Ecosystem consequences of a nitrogen-fixing proto-organelle

J Jane C. Marks (Department of Biological Sciences, Northern Arizona University) M Michael C. Zampini (Department of Biological Sciences, Northern Arizona University) R Raina Fitzpatrick (Department of Biological Sciences, Northern Arizona University) S Saeed H. Kariunga (Department of Biological Sciences, Northern Arizona University) A Augustine Sitati (Department of Biological Sciences, University of Alabama) T Ty J. Samo (Physical and Life Sciences Directorate, Lawrence Livermore National Lab) P Peter K. Weber (Physical and Life Sciences Directorate, Lawrence Livermore National Lab) S Steven Thomas (Department of Biological Sciences, University of Alabama) B Bruce A. Hungate (Department of Biological Sciences, Northern Arizona University) C Christina E. Ramon (Physical and Life Sciences Directorate, Lawrence Livermore National Lab) M Michael Wulf (Department of Biological Sciences, Northern Arizona University) V Victor O. Leshyk (Center for Ecosystem Science and Society, Northern Arizona University) E Egbert Schwartz (Department of Biological Sciences, Northern Arizona University) J Jennifer Pett-Ridge (Physical and Life Sciences Directorate, Lawrence Livermore National Lab) M Mary E. Power (Department of Integrative Biology, University of California Berkeley)

Abstract

Microscale symbioses can be critical to ecosystem functions, but the mechanisms of these interactions in nature are often cryptic. Here, we use a combination of stable isotope imaging and tracing to reveal carbon (C) and nitrogen (N) exchanges among three symbiotic primary producers that fuel a salmon-bearing river food web. Bulk isotope analysis, nanoSIMS (secondary ion mass spectrometry) isotope imaging, and density centrifugation for quantitative stable isotope probing enabled quantification of organism-specific C- and N-fixation rates from the subcellular scale to the ecosystem. After winters with riverbed-scouring floods, the macroalga Cladophora glomerata uses nutrients in spring runoff to grow streamers up to 10 m long. During summer flow recession, riverine N concentrations wane and Cladophora becomes densely epiphytized by three species of Epithemia , diatoms with N-fixing endosymbionts (proto-organelles) descended from a free-living Crocosphaera cyanobacterium. Over summertime epiphyte succession on Cladophora , N-fixation rates increased as Epithemia spp. became dominant, Cladophora C-fixation declined to near zero, and Epithemia C-fixation increased. Carbon transfer to caddisflies grazing on Cladophora with high densities of Epithemia was 10-fold higher than C transfer to caddisflies grazing Cladophora with low Epithemia loads. In response to demand for N, Epithemia allocates high levels of newly fixed C to its endosymbiont. Consequently, these endosymbionts have the highest rates of C and N accumulation of any taxon in this tripartite symbiosis during the biologically productive season and can produce one of the highest areal rates of N-fixation reported in any river ecosystem.

Article Details

Volume / Issue Vol. 122, Issue 37
Published September 16, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

J

Jane C. Marks

Department of Biological Sciences, Northern Arizona University

M

Michael C. Zampini

Department of Biological Sciences, Northern Arizona University

R

Raina Fitzpatrick

Department of Biological Sciences, Northern Arizona University

S

Saeed H. Kariunga

Department of Biological Sciences, Northern Arizona University

A

Augustine Sitati

Department of Biological Sciences, University of Alabama

T

Ty J. Samo

Physical and Life Sciences Directorate, Lawrence Livermore National Lab

P

Peter K. Weber

Physical and Life Sciences Directorate, Lawrence Livermore National Lab

S

Steven Thomas

Department of Biological Sciences, University of Alabama

B

Bruce A. Hungate

Department of Biological Sciences, Northern Arizona University

C

Christina E. Ramon

Physical and Life Sciences Directorate, Lawrence Livermore National Lab

M

Michael Wulf

Department of Biological Sciences, Northern Arizona University

V

Victor O. Leshyk

Center for Ecosystem Science and Society, Northern Arizona University

E

Egbert Schwartz

Department of Biological Sciences, Northern Arizona University

J

Jennifer Pett-Ridge

Physical and Life Sciences Directorate, Lawrence Livermore National Lab

M

Mary E. Power

Department of Integrative Biology, University of California Berkeley