| Literature DB >> 31886035 |
Sonia Iosim1, Matthew MacKay1,2, Craig Westover1, Christopher E Mason1,3,4,2.
Abstract
It is been shown that spaceflight-induced molecular, cellular, and physiologic changes cause alterations across many modalities of the human body, including cardiovascular, musculoskeletal, hematological, immunological, ocular, and neurological systems. The Twin Study, a multi-year, multi-omic study of human response to spaceflight, provided detailed and comprehensive molecular and cellular maps of the human response to radiation, microgravity, isolation, and stress. These rich data identified epigenetic, gene expression, inflammatory, and metabolic responses to spaceflight, facilitating a better biomedical roadmap of features that should be monitored and safe-guarded in upcoming missions. Further, by exploring new developments in pre-clinical models and clinical trials, we can begin to design potential cellular interventions for exploration-class missions to Mars and potentially farther. This paper will discuss the overall risks astronauts face during spaceflight, what is currently known about human response to these risks, what pharmaceutical interventions exist for use in space, and which tools of precision medicine and cellular engineering could be applied to aerospace and astronaut medicine.Entities:
Keywords: International Space Station; NASA; NASA Twin Study; multi-scale omics; spaceflight
Year: 2019 PMID: 31886035 PMCID: PMC6927098 DOI: 10.1093/pcmedi/pbz022
Source DB: PubMed Journal: Precis Clin Med ISSN: 2516-1571
Figure 1
Relative radiation exposure (varying durations): medical procedures (green), the impact while on various celestial bodies (blue), specific space missions (purple), general population facts (gold), and recommended astronaut limits (red).
Sample types and analyses conducted by flight time during the NASA twin study.
| Flight time | Sample type | Analysis |
|---|---|---|
| Pre-flight | Blood (plasma) | Biochemistry |
| In-flight | Blood (plasma) | Biochemistry |
| Post-flight | Blood (plasma) | Biochemistry |
| Pre-flight | Blood (plasma) | Cytokine profiling |
| In-flight | Blood (plasma) | Cytokine profiling |
| Post-flight | Blood (plasma) | Cytokine profiling |
| In-flight | Blood (plasma) | Oxidative status |
| Post-flight | Blood (plasma) | Oxidative status |
| Pre-flight | Blood (plasma) | Oxidative stress and inflammation |
| In-flight | Blood (plasma) | Oxidative stress and inflammation |
| Post-flight | Blood (plasma) | Oxidative stress and inflammation |
| Pre-flight | Blood (PBMCs) | qRT-PCR (T:A) |
| In-flight | Blood (PBMCs) | qRT-PCR (T:A) |
| Post-flight | Blood (PBMCs) | qRT-PCR (T:A) |
| Pre-flight | Blood (PBMCs) | qRT-PCR TRAP |
| In-flight | Blood (PBMCs) | qRT-PCR TRAP |
| Post-flight | Blood (PBMCs) | qRT-PCR TRAP |
| Pre-flight | Blood (CD19) | RNA-seq |
| Pre-flight | Blood (CD4) | RNA-seq |
| Pre-flight | Blood (CD8) | RNA-seq |
| Pre-flight | Blood (LD) | RNA-seq |
| Pre-flight | Blood (PBMCs) | RNA-seq |
| In-flight | Blood (CD19) | RNA-seq |
| In-flight | Blood (CD4) | RNA-seq |
| In-flight | Blood (CD8) | RNA-seq |
| In-flight | Blood (PBMCs) | RNA-seq |
| In-flight | Blood (LD) | RNA-seq |
| Post-flight | Blood (CD19) | RNA-seq |
| Post-flight | Blood (CD4) | RNA-seq |
| Post-flight | Blood (CD8) | RNA-seq |
| Post-flight | Blood (LD) | RNA-seq |
| Post-flight | Blood (PBMCs) | RNA-seq |
| Pre-flight | Blood (plasma) | Targeted metabolomics |
| In-flight | Blood (plasma) | Targeted metabolomics |
| Post-flight | Blood (plasma) | Targeted metabolomics |
| Pre-flight | Blood (CD4) | TCR |
| Pre-flight | Blood (CD8) | TCR |
| Pre-flight | Blood (PBMCs) | TCR |
| In-flight | Blood (CD4) | TCR |
| In-flight | Blood (CD8) | TCR |
| In-flight | Blood (PBMCs) | TCR |
| Post-flight | Blood (CD4) | TCR |
