PO.ET01.06 · 实验与分子治疗

抗叶酸ADC——一种具有明确差异化作用机制的靶向治疗新型连接子-药物平台

Antifolate ADCs, a novel linker-drug platform for targeted therapy with a clear differentiating mechanism of action

编号 3178 展板 13 时间 4/20 02:00–05:00 区域 Section 19 主讲 Wim Dokter, PhD
分会场 Targeting Cell Surface Vulnerabilities to Overcome Therapeutic Resistance
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作者与单位 Authors & Affiliations

Ronald C. Elgersma, Renier C. Heijkants, Eline M. Loosveld, Noortje Veen, Chiel A. J. van der Horst, Iris van de Wetering, Arne J. Bramer, Erik Swiers, Tijl Huijbregts, Mike M. Ruth, Monique van der Vleuten, Gerard J. A. Rouwendal, Miranda M. C. Van der Lee, Benno Ingelse, Patrick H. Beusker, Wim H. A. Dokter

Byondis B.V., Nijmegen, Netherlands

摘要 Abstract

中文摘要
背景:对主流ADC载荷——拓扑异构酶I抑制剂和微管蛋白抑制剂——的临床耐药性正在增加,凸显了对具有差异化作用机制(MoA)的新型载荷的需求。甲氨蝶呤(MTX)是一种开创性的抗叶酸药物,彻底改变了肿瘤学和自身免疫性疾病的治疗,但存在肿瘤选择性差和全身毒性的问题。尽管MTX及相关抗叶酸药物已获临床验证,但尚未成功改造为靶向疗法。Byondis重新审视了抗叶酸这一类药物,并将其优化为一个专有的新型连接子-药物平台,目前正处于IND申报支持研究阶段。 结果:Byondis开发了一个同类首创的抗叶酸连接子-药物平台,其特点是经过优化的载荷具有低至亚纳摩尔级的效力,且适合连接子偶联。所得的优化载荷表现出对二氢叶酸还原酶(DHFR)的强效抑制、在广泛细胞系panel中的体外细胞毒性、对耐药相关转运体(BCRP、PGP)的最小亲和力,以及有利的理化性质,从而支持正在进行的连接子-药物(LD)的GMP规模放大和良好的ADC可制造性。所选的优化连接子含有葡萄糖醛酸基团,旨在改善治疗指数。LD的理化性质证明/确保了偶联后对ADC疏水性的影响最小,并完全允许其用于未来的双载荷策略。Byondis的先导抗叶酸ADC基于这一新型抗叶酸LD平台。该抗叶酸ADC基于一种尚未披露的靶向肿瘤抗原的抗体。它在广泛的肿瘤细胞系panel中以及在一个对德鲁替康(deruxtecan)不敏感的细胞系中显示出强效的体外细胞毒性。在NSCLC和HNSCC患者来源异种移植模型中证明了稳健的体内疗效,在导致肿瘤消退的剂量下无显著毒性。该抗叶酸ADC具有最佳的药代动力学和抗肿瘤活性。连接子-药物的GMP生产正在进行中。 结论:该抗叶酸平台以增强的选择性、效力和可制造性,将一种经临床验证的MoA重新引入ADC领域。其正交的MoA在不同肿瘤类型中提供潜力,包括在克服对现有ADC耐药方面的优势,并支持序贯ADC治疗。凭借在各肿瘤类型中的广泛适用性,基于抗叶酸的ADC有望满足未被满足的临床需求,并已准备好进行临床转化。
查看英文原文 English abstract
Background: Clinical resistance to dominant ADC payloads - topoisomerase-I inhibitors and tubulin inhibitors - is increasing, underscoring the need for novel payloads with a differentiated mechanism of action (MoA). Methotrexate (MTX), a pioneering antifolate, revolutionized oncology and autoimmune disease treatment but suffers from poor tumor selectivity and systemic toxicity. Despite its clinical validation, MTX and related antifolates have not been successfully adapted into targeted therapies. Byondis revisited the class of antifolates and optimized these to a proprietary novel linker-drug platform currently in IND-enabling studies. Results: Byondis developed a first-in-class antifolate linker-drug platform, featuring optimized payloads with a low- to sub-nanomolar potency and suitable for linker coupling. The resulting optimized payload demonstrates potent inhibition of dihydrofolate reductase (DHFR), in vitro cytotoxicity in a broad panel of cell lines, minimal affinity for resistance-associated transporters (BCRP, PGP), and favorable physicochemical properties allowing for the ongoing GMP-scale up of the linker-drug (LD) and good ADC manufacturability. The selected optimized linker contains a glucuronide moiety with the aim to improve the therapeutic index. The PhysChem properties of the LD demonstrates / ensures minimal impact on ADC hydrophobicity after conjugation and perfectly allows its use in a future dual payload approach. The Byondis' lead antifolate ADC is based on the novel antifolate LD platform. This antifolate ADC is based on a yet undisclosed tumor antigen targeting antibody. It shows strong in vitro cytotoxicity across a broad tumor cell-line panel and in a deruxtecan insensitive cell-line. Robust in vivo efficacy in NSCLC and HNSCC patient-derived xenograft models is demonstrated, with no significant toxicity at doses resulting in tumor regressions. The antifolate ADC delivers optimal pharmacokinetics and anti-tumor activity. GMP manufacturing of the linker-drug is underway. Conclusions: The antifolate platform reintroduces a clinically validated MoA into the ADC landscape with enhanced selectivity, potency, and manufacturability. Its orthogonal MoA offers potential across different tumor types including an advantage in overcoming resistance to existing ADCs and supports sequential ADC therapy. With broad applicability across tumor types, antifolate-based ADCs are poised to address unmet clinical needs and are ready for clinical translation.
利益披露 Disclosure
R. C. Elgersma, None.. R. C. Heijkants, None.. E. M. Loosveld, None.. N. Veen, None.. C. A. J. van der Horst, None.. I. van de Wetering, None.. A. J. Bramer, None.. E. Swiers, None.. T. Huijbregts, None.. M. M. Ruth, None.. M. van der Vleuten, None.. G. J. A. Rouwendal, None.. M. M. C. Van der Lee, None.. B. Ingelse, None.. P. H. Beusker, None.. W. H. A. Dokter, None.

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