scholarly journals Radioprotective Effects of Gallic Acid in Mice

2013 ◽  
Vol 2013 ◽  
pp. 1-13 ◽  
Author(s):  
Gopakumar Gopinathan Nair ◽  
Cherupally Krishnan Krishnan Nair

Radioprotecting ability of the natural polyphenol, gallic acid (3,4,5-trihydroxybenzoic acid, GA), was investigated in Swiss albino mice. Oral administration of GA (100 mg/kg body weight), one hour prior to whole body gamma radiation exposure (2–8 Gy; 6 animals/group), reduced the radiation-induced cellular DNA damage in mouse peripheral blood leukocytes, bone marrow cells, and spleenocytes as revealed by comet assay. The GA administration also prevented the radiation-induced decrease in the levels of the antioxidant enzyme, glutathione peroxidise (GPx), and nonprotein thiol glutathione (GSH) and inhibited the peroxidation of membrane lipids in these animals. Exposure of mice to whole body gamma radiation also caused the formation of micronuclei in blood reticulocytes and chromosomal aberrations in bone marrow cells, and the administration of GA resulted in the inhibition of micronucleus formation and chromosomal aberrations. In irradiated animals, administration of GA elicited an enhancement in the rate of DNA repair process and a significant increase in endogenous spleen colony formation. The administration of GA also prevented the radiation-induced weight loss and mortality in animals (10 animals/group) exposed to lethal dose (10 Gy) of gamma radiation. (For every experiment unirradiated animals without GA administration were taken as normal control; specific dose (Gy) irradiated animals without GA administration serve as radiation control; and unirradiated GA treated animals were taken as drug alone control).

1973 ◽  
Vol 15 (1) ◽  
pp. 123-126 ◽  
Author(s):  
N. Prasad ◽  
S. C. Bushong ◽  
R. S. MacIntyre

Bone marrow cells of the opossum (Didelphis virginiana) were examined 24 hr following a whole-body 60Co radiation dose of 100, 300, 500 and 700 rads. Analysis of the number of chromosomes and the chromosomal aberrations resulted in a radiation sensitivity of 0.000605 aberrations/cell/rad and 0.59 × 10−6 aberrations/cell/rad2 for single-hit and multihit type damage respectively.


Author(s):  
Kanive Parashiva Guruprasad ◽  
Advait Subramanian ◽  
Vikram Jeet Singh ◽  
Raghavendra Sudheer Kumar Sharma ◽  
Puthiya Mundyat Gopinath ◽  
...  

2008 ◽  
Vol 51 (1) ◽  
pp. 37-41 ◽  
Author(s):  
Miroslav Hodek ◽  
Jiřina Vávrová ◽  
Zuzana Šinkorová ◽  
Jaroslav Mokrý ◽  
Stanislav Filip

Experiments presented here were aimed at the description of hematopoiesis repair and in vivo homing of transplanted separated CD117+B220–bone marrow cells after whole-body lethal irradiation at LD 9Gy. ROSA 26 mice were used as donors of marrow cells for transplantation [B6;129S/Gt (ROSA)26Sor] and were tagged with lacZ gene, and F2 hybrid mice [B6129SF2/J] were used as recipients of bone marrow transplanted cells. Hematopoiesis repair was provided by transplantation, both suspension of whole bone marrow cells (5x106) and isolated CD117+B220–cells (5x104). Mice survived up to thirty days after irradiation. We demonstrated that transplantation of suspension of whole bone marrow cells led to faster recovery of CFU-GM (Granulocyte-macrophage colony forming units) in bone marrow and in the spleen too. It is not clear what the share of residential and transplanted cells is in the repair process. Our results demonstrate that sufficient hematopoietic repair occurs after transplantation of CD117+B220–(lacZ+) in lethally irradiated mice, and the difference in CFU-GM numbers in the bone marrow and spleen found on day 8 posttransplant has no influence on the survival of lethally irradiated mice (30 days follow-up).


Blood ◽  
1984 ◽  
Vol 63 (5) ◽  
pp. 1060-1066 ◽  
Author(s):  
M Miura ◽  
CW Jackson ◽  
SA Lyles

