Xin-chen Sun
Southeast University
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Featured researches published by Xin-chen Sun.
International Journal of Nanomedicine | 2008
Baoan Chen; Qian Sun; Xuemei Wang; Feng Gao; Yongyuan Dai; Yan Feng Yin; Ding Jh; Chong Shou Gao; Jian Cheng; Jingyuan Li; Xin-chen Sun; Ning-Na Chen; Xu Wl; Huiling Shen; Delong Liu
Drug resistance is a primary hindrance for efficiency of chemotherapy. To investigate whether Fe3O4-magnetic nanoparticles (Fe3O4-MNPs) loaded with adriamycin (ADM) and tetrandrine (Tet) would play a synergetic reverse role in multidrug resistant cell, we prepared the drug-loaded nanoparticles by mechanical absorption polymerization to act with K562 and one of its resistant cell line K562/A02. The survival of cells which were cultured with these conjugates for 48 h was observed by MTT assay. Using cells under the same condition described before, we took use of fluorescence microscope to measure fluorescence intensity of intracellular ADM at an excitation wavelength of 488 nm. P-glycoprotein (P-gp) was analyzed with flow cytometer. The expression of mdr1 mRNA was measured by RT-PCR. The results showed that the growth inhibition efficacy of both the two cells increased with augmenting concentrations of Fe3O4-MNPs which were loaded with drugs. No linear correlation was found between fluorescence intensity of intracellular adriamycin and augmenting concentration of Fe3O4-MNPs. Tet could downregulate the level of mdr-1 gene and decrease the expression of P-gp. Furthermore, Tet polymerized with Fe3O4-MNPs reinforced this downregulation, causing a 100-fold more decrease in mdr1 mRNA level, but did not reduce total P-gp content. Our results suggest that Fe3O4-MNPs loaded with ADM or Tet can enhance the effective accumulation of the drugs in K562/A02. We propose that Fe3O4-MNPs loaded with ADM and Tet probably have synergetic effect on reversal in multidrug resistance.
International Journal of Nanomedicine | 2009
Baoan Chen; Jian Cheng; Mingfang Shen; Feng Gao; Xu Wl; Hui-lin Shen; Ding Jh; Chong Gao; Qian Sun; Xin-chen Sun; Hongyan Cheng; Guo-hong Li; Wen-ji Chen; Ning-Na Chen; Li-jie Liu; Xiaomao Li; Xuemei Wang
Apoptosis is a common pathway that finally mediated the killing functions of anticancer drugs, which is an important cause of multidrug resistance (MDR). The aim of this study was to investigate the potential benefit of combination therapy with magnetic nanoparticle of Fe3O4 (MNP(Fe3O4)) and 5-bromotetrandrin (BrTet). Analysis of the apoptosis percentage showed that combination of daunorubicin (DNR) with either MNP(Fe3O4) or BrTet exerted a potent cytotoxic effect on K562/A02 cells, while MNP(Fe3O4) and BrTet cotreatment can synergistically enhance DNR-induced apoptosis. Importantly, we confirmed that the distinct synergism effect of that composite on reverse multidrug resistance may owe to the regulation of various proliferative and antiapoptotic gene products, including P53 and caspase-3. Thus our in vitro data strongly suggests a potential clinical application of MNP(Fe3O4) and BrTet combination on CML.
International Journal of Nanomedicine | 2009
Baoan Chen; Bin-bin Lai; Jian Cheng; Guohua Xia; Feng Gao; Xu Wl; Ding Jh; Chong Gao; Xin-chen Sun; Cui-Rong Xu; Wen-ji Chen; Ning-Na Chen; Li-jie Liu; Xiaomao Li; Xuemei Wang
Multidrug resistance (MDR) is a major obstacle to cancer chemotherapy. We evaluated the effect of daunorubicin (DNR)-loaded magnetic nanoparticles of Fe3O4 (MNPs-Fe3O4) on K562-n/VCR cells in vivo. K562-n and its MDR counterpart K562-n/VCR cell were inoculated into nude mice subcutaneously. The mice were randomly divided into four groups: group A received normal saline, group B received DNR, group C received MNPs-Fe3O4, and group D received DNR-loaded MNPs-Fe3O4. For K562-n/VCR tumor, the weight was markedly lower in group D than that in groups A, B, and C. The transcriptions of Mdr-1 and Bcl-2 gene were significantly lower in group D than those in groups A, B, and C. The expression of Bcl-2 was lower in group D than those in groups A, B, and C, but there was no difference in the expression of P-glycoprotein. The transcriptions and expressions of Bax and caspase-3 in group D were increased significantly when compared with groups A, B, and C. In conclusion, DNR-loaded MNPs-Fe3O4 can overcome MDR in vivo.
