Thursday, October 8, 2026
Science
No Result
View All Result
  • Login
  • HOME
  • SCIENCE NEWS
  • CONTACT US
  • HOME
  • SCIENCE NEWS
  • CONTACT US
No Result
View All Result
Scienmag
No Result
View All Result
Home Science News Agriculture

Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition

October 8, 2026
in Agriculture
Gavin Prescott
By Gavin Prescott Scienmag Editorial Profile - Ecology and Ecosystem Dynamics
Reading Time: 5 mins read
0
Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition

Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition

65
SHARES
587
VIEWS
Share on FacebookShare on Twitter
ADVERTISEMENT

Deep in the Dahurian larch forests of northeastern China, one of the planet’s most nitrogen-starved ecosystems is quietly reorganizing the way it handles a growing flood of human-made nitrogen. A new field experiment, published in Plant and Soil, has tracked exactly where ammonium and nitrate—the two dominant forms of nitrogen arriving from the atmosphere—end up inside a mature boreal forest. The findings reveal that years of chronic nitrogen addition do not simply make trees absorb more nitrogen. Instead, they fundamentally reshape which chemical form trees prefer, how quickly that nitrogen moves through roots and stems, and where it ultimately settles within the plant–soil system.

The research team, led by Enyue Zou and Miao Wang of Northeast Forestry University together with colleagues from Qufu Normal University and the Institute of Applied Ecology of the Chinese Academy of Sciences, worked in a boreal forest dominated by Larix gmelinii, the Dahurian larch. The site sits at the heart of one of Earth’s largest continuous boreal belts, a biome where cold temperatures slow decomposition and keep nitrogen locked away in soil organic matter. Because plant growth in these forests is typically constrained by nitrogen availability, scientists have long assumed that any extra nitrogen arriving from the atmosphere would be snapped up eagerly by trees and soil microbes alike. The new study shows the reality is far more nuanced.

To follow the nitrogen, the researchers used one of the most powerful tools in ecosystem science: isotopic labeling. They applied paired tracers of nitrogen-15, a rare heavy isotope of nitrogen, in the form of both 15NH4+ and 15NO3−. Because the isotope behaves chemically like ordinary nitrogen but can be detected with a mass spectrometer, every atom of labeled nitrogen that enters a leaf, a fine root, or a soil aggregate leaves a measurable fingerprint. The team established four long-term treatments—a control plus low, medium, and high nitrogen addition—and then traced the labeled nitrogen through five distinct pools: leaves, branches, fine roots, coarse roots, and soil.

The first surprise came at the very start of the tracer’s journey. Ammonium-derived nitrogen entered fine roots more rapidly in the early stages, producing a higher short-term uptake rate than its nitrate counterpart. This makes physiological sense: ammonium is already in a reduced form and can be assimilated directly into amino acids inside the root, whereas nitrate must first be reduced by the enzymes nitrate reductase and nitrite reductase before it can be used—a process that costs energy and takes time. Conifers, in particular, have historically been described as ammonium specialists, and the early uptake pattern in these larch trees fits that classical picture.

But the story changed dramatically as time passed. Nitrate-derived nitrogen proved to be the long-distance traveler of the pair. During the middle and later stages of the experiment, especially under medium and high nitrogen addition, nitrate-derived nitrogen was transported more readily to the leaves and branches above ground. This suggests that once nitrate is taken up, it moves through the xylem stream with relative ease, delivering nitrogen to the canopy where it fuels photosynthesis. In other words, the two forms of deposited nitrogen follow fundamentally different routes through the tree: ammonium is captured quickly and processed locally in the roots, while nitrate behaves more like a mobile courier service running from soil to crown.

Perhaps the most consequential finding concerns what long-term nitrogen addition did not do. Contrary to the expectation that chronic fertilization would continuously boost the fine roots’ appetite for nitrogen, the study found no sustained enhancement of fine-root uptake of the labeled tracer. What changed instead was the plumbing. Nitrogen addition promoted the transfer of labeled nitrogen from fine roots—the short-lived, high-turnover organs that do most of the absorbing—into coarse roots and then into aboveground organs. Under elevated nitrogen deposition, the forest essentially rerouted its internal nitrogen traffic, pushing a larger share of newly acquired nitrogen upward through the woody transport network rather than letting it linger below ground.

