PO.IM01.02 · 免疫学
iRGD肽重编程肿瘤微环境并在晚期人源化PDAC小鼠模型中增强免疫治疗疗效
The iRGD peptide reprograms the tumor microenvironment and potentiates immunotherapy in an advanced humanized PDAC mouse model.
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
胰腺导管腺癌(PDAC)呈现出富含结缔组织增生、灌注不良且免疫抑制的肿瘤微环境(TME),从而限制了免疫治疗的效果。我们最近发现,肿瘤穿透肽iRGD可结合alphav整合素和神经纤毛蛋白-1(NRP-1),通过靶向肿瘤浸润性调节性T细胞(Tregs)并抑制转化生长因子-beta(TGF-beta,纤维化、血管塌陷和免疫抑制的关键驱动因素),重编程这一恶劣的TME。在此,我们证明iRGD在重建了功能性人类免疫细胞的人源化PDAC小鼠中可产生类似效应。PDAC浸润性Tregs除表达NRP-1外还表达alphavbeta5整合素,使得iRGD在转基因和同基因PDAC模型中能够介导对其的靶向和清除。相比之下,脾脏Tregs缺乏alphavbeta5,因而不受影响。alphavbeta5⁺ Tregs代表了一个高度抑制性的CCR8⁺ Treg亚群。这些alphavbeta5⁺ Tregs也在人类PDAC组织中被鉴定出来,并可由人类CD4⁺ T细胞诱导产生。除Tregs外,alphavbeta5在PDAC的癌细胞、成纤维细胞和内皮细胞上广泛表达。我们近期的研究表明,富含alphavbeta5的TME促进整合素依赖性的TGF-beta激活,而iRGD可有效拮抗这一过程。凭借其肿瘤穿透活性,全身性iRGD单药治疗广泛抑制了同基因PDAC肿瘤中的TGF-beta信号传导,改善了血管灌注,降低了基质纤维密度,并使CD8⁺ T细胞得以深度浸润。iRGD还显著增强了对免疫检查点阻断的应答。在人源化PDAC小鼠中,iRGD重现了这些TME修饰效应:减少血管塌陷和缺氧、增加周细胞覆盖、减少基质纤维、改善CD8/Treg比值并激活人类细胞毒性T细胞。早期数据进一步提示,iRGD与检查点阻断联合应用可延长这些小鼠的生存期。这些发现表明,尽管iRGD的靶蛋白可能存在种属差异,其生物学活性在不同物种间得以保留。总之,iRGD通过alphavbeta5依赖性的Treg靶向和TGF-beta抑制,协调性地重编程了PDAC的TME,从而在小鼠和人源化模型中增强了抗肿瘤免疫。这些结果有力地支持进一步推进基于iRGD的免疫治疗的临床开发,并凸显alphavbeta5作为治疗PDAC及其他富含结缔组织增生、富含TGF-beta肿瘤的一个具有前景、机制明确的靶点。
查看英文原文 English abstract
Pancreatic ductal adenocarcinoma (PDAC) presents a desmoplastic, poorly perfused, and immunosuppressive tumor microenvironment (TME) that limits immunotherapy. We recently discovered that the tumor-penetrating peptide iRGD, which binds alphav integrins and neuropilin-1 (NRP-1), reprograms this hostile TME by targeting tumor-infiltrating regulatory T cells (Tregs) and inhibiting transforming growth factor-beta (TGF-beta), a key driver of fibrosis, vascular collapse, and immune suppression. Here, we show that iRGD elicits similar effects in humanized PDAC mice reconstituted with functional human immune cells. PDAC-infiltrating Tregs expressed alphavbeta5 integrin in addition to NRP-1, enabling iRGD-mediated targeting and depletion in transgenic and syngeneic PDAC models. In contrast, splenic Tregs lacked alphavbeta5 and remained unaffected. alphavbeta5⁺ Tregs represented a highly suppressive CCR8⁺ Treg subset. These alphavbeta5⁺ Tregs were also identified in human PDAC tissue and could be induced from human CD4⁺ T cells. Beyond Tregs, alphavbeta5 was broadly expressed on cancer cells, fibroblasts, and endothelial cells in PDAC. Our recent studies showed that the alphavbeta5-rich TME facilitates integrin-dependent TGF-beta activation, which is effectively antagonized by iRGD. Owing to its tumor-penetrating activity, systemic iRGD monotherapy broadly inhibited TGF-beta signaling in syngeneic PDAC tumors, improving vascular perfusion, reducing stromal fiber density, and enabling deep infiltration of CD8⁺ T cells. iRGD also significantly enhanced the response to immune checkpoint blockade. In humanized PDAC mice, iRGD reproduced these TME-modifying effects: it reduced vascular collapse and hypoxia, increased pericyte coverage, decreased stromal fibers, improved the CD8/Treg ratio, and activated human cytotoxic T cells. Early data further suggest that combining iRGD with checkpoint blockade prolongs survival in these mice. These findings indicate that the biological activity of iRGD is preserved across species despite potential differences in its target proteins. Collectively, iRGD orchestrates a coordinated reprogramming of the PDAC TME through alphavbeta5-dependent Treg targeting and TGF-beta suppression, resulting in enhanced anti-tumor immunity in both mouse and humanized models. These results strongly support further clinical development of iRGD-based immunotherapies and highlight alphavbeta5 as a promising, mechanistically defined target for treating PDAC and other desmoplastic, TGF-beta-rich tumors.
利益披露 Disclosure
N. Miyamura, None..
Y. Kuroda, None..
K. Suzuki, None..
Y. Kunisada, None..
H. Kawai, None..
H. Havia, None..
T. Järvinen, None..
M. Tsuji, None..
K. N. Sugahara, None.