Javascript must be enabled to continue!
Uncovering the gene machinery of the Amazon River microbiome to degrade rainforest organic matter
View through CrossRef
ABSTRACT
The Amazon River receives, from the surrounding rainforest, huge amounts of terrestrial organic matter (TeOM), which is typically resistant to microbial degradation. However, only a small fraction of the TeOM ends up in the ocean, indicating that most of it is degraded in the river. So far, the nature of the genes involved in TeOM degradation and their spatial distributions are barely known. Here, we examined the Amazon River microbiome gene repertoire and found that it contains a substantial gene-novelty, compared to other environments (rivers and rainforest soil). We predicted ~3.7 million non-redundant genes, affiliating mostly to bacteria. The gene-functions involved in TeOM degradation revealed that lignin degradation correlated to tricarboxylates and hemicellulose processing, pointing to higher lignin degradation rates under consumption of labile compounds. We describe the biochemical machinery that could be speeding up the decomposition of recalcitrant compounds in Amazonian waters, previously reported only in incubation experiments.
Title: Uncovering the gene machinery of the Amazon River microbiome to degrade rainforest organic matter
Description:
ABSTRACT
The Amazon River receives, from the surrounding rainforest, huge amounts of terrestrial organic matter (TeOM), which is typically resistant to microbial degradation.
However, only a small fraction of the TeOM ends up in the ocean, indicating that most of it is degraded in the river.
So far, the nature of the genes involved in TeOM degradation and their spatial distributions are barely known.
Here, we examined the Amazon River microbiome gene repertoire and found that it contains a substantial gene-novelty, compared to other environments (rivers and rainforest soil).
We predicted ~3.
7 million non-redundant genes, affiliating mostly to bacteria.
The gene-functions involved in TeOM degradation revealed that lignin degradation correlated to tricarboxylates and hemicellulose processing, pointing to higher lignin degradation rates under consumption of labile compounds.
We describe the biochemical machinery that could be speeding up the decomposition of recalcitrant compounds in Amazonian waters, previously reported only in incubation experiments.
Related Results
Uncovering the gene machinery of the Amazon River microbiome to degrade rainforest organic matter
Uncovering the gene machinery of the Amazon River microbiome to degrade rainforest organic matter
Abstract
Background: The Amazon River is one of the largest in the world and receives huge amounts of terrestrial organic matter (TeOM) from the surrounding rainforest. Des...
Flodfund - Bronzealderdeponeringer fra Gudenåen
Flodfund - Bronzealderdeponeringer fra Gudenåen
River findsBronze Age metalwork from the river GudenåBronze Age metalwork (primarily swords and other weapons) found in European rivers has aroused interest for many years, but lit...
The impact of forest logging and fragmentation on the species richness and density of Malagasy rainforest carnivores
The impact of forest logging and fragmentation on the species richness and density of Malagasy rainforest carnivores
AbstractDespite significant efforts to understand and conserve Madagascar’s unique biodiversity, relatively little is known about the island’s carnivore populations. We sampled fou...
Structure and Fractal Characteristics of Organic Matter Pores in Wufeng–Lower Longmaxi Formations in Southern Sichuan Basin, China
Structure and Fractal Characteristics of Organic Matter Pores in Wufeng–Lower Longmaxi Formations in Southern Sichuan Basin, China
Organic matter pores constitute a significant storage space in shale gas reservoirs, contributing to approximately 50% of the total porosity. This study employed a comprehensive ap...
Amazon Rainforest Wildfires: Causes and Impact on Mammalian and Avian Diversity
Amazon Rainforest Wildfires: Causes and Impact on Mammalian and Avian Diversity
Amazon rainforest is having huge role in the regulation of the environment as it provides massive amount of oxygen to the Earth and is one of the most important carbon sinks. World...
Linking microbial genomes with their potential to degrade terrestrial organic matter in the Amazon River
Linking microbial genomes with their potential to degrade terrestrial organic matter in the Amazon River
Abstract
Rivers connect the carbon cycle in land with that in aquatic ecosystems by transporting and transforming terrestrial organic matter (TeOM). The Amazon River receiv...
GEOMORPHIC BOUNDARIES WITHIN RIVER NETWORKS
GEOMORPHIC BOUNDARIES WITHIN RIVER NETWORKS
Author contributions: MWS and MCT contributed equally to all aspects of
this research and manuscript preparation. Key Points 1. The physical
character of different functional proce...
Degradation of terrestrial organic matter by aquatic microbial genomes in the Amazon River
Degradation of terrestrial organic matter by aquatic microbial genomes in the Amazon River
Abstract
Rivers connect the carbon cycle in land with that in aquatic ecosystems by transporting and transforming terrestrial organic matter (TeOM). The Amazon River receiv...

