| Literature DB >> 32428004 |
Lisa C Simonsen1, Tony C Slaba1, Peter Guida2, Adam Rusek2.
Abstract
With exciting new NASA plans for a sustainable return to the moon, astronauts will once again leave Earth's protecEntities:
Year: 2020 PMID: 32428004 PMCID: PMC7236977 DOI: 10.1371/journal.pbio.3000669
Source DB: PubMed Journal: PLoS Biol ISSN: 1544-9173 Impact factor: 8.029
Fig 1Three key areas that must be developed together to ultimately provide the GCR simulator at NSRL.
Development focused on establishing irradiation requirements and balancing facility capabilities and limitations, including constraints imposed by animal and cellular model systems. GCR, galactic cosmic radiation; NSRL, NASA Space Radiation Laboratory.
Fig 2Relative contribution to fluence (squares), dose (diamonds), and dose equivalent (circles) of different elements in the free-space GCR environment during solar minimum conditions (June 1976) as described by the Badhwar–O'Neill 2010 GCR model [14] (Adapted from Durante and Cucinotta [3]).
Plot data available in S1 Data. GCR, galactic cosmic radiation.
Fig 3GCR particle spectra at solar minimum conditions (June 1976) denoted by solid lines and solar maximum conditions (June 2001) denoted by dashed lines in (A) free space and (B) behind 20 g/cm of aluminum to female BFOs as described by the Badhwar–O’Neill 2010 GCR model [ Plot data available in S1 Data. BFO, blood-forming organ; GCR, galactic cosmic radiation; HZETRN, High Charge and Energy Transport.
Summary of exploration mission exposures.
| Exploration | Mission Duration | Dose (mGy) | Gray Equivalent (mGy-Eq) | Dose Equivalent (mSv) |
|---|---|---|---|---|
| ISS in LEO | 6 months | 30–60 | – | 50–100 |
| ISS in LEO | 1 year | 60–120 | – | 100–200 |
| Sortie to Gateway (free space) | 30 days | 20 | 35 | 55 |
| Lunar Surface Mission (2 weeks on surface) | 42 days | 25 | 45 | 70 |
| Sustained Lunar Operations | 1 year | 100–120 | 180–220 | 300–400 |
| Deep-Space Habitat | 1 year | 175–220 | 300–400 | 500–650 |
| Mars Mission | 650 to 920 days | 300–450 | 550–800 | 870–1,200 |
aConversion of dose to gray equivalent uses RBE values recommended by NCRP No. 132 [25]
bBoth NASA-defined quality factors [26] and ICRP 60 quality factors [11] considered in range of estimates.
Abbreviations: ICRP, International Commission on Radiological Protection; ISS, International Space Station; LEO, low Earth orbit; NCRP, National Council on Radiation Protection; RBE, relative biological effectiveness
Fig 4Vehicle shielding is combined with shielding afforded by a crew member’s body surrounding critical organs to determine the primary and secondary radiation environment at points within the crew member.
(A) Human phantoms are used to calculate the body’s self-shielding of critical organs. (B) Shield thickness provided by the vehicle are depicted as green intersecting rays in a crew exploration vehicle (similar to Orion).
Fig 5Three basic strategies for beam selection.
(A) Beam selection is representative of the external, free-space GCR spectrum and is approximated by discrete ion and energy beams delivered onto a shielding and tissue equivalent material placed within the beam line, in front of the biological target. (B) Beam selection is representative of the shielded tissue spectrum found in space (e.g., average tissue flux behind vehicle shielding) and is approximated by discrete ion and energy beams delivered directly onto the biological target. (C) Beam selection is representative of energies less than free space with thinner amounts of vehicle shielding and variable thicknesses of tissue equivalent materials to represent the differences in body self-shielding between the physical sizes of species. GCR, galactic cosmic radiation.
Average tracks per cell nucleus per year, dose (mGy/year), and percent contribution of particles to dose for reference field during 1-year solar minimum and normalized to 500 mGy.
| Particle Type | Average tracks per cell nuclei | Dose (mGy/Year) | Percent contribution (%) | Dose distribution normalized to 500 mGy | Percent contribution of normalized dose to 500 mGy (%) |
|---|---|---|---|---|---|
| π/EM | 0.1 | 15.5 | 11.6 | 0 | 0 |
| Neutron | N/A | 1.1 | 0.8 | 0 | 0 |
| hydrogen | 126 | 86 | 64.2 | 366.3 | 73.3 |
| helium | 7 | 22.5 | 16.8 | 95.8 | 19.2 |
| HZE | 0.5 | 8.9 | 6.6 | 37.9 | 7.6 |
| total | 133.6 | 134 | 100 | 500 | 100 |
aAssumes a cell nucleus cross section of 100 μm2
bDose exclusively from heavy target fragments (Z ≥ 3) produced from inelastic neutron interactions.
cIncludes contributions from elastic and inelastic reaction products of Z = 1 from neutron interactions.
dIncludes contributions from inelastic reaction products of Z = 2 from neutron interactions.
