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Featured researches published by Xiaodan Hu.


International Journal of Radiation Biology | 2013

Development of Serum Iron as a Biological Dosimeter in Mice

Xiaohong Zhang; Zhichao Lou; Ai-lian Wang; Xiaodan Hu; Haiqian Zhang

Even though serum iron is a commonly used parameter in iron metabolism, it has not yet been applied for biological dosimetry purpose. A new biological dosimeter based on serum iron has been developed in this work. Serum iron levels in mice subjected to gamma rays from a 60Co source were detected with the use of ferrous. The doses are from 0.2–7 Gy with a dose rate of 0.2 Gy/min. The results demonstrate that serum iron level increases with increasing dose. The detection limit based on serum iron has a lower limit of dose detection of about 0.5 Gy and the maximal increase of serum iron observed is maintained 4 h after γ irradiation. Therefore the best suggested time for blood collection is within 4 h after γ irradiation. Two dose-response relationships were observed with both according to degrees of the increase of serum iron levels and different intervals after γ irradiation. The first is a linear relationship of y = 0.98x + 6.76 (r = 0.98) obtained 10 min after γ irradiation; the second is the linear quadratic relationship of y = −0.07x2 + 1.02x + 6.45 (r = 0.99) obtained 7 days after γ irradiation. The absorbed doses of mice estimated with the use of both these two dose-response relationships were close to the actual dose of 1 Gy. It is concluded that serum iron is a quick, simple and sensitive biomarker for early assessment of the absorbed dose of mice.


Health Physics | 2013

Development of serum copper-based biological dosimetry in whole body gamma irradiation of mice.

Xiaohong Zhang; Xuan-yu Min; Ai-lian Wang; Zhichao Lou; Yanan Zhang; Xiaodan Hu; Haiqian Zhang

AbstractA new biological dosimeter based on serum copper has been developed. Serum copper in mice subjected to a 60Co source at a dose rate of 0.5 Gy min−1 was detected using the bis(cyclohexanone) oxaldihydrazone colorimetric method. The dose range was from 0.5–7 Gy. The results demonstrate that serum copper decreases with increasing dose. A linear dose response is obtained. The detection limit based on serum copper is the same as that with the lower limit of dose assessment; i.e., about 1 Gy. The decrease in serum copper continues until the 28th day after gamma radiation. The absorbed doses in mice assessed using the linear curve are close to “blind” doses of 4 and 6 Gy. Therefore, serum copper is a quick, simple, and accurate biomarker for early assessment of radiation exposure of mice in the range of 0.5–7 Gy.


Artificial Cells Nanomedicine and Biotechnology | 2018

Enhancement of radiotherapy efficacy by silver nanoparticles in hypoxic glioma cells

Zhujun Liu; Hongye Tan; Xiaohong Zhang; Feng Chen; Zhuo Zhou; Xiaodan Hu; Shuquan Chang; Peidang Liu; Haiqian Zhang

Abstract Radiotherapy is one of the most widely used treatments for therapy of malignant tumors, but resistance to radiation of hypoxic cells in tumor tissues is still a serious concern. Previous studies have demonstrated that silver nanoparticles (AgNPs) enhance the radiosensitivity of human glioma cells in vitro, but the effect of AgNPs on hypoxic glioma cells has not been investigated in detail. The main purpose of this study is to evaluate the radiosensitizing efficacy of AgNPs on hypoxic glioma cells. The half maximal inhibitory concentration (IC50) values of AgNPs for the hypoxic U251 cells and C6 cells were 30.32 μg/mL and 27.53 μg/mL, respectively. The sensitization enhancement ratio (SER) demonstrated that AgNPs exhibit higher capacity in radiosensitization in hypoxic cells (U251: 1.78; C6: 1.84) than that in normoxic cells (U251: 1.34; C6: 1.45). The underlying mechanism of AgNPs’ radiosensitization in hypoxic cells is through the promotion of apoptosis and enhanced destructive autophagy. There is evidence of crosstalk between apoptosis and autophagy in AgNPs-radiosensitized hypoxic cells where inhibition of autophagy results in decreased apoptosis. These findings suggest that AgNPs can be used as a highly effective nano-radiosensitizer for the treatment of hypoxic glioma.


Health Physics | 2016

Methemoglobin-Based Biological Dose Assessment for Human Blood.

