H2020Индивидуална стипендия2016–2017

MINOTAUR · Metabolic interactions in oceanic photosymbioses

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2016-01-01 → 2017-12-31
Финансиране от ЕС
171 461 €
Участници
1
Схема
MSCA-IF-EF-ST

Линиите свързват координатора с партньорите.

Накратко на български

Метаболитните взаимодействия между планктонни организми и фотосинтезиращи микроводораси разкриват как те обменят хранителни вещества. Разбирането на тези връзки помага да се разбере функционирането на морските екосистеми и глобалния химичен баланс на Земята.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Metabolic interactions in oceanic photosymbioses

The ocean contains an immense reservoir of planktonic microorganisms that play fundamental roles in the food web and global biogeochemistry. Their contribution to planetary primary production of about 50% strongly influences the Earth's chemical and ecological stasis. While knowledge of their diversity has greatly improved in recent decades, biotic interactions in the plankton remain poorly understood. Symbiosis, whereby different biological species live together in close and long-term association, is a key ecological interaction for ecosystem functioning and diversification of life. In the open ocean, symbiotic partnerships of host organisms with photosynthetic microalgae (photosymbioses) are widespread and particularly prevalent at the surface of nutrient-depleted waters. Photosymbiosis is not only a key evolutionary process that led to the acquisition of photosynthesis in eukaryotes, but is also central in marine ecosystems. Photosymbiosis provides a competitive advantage in nutritionally demanding habitats like the open ocean, and contributes significantly to both predation and primary production. The partnership is typically considered mutually beneficial for the two partners: the algal symbiont provides photosynthetically-derived products to the host, which in turn maintains a sheltered and relatively nutrient-rich environment for the symbiont. This general postulate mainly relies on our understanding of coral symbioses, but in plankton we still lack fundamental information about the basic physiology of the partnership. More particularly, metabolic interactions between symbiotic partners, including nutrient assimilation, translocation and utilization, have barely been studied in plankton to date. Thus, the MINOTAUR project aimed to explore the metabolic basis of photosymbiosis in plankton to understand the functioning and metabolism, of the partnership, and to improve our understanding about its biogeochemical role in the open ocean, one of the largest ecosystems on Earth. This knowledge is important to better assess the impact of symbioses in marine ecosystems and help to predict their response to global warming. The three main objectives of this project are: 1- Characterize the elemental and isotopic composition of symbiotic Radiolaria, focusing on carbon, nitrogen, phosphorous, sulfur and metals 2- Quantify the uptake and flux of carbon and nitrogen between the partners at the subcellular level 3- Compare the morphology and the metabolic features of the symbiont inside its host and outside (free-living) to shed light on its putative metabolic dependency, as well as on the host control over the symbiont metabolism. The project unveiled the metabolic role of each partner in the symbiotic relationship, and more particularly the control of the host to enhance the photosynthetic activity of its intracellular microalgae. Key elements that play major roles in marine ecosystems have been mapped and quantified in the organelles of the host and the intracellular microalgae.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Symbiosis between heterotrophic hosts and microalgae (photosymbiosis) is a widespread and ecologically important phenomenon in the oceanic plankton. Symbiotic organisms like radiolarians (unicellular eukaryotes) are key players in marine biogeochemical cycles by contributing to predation and primary production. While knowledge of the diversity of symbiotic partners has improved in recent years, metabolic interactions remain poorly understood. This project will explore the metabolic basis of planktonic photosymbiosis, with radiolarians as an ecologically relevant model, to understand the functioning of the partnership and its contribution to elemental cycling in the pelagic ecosystem. An original and cutting-edge single-cell approach involving stable isotopes and high-resolution chemical imaging techniques (e.g. ToF-SIMS and nanoSIMS) will be used to visualize the elemental and isotopic composition of intact radiolarian symbioses at the subcellular level, and to quantify the assimilation and transfer of nutrients between partners in different experimental conditions. The same approach will be applied on cultured free-living symbionts to determine the degree of host control over symbiont metabolism. In order to develop a holistic view of metabolic interactions, bioinformatic analyses will identify key metabolic genes and pathways from available transcriptomes of radiolarians. The exceptional microscopy facility and expertise in isotope biogeochemistry at the host institution is unique in Europe. Given the interdisciplinary nature of the project consortium, the potential for exchanging new knowledge and skills is very high. This project pushes back the boundaries of marine biological research and represents a significant step in my personal development towards my long-term research ambition to merge knowledge on biodiversity and physiology into ecological studies to better understand the functioning of aquatic ecosystems and their responses to anthropogenic pressures.

Оригинален текст от CORDIS (на английски).

Участници

  • HELMHOLTZ-ZENTRUM FUR UMWELTFORSCHUNG GMBH - UFZ · LeipzigКоординаторГермания

Връзки

Данни: CORDIS, © Европейски съюз