High-resolution sediment analyses from the Arabian Sea reveal, for the first time, that summer and winter monsoons respond differently to global climate change. Researchers from the University of Bremen contributed to the study, published in the journal Nature Geoscience.
Researchers from MARUM – Center for Marine Environmental Sciences and the Faculty of Geosciences at the University of Bremen collaborated closely with colleagues at Johannes Gutenberg University Mainz and the University of Bern.
The study enhances our understanding of past precipitation patterns and could help refine climate models for regions influenced by monsoons.
The South Asian monsoon is one of the most important climate systems on Earth. The annual shift between dry and rainy seasons affects the lives of over two billion people. Despite its enormous significance, the factors driving its intensity, variability, and response to ongoing climate change are still not fully understood. Current observational data only span a few decades, and climate models have so far provided only a limited picture of tropical precipitation dynamics.
To better predict future monsoon trends, researchers are turning to natural climate archives, such as ocean floor sediments, which store information about past environmental and climate conditions. Until now, most methods could only reconstruct long-term climate changes. Short-term fluctuations on a yearly or seasonal basis often remained hidden.
Using Data from the Past to Predict the Future
At the University of Bremen’s MARUM – Center for Marine Environmental Sciences, a multinational, interdisciplinary team led by Dr. Igor Obreht analyzed sediment samples from the Arabian Sea. The team combined micrometer-scale imaging with conventional isotope methods. Their goal was to reconstruct past climate fluctuations with a resolution that can be compared with current climate trends, but under the fundamentally different conditions of the last deglaciation phase, when abrupt climate shifts occurred. Obreht was a postdoctoral researcher at the MARUM before joining Johannes Gutenberg University Mainz as a junior professor.
The team carefully selected the sediment core because its various proxy signals respond sensitively to different components and seasons of the monsoon system, enabling a more comprehensive evaluation of monsoon dynamics. The study marks a successful collaboration between MARUM and the University of Bern (Switzerland). Mass spectrometry imaging methods for sediment analysis were developed in Bremen, and hyperspectral imaging procedures were established in Bern. By combining these new imaging techniques with conventional paleoclimate methods, the team successfully reconstructed monsoon activity from 16,000 to 12,000 years ago with near-annual resolution.
“Our analyses show that summer and winter monsoons reacted differently during a period of rapid climate change following the last ice age. While the summer monsoon was primarily influenced by climate processes in the higher latitudes of the Northern Hemisphere, the winter monsoon gradually weakened with rising global temperatures,” says Obreht. “Our data also reveals that during periods of weaker winter monsoon activity, more precipitation fell outside the monsoon season,” he adds.
A Better Understanding of Monsoon Systems
“We have identified a previously unknown inverse relationship between winter monsoon wind strength and non-monsoonal winter precipitation. This helps us to better understand the dynamics of monsoon systems,” says Dr. Mahyar Mohtadi, a co-author of the study. This divergent trend provides important insights into which factors drive the monsoon system under changing climate conditions.
Several research groups at MARUM, as part of the “Ocean Floor” Cluster of Excellence, contributed to a comprehensive understanding of the generated datasets. The project also benefited from Obreht’s move to Johannes Gutenberg University Mainz sponsored by the Volkswagen Foundation’s Earth System Science program. The new collaborations established there provided additional expertise to interpret regional climate archives, such as speleothems and lakes. Obreht emphasizes that integrating findings from multiple archives was key to understanding the complexity and significance of the observed monsoon changes.
Participating Institutions:
• MARUM – Center for Marine Environmental Sciences, Faculty of Geosciences, University of Bremen
• Institute of Geosciences, Johannes Gutenberg University Mainz
• Federal Institute for Geosciences and Natural Resources, Hannover
• Institute of Geography and Oeschger Center for Climate Change Research, University of Bern (Switzerland)
• Department of Earth Sciences, Uppsala University (Sweden)
• Landesmuseum Kärnten (Austria)
• Alfred Wegener Institute, Helmholtz Center for Polar and Marine Research (AWI), Bremerhaven
• Max Planck Institute for Chemistry (MPIC), Mainz
MARUM produces fundamental scientific knowledge about the role of the ocean and the ocean floor in the total Earth system. The dynamics of the ocean and the ocean floor significantly impact the entire Earth system through the interaction of geological, physical, biological and chemical processes. These influence both the climate and the global carbon cycle, and create unique biological systems. MARUM is committed to fundamental and unbiased research in the interests of society and the marine environment, and in accordance with the Sustainable Development Goals of the United Nations. It publishes its quality-assured scientific data and makes it publicly available. MARUM informs the public about new discoveries in the marine environment and provides practical knowledge through its dialogue with society. MARUM cooperates with commercial and industrial partners in accordance with its goal of protecting the marine environment.
Dr. Igor Obreht
Institute of Geosciences, Johannes Gutenberg University Mainz
MARUM – Center for Marine Environmental Sciences, University of Bremen
Email: iobreht@uni-mainz.de
Igor Obreht, Andreas Lückge, Mahyar Mohtadi, Petra Zahajská, Enno Schefuß, Denis Scholz, Lars Wörmer, Petter Hällberg, Alexander Budsky 7, Florian Adolphi 8, Gerald Haug9,10, Martin Grosjean, Kai-Uwe Hinrichs: Contrasting drivers of South Asian summer and winter monsoon evolution during the last deglaciation. Nature Geoscience 2026. DOI: https://doi.org/10.1038/s41561-026-02023-z
mass spectrometry
Quelle: MARUM
Copyright: MARUM – Center for Marine Environmental Sciences, University of Bremen
Merkmale dieser Pressemitteilung:
Journalisten, Wissenschaftler
Biologie, Chemie, Geowissenschaften, Gesellschaft, Meer / Klima
überregional
Forschungs- / Wissenstransfer, Forschungsergebnisse
Englisch

Sie können Suchbegriffe mit und, oder und / oder nicht verknüpfen, z. B. Philo nicht logie.
Verknüpfungen können Sie mit Klammern voneinander trennen, z. B. (Philo nicht logie) oder (Psycho und logie).
Zusammenhängende Worte werden als Wortgruppe gesucht, wenn Sie sie in Anführungsstriche setzen, z. B. „Bundesrepublik Deutschland“.
Die Erweiterte Suche können Sie auch nutzen, ohne Suchbegriffe einzugeben. Sie orientiert sich dann an den Kriterien, die Sie ausgewählt haben (z. B. nach dem Land oder dem Sachgebiet).
Haben Sie in einer Kategorie kein Kriterium ausgewählt, wird die gesamte Kategorie durchsucht (z.B. alle Sachgebiete oder alle Länder).