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Star Structure of Antibody-Targeted HPMA Copolymer-Bound Doxorubicin: A Novel Type of Polymeric Conjugate for Targeted Drug Delivery with Potent antitumor Effect

机译:抗体靶向的HPMA共聚物结合的阿霉素的星形结构:一种新型的聚合物共轭物,具有靶向药物的有效抗肿瘤作用。

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The aim of this study was to compare the properties and antitumor potential of a novel type of antibody-targeted N-(2-hydroxypropyl)methacrylamide (HPMA) copolymer-bound doxorubicin conjugates with star structure with those of previously described classic antibody-targeted or lectin-targeted HPMA copolymer-bound doxorubicin conjugates. Classic antibody-targeted conjugates were prepared by aminolytic reaction of the multivalent HPMA copolymer containing side-chains ending in 4-nitrophenyl ester (ONp) reactive groups with primary NH_2 groups of the antibodies. The star structure of antibody-targeted conjugates was prepared using semitelechelic HPMA copolymer chains containing only one reactive N-hydroxysuccinimide group at the end of the backbone chain. In both types of conjugates, B1 monoclonal antibody (mAb) was used as a targeting moiety. B1 mAb recognizes the idiotype of surface IgM on BCL1 cells. The star structure of the targeted conjugate had a narrower molecular mass distribution than the classic structure. The peak in teh star structure was around 300-350 kda, while the classic structure conjugate had a peak around 1300 kDa. Doxoruubicin was bound to the HPMA copolymer via Gly-Phe(D,L)-Leu-Gly spacer to ensure the controlled intracellulr delivery. The release of doxorubicin from polymer conjugates incubated in the presence of cathepsin B was almost twice faster from the star structure of targeted conjugate than from the classic one. The star structure of the targeted conjugate showed a lower binding activity to BCL1 cells in vitro, but the cytostatic activity measured by [~3H]thymidine incorporation was three times higher than that seen with the classic conjugate. Cytostatic activity of nontargeted and anti-Thy 1.2 mAb (irrelevant mAb) modified HPMA copolymer-bound doxorubicin was more than hundred times lower as compared to the star structure of B1 mAb targeted conjugate. In vivo, both types of conjugates targeted with B1 mAb bound to BCL1 cells in the spleen with approximately the same intensity. The classic structure of the targeted conjugate bound to BCL1 cells in the blood with a slightly higher intensity than the star structure. Both types of targeted conjugates had a much stronger antitumor effect than nontargeted HPMA copolymr-boun doxoruubicin and free doxorubicin. The star structure of targeted conjugate had a remarkable higher antitumor effect than the classic structure: a single intravenous dose of 100 #mu#g of doxorubicin given on day 11 ompletely cured five out of nine experimental animals where the classic structure of targeted conjugate given n the same schedule only prolonged the survival of experimnetal mice to 138% of control mice. These results show that the star structure of antibody-targeted HPMA copolymer-bound doxorubicin is a suitable conjugate for targeted drug delivery with better characterization, higher cytostatic activity in vitro, and stronger antitumor potential in vivo than classic conjugates.
机译:这项研究的目的是比较具有星形结构的新型抗体靶向N-(2-羟丙基)甲基丙烯酰胺(HPMA)共聚物结合的阿霉素偶联物的性质和抗肿瘤潜力与先前描述的经典抗体靶向或凝集素靶向的HPMA共聚物结合的阿霉素缀合物。经典的抗体靶向偶联物是通过将以4-硝基苯酯(ONp)反应性基团结尾的侧链末端的多价HPMA共聚物与抗体的主要NH_2基团进行氨解反应制备的。使用在主链末端仅包含一个反应性N-羟基琥珀酰亚胺基团的半遥望HPMA共聚物链制备了抗体靶向的缀合物的星形结构。在两种类型的结合物中,B1单克隆抗体(mAb)均用作靶向部分。 B1 mAb识别BCL1细胞上表面IgM的独特型。靶向缀合物的星形结构比经典结构具有更窄的分子量分布。星形结构的峰值约为300-350 kda,而经典的共轭结构的峰值约为1300 kDa。阿霉素通过Gly-Phe(D,L)-Leu-Gly间隔基与HPMA共聚物结合,以确保受控的细胞内递送。在组织蛋白酶B存在下孵育的聚合物缀合物中阿霉素的释放比目标缀合物的星形结构释放快几乎两倍。靶向缀合物的星形结构在体外显示出对BCL1细胞的较低结合活性,但通过[〜3H]胸苷掺入测量的细胞抑制活性比经典缀合物高3倍。与B1 mAb靶向结合物的星形结构相比,非靶向和抗Thy 1.2 mAb(无关mAb)修饰的HPMA共聚物结合的阿霉素的细胞抑制活性要低100倍以上。在体内,靶向B1 mAb的两种类型的结合物都以大约相同的强度结合到脾脏中的BCL1细胞。靶向缀合物的经典结构以略高于星形结构的强度结合到血液中的BCL1细胞。两种类型的靶向偶联物均比非靶向HPMA共聚多柔比星阿霉素和游离阿霉素具有更强的抗肿瘤作用。靶向缀合物的星形结构比经典结构具有显着更高的抗肿瘤作用:在第11天单次静脉注射100#mu#g阿霉素可以完全治愈9只实验动物中的五只,其中靶向缀合物的经典结构为n相同的时间表只能将实验型小鼠的存活期延长至对照组的138%。这些结果表明,与经典缀合物相比,以抗体为靶的HPMA共聚物结合的阿霉素的星形结构是合适的缀合物,具有更好的表征,更高的体外细胞抑制活性和更强的体内抗肿瘤潜力,可用于靶向药物递送。

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