Automated Author ProfileBanfield, Jillian F.
University of California, Berkeley
Banfield, Jillian F.
Current S-Index
Sum of Dataset Indices for all datasets
Average Dataset Index per Dataset
Average Dataset Index per dataset
Total Datasets
Total datasets for this author
Average FAIR Score
Average FAIR Score per dataset
Total Citations
Total citations to the author's datasets
Total Mentions
Total mentions of the author's datasets
S-Index Interpretation
The S-Index (Sharing Index) is a comprehensive metric that represents the cumulative impact of all your datasets. It is calculated as the sum of Dataset Index scores across all your claimed datasets.
What it means:
- A higher S-index indicates greater overall impact of your datasets relative to typical datasets in their fields of research
- The S-Index grows as you add more datasets or as existing datasets gain more citations and mentions
- It provides a single number to track your research data impact over time
Current S-Index: 2.3 (sum of 2 datasets Dataset Index scores)
More information here.
S-Index Over Time
Cumulative Citations Over Time
Cumulative Mentions Over Time
Datasets
The origin and cellular complexity of eukaryotes represent a major enigma in biology. Current data support scenarios in which an archaeal host cell and an alphaproteobacterial (mitochondrial) endosymbiont merged together, resulting in the first eukaryotic cell. The host cell is related to Lokiarchaeota, an archaeal phylum with many eukaryotic features. The emergence of the structural complexity that characterizes eukaryotic cells remains unclear. Here we describe the ‘Asgard’ superphylum, a group of uncultivated archaea that, as well as Lokiarchaeota, includes Thor-, Odin- and Heimdallarchaeota. Asgard archaea affiliate with eukaryotes in phylogenomic analyses, and their genomes are enriched for proteins formerly considered specific to eukaryotes. Notably, thorarchaeal genomes encode several homologues of eukaryotic membrane-trafficking machinery components, including Sec23/24 and TRAPP domains. Furthermore, we identify thorarchaeal proteins with similar features to eukaryotic coat proteins involved in vesicle biogenesis. Our results expand the known repertoire of ‘eukaryote-specific’ proteins in Archaea, indicating that the archaeal host cell already contained many key components that govern eukaryotic cellular complexity.
Authors
- Zaremba-Niedzwiedzka, Katarzyna ;
- Caceres, Eva F. ;
- Saw, Jimmy H. ;
- Bäckström, Disa ;
- Juzokaite, Lina ;
- Vancaester, Emmelien ;
- Seitz, Kiley W. ;
- Anantharaman, Karthik ;
- Starnawski, Piotr ;
- Kjeldsen, Kasper U. ;
- Stott, Matthew B. ;
- Nunoura, Takuro ;
- Banfield, Jillian F. ;
- Schramm, Andreas ;
- Baker, Brett J. ;
- Spang, Anja ;
- Ettema, Thijs J. G.
Some microbial eukaryotes, such as the extremophilic red alga Galdieria sulphuraria, can live in hot, toxic metal-rich, acidic environments. To elucidate the underlying molecular mechanisms of adaptation, we sequenced the 13.7 Mb genome of G. sulphuraria. This alga shows an enormous metabolic flexibility, growing either photoautotrophically or heterotrophically on more than 50 carbon sources. Environmental adaptation seems to have been facilitated by horizontal gene transfer from various bacteria and archaea, often followed by gene family expansion. At least 5% of protein-coding genes of G. sulphuraria were probably acquired horizontally. These proteins are involved in ecologically important processes ranging from heavy metal detoxification to glycerol uptake and metabolism. Thus, our findings show that a pan-domain gene pool has facilitated environmental adaptation in this unicellular eukaryote.
Authors
- Schönknecht, Gerald ;
- Chen, Wei-Hua ;
- Ternes, Chad M. ;
- Barbier, Guillaume G. ;
- Shrestha, Roshan P. ;
- Stanke, Mario ;
- Bräutigam, Andrea ;
- Baker, Brett J. ;
- Banfield, Jillian F. ;
- Garavito, R. Michael ;
- Carr, Kevin ;
- Wilkerson, Curtis ;
- Rensing, Stefan A. ;
- Gagneul, David ;
- Dickenson, Nicholas E. ;
- Oesterhelt, Christine ;
- Lercher, Martin J. ;
- Weber, Andreas P. M.