The soil, meanwhile, played the role of a temporary vault. Immediately after both nitrogen forms were applied, the soil was the major short-term sink, holding the bulk of the labeled nitrogen through microbial immobilization, exchange with mineral surfaces, and physical fixation. This initial retention is critical for the global carbon cycle, because nitrogen retained in soils can influence how much carbon forests store; previous work, including a 2022 analysis in Nature Communications, has linked the retention of deposited ammonium and nitrate to the strength of the forest carbon sink. But the vault does not hold forever. Over the course of the study, accumulation and recovery of the labeled nitrogen in plant pools steadily increased while soil recovery declined—a clear signature of substantial redistribution of deposited nitrogen from the soil into the living biomass.

This shifting balance carries implications that ripple far beyond a single larch stand. Global nitrogen deposition has risen sharply over the past century, particularly across Asia, and models of future forest carbon sequestration depend heavily on assumptions about where deposited nitrogen goes. If soils initially lock up most incoming nitrogen but gradually release it to trees, then the timescale of observation matters enormously: a snapshot taken weeks after deposition tells a very different story than one taken months or years later. The study’s multi-pool, multi-stage design captures exactly this temporal evolution, which is why its authors argue that long-term deposition reshapes not just how much nitrogen trees use, but the relative use of different nitrogen forms and the long-term fate of exogenous nitrogen across the whole plant–soil system.

The work also speaks to a long-running debate in forest ecology. Classic experiments in the 1990s suggested that conifer roots discriminate strongly against nitrate, implying that boreal and temperate conifers rely almost exclusively on ammonium. More recent studies, including work showing that mature conifers can assimilate nitrate as efficiently as ammonium in several plantation settings, have chipped away at that dogma. The new larch data land squarely in the revisionist camp: nitrate is not merely tolerated by these trees, it is preferentially exported to the canopy over time, particularly when nitrogen supply is elevated. The physiological machinery for nitrate uptake, transport, and signaling appears fully operational in this boreal species, and chronic deposition may even upregulate it.

For a warming world, the timing could not be more relevant. Boreal forests store an enormous fraction of terrestrial carbon, and their response to nitrogen deposition is woven into every major Earth system model. By demonstrating that deposited ammonium and nitrate follow distinct pathways—rapid root capture for ammonium, delayed canopy delivery for nitrate—and that years of enrichment reroute nitrogen from soil sinks into wood and leaves, the study provides the kind of mechanistic detail that modelers need to predict how much anthropogenic nitrogen will actually boost carbon sequestration, and how much will simply cycle through soils and back into the atmosphere. The larch forests of northeastern China, it turns out, are not passive sponges for pollution. They are active accountants, balancing a ledger of two very different currencies and deciding, season by season, where every atom should go.

Subject of Research: Fate of ammonium- and nitrate-derived nitrogen in a nitrogen-enriched boreal forest traced with 15N labeling

Article Title: Long-term nitrogen addition alters the uptake, transport, and fate of ammonium- and nitrate-derived nitrogen in a boreal forest

Article References: Zou, E., Wang, M., Liu, G., Huang, B., Yin, L., Liang, C., Xing, Y., Wang, X., & Wang, Q. (2026). Long-term nitrogen addition alters the uptake, transport, and fate of ammonium- and nitrate-derived nitrogen in a boreal forest. Plant and Soil. https://doi.org/10.1007/s11104-026-09077-3

Image Credits: AI Generated

DOI: 10.1007/s11104-026-09077-3

Keywords: nitrogen deposition, boreal forest, Larix gmelinii, 15N tracer, ammonium, nitrate, fine roots, nitrogen uptake, plant-soil system, carbon sequestration, forest ecology, soil nitrogen

Cite Scienmag News

Gavin Prescott. (October 8, 2026). Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition. Scienmag. https://scienmag.com/boreal-forests-rewrite-the-rules-of-nitrogen-uptake-under-long-term-deposition/

Gavin Prescott. "Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition." Scienmag, 8 October 2026, https://scienmag.com/boreal-forests-rewrite-the-rules-of-nitrogen-uptake-under-long-term-deposition/. Accessed 8 October 2026.

