目的:探讨精氨酸-甘氨酸-天冬氨酸(RGD)修饰对肿瘤抑素19肽(T-19)抗肝癌活性的影响,比较分析T-19及RGD修饰的T-19(RGD-T-19)对肝癌SK-Hep-1细胞增殖、侵袭和迁移能力的影响。方法:用Fmoc固相法合成T-19及RGD-T-19,用高效液相色谱仪和质...目的:探讨精氨酸-甘氨酸-天冬氨酸(RGD)修饰对肿瘤抑素19肽(T-19)抗肝癌活性的影响,比较分析T-19及RGD修饰的T-19(RGD-T-19)对肝癌SK-Hep-1细胞增殖、侵袭和迁移能力的影响。方法:用Fmoc固相法合成T-19及RGD-T-19,用高效液相色谱仪和质谱进行分离、鉴定。常规培养SK-Hep-1细胞,用0、50、100、150、200、250μg/mL的T-19及RGD-T-19分别处理细胞,分为0μg/mL(对照)组、50μg/mL组、100μg/mL组、150μg/mL组、200μg/mL组、250μg/mL组。CCK-8法、克隆形成实验、划痕愈合实验和Tanswell小室实验、WB法和q PCR法分别检测SK-Hep-1细胞的增殖、迁移、侵袭能力,以及环氧合酶-2(COX-2)、基质金属蛋白酶-2(MMP-2)、MMP-9、组织基质金属蛋白酶抑制剂-1(TIMP-1)、TIMP-2蛋白和MMP-1、MMP-2 mRNA的表达。结果:经质谱鉴定,用Fmoc固相法合成的T-19及RGD-T-19纯度高。T-19和RGD-T-19均能显著抑制SK-Hep-1细胞的增殖、迁移、侵袭能力,抑制COX-2蛋白、MMP-2和MMP-9蛋白及mRNA的表达、促进TIMP-1、TIMP-2蛋白的表达(P <0.05, P <0.01, P <0.001),RGD-T-19的抑制或促进效应均明显强于T-19(均P <0.05)。结论:利用Fmoc固相法合成了纯度高、活性好的T-19及RGD-T-19,两种肽均能抑制SK-Hep-1细胞增殖、侵袭和迁移能力,RGD-T-19作用明显强于T-19。展开更多
Objective: The effects on cell-cycle and p53 expression in hepatoma cell line SK-Hep-1 were explored by transfecting exogenous p53 small double stranded RNA (dsRNA) into the SK-Hep-1 cells. Methods: p53 dsRNA and EGFP...Objective: The effects on cell-cycle and p53 expression in hepatoma cell line SK-Hep-1 were explored by transfecting exogenous p53 small double stranded RNA (dsRNA) into the SK-Hep-1 cells. Methods: p53 dsRNA and EGFP dsRNA were synthesized. SK-Hep-1 (wtp53) cell line was transfected with 200 ng and 400 ng p53 dsRNA or EGFP and EGFP+EGFP dsRNA (as positive control) or 9% NaCl (as blank control) by liposome transfection technique. Flow cytometry was adopted to measure the effects of p53 dsRNA on cell cycle. Expression of p53 protein was detected by Western-Blotting at 48 h after transfecting p53 dsRNA. Results: The number of G0-G1 phase SK-Hep-1 cells, which were transfected with 200 ng p53 dsRNA, was decreased by 52.53% comparing with the control, and decreased by 50.29% (P<0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. The number of S phase cells, which were transfected with 200 ng p53 dsRNA, was increased by 146.8% comparing with the control, and increased by 128.62% (P<0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. The number of G2-M phase cells, which were transfected with 200 ng p53 dsRNA, was increased by 30.56% (P<0.05) comparing with the control, and increased by 21.63% (P>0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. After 48 h, p53 protein expression was not detected in the SK-Hep-1 cells transfected with p53 dsRNA. Conclusion: p53 dsRNA can obviously improve the proliferation of SK-Hep-1 cells, and suppress p53 protein expression of SK-Hep-1 cells, the former may be related to of the latter.展开更多
文摘目的:探讨精氨酸-甘氨酸-天冬氨酸(RGD)修饰对肿瘤抑素19肽(T-19)抗肝癌活性的影响,比较分析T-19及RGD修饰的T-19(RGD-T-19)对肝癌SK-Hep-1细胞增殖、侵袭和迁移能力的影响。方法:用Fmoc固相法合成T-19及RGD-T-19,用高效液相色谱仪和质谱进行分离、鉴定。常规培养SK-Hep-1细胞,用0、50、100、150、200、250μg/mL的T-19及RGD-T-19分别处理细胞,分为0μg/mL(对照)组、50μg/mL组、100μg/mL组、150μg/mL组、200μg/mL组、250μg/mL组。CCK-8法、克隆形成实验、划痕愈合实验和Tanswell小室实验、WB法和q PCR法分别检测SK-Hep-1细胞的增殖、迁移、侵袭能力,以及环氧合酶-2(COX-2)、基质金属蛋白酶-2(MMP-2)、MMP-9、组织基质金属蛋白酶抑制剂-1(TIMP-1)、TIMP-2蛋白和MMP-1、MMP-2 mRNA的表达。结果:经质谱鉴定,用Fmoc固相法合成的T-19及RGD-T-19纯度高。T-19和RGD-T-19均能显著抑制SK-Hep-1细胞的增殖、迁移、侵袭能力,抑制COX-2蛋白、MMP-2和MMP-9蛋白及mRNA的表达、促进TIMP-1、TIMP-2蛋白的表达(P <0.05, P <0.01, P <0.001),RGD-T-19的抑制或促进效应均明显强于T-19(均P <0.05)。结论:利用Fmoc固相法合成了纯度高、活性好的T-19及RGD-T-19,两种肽均能抑制SK-Hep-1细胞增殖、侵袭和迁移能力,RGD-T-19作用明显强于T-19。
基金This work was supported by the NationalPostdoctoral Science Foundation of China(No.2003034300)
文摘Objective: The effects on cell-cycle and p53 expression in hepatoma cell line SK-Hep-1 were explored by transfecting exogenous p53 small double stranded RNA (dsRNA) into the SK-Hep-1 cells. Methods: p53 dsRNA and EGFP dsRNA were synthesized. SK-Hep-1 (wtp53) cell line was transfected with 200 ng and 400 ng p53 dsRNA or EGFP and EGFP+EGFP dsRNA (as positive control) or 9% NaCl (as blank control) by liposome transfection technique. Flow cytometry was adopted to measure the effects of p53 dsRNA on cell cycle. Expression of p53 protein was detected by Western-Blotting at 48 h after transfecting p53 dsRNA. Results: The number of G0-G1 phase SK-Hep-1 cells, which were transfected with 200 ng p53 dsRNA, was decreased by 52.53% comparing with the control, and decreased by 50.29% (P<0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. The number of S phase cells, which were transfected with 200 ng p53 dsRNA, was increased by 146.8% comparing with the control, and increased by 128.62% (P<0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. The number of G2-M phase cells, which were transfected with 200 ng p53 dsRNA, was increased by 30.56% (P<0.05) comparing with the control, and increased by 21.63% (P>0.05) comparing with the positive control cells transfected with same dosage of EGFP+EGFP dsRNA. After 48 h, p53 protein expression was not detected in the SK-Hep-1 cells transfected with p53 dsRNA. Conclusion: p53 dsRNA can obviously improve the proliferation of SK-Hep-1 cells, and suppress p53 protein expression of SK-Hep-1 cells, the former may be related to of the latter.