| Post-flight | Blood (CD8) | TCR |
| Post-flight | Blood (PBMCs) | TCR |
| Pre-flight | Blood (T-cells) | Telo-FISH/dGH |
| In-flight | Blood (T-cells) | Telo-FISH/dGH |
| Post-flight | Blood (T-cells) | Telo-FISH/dGH |
| Pre-flight | Blood (plasma) | Untargeted metabolomics |
| In-flight | Blood (plasma) | Untargeted metabolomics |
| Post-flight | Blood (plasma) | Untargeted metabolomics |
| Pre-flight | Blood (plasma) | Untargeted proteomics |
| In-flight | Blood (plasma) | Untargeted proteomics |
| Post-flight | Blood (plasma) | Untargeted proteomics |
| Pre-flight | Blood (CD4) | WGBS |
| Pre-flight | Blood (CD8) | WGBS |
| In-flight | Blood (CD4) | WGBS |
| In-flight | Blood (CD8) | WGBS |
| Post-flight | Blood (CD4) | WGBS |
| Post-flight | Blood (CD8) | WGBS |
| Pre-flight | Body | Body mass |
| In-Flight | Body | Body Mass |
| Post-Flight | Body | Body Mass |
| Pre-Flight | Body | Cardiac and Vascular |
| Ultrasound | ||
| In-flight | Body | Cardiac and vascular ultrasound |
| Post-flight | Body | Cardiac and vascular ultrasound |
| Pre-flight | Body | Vascular structure and function |
| In-flight | Body | Vascular structure and function |
| Post-flight | Body | Vascular structure and function |
| Pre-flight | Cognition | Cognition |
| In-flight | Cognition | Cognition |
| Post-flight | Cognition | Cognition |
| Pre-flight | Fecal | Metagenome |
| In-flight | Fecal | Metagenome |
| Post-flight | Fecal | Metagenome |
| Pre-flight | Ocular | Ocular imaging |
| In-flight | Ocular | Ocular imaging |
| Post-flight | Ocular | Ocular imaging |
| Pre-flight | Urine | Biochemistry |
| In-flight | Urine | Biochemistry |
| Post-flight | Urine | Biochemistry |
| Pre-flight | Urine | Oxidative stress and inflammation |
| In-flight | Urine | Oxidative stress and inflammation |
| Post-flight | Urine | Oxidative stress and inflammation |
| Pre-flight | Urine | Targeted metabolomics |
| In-flight | Urine | Targeted metabolomics |
| Post-flight | Urine | Targeted metabolomics |
| Pre-flight | Urine | Targeted proteomics |
| In-flight | Urine | Targeted proteomics |
| Post-flight | Urine | Targeted proteomics |
| Pre-flight | Urine | Untargeted proteomics |
| In-flight | Urine | Untargeted proteomics |
| Post-flight | Urine | Untargeted proteomics |
| Pre-flight | Blood (plasma) | Oxidative status |
| Pre-flight | Blood (CD4) | qRT-PCR (T:A) |
| Pre-flight | Blood (CD8) | qRT-PCR (T:A) |
| Pre-flight | Blood (LD) | qRT-PCR (T:A) |
| Pre-flight | Blood (CD19) | qRT-PCR (T:A) |
| Post-flight | Blood (CD19) | qRT-PCR (T:A) |
| Post-flight | Blood (CD4) | qRT-PCR (T:A) |
| Post-flight | Blood (CD8) | qRT-PCR (T:A) |
| Post-flight | Blood (LD) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (CD19) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (CD4) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (LD) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (PBMCs) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (CD8) | qRT-PCR (T:A) |
| In-flight | Blood (ambient return) (PBMCs) | qRT-PCR TRAP |
| In-flight | Blood (ambient return) (CD4) | RNA-seq |
| In-flight | Blood (ambient return) (CD8) | RNA-seq |
| In-flight | Blood (ambient return) (LD) | RNA-seq |
| In-flight | Blood (ambient return) (T-cells) | Telo-FISH/dGH |
| In-flight | Blood (ambient return) (CD4) | WGBS |
| In-flight | Blood (ambient return) (CD8) | WGBS |
Flight time references when samples were collected compared to time on ISS. Sample type abbreviations: lymphocyte depleted (LD) cells and peripheral blood mononuclear cells (PBMCs). Analysis abbreviations: RNA-sequencing (RNA-seq), T-cell receptor sequencing (TCR), telomere fluorescence in situ hybridization (Telo-FISH), quantitative real-time polymerase chain reaction (qRT-PCR), whole-genome bisulfite sequencing (WGBS).