Literature DB >> 30430917

Combined Effects of Low-Dose Proton Radiation and Simulated Microgravity on the Mouse Retina and the Hematopoietic System.

X W Mao1, M Boerma2, D Rodriguez1, M Campbell-Beachler1, T Jones1, S Stanbouly1, V Sridharan2, N C Nishiyama1, A Wroe3, G A Nelson1.   

Abstract

The purpose of the current study was to characterize the effects of simulated microgravity and radiation-induced changes in retina and retinal vasculature, and to assess the accompanying early changes in immune cells and hematological parameters. To better understand the effects of spaceflight, we used a combination of treatments designed to simulate both the radiation and low-gravity aspects of space conditions. To simulate the broad energy spectrum of a large solar particle event (SPE) and galactic cosmic ray (GCR) radiation, male C57BL/6J mice were exposed to whole-body irradiation using fully modulated beams of 150-MeV protons containing particles of energy from 0 to 150 MeV and a uniform dose-vs.-depth profile. The mice were also hindlimb-unloaded (HLU) by tail suspension. Mice were unloaded for 7 days, exposed to 50 cGy, unloaded for an additional 7 days and then sacrificed for tissue isolation at days 4 and 30 after the combined treatments. Increases in the number of apoptotic cells were observed in the endothelial cells of mice that received radiation alone or with HLU compared to controls at both days 4 and 30 (P < 0.05). Endothelial nitric oxide synthase (eNOS) levels were significantly elevated in the retina after irradiation only or combined with HLU compared to controls at the 30-day time point (P < 0.05). The most robust changes were observed in the combination group, suggesting a synergistic response to radiation and unloading. For hematopoietic parameters, our analysis indicated the main effects for time and radiation at day 4 after treatments (day 11 postirradiation) (P < 0.05), but a smaller influence of HLU for both white blood cell and lymphocyte counts. The group treated with both radiation and HLU showed greater than 50% reduction in lymphocyte counts compared to controls. Radiation-dependent differences were also noted in specific lymphocyte subpopulations (T, B, natural killer cells). This study shows indications of an early effect of low-dose radiation and spaceflight conditions on retina and immune populations.

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Year:  2018        PMID: 30430917      PMCID: PMC6820356          DOI: 10.1667/RR15219.1

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  47 in total

1.  Dose and dose rate effects of whole-body proton irradiation on leukocyte populations and lymphoid organs: part I.

Authors:  Daila S Gridley; Michael J Pecaut; Radha Dutta-Roy; Gregory A Nelson
Journal:  Immunol Lett       Date:  2002-01-01       Impact factor: 3.685

2.  Long-term effects of low-dose proton radiation on immunity in mice: shielded vs. unshielded.

Authors:  Michael J Pecaut; Daila S Gridley; Gregory A Nelson
Journal:  Aviat Space Environ Med       Date:  2003-02

3.  Whole-body irradiation and long-term modification of bone marrow-derived cell populations by low- and high-LET radiation.

Authors:  Daila S Gridley; Michael J Pecaut
Journal:  In Vivo       Date:  2006 Nov-Dec       Impact factor: 2.155

Review 4.  The effect of microgravity on ocular structures and visual function: a review.

Authors:  Giovanni Taibbi; Ronita L Cromwell; Kapil G Kapoor; Bernard F Godley; Gianmarco Vizzeri
Journal:  Surv Ophthalmol       Date:  2013-01-29       Impact factor: 6.048

5.  Spaceflight environment induces mitochondrial oxidative damage in ocular tissue.

Authors:  Xiao W Mao; Michael J Pecaut; Louis S Stodieck; Virginia L Ferguson; Ted A Bateman; Mary Bouxsein; Tamako A Jones; Maria Moldovan; Christopher E Cunningham; Jenny Chieu; Daila S Gridley
Journal:  Radiat Res       Date:  2013-09-13       Impact factor: 2.841

6.  Acute Effect of Low-Dose Space Radiation on Mouse Retina and Retinal Endothelial Cells.

Authors:  X W Mao; M Boerma; D Rodriguez; M Campbell-Beachler; T Jones; S Stanbouly; V Sridharan; A Wroe; G A Nelson
Journal:  Radiat Res       Date:  2018-05-09       Impact factor: 2.841

7.  The effect of intraocular and intracranial pressure on retinal structure and function in rats.

Authors:  Da Zhao; Zheng He; Algis J Vingrys; Bang V Bui; Christine T O Nguyen
Journal:  Physiol Rep       Date:  2015-08