Abbreviations: EM, electromagnetic radiation; HZE, high charge and high energy ions
Fig 6Reference field spectra in the female BFOs behind 20 g/cm2 of aluminum shielding during solar minimum conditions.
(A) Neutron, hydrogen, and helium energy spectra. (B) The corresponding differential LET spectra with and without contributions from hydrogen and helium. Based on calculations from Slaba and colleagues, 2016 [8]. Plot data available in S1 Data. BFO, blood forming organ; LET, lineal energy transfer.
Fig 7Illustration of beam selection strategy for GCR simulator.
The total LET spectrum (light blue) and the HZE spectrum (dark blue) are shown separately. The green bars are representative of the number of single-ion beam experiments performed at NSRL as a function of LET (scaled for plot clarity). The black line is representative of ICRP-60 quality factor weighting [11] to estimate biological damage (scaled for plot clarity). Plot data available in S1 Data. GCR, galactic cosmic radiation; HZE, high charge and high energy ions; ICRP, International Commission on Radiological Protection; LET, linear energy transfer; NSRL, NASA Space Radiation Laboratory.
Fig 8Representation of the reference field using discrete monoenergetic beams.
The hydrogen and helium energy spectra are considered directly (A), whereas HZE ions are represented within the LET spectrum (B). Solid blue lines are the reference spectra from Fig 6. The bin widths for 1 GeV/n protons and helium particles are at lower fluences and not shown on the figure; however, these data are included in supplementary data file. All plot data available in S1 Data. HZE, high charge and high energy ions; LET, linear energy transfer.
“NSRL GCR Simulation” beam definition normalized to 500 mGy.
| 1H | 20–100 | Polyethylene degrader to lower energies | 140.6 | 5.86 | |
| 1H | 150 | 0.54 | 15.9 | 35 | 1.46 |
| 1H | 250 | 0.39 | 38.1 | 68.9 | 2.87 |
| 1H | 1,000 | 0.22 | 326.6 | 123.6 | 5.15 |
| 4He | 20–100 | Polyethylene degrader to lower energies | 39.6 | 1.65 | |
| 4He | 150 | 2.17 | 16 | 7.5 | 0.31 |
| 4He | 250 | 1.56 | 38.3 | 16.4 | 0.68 |
| 4He | 1,000 | 0.88 | 327.8 | 24.9 | 1.04 |
| 12C | 1,000 | 7.95 | 110.13 | 11.7 | 0.49 |
| 16O | 350 | 20.8 | 16.95 | 15.4 | 0.64 |
| 28Si | 600 | 50.2 | 22.73 | 8.1 | 0.34 |
| 48Ti | 1,000 | 109.5 | 32.53 | 4.5 | 0.19 |
| 56Fe | 600 | 175.1 | 13.09 | 4.1 | 0.17 |
| Total | 500 | 20.8 | |||
| 1H | 20 | 2.59 | 0.43 | 30.4 | 1.3 |
| 1H | 23.3 | 2.29 | 0.56 | 6.7 | 0.3 |
| 1H | 27.2 | 2.02 | 0.75 | 7.4 | 0.3 |
| 1H | 31.7 | 1.79 | 0.98 | 8 | 0.3 |
| 1H | 37 | 1.58 | 1.3 | 8.7 | 0.4 |
| 1H | 43.2 | 1.39 | 1.72 | 9.3 | 0.4 |
| 1H | 50.3 | 1.23 | 2.26 | 10 | 0.4 |
| 1H | 58.7 | 1.09 | 2.99 | 10.6 | 0.4 |
| 1H | 68.5 | 0.97 | 3.95 | 11.1 | 0.5 |
| 1H | 79.9 | 0.86 | 5.2 | 11.2 | 0.5 |
| 1H | 100 | 0.73 | 7.76 | 27.2 | 1.1 |
| Ten lower energy helium beams from 100 MeV/n helium particle incident on degrader system | |||||
| 4He | 20 | 10.34 | 0.43 | 11 | 0.5 |
| 4He | 23.3 | 9.14 | 0.57 | 2.1 | 0.1 |
| 4He | 27.2 | 8.06 | 0.75 | 2.2 | 0.1 |
| 4He | 31.7 | 7.12 | 0.99 | 2.3 | 0.1 |
| 4He | 37 | 6.29 | 1.31 | 2.5 | 0.1 |
| 4He | 43.2 | 5.56 | 1.73 | 2.6 | 0.1 |
| 4He | 50.3 | 4.92 | 2.28 | 2.7 | 0.1 |
| 4He | 58.7 | 4.36 | 3.01 | 2.7 | 0.1 |
| 4He | 68.5 | 3.86 | 3.97 | 2.7 | 0.1 |
| 4He | 79.9 | 3.43 | 5.23 | 2.7 | 0.1 |
| 4He | 100 | 2.9 | 7.81 | 6.1 | 0.3 |
Fig 9Mouse and rat voxel models used to evaluate dose distributions in tissues from exposure to GCR simulation.
