化学学报 上一篇    下一篇

研究论文

抗神经胶质瘤多肽药物偶联物的设计、合成及活性研究

戴志成a, 郝建博a, 刘琪a, 官瑞丽*,b, 王少华*,a   

  1. a兰州大学药学院&天然产物化学全国重点实验室 兰州 730000;
    b空军军医大学&特殊作业环境危害评估与防治教育部重点实验室 西安 710032
  • 投稿日期:2026-06-20
  • 作者简介:“纪念兰州大学化学学科创建80周年”专辑
  • 基金资助:
    国家重点研发计划(No. 2023YFA1506404), 国家自然科学基金(22401123, 22501118), 甘肃省科技计划(23ZDFA003, 23ZDFA015, 23JRRA1028, 23CXGA0043, 24JRRA941, 24ZDFA003, 24ZD13FA017, 26JRRA175), 兰州市科技计划(2023-QN-18, 2023-1-17, 2024-1-17), 中央高校基本科研业务专项(lzujbky-2024-17, 2025CXZX-106, LZU-GXJJ-2025-007), 国家卫生健康委中心临床科研专项(WKZX2023CX200002)资助项目.

Design, synthesis, and activity evaluation of anti-glioma peptide-drug conjugates

Zhi-Cheng Daia, Jian-Bo Haoa, Qi Liua, Ruili-Guan*,b, Shao-Hua Wang*,a   

  1. aSchool of Pharmacy & State Key Laboratory of Applied Organic Chemistry, Lanzhou, 730000;
    bMinistry of Education Key Laboratory of Hazard Assessment and Control in Special Operational Environments, Fourth Military Medical University, Xi’an, 710032
  • Received:2026-06-20
  • Contact: *E-mail: wangshh@lzu.edu.cn; 772036128@qq.com
  • Supported by:
    National Key R&D Program of China (2023YFA1506404), the National Natural Science Foundation of China (22401123, 22501118), the Science and Technology Program of Gansu Province (23ZDFA003, 23ZDFA015, 23JRRA1028, 23CXGA0043, 24JRRA941, 24ZDFA003, 24ZD13FA017, 26JRRA175), the Lanzhou Science and Technology Planning Project (2023-QN-18, 2023-1-17, 2024-1-17), the Fundamental Research Funds for the Central Universities (lzujbky-2024-17, 2025CXZX-106, LZU-GXJJ-2025-007), the DCMST.NHC Clinical Research Project (WKZX2023CX200002).

神经胶质瘤是常见的原发性脑肿瘤,其临床药物治疗面临血脑屏障穿透性差和耐药性高的双重挑战。多肽药物偶联物(PDC)通过多肽靶向实现药物精准递送,其中双功能性多肽兼具穿透和靶向能力,有望解决上述临床问题。本研究设计并合成了一系列以Nestin蛋白为靶点的双功能性多肽NTP及其类似物,并将其与替莫唑胺偶联形成PDC化合物,系统评价其蛋白靶向性、体外抗胶质瘤活性及血脑屏障穿透性。结果显示,将NTP序列中的Asn残基替换成丙氨酸的化合物对U87细胞的抑制作用最优,IC50值约为24μM,且表现出良好的血脑屏障穿透性。这一发现为后续结构优化提供了参考,并为克服胶质瘤治疗难题提供了新的策略。

关键词: 神经胶质瘤, 多肽药物偶联物, 替莫唑胺, 靶向性, 体外活性, 血脑屏障

Glioma is a highly malignant primary brain tumor, with glioblastoma (GBM) exhibiting the highest incidence and a recurrence rate near 100%, imposing severe economic and clinical burdens. Its clinical treatment is severely limited by poor blood-brain barrier (BBB) permeability and high multidrug resistance. To address these challenges, peptide-drug conjugates (PDCs) provide a promising strategy by pairing small-molecule drugs with targeting or cell-penetrating peptides to achieve precise delivery. In this study, a novel Nestin-targeting peptide (NTP) was designed by combining a GSCT peptide (AQYLNPS) that specifically binds to Nestin—a marker highly expressed in glioma stem cells—with a matrix metalloproteinase (MMP)-2/9 sensitive cleavage linker (PVGLIG) and a lysine residue providing a covalent conjugation site via its side-chain ε-amino group. Temozolomide (TMZ), a frontline chemotherapeutic payload prone to systemic toxicity, was conjugated to NTP and its alanine-scanning mutants (NTP-9 to NTP-14) to systematically elucidate the key functional hotspots and structure-activity relationships of the sequence. The synthesized PDC-5 series compounds were thoroughly evaluated across U87, U251, and LN229 glioma cell lines for cellular uptake, in vitro cytotoxicity, and BBB permeability. Western blot analysis revealed that the cellular uptake efficiency of the fluorescently labeled PDCs strongly correlated with the gradient of Nestin protein expression levels across the cell lines (U251 > LN229 > U87), confirming excellent targeting specificity. In vitro cytotoxicity assays via CCK-8 demonstrated distinct activity profiles among the mutants; notably, substituting asparagine (Asn) with alanine in the sequence showed potent inhibition of U87 glioma cells with an IC50 value of approximately 24 μM. Furthermore, MTT assays confirmed that the PDC-5 series exerted no obvious toxic effects against bEnd.3 brain microvascular endothelial cells. Transwell permeability assays showed that the prototype NTP-TMZ possessed the highest BBB penetration capability. Alanine substitutions at the N-terminal side of the Asn residue caused minor changes, whereas substituting Asn itself or its C-terminal adjacent residues significantly decreased permeability. Crucially, replacing Asn with alanine reduced the apparent permeability coefficient to less than half of the prototype, identifying Asn as a critical hotspot for maintaining BBB crossing functionality. Although in vitro antitumor efficacy faced limitations due to potential tertiary structure shielding or absence of environmental MMP enzymes for linker cleavage, these findings establish a valuable foundation for future structural optimizations, including orthotopic glioma model evaluations, offering a novel strategy for targeted glioma therapy.

Key words: Glioma, peptide-drug conjugate, temozolomide, targeting ability, in vitro activity, blood-brain barrier