Net-spinning caddisflies create denitrifier-enriched niches in the stream microbiome.
Anthony D BertagnolliAndrew J MaritanBenjamin B TumoloSamuel F FritzHayley C OaklandElizabeth J MohrGeoffrey C PooleLindsey K AlbertsonFrank J StewartPublished in: ISME communications (2023)
Larval net-spinning caddisflies (Hydropsychidae) function as ecosystem engineers in streams where they construct protective retreats composed of organic and inorganic material affixed with silk filtration nets that alter streambed hydrology. We hypothesized that hydropsychid bio-structures (retreats, nets) are microhabitats for microbes with oxygen-sensitive metabolisms, and therefore increase the metabolic heterogeneity of streambed microbial assemblages. Metagenomic and 16 S rRNA gene amplicon analysis of samples from a montane stream (Cherry Creek, Montana, USA) revealed that microbiomes of caddisfly bio-structures are taxonomically and functionally distinct from those of the immediately adjacent rock biofilm (~2 cm distant) and enriched in microbial taxa with established roles in denitrification, nitrification, and methane production. Genes for denitrification, high oxygen affinity terminal oxidases, hydrogenases, oxidative dissimilatory sulfite reductases, and complete ammonia oxidation are significantly enriched in caddisfly bio-structures. The results suggest a novel ecosystem engineering effect of caddisflies through the creation of low-oxygen, denitrifier-enriched niches in the stream microbiome. Facilitation of metabolic diversity in streambeds may be a largely unrecognized mechanism by which caddisflies alter whole-stream biogeochemistry.
Keyphrases
- microbial community
- antibiotic resistance genes
- high resolution
- climate change
- wastewater treatment
- genome wide
- single cell
- staphylococcus aureus
- pseudomonas aeruginosa
- human health
- anaerobic digestion
- lymph node
- copy number
- genome wide identification
- candida albicans
- biofilm formation
- risk assessment
- gene expression
- zika virus
- wound healing
- dna methylation
- room temperature