LB023:利用肿瘤治疗场(TTFields)靶向胰腺癌的载药纳米颗粒

P. Desai, S. Prabhu
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The hypothesis involves combination of NPs and TTFields wherein the developed NPs will be preferentially taken up by the tumor owing to leaky vasculature. Further, only under the applied TTFields, the NPs will be destabilized due to high charge density of cationic and anionic polymers leading to targeted release of encapsulated drug at the tumor site (reduction in non-site-specific side effects). For this, multiple batches of two types of S-CAP NPs [chitosan- bovine serum albumin (Chitosan-BSA) and polyethylenimine- bovine serum albumin (PEI-BSA)] were developed. The formulations were optimized using mathematical modelling and Design Expert® software to achieve low particle size and optimum encapsulation efficiency. Based on the results, 2 formulations from each type i.e., chitosan- BSA S-CAP NPs [Batch C4 - particle size: 210.54 ± 38.96 nm, PDI: 0.194, encapsulation efficiency: 61.26 ± 5.11%, zeta potential: (+) 7.38 ± 3.11; Batch C7 - particle size: 215.67 ± 32.55 nm, PDI: 0.201, encapsulation efficiency: 65.31 ± 5.84 %, zeta potential: (+) 3.22 ± 1.28] and PEI-BSA S-CAP NPs [Batch P5 - particle size: 198.29 ± 41.05 nm, PDI: 0.227, encapsulation efficiency: 58.83 ± 3.33%, zeta potential: (+) 8.17 ± 2.63; Batch P8 - particle size: 209.92 ± 31.33 nm, PDI: 0.196, encapsulation efficiency: 64.31 ± 5.13%, zeta potential: (+) 11.49 ± 2.99] were shortlisted that exhibited particle size ~ 200 nm and encapsulation efficiency in range of 55-65 %. All the formulations exhibited sustained drug release profile over a period of 60 h wherein chitosan- BSA S-CAP NPs showed slower drug release compared to PEI-BSA S-CAP NPs (P Citation Format: Preshita Prafulla Desai, Sunil Prabhu. 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引用次数: 0

摘要

肿瘤治疗电场(TTFields)已被临床证明是一种安全、有效和非侵入性的癌症治疗方法。具体而言,TTFields联合吉西他滨/nab-紫杉醇在II期胰腺癌(PC) PANOVA研究中显示出令人鼓舞的结果。必须明白,虽然TTFields非常安全,但同时使用抗癌药物将继续引发非部位特异性不良反应,导致患者总体依从性低。为了克服这一缺点,我们开发了一种创新的策略,称为“肿瘤治疗场触发靶向纳米颗粒”(TTFields-TTONIC)9。为此,开发了包封吉西他滨作为模型抗癌药物的自组装阳离子-阴离子聚合物纳米颗粒(S-CAP NPs)。该假说涉及NPs和TTFields的结合,其中发展的NPs将由于血管渗漏而优先被肿瘤吸收。此外,只有在TTFields作用下,由于阳离子和阴离子聚合物的高电荷密度,NPs才会不稳定,从而导致包封药物在肿瘤部位靶向释放(减少非部位特异性副作用)。为此,研制了多批次的两种S-CAP NPs[壳聚糖-牛血清白蛋白(chitosan- bsa)和聚乙烯亚胺-牛血清白蛋白(PEI-BSA)]。使用数学建模和Design Expert®软件对配方进行优化,以实现低粒径和最佳封装效率。结果表明:壳聚糖- BSA S-CAP NPs[批次C4 -粒径:210.54±38.96 nm, PDI: 0.194,包封效率:61.26±5.11%,zeta电位:(+)7.38±3.11;C7批-粒径:215.67±32.55 nm, PDI: 0.201,包封效率:65.31±5.84%,zeta电位:(+)3.22±1.28]和PEI-BSA S-CAP NPs [P5批-粒径:198.29±41.05 nm, PDI: 0.227,包封效率:58.83±3.33%,zeta电位:(+)8.17±2.63];P8 -粒径为209.92±31.33 nm, PDI为0.196,包封效率为64.31±5.13%,zeta电位为(+)11.49±2.99],包封效率为55 ~ 65%。在60 h内,壳聚糖-BSA S-CAP NPs比PEI-BSA S-CAP NPs释放速度慢(P)。利用肿瘤治疗场(TTFields)靶向胰腺癌的载药纳米颗粒[摘要]。见:美国癌症研究协会2021年年会论文集;2021年4月10日至15日和5月17日至21日。费城(PA): AACR;癌症杂志,2021;81(13 -增刊):摘要nr LB023。
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Abstract LB023: Drug loaded nanoparticle targeting of pancreatic cancer using tumor treating fields (TTFields)
Tumor Treating Fields (TTFields) have been clinically proven as safe, effective, and non-invasive approach for cancer treatment. Specifically, TTFields in conjunction with Gemcitabine/nab-Paclitaxel have shown promising results in Phase II pancreatic cancer (PC) PANOVA study. It is imperative to understand here that while TTFields are very safe, concurrent use of anticancer drugs will continue to elicit non-site-specific adverse effects resulting in overall low patient compliance. To overcome this drawback, we have developed an innovative strategy called ‘Tumor Treating Fields Triggered Targeting of Nanoparticles in Cancer (TTFields-TTONIC)9. For this, self-assembling cationic-anionic polymer nanoparticles (S-CAP NPs) encapsulating Gemcitabine as a model anticancer drug were developed. The hypothesis involves combination of NPs and TTFields wherein the developed NPs will be preferentially taken up by the tumor owing to leaky vasculature. Further, only under the applied TTFields, the NPs will be destabilized due to high charge density of cationic and anionic polymers leading to targeted release of encapsulated drug at the tumor site (reduction in non-site-specific side effects). For this, multiple batches of two types of S-CAP NPs [chitosan- bovine serum albumin (Chitosan-BSA) and polyethylenimine- bovine serum albumin (PEI-BSA)] were developed. The formulations were optimized using mathematical modelling and Design Expert® software to achieve low particle size and optimum encapsulation efficiency. Based on the results, 2 formulations from each type i.e., chitosan- BSA S-CAP NPs [Batch C4 - particle size: 210.54 ± 38.96 nm, PDI: 0.194, encapsulation efficiency: 61.26 ± 5.11%, zeta potential: (+) 7.38 ± 3.11; Batch C7 - particle size: 215.67 ± 32.55 nm, PDI: 0.201, encapsulation efficiency: 65.31 ± 5.84 %, zeta potential: (+) 3.22 ± 1.28] and PEI-BSA S-CAP NPs [Batch P5 - particle size: 198.29 ± 41.05 nm, PDI: 0.227, encapsulation efficiency: 58.83 ± 3.33%, zeta potential: (+) 8.17 ± 2.63; Batch P8 - particle size: 209.92 ± 31.33 nm, PDI: 0.196, encapsulation efficiency: 64.31 ± 5.13%, zeta potential: (+) 11.49 ± 2.99] were shortlisted that exhibited particle size ~ 200 nm and encapsulation efficiency in range of 55-65 %. All the formulations exhibited sustained drug release profile over a period of 60 h wherein chitosan- BSA S-CAP NPs showed slower drug release compared to PEI-BSA S-CAP NPs (P Citation Format: Preshita Prafulla Desai, Sunil Prabhu. Drug loaded nanoparticle targeting of pancreatic cancer using tumor treating fields (TTFields) [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2021; 2021 Apr 10-15 and May 17-21. Philadelphia (PA): AACR; Cancer Res 2021;81(13_Suppl):Abstract nr LB023.
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