Xiaohong Zhang; Xiaodan Hu; Suying Zhao; Li-hua Xie; Yuji Miao; Qun Li; Rui Min; Peidang Liu; Haiqian Zhang

AbstractMethemoglobin is an oxidative form of hemoglobin in erythrocytes. The authors’ aim was to develop a new biological dosimeter based on a methemoglobin assay. Methemoglobin in peripheral blood (of females or males) that was exposed to a 60Co source (0.20 Gy min−1) was quantified using an enzyme-linked immunosorbent assay. The dose range was 0.5–8.0 Gy. In a time-course experiment, the time points 0, 0.02, 1, 2, 3, 7, 15, 21, and 30 d after 4‐Gy irradiation of heparinized peripheral blood were used. Methemoglobin levels in a lysed erythrocyte pellet from the irradiated blood of females and males increased with the increasing dose. Methemoglobin levels in female blood irradiated with &ggr;-doses more than 4 Gy were significantly higher than those in male samples at the same doses. Two dose-response relations were fitted to the straight line: one is with the correlation coefficient of 0.98 for females, and the other is with the correlation coefficient of 0.99 for males. The lower limit of dose assessment based on methemoglobin is about 1 Gy. Methemoglobin levels in blood as a result of auto-oxidation increase after 7‐d storage at −20 °C. The upregulation of methemoglobin induced by &ggr;-radiation persists for ∼3 d. The absorbed doses that were estimated using the two dose-response relations were close to the actual doses. The results suggest that methemoglobin can be used as a rapid and accurate biological dosimeter for early assessment of absorbed &ggr;-dose in human blood.


Bioinorganic Chemistry and Applications | 2016

Gamma Radiation-Induced Damage in the Zinc Finger of the Transcription Factor IIIA

Xiaohong Zhang; Yuji Miao; Xiaodan Hu; Rui Min; Peidang Liu; Haiqian Zhang

A zinc finger motif is an element of proteins that can specifically recognize and bind to DNA. Because they contain multiple cysteine residues, zinc finger motifs possess redox properties. Ionizing radiation generates a variety of free radicals in organisms. Zinc finger motifs, therefore, may be a target of ionizing radiation. The effect of gamma radiation on the zinc finger motifs in transcription factor IIIA (TFIIIA), a zinc finger protein, was investigated. TFIIIA was exposed to different gamma doses from 60Co sources. The dose rates were 0.20 Gy/min and 800 Gy/h, respectively. The binding capacity of zinc finger motifs in TFIIIA was determined using an electrophoretic mobility shift assay. We found that 1000 Gy of gamma radiation impaired the function of the zinc finger motifs in TFIIIA. The sites of radiation-induced damage in the zinc finger were the thiol groups of cysteine residues and zinc (II) ions. The thiol groups were oxidized to form disulfide bonds and the zinc (II) ions were indicated to be reduced to zinc atoms. These results indicate that the zinc finger motif is a target domain for gamma radiation, which may decrease 5S rRNA expression via impairment of the zinc finger motifs in TFIIIA.


Journal of The Taiwan Institute of Chemical Engineers | 2015

Magnetized bentonite by Fe3O4 nanoparticles treated as adsorbent for methylene blue removal from aqueous solution: Synthesis, characterization, mechanism, kinetics and regeneration

Zhichao Lou; Zhiwei Zhou; Wei Zhang; Xiaohong Zhang; Xiaodan Hu; Peidang Liu; Haiqian Zhang


Radiation and Environmental Biophysics | 2016

Mechanisms of an increased level of serum iron in gamma-irradiated mice

Li-hua Xie; Xiaohong Zhang; Xiaodan Hu; Xuan-yu Min; Qi-fu Zhou; Haiqian Zhang


Chinese Journal of Chemical Engineering | 2017

Synthesis of a novel functional group-bridged magnetized bentonite adsorbent: Characterization, kinetics, isotherm, thermodynamics and regeneration☆

Zhichao Lou; Wei Zhang; Xiaodan Hu; Haiqian Zhang


Artificial Cells Nanomedicine and Biotechnology | 2018

Radiosensitivity enhancement of Fe3O4@Ag nanoparticles on human glioblastoma cells

Xiaohong Zhang; Zhujun Liu; Zhichao Lou; Feng Chen; Shuquan Chang; Yuji Miao; Zhuo Zhou; Xiaodan Hu; Jundong Feng; Qi Ding; Peidang Liu; Ning Gu; Haiqian Zhang


Polymer Composites | 2016

Facile synthesis and antibacterial evaluation of poly(acrylamide‐co‐(β‐cyclodextrin))/silver nanocomposite

Yanan Zhang; Zhichao Lou; Yubing Hu; Wei Zhang; Xiaohong Zhang; Xiaodan Hu; Haiqian Zhang

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Haiqian Zhang

Nanjing University of Aeronautics and Astronautics

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Xiaohong Zhang

Nanjing University of Aeronautics and Astronautics

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Zhichao Lou

Nanjing University of Aeronautics and Astronautics

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Yanan Zhang

Nanjing University of Aeronautics and Astronautics

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Wei Zhang

Nanjing University of Aeronautics and Astronautics

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Xuan-yu Min

Nanjing University of Aeronautics and Astronautics

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Yuji Miao

Nanjing University of Aeronautics and Astronautics

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Ai-lian Wang

Nanjing University of Aeronautics and Astronautics

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Feng Chen

Nanjing University of Aeronautics and Astronautics

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