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双重精氨酸酶抑制剂 OATD-02 对肿瘤微环境的代谢重编程增强抗癌免疫

英文原题:Metabolomic reprogramming of the tumor microenvironment by dual arginase inhibitor OATD-02 boosts anticancer immunity.

查看英文原题

Metabolomic reprogramming of the tumor microenvironment by dual arginase inhibitor OATD-02 boosts anticancer immunity.

PubMed 2025/05/28(内容时间) Sci Rep Q1 · IF 4.9(JCR 2025)

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中文摘要

肿瘤微环境(TME)中的代谢重编程在癌症进展和免疫逃逸中发挥核心作用,其中 L-精氨酸代谢已成为一个关键调控轴。精氨酸酶过表达消耗瘤内 L-精氨酸,从而抑制 T 细胞增殖,同时通过多胺生物合成促进肿瘤生长。OATD-02 是一种新型双重精氨酸酶(ARG1/ARG2)抑制剂,通过恢复 L-精氨酸可用性并降低多胺水平来重编程肿瘤代谢,从而将 TME 转向更具免疫刺激性的状态。与细胞内摄取有限的 ARG1 选择性抑制剂不同,OATD-02 有效抑制细胞外和细胞内精氨酸酶,从而解决了第一代精氨酸酶抑制剂的主要局限性。为了以空间分辨率可视化 OATD-02 给药在小鼠中的药效学效应,我们采用了 MALDI 质谱成像(MALDI-MSI),从而能够直接绘制肿瘤组织内的代谢变化。在临床前模型中,OATD-02 治疗导致瘤内 L-精氨酸广泛蓄积,同时多胺耗竭,并引起代谢转变,这些转变与免疫细胞浸润增加和对免疫检查点阻断的应答改善相关。这些发现强调了双重精氨酸酶抑制在重塑肿瘤代谢和通过恢复免疫细胞的代谢适应性以对抗癌症来克服免疫抑制方面的作用。

OATD-02 治疗引起的代谢变化导致抗肿瘤免疫应答显著增强、肿瘤中 T 细胞浸润增加、引流淋巴结中 CD8⁺ T 细胞扩增,以及 T 细胞活化标志物的全身性上调。这些效应在CT26肿瘤模型中转化为显著的生存获益,尤其是与anti-PD-1疗法联合使用时,OATD-02通过缓解影响TIL(肿瘤浸润淋巴细胞)的代谢限制,提高了检查点阻断的疗效。通过利用MALDI-MSI的独特能力,本研究为OATD-02的作用机制提供了高分辨率的代谢见解,进一步强化了其作为下一代代谢免疫治疗药物的潜力。观察到的代谢重编程,加上增强的免疫激活和延长的生存期,支持将OATD-02作为提高癌症免疫治疗疗效的有前景策略进行临床开发。OATD-02目前正在一项I/II期试验(NCT05759923)中接受临床评估,该试验将进一步阐明其安全性和治疗影响。这些发现突出了精氨酸酶靶向疗法在癌症治疗中的潜力,并强调了MALDI-MSI作为追踪治疗代谢反应强大工具的价值。

展开英文摘要原文

Metabolic reprogramming within the tumor microenvironment (TME) plays a central role in cancer progression and immune evasion, with L-arginine metabolism emerging as a key regulatory axis. Arginase overexpression depletes intratumoral L-arginine, thus suppressing T-cell proliferation while fuelling tumor growth through polyamine biosynthesis. OATD-02, a novel dual arginase (ARG1/ARG2) inhibitor, reprograms tumor metabolism by restoring L-arginine availability and reducing the levels of polyamines, thereby shifting the TME toward a more immunostimulatory state.

Unlike ARG1-selective inhibitors with limited intracellular uptake, OATD-02 effectively inhibits both extracellular and intracellular arginases, thereby addressing a major limitation of first-generation arginase inhibitors. To visualize the pharmacodynamic effects of OATD-02 dosing in mice with spatial resolution, we employed MALDI mass spectrometry imaging (MALDI-MSI), thus enabling direct mapping of metabolic changes within tumor tissues.

In preclinical models, OATD-02 treatment led to widespread accumulation of intratumoral L-arginine with concomitant depletion of polyamines and resulted in metabolic shifts that correlated with increased immune cell infiltration and an improved response to immune checkpoint blockade.

These findings underscore the role of dual arginase inhibition in reshaping tumor metabolism and overcoming immune suppression by restoring the metabolic fitness of immune cells to fight cancer. The metabolic changes caused by OATD-02 treatment resulted in significantly enhanced antitumor immune responses, increased T-cell infiltration in tumors, expansion of CD8⁺ T cells in draining lymph nodes, and systemic upregulation of T-cell activation markers. These effects translated into a substantial survival benefit in the CT26 tumor model, particularly when combined with anti-PD-1 therapy, where OATD-02 improved checkpoint blockade efficacy by relieving metabolic constraints affecting tumor-infiltrating lymphocytes.

By leveraging the unique capabilities of MALDI-MSI, this study provides high-resolution metabolic insights into the mechanism of action of OATD-02, reinforcing its potential as a next-generation metabolic-immunotherapeutic agent.

The observed metabolic reprogramming, coupled with enhanced immune activation and prolonged survival, supports the clinical development of OATD-02 as a promising strategy for enhancing cancer immunotherapy efficacy. OATD-02 is currently undergoing clinical evaluation in a phase I/II trial (NCT05759923), which will further elucidate its safety and therapeutic impact.

These findings highlight the potential of arginase-targeted therapies in cancer treatment and underscore the value of MALDI-MSI as a powerful tool for tracking metabolic responses to therapy.

论文信息

作者
Grzybowski MM、Uçal Y、Muchowicz A、Rejczak T、Kikulska A、Głuchowska KM、Szostakowska-Rodzoś M、Zagożdżon A
单位
Molecure SA, Warsaw, Poland. m.grzybowski@molecure.com.Poland
期刊
Scientific reports2025 May 28
原文标识
PubMed 40437024 · DOI 10.1038/s41598-025-03446-1