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1.
Proc Natl Acad Sci U S A ; 117(45): 27862-27868, 2020 11 10.
Article in English | MEDLINE | ID: mdl-33093199

ABSTRACT

Fossil-fuel emissions may impact phytoplankton primary productivity and carbon cycling by supplying bioavailable Fe to remote areas of the ocean via atmospheric aerosols. However, this pathway has not been confirmed by field observations of anthropogenic Fe in seawater. Here we present high-resolution trace-metal concentrations across the North Pacific Ocean (158°W from 25°to 42°N). A dissolved Fe maximum was observed around 35°N, coincident with high dissolved Pb and Pb isotope ratios matching Asian industrial sources and confirming recent aerosol deposition. Iron-stable isotopes reveal in situ evidence of anthropogenic Fe in seawater, with low δ56Fe (-0.23‰ > δ56Fe > -0.65‰) observed in the region that is most influenced by aerosol deposition. An isotope mass balance suggests that anthropogenic Fe contributes 21-59% of dissolved Fe measured between 35° and 40°N. Thus, anthropogenic aerosol Fe is likely to be an important Fe source to the North Pacific Ocean.


Subject(s)
Air Pollutants/analysis , Fossil Fuels/adverse effects , Aerosols/analysis , Asia , Environmental Monitoring/methods , Iron/adverse effects , Iron Isotopes/adverse effects , Pacific Ocean , Phytoplankton/drug effects , Phytoplankton/metabolism , Seawater/analysis , Seawater/chemistry , Trace Elements/adverse effects
2.
Int J Mol Sci ; 18(10)2017 Oct 10.
Article in English | MEDLINE | ID: mdl-28994728

ABSTRACT

Space radiation may pose a risk to skeletal health during subsequent aging. Irradiation acutely stimulates bone remodeling in mice, although the long-term influence of space radiation on bone-forming potential (osteoblastogenesis) and possible adaptive mechanisms are not well understood. We hypothesized that ionizing radiation impairs osteoblastogenesis in an ion-type specific manner, with low doses capable of modulating expression of redox-related genes. 16-weeks old, male, C57BL6/J mice were exposed to low linear-energy-transfer (LET) protons (150 MeV/n) or high-LET 56Fe ions (600 MeV/n) using either low (5 or 10 cGy) or high (50 or 200 cGy) doses at NASA's Space Radiation Lab. Five weeks or one year after irradiation, tissues were harvested and analyzed by microcomputed tomography for cancellous microarchitecture and cortical geometry. Marrow-derived, adherent cells were grown under osteoblastogenic culture conditions. Cell lysates were analyzed by RT-PCR during the proliferative or mineralizing phase of growth, and differentiation was analyzed by imaging mineralized nodules. As expected, a high dose (200 cGy), but not lower doses, of either 56Fe or protons caused a loss of cancellous bone volume/total volume. Marrow cells produced mineralized nodules ex vivo regardless of radiation type or dose; 56Fe (200 cGy) inhibited osteoblastogenesis by more than 90% (5 weeks and 1 year post-IR). After 5 weeks, irradiation (protons or 56Fe) caused few changes in gene expression levels during osteoblastogenesis, although a high dose 56Fe (200 cGy) increased Catalase and Gadd45. The addition of exogenous superoxide dismutase (SOD) protected marrow-derived osteoprogenitors from the damaging effects of exposure to low-LET (137Cs γ) when irradiated in vitro, but had limited protective effects on high-LET 56Fe-exposed cells. In sum, either protons or 56Fe at a relatively high dose (200 cGy) caused persistent bone loss, whereas only high-LET 56Fe increased redox-related gene expression, albeit to a limited extent, and inhibited osteoblastogenesis. Doses below 50 cGy did not elicit widespread responses in any parameter measured. We conclude that high-LET irradiation at 200 cGy impaired osteoblastogenesis and regulated steady-state gene expression of select redox-related genes during osteoblastogenesis, which may contribute to persistent bone loss.


Subject(s)
Bone Marrow Cells/radiation effects , Iron Isotopes/adverse effects , Musculoskeletal Physiological Phenomena/radiation effects , Osteogenesis/radiation effects , Oxidative Stress , Radiation Exposure/adverse effects , Animals , Dose-Response Relationship, Radiation , Gene Expression/genetics , Gene Expression/radiation effects , Linear Energy Transfer , Male , Mice , Mice, Inbred C57BL , Osteogenesis/genetics , Oxidation-Reduction/radiation effects , Protons/adverse effects , Radiation Dosage , Radiation, Ionizing
3.
Sci Rep ; 6: 31853, 2016 08 25.
Article in English | MEDLINE | ID: mdl-27558773

ABSTRACT

Travel into outer space is fraught with risk of exposure to energetic heavy ion radiation such as (56)Fe ions, which due to its high linear energy transfer (high-LET) characteristics deposits higher energy per unit volume of tissue traversed and thus more damaging to cells relative to low-LET radiation such as γ rays. However, estimates of human health risk from energetic heavy ion exposure are hampered due to lack of tissue specific in vivo molecular data. We investigated long-term effects of (56)Fe radiation on adipokines and insulin-like growth factor 1 (IGF1) signaling axis in mouse intestine and colon. Six- to eight-week-old C57BL/6J mice were exposed to 1.6 Gy of (56)Fe ions. Serum and tissues were collected up to twelve months post-irradiation. Serum was analyzed for leptin, adiponectin, IGF1, and IGF binding protein 3. Receptor expressions and downstream signaling pathway alterations were studied in tissues. Irradiation increased leptin and IGF1 levels in serum, and IGF1R and leptin receptor expression in tissues. When considered along with upregulated Jak2/Stat3 pathways and cell proliferation, our data supports the notion that space radiation exposure is a risk to endocrine alterations with implications for chronic pathophysiologic changes in gastrointestinal tract.


