Plant diversity in the Arctic and at high altitudes strongly depends on and rebounds to climatic and environmental variability and is nowadays tremendously impacted by recent climate warming. Therefore, past changes in plant diversity in the high Arctic and high-altitude regions are used to infer climatic and environmental changes through time and allow future predictions. Sedimentary DNA (sedDNA) is an established proxy for the detection of local plant diversity in lake sediments, but still relationships between environmental conditions and preservation of the plant sedDNA proxy are far from being fully understood. Studying modern relationships between environmental conditions and plant sedDNA will improve our understanding under which con...
Plants adapted to extreme conditions can be at high risk from climate change; arctic-alpine plants, ...
Metabarcoding of lake sediments have been shown to reveal current and past biodiversity, but little ...
Sedimentary ancient DNA is becoming more widely used in paleoeocology, as methods for sampling of se...
Plant diversity in the Arctic and at high altitudes strongly depends on and rebounds to climatic and...
Arctic and alpine aquatic ecosystems are changing rapidly under recent global warming, threatening w...
Reliable information on past and present vegetation is important to project future changes, especial...
Tundra plant communities in the northern high latitudes are expected to undergo large distributional...
Ice-rich permafrost deposits store large quantities of plant organic matter and are highly sensitive...
High Arctic environments are particularly sensitive to climate changes, but retrieval of paleoecolog...
A 24,000-year record of plant community dynamics, based on pollen and ancient DNA from the sediments...
Current climatic changes, mostly triggered by global warming, influence broad parts of the northern ...
Although sedimentary ancient DNA (sedaDNA) has been increasingly used to study paleoecological dynam...
Through high throughput sequencing of ancient, environmental DNA collected from lake sediment cores ...
Disentangling the effects of glaciers and climate on vegetation is complicated by the confounding ro...
Here, we provide the raw plant DNA metabarcoding data archived in three Siberian lake sediment cores...
Plants adapted to extreme conditions can be at high risk from climate change; arctic-alpine plants, ...
Metabarcoding of lake sediments have been shown to reveal current and past biodiversity, but little ...
Sedimentary ancient DNA is becoming more widely used in paleoeocology, as methods for sampling of se...
Plant diversity in the Arctic and at high altitudes strongly depends on and rebounds to climatic and...
Arctic and alpine aquatic ecosystems are changing rapidly under recent global warming, threatening w...
Reliable information on past and present vegetation is important to project future changes, especial...
Tundra plant communities in the northern high latitudes are expected to undergo large distributional...
Ice-rich permafrost deposits store large quantities of plant organic matter and are highly sensitive...
High Arctic environments are particularly sensitive to climate changes, but retrieval of paleoecolog...
A 24,000-year record of plant community dynamics, based on pollen and ancient DNA from the sediments...
Current climatic changes, mostly triggered by global warming, influence broad parts of the northern ...
Although sedimentary ancient DNA (sedaDNA) has been increasingly used to study paleoecological dynam...
Through high throughput sequencing of ancient, environmental DNA collected from lake sediment cores ...
Disentangling the effects of glaciers and climate on vegetation is complicated by the confounding ro...
Here, we provide the raw plant DNA metabarcoding data archived in three Siberian lake sediment cores...
Plants adapted to extreme conditions can be at high risk from climate change; arctic-alpine plants, ...
Metabarcoding of lake sediments have been shown to reveal current and past biodiversity, but little ...
Sedimentary ancient DNA is becoming more widely used in paleoeocology, as methods for sampling of se...