Combining clinostating and proton irradiation for modeling the space environment: a case study with a Chernobyl accession of

3D clinostat Space biology chlorophyll fluorescence chronic irradiation plant radiobiology space simulation

Journal

International journal of radiation biology
ISSN: 1362-3095
Titre abrégé: Int J Radiat Biol
Pays: England
ID NLM: 8809243

Informations de publication

Date de publication:
01 Oct 2024
Historique:
medline: 3 10 2024
pubmed: 3 10 2024
entrez: 1 10 2024
Statut: aheadofprint

Résumé

The study of mechanisms of plant responses to extreme conditions, particularly, microgravity and ionizing radiation, is crucial for space exploration. Modern space biology of plants focuses on increasing plant tolerance to harsh conditions of space environment. Given the limited access to the International Space Station, we designed and assembled the 3D clinostat for mimicking microgravity, which, in combination with proton irradiation, allows simulating space conditions. As a case study for testing the device, we studied the effect of clinostating on Using the combined clinostating and proton irradiation, we simulated the conditions of long-term space flight for Parameters of chlorophyll fluorescence estimated immediately after exposure showed that Masa-0-1 plants were resistant to the simulated space conditions, while Masa-0 demonstrated modulation of non-photochemical fluorescence quenching. Proton irradiation generally inhibited photosynthesis of Masa-0, Masa-0-1, and Col-8 seedlings. The combined effect of irradiation and clinostating modulated the photosynthetic activity of Col-8 seedlings. The leaf area of seedlings did not change after exposure to simulated conditions. The 3D clinostat model and software are published along with this article for researchers interested in the field of space biology.

Identifiants

pubmed: 39353463
doi: 10.1080/09553002.2024.2409665
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1-15

Auteurs

Vyacheslav Saburov (V)

Laboratory for the Development and Operation of Irradiation Equipment, A. Tsyb Medical Radiological Research Center - Branch of the National Medical Research Radiological Center of the Ministry of Health of the Russian Federation, Obninsk, Russia.

Elizaveta Kazakova (E)

Laboratory of Cellular and Molecular Radiobiology, Russian Institute of Radiology and Agroecology of National Research Centre «Kurchatov Institute», Obninsk, Russia.

Alexander Moiseev (A)

Laboratory for the Development and Operation of Irradiation Equipment, A. Tsyb Medical Radiological Research Center - Branch of the National Medical Research Radiological Center of the Ministry of Health of the Russian Federation, Obninsk, Russia.

Evgeniy Kazakov (E)

Laboratory for the Development and Operation of Irradiation Equipment, A. Tsyb Medical Radiological Research Center - Branch of the National Medical Research Radiological Center of the Ministry of Health of the Russian Federation, Obninsk, Russia.

Mikhail Podlutskii (M)

Laboratory of Cellular and Molecular Radiobiology, Russian Institute of Radiology and Agroecology of National Research Centre «Kurchatov Institute», Obninsk, Russia.

Darya Babina (D)

Laboratory of Cellular and Molecular Radiobiology, Russian Institute of Radiology and Agroecology of National Research Centre «Kurchatov Institute», Obninsk, Russia.

Marina Korol (M)

Laboratory of Cellular and Molecular Radiobiology, Russian Institute of Radiology and Agroecology of National Research Centre «Kurchatov Institute», Obninsk, Russia.

Irina Gorbatova (I)

Laboratory of Cellular and Molecular Radiobiology, Russian Institute of Radiology and Agroecology of National Research Centre «Kurchatov Institute», Obninsk, Russia.

Polina Volkova (P)

Independent Researcher, Geel, Belgium.

Classifications MeSH