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New fences can save restored saltmarsh

Restored saltmarshes can disappear if fences are not kept in good repair, new research reveals. A study at Rumney Great Wharf found that sedimentation fields, which use brushwood fencing to trap mud and encourage marsh plants to take root, need ongoing maintenance.

SourceUniversity of Reading·JournalJournal of Environmental Management·DateMay 27, 2026

Chinese scientists develop new model to accurately assess global salt marsh carbon sinks

A new process-based model, SAL-GPP, has been developed to accurately assess the carbon sequestration capacity of global salt marshes. The model reveals that global salt marshes have an average annual gross primary production of 66.89 Tg C yr⁻¹, with hotspots in regions like China's southeastern coast and Western Europe.

SourceInstitute of Atmospheric Physics, Chinese Academy of Sciences·JournalEnvironmental Science & Technology·DateMar 3, 2026

New England’s salt marshes store 10 million cars’ worth of carbon—and add another 15,000-worth every year

Scientists at UMass Amherst accurately quantify coastal carbon storage using satellites, revealing 10 million cars' worth of carbon stored in top meter of soil and an additional 15,000-worth each year. The results are crucial for a resilient, low-carbon future, highlighting the potential for salt marshes to mitigate climate change.

SourceUniversity of Massachusetts Amherst·JournalJournal of Geophysical Research Biogeosciences·DateFeb 13, 2025

UC Santa Cruz researchers value salt marsh restoration as a crucial tool in flood risk reduction and climate resilience in the San Francisco Bay

Researchers found that salt marsh restoration can reduce flood risk, preserve habitats, and provide recreational opportunities. The study also emphasizes the importance of integrating nature-based solutions into comprehensive climate resilience strategies to mitigate future climate change impacts.

SourceUniversity of California - Santa Cruz·JournalNature·TypeMeta-analysis·DateApr 11, 2024

Tidal landscapes a greater carbon sink than previously thought

Tidal landscapes like mangroves and salt marshes are a greater carbon sink than previously thought, with stored carbon in biomass and muddy soils contributing to climate change mitigation. The new findings also show that bicarbonate exports from these ecosystems double the size of the carbon trap, making them even more effective.

SourceUniversity of Gothenburg·JournalNature Communications·TypeExperimental study·DateFeb 1, 2024

Analysis finds diversity on the smallest scales in sulfur-cycling salt marsh microbes

Researchers analyzed DNA sequenced datasets of microbes collected from salt marsh sites to study the relationship between cordgrasses and sulfur-cycling microbes. They found diverse microbial communities with varying combinations of genes for sulfate reduction and sulfur oxidation, allowing them to thrive in salt marsh sediments.

SourceMarine Biological Laboratory·JournalApplied and Environmental Microbiology·TypeData/statistical analysis·DateOct 26, 2023

Oyster reef habitats disappear as Florida becomes more tropical

University of South Florida researchers found that mangroves have overtaken 83% of oyster reefs in Tampa Bay, leading to a decline in ecosystem function and habitat for threatened species. Climate-driven changes are altering subtropical ecosystems, threatening the very foundations of coastal biodiversity.

SourceUniversity of South Florida·JournalProceedings of the National Academy of Sciences·TypeObservational study·DateAug 30, 2022

For wetland plants, sea-level rise stamps out benefits of higher CO2

A new study published in Science Advances reveals that the environmental stress of too much water wipes out the plant growth benefits of higher CO2 levels. Rising sea levels have caused the effects of increased CO2 to disappear in a 33-year field experiment, highlighting the critical need for conservation and adaptation efforts.

SourceSmithsonian·JournalScience Advances·TypeExperimental study·DateMay 18, 2022

How a Massachusetts salt marsh is changing what we know about New England’s coast

A new research study by the University of Massachusetts Amherst fundamentally changes our understanding of how salt marshes acquire sediment. The majority of sediments are delivered by the ocean during storms, reversing commonly held assumptions about the role of rivers in building and maintaining these ecosystems. This discovery has s...

SourceUniversity of Massachusetts Amherst·JournalJournal of Geophysical Research Earth Surface·DateMar 14, 2022

Machine learning helps to locally restore wetlands for coastal protection

International researchers used machine learning to forecast marsh establishment under various environmental conditions, revealing that controllable local factors are more important than global climate change. The study suggests smart management of tidal flats can counteract threats and strengthen wetlands.

SourceRoyal Netherlands Institute for Sea Research·JournalGeophysical Research Letters·TypeData/statistical analysis·DateNov 16, 2021

Satellite images show positive impact of conservation efforts for China's coastal wetlands

Satellite images reveal a substantial increase in saltmarsh area and stable trends of tidal flat areas after 2012, driven by decreased anthropogenic activities and increased conservation and restoration efforts. Conservation efforts have positively impacted China's coastal wetlands, mitigating the loss of these important ecosystems.

SourceUniversity of Oklahoma·JournalNature Sustainability·DateOct 28, 2021

To save a species, check its ID

A new decision tree tool has been developed to differentiate the endangered salt marsh harvest mouse from its abundant look-alike, the western harvest mouse. The tool uses machine learning to analyze characteristics such as belly color and tail hair, allowing for accurate identification with high accuracy.

SourceUniversity of California - Davis·JournalCalifornia Fish and Wildlife Journal·DateJul 21, 2021

Dead roots double shoreline loss in gulf

A new Duke University-led study reveals that marsh plants killed by disturbances like the Deepwater Horizon oil spill can double shoreline erosion rates. The loss of wetland vegetation increases erosion on wave-stressed shorelines by 100%, according to researchers.

SourceDuke University·JournalCurrent Biology·DateMay 24, 2019

Normal weather drives salt marsh erosion

Researchers found that waves driven by moderate storms cause the most loss in salt marshes, not severe events like hurricanes. This knowledge brings new tools for managing and restoring wetlands, enabling predictions of erosion based on wind and wave climates.

SourceBoston University·JournalProceedings of the National Academy of Sciences·DateDec 21, 2015