PO.CL05.10 · 临床研究
多模式免疫治疗重塑肝细胞癌的肿瘤微环境:一项II期试验的整合空间与转录组学分析
Multimodal immunotherapy remodels the tumor microenvironment in hepatocellular carcinoma: Integrative spatial and transcriptomic profiling from a Phase II trial
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
背景:肝细胞癌(HCC)因免疫排斥、基质屏障和异常血管而对免疫检查点阻断在很大程度上难治。我们评估了多模式治疗——用于抗原释放的外照射放疗(EBRT)、用于抗原呈递的瘤内树突状细胞(DC)疫苗、用于免疫激活的PD-L1阻断以及用于血管正常化的VEGF抑制——能否将"冷"HCC肿瘤转化为持续的免疫炎症状态。
方法:对参加一项正在进行的II期试验(NCT03942328)的三名患者的系列活检(基线、EBRT后、治疗结束时[EOT]以及进展时[PD],如有)进行多重免疫荧光、空间邻域分析和转录组学分析。比较了细胞组成、免疫-基质结构、空间接触网络和通路活性的纵向变化。
结果:基线肿瘤微环境(TME)呈强烈免疫排斥,以肿瘤(PanCK⁺60-70%)和基质(SMA⁺/Vimentin⁺25-30%)为主,免疫浸润稀少(<10-15%)。治疗后,所有患者的免疫复杂性和空间连接性均增加2-3倍。患者1表现出稳健的由冷转热转化,CD8⁺(3倍)、CD4⁺(2.2倍)和DC(2.3倍)扩增,CD8-DC相互作用增加(2.5倍),肿瘤比例降低(-40%)。转录组学显示IFN-gamma(↑3.4倍)、HLA-DRA(↑2.7倍)显著上调,VEGFR2(↓50%)和HIF1A(↓40%)降低,与血管正常化一致。患者2表现出基质/血管重塑和T细胞浸润改善,但免疫多样性受限,CD4⁺/CD8⁺配对增加(↑2.2倍),B/NK细胞减少(↓60%)。邻域多样性上升(3→7个群落),免疫-肿瘤接近度改善(距离↓35%)。患者3表现出短暂的炎症化,CD8⁺(↑3倍)、DC(↑2倍)以及新出现的CD4-CD20/CD4-CD56相互作用,随后复发,表现为基质/髓系再扩增(SMA⁺↑1.8倍,CD14⁺↑2.5倍)、血管生成复燃(VEGFR2/CD34⁺↑2.2倍)、免疫网络收缩,以及从激活性CTNNB1突变缺失到ATM获得的基因组转变。DC聚集但主要定位于DC-DC或DC-髓系生态位,提示无效的抗原呈递。
结论:多模式EBRT+DC+PD-L1/VEGF阻断诱导四方协同的TME重编程——抗原释放、免疫启动、检查点解除和血管正常化——促进HCC由冷转热转化。持久的炎症化与持续的T细胞/DC扩增和血管重塑相关,而复发则反映基质/髓系强化和基因组适应。这些发现界定了TME重塑的机制轨迹,并凸显了HCC持续免疫治疗反应的可干预障碍。
查看英文原文 English abstract
Background : Hepatocellular carcinoma (HCC) is largely refractory to immune checkpoint blockade due to immune exclusion, stromal barriers, and aberrant vasculature. We evaluated whether multimodal therapy - external beam radiotherapy (EBRT) for antigen release, intratumoral dendritic cell (DC) vaccination for antigen presentation, PD-L1 blockade for immune activation, and VEGF inhibition for vascular normalization - could convert “cold” HCC tumors into sustained immune-inflamed states.
Methods : Serial biopsies (baseline, post-EBRT, end-of-treatment [EOT], and progression [PD] when available) from three patients enrolled in an ongoing phase II trial (NCT03942328) underwent multiplex immunofluorescence, spatial neighborhood analysis, and transcriptomic profiling. Longitudinal changes in cellular composition, immune-stromal architecture, spatial contact networks, and pathway activity were compared.
Results : Baseline tumor microenvironments (TMEs) were strongly immune-excluded, dominated by tumor (PanCK⁺60-70%) and stroma (SMA⁺/Vimentin⁺25-30%) with sparse immune infiltration (<10-15%). Post-therapy, immune complexity and spatial connectivity increased 2-3-fold in all patients. Patient 1 showed robust cold-to-hot conversion with CD8⁺(3x), CD4⁺(2.2x), and DC (2.3x) expansion, increased CD8-DC interactions (2.5x), and reduced tumor fraction (-40%). Transcriptomics showed marked upregulation of IFN-gamma (↑3.4x), HLA-DRA (↑2.7x), and reductions in VEGFR2 (↓50%) and HIF1A (↓40%), consistent with vascular normalization. Patient 2 exhibited stromal/vascular remodeling and improved T-cell infiltration but restricted immune diversity, with CD4⁺/CD8⁺ dyads (↑2.2x) and B/NK cells(↓ 60%). Neighborhood diversity rose (3→7 communities) and immune-tumor proximity improved (distance ↓ 35%). Patient 3 showed transient inflaming with CD8⁺(↑3x), DC(↑2x), and new CD4-CD20/CD4-CD56 interactions, followed by relapse marked by stromal/myeloid re-expansion (SMA⁺↑1.8x, CD14⁺↑2.5x), angiogenic resurgence (VEGFR2/CD34⁺↑2.2x), contraction of immune networks, and genomic shift from activating CTNNB1 mutation loss to ATM gain. DCs accumulated but localized mainly to DC-DC or DC-myeloid niches, indicating non-productive antigen presentation.
Conclusions : Multimodal EBRT+DC+PD-L1/VEGF blockade induces four-sided synergistic TME reprogramming - antigen release, immune priming, checkpoint release, and vascular normalization - promoting cold-to-hot conversion in HCC. Durable inflaming correlates with sustained T-cell/DC expansion and vascular remodeling, whereas relapse reflects stromal/myeloid reinforcement and genomic adaptation. These findings define mechanistic trajectories of TME remodeling and highlight actionable barriers to sustained immunotherapy response in HCC.
利益披露 Disclosure
L. Kankeu Fonkoua, None..
C. L. Hallemeier, None.
B. Salem,
BostonGene Corporation Employment.
A. Tkachuk,
BostonGene Corporation Employment.
K. McCay,
BostonGene Corporation Employment.
P. Wang, None..
Y. Li, None..
T. D. Atwell, None..
K. R. Jethwa, None..
C. Conboy, None..
N. H. Tran, None..
L. A. Washburn, None..
A. De Menezes Silva Corraes, None..
R. Kamal, None.