Gavin Prescott. "Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition." Scienmag. October 8, 2026. https://scienmag.com/boreal-forests-rewrite-the-rules-of-nitrogen-uptake-under-long-term-deposition/

Tags: 15N tracerammoniumammonium and nitrate soil dynamicsboreal forestboreal forest ecosystem restructuringBoreal forest nitrogen cyclingcarbon sequestrationeffects of chronic nitrogen additionfine rootsforest ecologyimpact of human-made nitrogen on ecosystemsLarix gmeliniilong-term nitrogen deposition effectsnitratenitrogen depositionnitrogen form preference shiftnitrogen limitation in cold biomesnitrogen movement within plant systemsnitrogen preference in treesnitrogen uptakenitrogen uptake in forestsplant-soil systemsoil nitrogensoil organic matter nitrogen storage
Share26Tweet16
Previous Post

Thermal Fingerprints: How DSC and TGA Are Exposing Food Fraud

Next Post

When a Patient Asks ‘Am I Keeping You From Something Important?’, Medicine Has a Design Problem

Related Posts

GIS Mapping Reveals Where Bananas Thrive in Assam’s Goalpara District
Agriculture

GIS Mapping Reveals Where Bananas Thrive in Assam’s Goalpara District

October 8, 2026
Tiny Signaling Peptides: Rice DEVIL Genes Reveal Hidden Breeding Potential
Agriculture

Tiny Signaling Peptides: Rice DEVIL Genes Reveal Hidden Breeding Potential

October 8, 2026
Liming Boosts Millet Yields and Cuts Greenhouse Gas Emissions on Kenya’s Acid Soils
Agriculture

Liming Boosts Millet Yields and Cuts Greenhouse Gas Emissions on Kenya’s Acid Soils

October 8, 2026
Eggshell Waste Strengthens Sand but Weakens Clay, Study Finds
Agriculture

Eggshell Waste Strengthens Sand but Weakens Clay, Study Finds

October 7, 2026
Stag Beetle Honey Trap Offers New Window on Forest Health
Agriculture

Stag Beetle Honey Trap Offers New Window on Forest Health

October 7, 2026
Hidden Microbial Partners May Drive Selenium Superpowers in Chinese Plant
Agriculture

Hidden Microbial Partners May Drive Selenium Superpowers in Chinese Plant

October 7, 2026
Next Post
When a Patient Asks ‘Am I Keeping You From Something Important?’, Medicine Has a Design Problem

When a Patient Asks 'Am I Keeping You From Something Important?', Medicine Has a Design Problem

  • Mothers who receive childcare support from maternal grandparents show more optimized

    Mothers who receive childcare support from maternal grandparents show more parental warmth, finds NTU Singapore study

    27656 shares
    Share 11059 Tweet 6912
  • University of Seville Breaks 120-Year-Old Mystery, Revises a Key Einstein Concept

    1061 shares
    Share 424 Tweet 265
  • Bee body mass, pathogens and local climate influence heat tolerance

    682 shares
    Share 273 Tweet 171
  • Researchers record first-ever images and data of a shark experiencing a boat strike

    546 shares
    Share 218 Tweet 137
  • Groundbreaking Clinical Trial Reveals Lubiprostone Enhances Kidney Function

    531 shares
    Share 212 Tweet 133
Science

Embark on a thrilling journey of discovery with Scienmag.com—your ultimate source for cutting-edge breakthroughs. Immerse yourself in a world where curiosity knows no limits and tomorrow’s possibilities become today’s reality!

RECENT NEWS

  • What Women Veterans Care About Most When Starting Sleep Apnea Treatment
  • When a Patient Asks ‘Am I Keeping You From Something Important?’, Medicine Has a Design Problem
  • Boreal Forests Rewrite the Rules of Nitrogen Uptake Under Long-Term Deposition
  • Thermal Fingerprints: How DSC and TGA Are Exposing Food Fraud

Categories

  • Agriculture
  • Anthropology
  • Archaeology
  • Athmospheric
  • Biology
  • Biotechnology
  • Blog
  • Bussines
  • Cancer
  • Chemistry
  • Climate
  • Earth Science
  • Editorial Policy
  • Marine
  • Mathematics
  • Medicine
  • Pediatry
  • Policy
  • Psychology & Psychiatry
  • Science Education
  • Social Science
  • Space
  • Technology and Engineering

Subscribe to Blog via Email

Enter your email address to subscribe to this blog and receive notifications of new posts by email.

Join 5,150 other subscribers

© 2025 Scienmag - Science Magazine

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In
No Result
View All Result
  • HOME
  • SCIENCE NEWS
  • CONTACT US

© 2025 Scienmag - Science Magazine

Discover more from Science

Subscribe now to keep reading and get access to the full archive.

Continue reading