International Journal of Nanomedicine | 2009
Baoan Chen; Jian Cheng; Yanan Wu; Feng Gao; Xu Wl; Hui-lin Shen; Ding Jh; Chong Gao; Qian Sun; Xin-chen Sun; Hongyan Cheng; Guo-hong Li; Wen-ji Chen; Ning-Na Chen; Li-jie Liu; Xiaomao Li; Xuemei Wang
In this paper we establish the xenograft leukemia model with stable multidrug resistance in nude mice and to investigate the reversal effect of 5-bromotetrandrine (5-BrTet) and magnetic nanoparticle of Fe3O4 (MNP-Fe3O4) combined with daunorubicin (DNR) in vivo. Two subclones of K562 and K562/A02 cells were inoculated subcutaneously into the back of athymic nude mice (1 × 107 cells/each) respectively to establish leukemia xenograft models. Drug-resistant and sensitive tumor-bearing nude mice were assigned randomly into five groups which were treated with normal saline; DNR; NP-Fe3O4 combined with DNR; 5-BrTet combined with DNR; 5-BrTet and MNP-Fe3O4 combined with DNR, respectively. The incidence of formation, growth characteristics, weight, and volume of tumors were observed. The histopathologic examination of tumors and organs were detected. For resistant tumors, the protein levels of Bcl-2, and BAX were detected by Western blot. Bcl-2, BAX, and caspase-3 genes were also detected. For K562/A02 cells xenograft tumors, 5-BrTet and MNP-Fe3O4 combined with DNR significantly suppressed growth of tumor. A histopathologic examination of tumors clearly showed necrosis of the tumors. Application of 5-BrTet and MNP-Fe3O4 inhibited the expression of Bcl-2 protein and upregulated the expression of BAX and caspase-3 proteins in K562/A02 cells xenograft tumor. It is concluded that 5-BrTet and MNP-Fe3O4 combined with DNR had a significant tumor-suppressing effect on a MDR leukemia cells xenograft model.
International Journal of Nanomedicine | 2009
Jian Cheng; Weiwei Wu; Baoan Chen; Feng Gao; Xu Wl; Chong Gao; Ding Jh; Yun-Yu Sun; Song Hh; Wen Bao; Xin-chen Sun; Cui-Rong Xu; Wen-ji Chen; Ning-Na Chen; Li-jie Liu; Guohua Xia; Xiaomao Li; Xuemei Wang
This study aims to evaluate the multidrug resistance (MDR) reversal activity by magnetic nanoparticles of Fe3O4 (MNPs-Fe3O4) and 5-bromotetrandrine (BrTet) MDR cell line K562/A02 solitarily or symphysially. The proliferation of K562 and K562/A02 cells and the cytotoxicity on peripheral blood mononuclear cells (PMBCs) were evaluated by MTT assay. Cellular accumulation of daunorubicin (DNR) was analyzed by flow cytometry. Real-time polymerase chain reaction and Western blotting analyses were performed to examine the mRNA and protein levels of mdr1, respectively. The results showed that the combination of MNPs-Fe3O4 and BrTet with effective concentrations significantly increased cytotoxicity against MDR cell line K562/A02. Both BrTet and MNPs-Fe3O4 increased the intracellular DNR accumulation in the K562/A02 cell line, and downregulated the level of mdr1 gene and expression of P-glycoprotein. Furthermore, the combination did not have significant cytotoxicity in PMBCs. We propose that MNPs-Fe3O4 conjugated with DNR and BrTet probably have synergetic effects on MDR reversal.
International Journal of Nanomedicine | 2009
Baoan Chen; Yiqiong Liang; Weiwei Wu; Jian Cheng; Guohua Xia; Feng Gao; Ding Jh; Chong Gao; Shao Zy; Guo-hong Li; Wen-ji Chen; Xu Wl; Xin-chen Sun; Li-jie Liu; Xiaomao Li; Xuemei Wang
Gambogic acid (GA) has a significant anticancer effect on a wide variety of solid tumors. Recently, many nanoparticles have been introduced as drug-delivery systems to enhance the efficiency of anticancer drug delivery. The aim of this study was to investigate the potential benefit of combination therapy with GA and magnetic nanoparticles of Fe3O4 (MNPs-Fe3O4). The proliferation of K562 cells and their cytotoxicity were evaluated by MTT assay. Cell apoptosis was observed and analyzed by microscope and flow cytometry, respectively. Furthermore, real-time polymerase chain reaction and Western blotting analyses were performed to examine gene transcription and protein expression, respectively. The results showed that MNPs-Fe3O4 dramatically enhanced GA-induced cytotoxicity and apoptosis in K562 cells. The typical morphological features of apoptosis treated with GA and MNPs-Fe3O4 were observed under an optical microscope and a fluorescence microscope, respectively. The transcription of caspase-3 and bax gene in the group treated with GA and MNPs-Fe3O4 was higher than that in the GA-alone group or MNPs-Fe3O4-alone group, but the transcription of bcl-2, nuclear factor-κB, and survivin degraded as did the expression of corresponding proteins in K562 cells. Our data suggests a potential clinical application of a combination of GA and MNPs-Fe3O4 in leukemia therapy.
Acta Biochimica et Biophysica Sinica | 2007
Xin-chen Sun; Ruizhi Xu; Yu-xia Deng; Hongyan Cheng; Jun Ma; Jiazhong Ji; Yingfeng Zhou
Journal of Experimental Hematology | 2009
Mingfang Shen; Bao-An Chen; Jian Cheng; Feng Gao; Xu Wl; Ding Jh; Chong Gao; Xin-chen Sun; Guo-hong Li; Wen-ji Chen; Li-jie Liu; Xiaomao Li; 王雪
Blood | 2009
Bao-An Chen; Peipei Mao; Jian Cheng; Feng Gao; Ding Jh; Chong Gao; Wei Zhang; Cui-Rong Xu; Xu Wl; Xin-chen Sun; Ning-Na Chen; Xiaomao Li; Xuemei Wang
Blood | 2009
Bao-An Chen; Weiwei Wu; Jian Cheng; Feng Gao; Xu Wl; Chong Gao; Ding Jh; Xin-chen Sun; Cui-Rong Xu; Ning-Na Chen; Guohua Xia; Xuemei Wang; Wen-ji Chen; Li-jie Liu; Xiaomao Li