LBPO.IM02 · 免疫学 · Late-Breaking
抗GARP在对抗PDL1+抗VEGFA治疗耐药的MASH-HCC小鼠模型中逆转免疫抑制并延长总生存
Anti-GARP reverts immune suppression and extends overall survival in a MASH-HCC murine model resistant to anti-PDL1+anti-VEGFA therapy
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景与目的:阿替利珠单抗(抗PDL1)联合贝伐珠单抗(抗VEGFA)(atezo+bev)是晚期肝细胞癌(aHCC)的一线标准治疗(SOC)之一,客观缓解率约30%。在非病毒性HCC(包括代谢功能障碍相关脂肪性肝炎(MASH)相关病例,这是一种日益增多的HCC病因)中,临床获益受到限制。MASH-HCC肿瘤富含TGFβ信号,而后者与atezo+bev耐药相关。TGFβ1配体的生物可利用度及其Treg相关免疫抑制效应受TGFβ锚定受体GARP的调控。因此,我们假设GARP阻断可能逆转免疫抑制并克服MASH-HCC中对aPDL1+aVEGF(SOC)的耐药。
方法:我们使用一种免疫遗传学MASH-HCC模型,该模型结合了饮食诱导的脂肪性肝炎与MYC和CTNNB1过表达(通过流体动力学基因递送),此前已显示可驱动atezo+bev耐药。肿瘤发生后,动物接受SOC+抗GARP(三联组合)、单用SOC或安慰剂治疗直至研究结束。在第14天进行光谱流式细胞术以评估肿瘤微环境的变化(n=5/组)。其余动物随访进行总生存(OS)分析(n=7/组)。在三个独立的HCC患者队列(n=559)中将GARP表达与分子/免疫特征相关联。
结果:与安慰剂相比,SOC+抗GARP显著延长了OS(中位68天对59天,p=0.045),而单用SOC则未能延长(p=0.21)。从免疫角度看,三联组合诱导了CD8+T细胞从中央记忆型(CD62L+CD127+)向肿瘤驻留型(CD62L-CD69+)的转变(p=0.031),同时与安慰剂相比总CD8+(p=0.0028)和CD4+(p=0.016)T细胞增加,提示局部更活跃的T细胞应答。相应地,SOC+抗GARP治疗小鼠的肿瘤表现出效应型(CD44+PD1+TIM3-)(p=0.036)和耗竭型(PD1+TIM3+)CD8+T细胞浸润增加(p=0.007)。在CD4+T细胞中,三联组合还增加了抗原经历型CD44+(p=0.045),并显示出组织驻留记忆型(CD69+CD103+)与Treg(CD25+FOXP3+)比值的增高趋势(p=0.053)。这些变化在单用SOC时均未观察到。在HCC患者中,高GARP表达与免疫耗竭显著相关(87%病例中相对其余患者的倍数变化>1.5),且与其他患者相比Treg浸润增加,凸显了一部分可能从该联合治疗中获益的患者。
结论:我们的研究结果凸显GARP作为一个有前景的治疗靶点,在免疫治疗耐药的MASH-HCC小鼠模型中,将其阻断加入SOC可恢复抗肿瘤免疫浸润并延长总生存OS。
查看英文原文 English abstract
Background and Aims: Atezolizumab (anti-PDL1) plus bevacizumab (anti-VEGFA) (atezo+bev) is one first-line standard-of-care (SOC) treatment for advanced hepatocellular carcinoma (aHCC) with objective responses in ~30% of cases. Clinical benefit is hindered in non-viral HCC, including metabolic dysfunction-associated steatohepatitis (MASH)-related cases, a raising HCC etiology. MASH-HCC tumors are enriched in TGFß signaling, which has been associated with resistance to atezo+bev. The bioavailability and the Treg-related immunosuppressive effect of the TGFß1 ligand is controlled by the TGFbeta-anchoring receptor GARP. Hence, we hypothesize that GARP blockade might revert immune suppression and overcome resistance to aPDL1+aVEGF (SOC) in MASH-HCC.
Method: We used an immune-genetic MASH-HCC model that combines diet-induced steatohepatitis with MYC and CTNNB1 overexpression (via hydrodynamic gene delivery), previously shown to drive atezo+bev resistance. After tumor onset, animals were treated with SOC+anti-GARP (triple combination), SOC alone or placebo until the end of the study. Spectral cytometry was conducted at day 14 to assess changes in the tumor microenvironment (n=5/arm). Remaining animals were followed for overall survival (OS) analysis (n=7/arm). GARP expression was correlated with molecular/immune features in three independent cohorts of HCC patients (n=559).
Results: SOC+anti-GARP significantly extended OS compared to placebo (median of 68 vs 59 days, p=0.045), as opposed to SOC alone (p=0.21). From the immune perspective, the triple combination induced a shift from central memory (CD62L+CD127+) to tumor-resident (CD62L-CD69+) CD8+ T cells (p=0.031) accompanied by an increase in total CD8+ (p=0.0028) and CD4+ (p=0.016) T cells compared to placebo, suggesting a more locally active T-cell response. Accordingly, tumors from SOC+anti-GARP-treated mice presented increased infiltration of both effector (CD44+PD1+TIM3-) (p=0.036) and exhausted (PD1+TIM3+) CD8+ T cells (p=0.007). Among CD4+ T cells, the triple combination also increased antigen-experienced CD44+ (p=0.045) and showed a trend of the ratio between tissue-resident memory (CD69+CD103+) and Tregs (CD25+FOXP3+) (p=0.053) when compared to the rest. None of these changes were observed with SOC alone. In HCC patients, high GARP expression significantly correlated with immune exhaustion (fold-change vs rest >1.5 in 87% of cases), with an increase of Treg infiltration compared with other patients, highlighting a subset of patients that may benefit from this combination.
Conclusions: Our findings highlight GARP as a promising therapeutic target whose blockade restores antitumor immune infiltration and extends survival OS when added to SOC in an immunotherapy-resistant murine model of MASH-HCC.
利益披露 Disclosure
J. Huguet-Pradell, None..
D. Camell-Raventos, None..
E. Fernández-Martínez, None..
A. Lozano, None..
T. de Castro, None..
M. Zeitlhoefler, None..
U. Balaseviciute, None..
A. Gris-Oliver, None..
D. Sia, None..
R. Pinyol, None.
J. Llovet,
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