Light signals counteract alterations caused by simulated microgravity in proliferating plant cells

被引:6
作者
Manzano, Aranzazu [1 ]
Pereda-Loth, Veronica [2 ]
de Bures, Anne [3 ,4 ]
Saez-Vasquez, Julio [3 ,4 ]
Herranz, Raul [1 ]
Javier Medina, F. [1 ]
机构
[1] Ctr Invest Biol Margarita Salas CSIC, Ramiro de Maeztu 9, Madrid 28040, Spain
[2] Univ Paul Sabatier Toulouse III, GSBMS AMIS, Toulouse, France
[3] CNRS, Lab Genome & Dev Plantes LGDP, UMR 5096, F-66860 Perpignan, France
[4] Univ Perpignan Via Domitia, LGDP, UMR 5096, F-66860 Perpignan, France
关键词
abiotic stress; auxin transport; cell cycle; graviresponse; nucleolin; ribosome biogenesis; root meristem; space plant biology; PRE-RIBOSOMAL-RNA; AUXIN TRANSPORT; GENE-EXPRESSION; ROOT-GROWTH; ARABIDOPSIS; NUCLEOLIN; CYCLE; PHOTOTROPISM; ORGANIZATION; SIZE;
D O I
10.1002/ajb2.1728
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Premise Light and gravity are fundamental cues for plant development. Our understanding of the effects of light stimuli on plants in space, without gravity, is key to providing conditions for plants to acclimate to the environment. Here we tested the hypothesis that the alterations caused by the absence of gravity in root meristematic cells can be counteracted by light. Methods Seedlings of wild-type Arabidopsis thaliana and two mutants of the essential nucleolar protein nucleolin (nuc1, nuc2) were grown in simulated microgravity, either under a white light photoperiod or under continuous darkness. Key variables of cell proliferation (cell cycle regulation), cell growth (ribosome biogenesis), and auxin transport were measured in the root meristem using in situ cellular markers and transcriptomic methods and compared with those of a 1 g control. Results The incorporation of a photoperiod regime was sufficient to attenuate or suppress the effects caused by gravitational stress at the cellular level in the root meristem. In all cases, values for variables recorded from samples receiving light stimuli in simulated microgravity were closer to values from the controls than values from samples grown in darkness. Differential sensitivities were obtained for the two nucleolin mutants. Conclusions Light signals may totally or partially replace gravity signals, significantly improving plant growth and development in microgravity. Despite that, molecular alterations are still compatible with the expected acclimation mechanisms, which need to be better understood. The differential sensitivity of nuc1 and nuc2 mutants to gravitational stress points to new strategies to produce more resilient plants to travel with humans in new extraterrestrial endeavors.
引用
收藏
页码:1775 / 1792
页数:18
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