Zobrazeno 1 - 10
of 16
pro vyhledávání: '"Max Emil Schön"'
Autor:
Eric W. Getz, V. Celeste Lanclos, Conner Y. Kojima, Chuankai Cheng, Michael W. Henson, Max Emil Schön, Thijs J. G. Ettema, Brant C. Faircloth, J. Cameron Thrash
Publikováno v:
mSystems, Vol 8, Iss 3 (2023)
ABSTRACT Bacterioplankton of the SAR11 clade are the most abundant marine microorganisms and consist of numerous subclades spanning order-level divergence (Pelagibacterales). The assignment of the earliest diverging subclade V (a.k.a. HIMB59) to the
Externí odkaz:
https://doaj.org/article/2187e11a17a1498db470b521e566a768
Publikováno v:
PLoS ONE, Vol 18, Iss 8, p e0290398 (2023)
Native Andean-Patagonian Nothofagus forests harbour a unique diversity of microorganisms with diverse ecological roles. Although ectomycorrhizal associations constitute an important fragment of the biota associated with these forests, the factors aff
Externí odkaz:
https://doaj.org/article/4017e3df235743878b8c52db8ed57210
Publikováno v:
PeerJ, Vol 10, p e14047 (2022)
Bistorta vivipara is a widespread herbaceous perennial plant with a discontinuous pattern of distribution in arctic, alpine, subalpine and boreal habitats across the northern Hemisphere. Studies of the fungi associated with the roots of B. vivipara h
Externí odkaz:
https://doaj.org/article/25dfb7b7051744ccba426dc64cb8f5fa
Publikováno v:
PeerJ, Vol 8, p e9732 (2020)
Understanding the impacts of agricultural practices on belowground fungal communities is crucial in order to preserve biological diversity in agricultural soils and enhance their role in agroecosystem functioning. Although fungal communities are wide
Externí odkaz:
https://doaj.org/article/c6343c61f73a4ba8aae1c14d040276b5
Autor:
Thijs Ettema, Matthias Horn, Max Emil Schön, Jennah Dharamshi, Stephan Köstlbacher, Astrid Collingro
Publikováno v:
Nature Microbiology, 8(1), 40-54
Nature Microbiology 8 (2023) 1
Nature Microbiology 8 (2023) 1
Chlamydiae is a bacterial phylum composed of obligate animal and protist endosymbionts. However, other members of the Planctomycetes–Verrucomicrobia–Chlamydiae superphylum are primarily free living. How Chlamydiae transitioned to an endosymbiotic
Publikováno v:
PeerJ. 10
Bistorta vivipara is a widespread herbaceous perennial plant with a discontinuous pattern of distribution in arctic, alpine, subalpine and boreal habitats across the northern Hemisphere. Studies of the fungi associated with the roots of B. vivipara h
The evolution of obligate host-association of bacterial symbionts and pathogens remains poorly understood. The Rickettsiales represent an order of obligate alphaproteobacterial endosymbionts and parasites that infect a wide variety of eukaryotic host
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_________::a76d9b7629d7a749c182f703b130eb24
https://doi.org/10.1101/2021.08.31.458344
https://doi.org/10.1101/2021.08.31.458344
Autor:
Marcin Piatek, Roger G. Shivas, Max Emil Schön, Kai Riess, Sigisfredo Garnica, Matthias Lutz, Rebekka Ziegler
Publikováno v:
Organisms Diversity & Evolution. 19:13-30
Fungi belonging to the Entorrhizales (Entorrhizomycota) comprise biotrophic pathogens associated with roots of the Cyperaceae and Juncaceae plant species. They are nearly globally distributed but rarely studied due to a hidden lifestyle without causi
Autor:
Patrick J. Keeling, Jarone Pinhassi, Fabien Burki, Jeremy G. Wideman, Thijs J. G. Ettema, Max Emil Schön, Rohan Singh, Susanne Wilken, Camille Poirier, Varsha Mathur, Jürgen F. H. Strassert, Alexandra Z. Worden, Vasily V. Zlatogursky
Publikováno v:
Nature Communications, 12:6651. Nature Publishing Group
Nature Communications
Nature Communications 12 (2021)
Nature Communications, Vol 12, Iss 1, Pp 1-10 (2021)
Nature Communications, 12
Nature Communications
Nature Communications 12 (2021)
Nature Communications, Vol 12, Iss 1, Pp 1-10 (2021)
Nature Communications, 12
The endosymbiotic origin of plastids from cyanobacteria gave eukaryotes photosynthetic capabilities and launched the diversification of countless forms of algae. These primary plastids are found in members of the eukaryotic supergroup Archaeplastida.
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::25ae82c3f9b6a036f00789f4b79f2d71
http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-189959
http://urn.kb.se/resolve?urn=urn:nbn:se:umu:diva-189959
Autor:
Anders E. Lind, Julian Vosseberg, Max Emil Schön, Thijs J. G. Ettema, Tom A. Williams, Joran Martijn, Anja Spang
Publikováno v:
Nature Communications
Nature Communications 11 (2020) 1
Martijn, J, Schoen, M, Lind, A, Vosseberg, J, Williams, T, Spang, A & Ettema, T J G 2020, ' Hikarchaeia demonstrate an intermediate stage in the methanogen-to-halophile transition ', Nature Communications, vol. 11, 5490 (2020) . https://doi.org/10.1038/s41467-020-19200-2
Nature Communications, Vol 11, Iss 1, Pp 1-14 (2020)
Nature Communications, 11, 1. Nature Publishing Group
Nature Communications, 11(1)
Nature Communications 11 (2020) 1
Martijn, J, Schoen, M, Lind, A, Vosseberg, J, Williams, T, Spang, A & Ettema, T J G 2020, ' Hikarchaeia demonstrate an intermediate stage in the methanogen-to-halophile transition ', Nature Communications, vol. 11, 5490 (2020) . https://doi.org/10.1038/s41467-020-19200-2
Nature Communications, Vol 11, Iss 1, Pp 1-14 (2020)
Nature Communications, 11, 1. Nature Publishing Group
Nature Communications, 11(1)
Halobacteria (henceforth: Haloarchaea) are predominantly aerobic halophiles that are thought to have evolved from anaerobic methanogens. This remarkable transformation most likely involved an extensive influx of bacterial genes. Whether it entailed a