May 2024 — How to obtain an integrated picture of the molecular networks involved in adaptation to microgravity in different biological systems?. NPJ Microgravity vol. 10, n° 1, p. 50 Accession Number: 38693246 Publisher: Nature Publishing Group Type: 10.1038/s41526-024-00395-3
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February 2024 — How are cell and tissue structure and function influenced by gravity and what are the gravity perception mechanisms?. Abstract Progress in mechanobiology allowed us to better understand the important role of mechanical forces in the regulation… NPJ Microgravity vol. 10, n° 1, p. 16 Accession Number: 38341423 Publisher: Nature Publishing Group Type: 10.1038/s41526-024-00357-9
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August 2023 — Plant and microbial science and technology as cornerstones to Bioregenerative Life Support Systems in space. Abstract Long-term human space exploration missions require environmental control and closed Life Support Systems (LSS) capable… NPJ Microgravity vol. 9, n° 1, p. 69 Publisher: Nature Publishing Group Type: 10.1038/s41526-023-00317-9
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2023 — Perspectives for plant biology in Space and analogue environments. NPJ Microgravity , , Publisher: Nature Publishing Group tex.hal_id: hal-04045474 tex.hal_version: v1
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2023 — Enhancing European capabilities for application of multi-omics studies in biology and biomedicine space research. iScience vol. 26, n° 9, p. 107289
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2023 — Perspectives for plant biology in Space and analogue environments. NPJ Microgravity , ,
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2023 — How do gravity alterations affect animal and human systems at a cellular/tissue level?. npj Microgravity vol. 9, n° 1, p. 84
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2022 — Recent transcriptomic studies to elucidate the plant adaptive response to spaceflight and to simulated environments. ISCIENCE vol. 25, n° 8, Number: 104687 tex.earlyaccessdate: JUL 2022 tex.eissn: 2589-0042 tex.orcid-numbers: Manzano, Aranzazu/0000-0002-0150-0803 tex.researcherid-numbers: Manzano, Aranzazu/H-5307-2015 tex.unique-id: WOS:000827610700003
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2020 — Revamping Space-omics in Europe. Cell Systems vol. 11, n° 6, p. 555-556
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2018 — The combined effects of real or simulated microgravity and red-light photoactivation on plant root meristematic cells. Planta vol. 248, n° 3, p. 691-704
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2016 — Functional alterations of root meristematic cells of Arabidopsis thaliana induced by a simulated microgravity environment. Journal of Plant Physiology vol. 207, , p. 30-41
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2014 — Microsome-associated proteome modifications of Arabidopsis seedlings grown on board the International Space Station reveal the possible effect on plants of space stresses other than microgravity. Plant Signaling & Behavior vol. 9, n° 9, e29637
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2014 — Microgravity Induces Changes in Microsome-Associated Proteins of Arabidopsis Seedlings Grown on Board the International Space Station. PLoS One vol. 9, n° 3, e91814
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2014 — Exploration of plant growth and development using the European Modular Cultivation System facility on the International Space Station. Plant Biology vol. 16, n° 3, p. 528-538
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2013 — Epiphytism, anatomy and regressive evolution in trichomanoid filmy ferns (Hymenophyllaceae). Botanical Journal of the Linnean Society vol. 173, n° 4, p. 573-593
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2009 — Pluripotency of Arabidopsis xylem pericycle underlies shoot regeneration from root and hypocotyl explants grown <span class="nocase">in vitro</span>. The Plant Journal vol. 57, n° 4, p. 626-644
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