PO.ET08.02 · 实验与分子治疗
利用经改造的人类钠/碘同向转运体(NIS)蛋白,以188ReO4-治疗前列腺癌的探索
Towards treating prostate cancer with 188 ReO 4 - using an engineered human sodium/iodide symporter (NIS) protein
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
钠/碘同向转运体(NIS)是介导碘化物(I-)以及各种临床批准的用于成像[如高锝酸盐(99mTcO4-)、放射性碘化物(123I-)和四氟硼酸盐([18F]BF4-)]和治疗目的[如131I-和临床前批准的高铼酸盐(186/188ReO4-)]的放射性示踪剂主动转运的质膜蛋白。80多年来,靶向内照射治疗(TIRT)已成功用于治疗甲状腺癌:给予的放射性碘化物(131I-)通过NIS选择性地在甲状腺癌细胞中蓄积。NIS介导的TIRT是治疗前列腺癌的一种有前景的方法,前列腺癌是美国和欧洲男性中致死率第二高的癌症。约每8名男性中就有1名会在其一生中的某个时刻被诊断出患有前列腺癌。局限性前列腺癌通常采用前列腺切除术或根治性放疗(RT)治疗,但这些治疗未能治愈高达20-40%的患者。对于转移性去势抵抗性前列腺癌(mCRPC),只有极为有限的几种具有独特机制的有效药物:雄激素受体拮抗剂、雄激素合成抑制剂、细胞毒性化疗、免疫细胞转移疗法,以及骨靶向和前列腺特异性膜抗原(PSMA)靶向放射性药物,在mCRPC患者的随机试验中,所有这些药物仅适度改善生存,约4个月。为了使基于NIS的TIRT取得成功,必须克服三个挑战:(i)保护甲状腺免受β辐射,(ii)减轻免疫应答,以及(iii)组织特异性。为克服这些局限性,我们改造了一个具有两个氨基酸替换L253P和V254F的NIS分子:PF-NIS。PF-NIS选择性地转运含氧阴离子,但不转运I-。体外研究证明,与在100 μM I-存在下存活的WT-NIS细胞相比,表达PF-NIS的细胞对186ReO4- + 100 μM I-选择性敏感。为最大限度减少免疫原性,PF-NIS cDNA通过多聚复合物(in vivo jetPEI)递送,并通过前列腺特异性抗原(PSA)启动子确保组织特异性。基于这些数据,对荷PF-NIS肿瘤的无胸腺裸鼠进行了SPECT-CT成像,结果显示在瘤内或静脉递送PF-NIS多聚复合物后,PF-NIS介导的示踪剂在肿瘤中蓄积,并且在给予100 μM I-后甲状腺信号减少了约80%。用188ReO4-治疗显著减小了肿瘤体积,同时保护了小鼠的甲状腺,这利用了188Re相对于186Re或177Lu(目前大多数PSMA靶向放射性药物中使用的放射性核素)更高的能量和更短的半衰期。这种方法构成了一种基于NIS的TIRT的新策略,在保护甲状腺的同时选择性地靶向前列腺癌细胞。
查看英文原文 English abstract
The sodium/iodide symporter (NIS) is the plasma membrane protein that mediates the active transport of iodide (I - ) and various clinically approved radiotracers used for imaging [such as pertechnetate ( 99m TcO 4 - ), radioiodide ( 123 I - ), and tetrafluoroborate ([ 18 F] BF 4 - )] and for therapeutic purposes [e.g., 131 I - and preclinically approved perrhenate ( 186/188 ReO 4 - )]. For over 80 years, targeted internal radiation therapy (TIRT) has been used successfully to treat thyroid cancer: administered radioactive iodide ( 131 I - ) is selectively accumulated in the thyroid cancer cells by NIS. NIS-mediated TIRT is a promising approach to treating prostate cancer, the second deadliest cancer in men in the United States and Europe. About 1 in 8 men will be diagnosed with prostate cancer at some point in their life. Localized prostate cancer is typically treated with prostatectomy or definitive radiotherapy (RT), but these treatments fail to cure up to 20-40% of patients. For metastatic castration-resistant prostate cancer (mCRPC), there are only a very limited number of effective agents available with unique mechanisms: androgen receptor antagonists, inhibitors of androgen synthesis, cytotoxic chemotherapy, immune-cell transfer therapy, and bone-directed and prostate-specific membrane antigen (PSMA)-targeted radiopharmaceuticals, all of which improve survival only modestly , by ~4 months, in randomized trials for patients with mCRPC. In order for NIS-based TIRT to be successful, three challenges must be overcome: (i) thyroid protection from beta-radiation, (ii) immune response mitigation, and (iii) tissue specificity. To overcome these limitations, we engineered a NIS molecule with 2 amino acid substitutions L253P and V254F: PF-NIS. PF-NIS selectively transport oxyanions but does not transport I - . In vitro studies demonstrated that PF-NIS-expressing cells were selectively susceptible to 186 ReO 4 - + 100 µM I - in contrast to WT-NIS cells, which survived in the presence of 100 µM I - . To minimize immunogenicity, PF-NIS cDNA was delivered via polyplexes ( in vivo jetPEI), and tissue specificity was ensured by the prostate-specific antigen (PSA) promoter. Building on these data, athymic nude mice with PF-NIS-bearing tumors were imaged by SPECT-CT, which revealed PF-NIS-mediated tracer accumulation in tumors after intratumoral or intravenous delivery of PF-NIS polyplexes, as well as an ~80% decrease in thyroidal signal following administration of 100 µM I⁻. Treatment with 188 ReO 4 - markedly reduced tumor volume while the thyroids of the mice were protected, leveraging the higher energy and shorter half-life of 188 Re vis-à-vis those of 186 Re or 177 Lu (the radionuclide currently used in most PSMA targeted radiopharmaceuticals). This approach constitutes a novel strategy for NIS-based TIRT, selectively targeting prostate cancer cells while protecting the thyroid.
利益披露 Disclosure
H. Sabbineni, None..
A. Llorente-Esteban, None..
A. Paola Torres-Manzo, None..
D. Karakas, None..
D. Lopez-Gonzalez, None..
V. Kumar Raja, None..
M. Noor Tantawy, None..
T. Giorgio, None..
N. Carrasco, None.