Digimouse (A) has been scaled by a factor of 3.15 to obtain and estimate of a rat’s body self-shielding, referred to here as “digirat” (B). Transport of full GCR simulation field provides homogeneous dose distribution within voxel mouse model (A) and scaled rat model (B). GCR, galactic cosmic radiation.
Calculated Digimouse tissue and skeleton doses after pseudoisotropic (6 direction) irradiation with GCR simulator beams.
| Tissue | Dose (mGy) | Relative diff. from average (%) |
|---|---|---|
| skin | 507.8 | 1.4 |
| skeleton | 449.3 | −10.3 |
| eye | 510.5 | 2.0 |
| brain | 510.1 | 1.9 |
| heart | 492.6 | −1.6 |
| bladder | 492.8 | −1.6 |
| stomach | 498.0 | −0.5 |
| spleen | 513.5 | 2.6 |
| pancreas | 506.4 | 1.1 |
| liver | 497.6 | −0.6 |
| kidneys | 504.5 | 0.8 |
| lungs | 494.7 | 1.2 |
| Average | 500.7 |
Abbreviations: GCR, galactic cosmic radiation
Calculated “digirat” tissue and skeleton doses after nonisotropic (2-direction) irradiation with GCR simulator beams.
| Tissue | Dose (mGy) | Relative diff. from average (%) |
|---|---|---|
| skin | 491.3 | 0.1 |
| skeleton | 438.3 | −10.7 |
| eye | 493.3 | 0.5 |
| brain | 501.7 | 2.2 |
| heart | 494.1 | 0.7 |
| bladder | 466.5 | −4.9 |
| stomach | 492.0 | 0.3 |
| spleen | 483.0 | −1.6 |
| pancreas | 499.4 | 1.8 |
| liver | 488.1 | −0.5 |
| kidneys | 483.6 | −1.4 |
| lungs | 495.6 | 1.0 |
| Average | 490.7 |
Abbreviations: GCR, galactic cosmic radiation
Fig 10Cumulative dose as a function of LET comparing simulated environments within phantoms to the reference field and GCR simulation beam exposure.
Plot data available in S1 Data. GCR, galactic cosmic radiation; LET, linear energy transfer.
Simplified 5-ion mixed field normalized to 500 mGy.
| Ion species | Energy (MeV/n) | LET | Range (cm) | Dose (mGy) | Percent contribution to total dose (%) | delivery order | Fractionated dose- 24 exposures |
|---|---|---|---|---|---|---|---|
| 1H | 1,000 | 0.2 | 326.6 | 174.1 | 35 | 1 | 7.3 |
| 28Si | 600 | 50.4 | 22.7 | 5.7 | 1 | 2 | 0.2 |
| 4He | 250 | 1.6 | 38.3 | 90.2 | 18 | 3 | 3.8 |
| 16O | 350 | 20.9 | 16.9 | 29.1 | 6 | 4 | 1.2 |
| 56Fe | 600 | 173.8 | 13.1 | 5.1 | 1 | 5 | 0.2 |
| 1H | 250 | 0.4 | 38.1 | 195.9 | 39 | 6 | 8.2 |
| total | 500.0 | 20.8 |
Abbreviations: LET, linear energy transfer
Fig 11Facility layout of NSRL at BNL.
(A) Tools to reliably control system hardware settings, from ion production by the LIS through booster injection, acceleration, extraction, and delivery to the NSRL target room were developed to sequentially deliver the GCR simulator ion-energy beam combinations. (B) Position of imaging chamber behind target (top, left-hand side), cut-off chamber (top, right-hand side) near beam entrance to target room, and photo of large-area degrader (binary filter) system (bottom) in NSRL beam line to maintain control and uniformity of 60 × 60 cm2 beam. BNL, Brookhaven National Laboratory; EBIS, Electron Beam Ion Source; GCR, galactic cosmic radiation; LINAC, Linear Accelerator; LIS, laser ion source; NSRL, NASA Space Radiation Laboratory.
Fig 12Housing array for mouse (A) and rat (B) irradiations in the 60 × 60 cm beam. Exposure boxes, made of approximately 2-mm thick polyethylene, stack together and are held in an array using a fabricated frame strucure. (C) Ventilation lids for air circulation are provided. The nonventilated sides of the lids are painted red to serve as a quick visual cue that the lids are in the correct orientation for air flow.
Fig 13Modified incubator for use in beamline (A) with a holder that can accommodate up to 15 T75 flasks in a 3 × 5 array or 44 T25 flasks (B).
Fig 14Computer screen shot measuring GCR simulator doses per particle for the 20.8 mGy cycle.
GCR, galactic cosmic radiation.