Thursday, February 9, 2023
SCIENMAG: Latest Science and Health News
No Result
View All Result
  • Login
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US
No Result
View All Result
Scienmag - Latest science news from science magazine
No Result
View All Result
Home SCIENCE NEWS Technology and Engineering

Seasonal variations of methane (CH4) consuming and methane producing microbial communities contribute to CH4 emissions in wetlands

May 13, 2022
in Technology and Engineering
0
Share on FacebookShare on Twitter

Wetland ecosystems are the most important and prolific natural methane (CH4) sources. CH4 is constantly flowing in and out of these regions (flux), and that flow periodically fluctuates. Methanogens (methane producers) and methanotrophs (methane consumers) are microorganisms that influence CH4 fluxes in wetlands. However, the mutual, or symbiotic relationship between methanogens and methanotrophs remains unclear. Biologists and atmospheric scientists see a critical opportunity to explore methanogen and methanotroph population co-occurrence patterns and their influences on natural CH4 fluxes.

Dajiuhu subalpine peatland

Credit: Jiwen Ge’s team)

Wetland ecosystems are the most important and prolific natural methane (CH4) sources. CH4 is constantly flowing in and out of these regions (flux), and that flow periodically fluctuates. Methanogens (methane producers) and methanotrophs (methane consumers) are microorganisms that influence CH4 fluxes in wetlands. However, the mutual, or symbiotic relationship between methanogens and methanotrophs remains unclear. Biologists and atmospheric scientists see a critical opportunity to explore methanogen and methanotroph population co-occurrence patterns and their influences on natural CH4 fluxes.

Prof. Jiwen GE and his team members representing the Laboratory of Basin Hydrology and Wetland Eco-Restoration, the Wuhan/Hubei Key Laboratory of Wetland Evolution and Ecological Restoration, and the Wuhan/Institution of Ecology and Environmental Sciences, of the China University of Geosciences, Wuhan, studied the variables that influence seasonal variations between methanogenic and methanotrophic community influence on wetland CH4 emissions. Through biological (phylogenetic) network analysis, they identified a keystone species that plays a pivotal role in mediating CH4 fluxes. Their full study is now available in Advances in Atmospheric Sciences.

The team adapted an eddy covariance (EC) system used to study microclimatological gas exchange to analyze seasonal methane flux data. EC systems are capable of long-term (years or even decades) CH4 flux measurements without disturbing the surrounding environment. Then, they identified the keystone CH4 mediating microorganism species using phylogenetic molecular ecological networks (pMENs) analysis, which biologists typically use to determine a group of organisms’ evolutionary development and their features.

The researchers combined the methanogenic and methanotrophic pMENs to analyze how the functions of methanogenic and methanotrophic communities behave differently season-to-season. Along with pMENs, they used correlation analysis methods to demonstrate the interrelationships among several environmental factors, including methane metabolic microbials and CH4 fluxes.

The study provided substantial evidence that explains the seasonal patterns and microbial driving mechanisms of CH4 emissions in wetlands. These data are able to provide scientific support for wetlands management and sustainable, carbon neutral development near these biodiverse regions.

To prepare for future research, the team is calculating and analyzing methane fluxes over long-term periods (five years or more). However, deeper research involving metagenomic sequencing (multiple communities of organisms) is needed to analyze the impact of microbials on methane fluxes.



Journal

Advances in Atmospheric Sciences

DOI

10.1007/s00376-021-1255-z

Tags: CH4communitiesConsumingcontributeemissionsMethanemicrobialproducingSeasonalvariationswetlands
Share26Tweet16Share4ShareSendShare
  • Vestibular ganglion study

    New experimental treatment can stop the growth of schwannoma tumors

    164 shares
    Share 66 Tweet 41
  • International group of scientists warns nuclear radiation has devastating impacts on ecosystems

    82 shares
    Share 33 Tweet 21
  • Anu, previously gropod, awarded nearly $1 million competitive grant from the National Science Foundation

    84 shares
    Share 34 Tweet 21
  • Null results research now published by major behavioral medicine journal

    562 shares
    Share 225 Tweet 141
  • UK Scientists make major breakthrough in developing practical quantum computers that can solve big challenges of our time

    65 shares
    Share 26 Tweet 16
  • First nursery of multiple shark species in the Eastern Atlantic described in Cape Verde

    64 shares
    Share 26 Tweet 16
ADVERTISEMENT

About us

We bring you the latest science news from best research centers and universities around the world. Check our website.

Latest NEWS

Anu, previously gropod, awarded nearly $1 million competitive grant from the National Science Foundation

International group of scientists warns nuclear radiation has devastating impacts on ecosystems

Face masks cut distance airborne pathogens could travel in half, new study finds

Subscribe to Blog via Email

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

Join 205 other subscribers

© 2022 Scienmag- Science Magazine: Latest Science News.

No Result
View All Result
  • HOME PAGE
  • BIOLOGY
  • CHEMISTRY AND PHYSICS
  • MEDICINE
    • Cancer
    • Infectious Emerging Diseases
  • SPACE
  • TECHNOLOGY
  • CONTACT US

© 2022 Scienmag- Science Magazine: Latest Science News.

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