8.  Hindlimb suspension and SPE-like radiation impairs clearance of bacterial infections.

Authors:  Minghong Li; Veronica Holmes; Yu Zhou; Houping Ni; Jenine K Sanzari; Ann R Kennedy; Drew Weissman
Journal:  PLoS One       Date:  2014-01-15       Impact factor: 3.240

9.  Cell Cycle Regulation and Apoptotic Responses of the Embryonic Chick Retina by Ionizing Radiation.

Authors:  Margot Mayer; Nicole Kaiser; Paul G Layer; Florian Frohns
Journal:  PLoS One       Date:  2016-05-10       Impact factor: 3.240

10.  Protective Effects of Melatonin on Retinal Inflammation and Oxidative Stress in Experimental Diabetic Retinopathy.

Authors:  Tingting Jiang; Qing Chang; Jiyang Cai; Jiawen Fan; Xiaozhe Zhang; Gezhi Xu
Journal:  Oxid Med Cell Longev       Date:  2016-04-06       Impact factor: 6.543

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  8 in total

1.  The individual and combined effects of spaceflight radiation and microgravity on biologic systems and functional outcomes.

Authors:  Jeffrey S Willey; Richard A Britten; Elizabeth Blaber; Candice G T Tahimic; Jeffrey Chancellor; Marie Mortreux; Larry D Sanford; Angela J Kubik; Michael D Delp; Xiao Wen Mao
Journal:  J Environ Sci Health C Toxicol Carcinog       Date:  2021

2.  Microgravity versus Microgravity and Irradiation: Investigating the Change of Neuroendocrine-Immune System and the Antagonistic Effect of Traditional Chinese Medicine Formula.

Authors:  Haoru Zhu; Lin Zhang; Meng Qian; Tuo Shi; Fangxin Fan; Wenfei Li; Sitai Zhu; Ming Xie
Journal:  Biomed Res Int       Date:  2020-05-26       Impact factor: 3.411

3.  Additive effects of simulated microgravity and ionizing radiation in cell death, induction of ROS and expression of RAC2 in human bronchial epithelial cells.

Authors:  Shaobo Tan; Weiwei Pei; Hao Huang; Guangming Zhou; Wentao Hu
Journal:  NPJ Microgravity       Date:  2020-11-05       Impact factor: 4.415

Review 4.  A Current Overview of the Biological Effects of Combined Space Environmental Factors in Mammals.

Authors:  Ying Xu; Weiwei Pei; Wentao Hu
Journal:  Front Cell Dev Biol       Date:  2022-04-12

Review 5.  The Protective Role of Neurogenetic Components in Reducing Stress-Related Effects during Spaceflights: Evidence from the Age-Related Positive Memory Approach.

Authors:  Nicola Mammarella; Matteo Gatti; Irene Ceccato; Adolfo Di Crosta; Alberto Di Domenico; Rocco Palumbo
Journal:  Life (Basel)       Date:  2022-08-02

6.  Simultaneous exposure to chronic irradiation and simulated microgravity differentially alters immune cell phenotype in mouse thymus and spleen.

Authors:  Ratan Sadhukhan; Debajyoti Majumdar; Sarita Garg; Reid D Landes; Victoria McHargue; Snehalata A Pawar; Parimal Chowdhury; Robert J Griffin; Ganesh Narayanasamy; Marjan Boerma; Maxim Dobretsov; Martin Hauer-Jensen; Rupak Pathak
Journal:  Life Sci Space Res (Amst)       Date:  2020-09-29

7.  Spaceflight influences gene expression, photoreceptor integrity, and oxidative stress-related damage in the murine retina.

Authors:  Eliah G Overbey; Willian Abraham da Silveira; Seta Stanbouly; Nina C Nishiyama; Gina D Roque-Torres; Michael J Pecaut; David Carl Zawieja; Charles Wang; Jeffrey S Willey; Michael D Delp; Gary Hardiman; Xiao Wen Mao
Journal:  Sci Rep       Date:  2019-09-16       Impact factor: 4.379

Review 8.  Cancer Studies under Space Conditions: Finding Answers Abroad.

Authors:  José Luis Cortés-Sánchez; Jonas Callant; Marcus Krüger; Jayashree Sahana; Armin Kraus; Bjorn Baselet; Manfred Infanger; Sarah Baatout; Daniela Grimm
Journal:  Biomedicines       Date:  2021-12-23
  8 in total

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