographical viewpoint for fitting well the austral Gondwanan track and for their associations to host plants. The present paper integrates phylogenetic, b...
Environmental Microbiology · 2019 · Vol. 21 · Issue 3 · Wiley
Summary In recent decades, we have realized that honey bee viruses are not, in fact, exclusive to honey bees. The potential impact of Apis ‐affiliated viruses on native pollinators is prompting concern. Our research addresses the issue of virus crossover between honey bees and native bees foraging in the same localities. We measured the presence of black queen cell virus (BQCV), deformed wing virus (DWV) and sacbrood virus (SB...
Global Change Biology · 2017 · Vol. 23 · Issue 11 · Wiley
Agricultural intensification is a leading cause of global biodiversity loss, which can reduce the provisioning of ecosystem services in managed ecosystems. Organic farming and plant diversification are farm management schemes that may mitigate potential ecological harm by increasing species richness and boosting related ecosystem services to agroecosystems. What remains unclear is the extent to which farm management schemes af...
Molecular Ecology · 2014 · Vol. 23 · Issue 7 · Wiley
Understanding the impact of past climatic events on the demographic history of extant species is critical for predicting species' responses to future climate change. Palaeoclimatic instability is a major mechanism of lineage diversification in taxa with low dispersal and small geographical ranges in tropical ecosystems. However, the impact of these climatic events remains questionable for the diversification of species with hi...
Ecology Letters · 2013 · Vol. 16 · Issue 11 · Wiley
Climate change has the potential to alter the phenological synchrony between interacting mutualists, such as plants and their pollinators. However, high levels of biodiversity might buffer the negative effects of species‐specific phenological shifts and maintain synchrony at the community level, as predicted by the biodiversity insurance hypothesis. Here, we explore how biodiversity might enhance and stabilise phenological syn...
Ecology Letters · 2013 · Vol. 16 · Issue 5 · Wiley
Bees provide essential pollination services that are potentially affected both by local farm management and the surrounding landscape. To better understand these different factors, we modelled the relative effects of landscape composition (nesting and floral resources within foraging distances), landscape configuration (patch shape, interpatch connectivity and habitat aggregation) and farm management (organic vs. conventional...
Zoologica Scripta · 2012 · Vol. 41 · Issue 5 · Wiley
Debevec, AH., Cardinal, S & Danforth, BN. Identifying the sister group to the bees: a molecular phylogeny of Aculeata with an emphasis on the superfamily Apoidea. — Zoologica Scripta , 41 , 527–535. The hymenopteran superfamily Apoidea includes the bees (Anthophila) as well as four predatory wasp families (Heterogynaidae, Ampulicidae, Sphecidae and Crabronidae) collectively referred to as the “sphecoid” or “apoid” wasps. The m...
Journal of Biogeography · 2012 · Vol. 39 · Issue 3 · Wiley
Aim The evolutionary history of bees is presumed to extend back in time to the Early Cretaceous. Among all major clades of bees, Colletidae has been a prime example of an ancient group whose Gondwanan origin probably precedes the complete break‐up of Africa, Antarctica, Australia and South America, because modern lineages of this family occur primarily in southern continents. In this paper, we aim to study the temporal and spa...