Subject(s)
Insulin-Like Growth Factor I/metabolism , Intestines/radiation effects , Iron Isotopes/adverse effects , Leptin/blood , Adiponectin/blood , Animals , Cell Proliferation/radiation effects , Colon/metabolism , Colon/radiation effects , Disease Models, Animal , Heavy Ions/adverse effects , Insulin-Like Growth Factor Binding Protein 3/blood , Intestinal Mucosa/metabolism , Mice , Mice, Inbred C57BL , Radiation Exposure/adverse effects , Receptor, IGF Type 1 , Receptors, Leptin/metabolism , Receptors, Somatomedin/metabolism , Signal Transduction/radiation effects
4.
Radiat Res ; 163(2): 172-82, 2005 Feb.
Article in English | MEDLINE | ID: mdl-15658893

ABSTRACT

Early- and late-passage cultures of Fischer rat thyroid cells differ in their growth properties and gap junction competency. Previous studies comparing early- and late-passage cultures exposed to gamma rays and proton beams revealed that differences in growth rate did not influence their responses; however, the presence of connexin 32 gap junctions conferred resistance to gamma radiation. To further assess differences in radiation quality, suspension cultures of early- and late-passage cells were exposed to accelerated iron ions, and their comparative biological responses were measured. The iron-ion-irradiated cells displayed sustained levels of incorporated dUTP, reflecting persistent DNA damage. These results were supported by the frequency of chromosomal damage measured by micronucleus formation. Iron-ion irradiation induced micronuclei at a rate of eight per gray per 100 binucleated cells scored in early-passage cells and nine per gray per 100 binucleated cells scored in late-passage cells. Relative to photons, the calculated radiobiological effectiveness for frequency of micronuclei was 5.7 and 6.4 for the early- and late-passage cultures, respectively (P > 0.05). Levels of apoptosis fluctuated as a function of dose, and modest increases above basal levels persisted throughout the 48-h period. The comparison of retained follicular structures revealed differences in the alpha components of the linear-quadratic dose-response curves (0.60 Gy(-1) for early-passage and 0.71 Gy(-1) for late-passage cultures, P < 0.014). Cell cycle phase redistribution resulted in a G2 arrest (P < 0.001) for both early- and late-passage cultures. In conclusion, the response of thyroid follicular cells to high-LET radiation was not influenced by the presence of gap junctions or the proliferative status of the target cells.


Subject(s)
Chromosomes/radiation effects , Gap Junctions/pathology , Gap Junctions/radiation effects , Iron Isotopes/adverse effects , Thyroid Gland/pathology , Thyroid Gland/radiation effects , Animals , Apoptosis/radiation effects , Cell Cycle/radiation effects , Cell Line , Chromosomes/ultrastructure , Dose-Response Relationship, Radiation , Ions , Radiation Dosage , Rats , Rats, Inbred F344 , Thyroid Gland/physiopathology
5.
Int J Radiat Biol ; 76(12): 1599-606, 2000 Dec.
Article in English | MEDLINE | ID: mdl-11133041

ABSTRACT

PURPOSE: To establish the dose-response relationship for the induction of chromosomal instability in GM10115 cells exposed to high-energy iron ions (1 GeV/nucleon, mean LET 146 keV/microm) and gold ions (11 GeV/nucleon, mean LET 1450 keV/microm). Past work has established that sparsely ionizing X-rays can induce a long-lived destabilization of chromosomes in a dose-dependent manner at an incidence of approximately 3% per gray. The present investigation assesses the capacity of High-Z and High-energy (HZE) particles to elicit this same endpoint. MATERIALS AND METHODS: Clonal populations derived from single progenitor cells surviving heavy-ion irradiation were analyzed cytogenetically to identify those clones showing a persistent destablization of chromosomes. RESULTS: Dose-response data, with a particular emphasis at low dose (< 1.0 Gy), indicate a frequency of approximately 4% per gray for the induction of chromosomal instability in clones derived from single progenitor cells surviving exposure to iron ions. The induction of chromosomal instability by gold ions was, however, less responsive to applied dose, as the observed incidence of this phenotype varied from 0 to 10% over 1-8 Gy. Both iron and gold ions gave dose-dependent increases in the yield of chromosomal aberrations (both chromosome- and chromatid-type) measured at the first mitosis following irradiation, as well as shoulderless survival curves having D0=0.87 and 1.1 Gy respectively. CONCLUSIONS: Based on the present dose-response data, the relative biological effectiveness of iron ions is 1.3 for the induction of chromosomal instability, and this indicates that heavy ions are only slightly more efficient than X-rays at eliciting this delayed phenotype.


Subject(s)
Chromosomes/radiation effects , Heavy Ions , Animals , Cell Line , Cell Survival/radiation effects , Chromosome Aberrations , Cricetinae , Cytogenetics , Dose-Response Relationship, Radiation , Gold Isotopes/adverse effects , In Situ Hybridization, Fluorescence , Iron Isotopes/adverse effects , Metaphase , Phenotype , X-Rays
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