Abstract To gain insight into the regulation of megakaryocyte precursors in vivo, we assayed (in vitro) megakaryocyte growth-promoting activity (Meg-GPA) in plasma of rats in which both marrow hypoplasia and thrombocytopenia had been induced by irradiation. Rats received whole body irradiation of 834 rad from a 137Cs source. Plasma was collected at intervals of hours to days, up through day 21 postirradiation, and was tested, at a concentration of 30%, for Meg-GPA on bone marrow cells cultured in 1.1% methylcellulose with 5 X 10(-5) M 2-mercaptoethanol. With normal rat plasma, no megakaryocyte colonies (defined as greater than or equal to 4 megakaryocytes) were seen and only a few single megakaryocytes and clusters (defined as 2 or 3 megakaryocytes) were formed. Two peaks of plasma Meg-GPA were observed after irradiation. The first appeared at 12 hr, before any decrease in marrow megakaryocyte concentration or platelet count. The second occurred on days 10–14 after irradiation, after the nadir in megakaryocyte concentration and while platelet counts were at their lowest levels. A dose-response study of plasma concentration and megakaryocyte growth, using plasma collected 11 days postirradiation, demonstrated that patterns of megakaryocyte growth were related to plasma concentration; formation of single megakaryocytes was optimal over a range of 20%-30% plasma concentration, while cluster and colony formation were optimal at a plasma concentration of 30%. All forms of megakaryocyte growth were decreased with 40% plasma. There was a linear relationship between the number of bone marrow cells plated and growth of single cells, clusters, and colonies using a concentration of 30% plasma collected 11 days after irradiation. We conclude that irradiation causes time- related increases in circulating megakaryocyte growth-promoting activity. We suggest that the irradiated rat is a good model for studying the relationships between Meg-GPA and megakaryocyte and platelet concentration in vivo.


2019 ◽  
Vol 51 (5) ◽  
pp. 371-379
Author(s):  
Maryam Hazbavi ◽  
Mansoureh Zarei ◽  
Roghayeh Nazaralivand ◽  
Hojattollah Shahbazian ◽  
Mohsen Cheki

Blood ◽  
2015 ◽  
Vol 126 (23) ◽  
pp. 2390-2390 ◽  
Author(s):  
Masaru Yamaguchi ◽  
Tokuhisa Hirouchi ◽  
Mitsuru Chiba ◽  
Satoru Monzen ◽  
Hironori Yoshino ◽  
...  

Abstract Radiation-related casualties following exposure to a lethal dose of ionizing radiation show severe acute radiation syndromes (ARS) involving bone marrow death and gastrointestinal death. ARS cause decreases in red blood cell count, white blood cell count, platelet count and gastrointestinal dysfunction, finally leading to death caused by systemic bleeding. Therefore, reconstitution and restoration of hematopoiesis is a top priority. Although bone marrow transplantation (BMT) is also available for recovery from radiation-induced bone marrow damage, BMT for victims in radiation accidents has many limitations, including histocompatibility, age constraints, HLA type and the fact that immunosuppression would be required to reduce the risk of graft versus host rejection. In contrast, pharmacological approaches can accommodate a large number of victims with few limitations. Our previous study showed that the combined administration of erythropoietin, granulocytecolony stimulating factor and nandrolone decanoate after lethal ionizing irradiation resulted in the survival of approximately 50% of irradiated mice at day 30. When a c-Mpl agonist (Romiplostim: RP) was added to this protocol, 100% survival was obtained. Finally, we found that RP play a key role in the survival of irradiated mice. In the present study, we examined the effects of RP alone on mice exposed to lethal radiation. RP was administered at a dosage of 50 μg/kg of body weight/day to 8-weekold female C57BL/6JJcl mice for 1, 3, or 5 days immediately following exposure to a lethal 7 Gy dose of 137Cs γ-rays. The condition of each animal was analyzed via morphological evaluations of the small intestine and various parameters such as the numbers of peripheral blood cells, bone marrow cells, and hematopoietic progenitor cells along with cell surface antigen expression. By day 30, all untreated irradiated control mice died, whereas RP administration for 3 or 5 consecutive days after irradiation led to a 100% survival rate among the irradiated mice. At this time, the numbers of peripheral blood cells, bone marrow cells and hematopoietic progenitor cells were not significantly different between RP-untreated non-irradiated and RP-treated irradiated mice. In addition, the expression of macrophages, granulocytes and erythroid progenitors-related cell surface antigens on the bone marrow cells was significantly recovered in RP-treated irradiated mice compared to RP-untreated irradiated mice until day 20 after γ-irradiation. And, to estimate the effects of RP on gastrointestinal tissues in each individual, morphological evaluation H&E stain of the small intestine was performed until day 20 after γ-irradiation. As a result, RP promoted the recovery of gastrointestinal tissues damages in RP-treated irradiated mice compared to RP-untreated irradiated mice. Regarding cell death, radiation-induced gamma-H2AX expression in the nuclear of bone marrow cell was significantly decreased in RP-treated irradiated mice compared to RP-untreated irradiated mice immediately and after a period of 24 hours following a lethal 7 Gy dose of X-irradiation, indicating that the rate of apoptotic bone marrow cells was significantly decreased by RP-treatment. Meanwhile, 53BP1, which is well known as non-homologous end joining (NHEJ) factor, was significantly increased, showing that RP promoted NHEJ DNA repair in bone marrow cells treated with RP. These results demonstrate that c-Mpl agonist RP promotes the recovery of serious damages caused by lethal irradiation to the hematopoietic and gastrointestinal systems, and RP might be a useful radiomitigator in the case of ARS. Disclosures No relevant conflicts of interest to declare.


Sign in / Sign up

Export Citation Format

Share Document