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Letter to the Editor

Infiltrative hepatocellular carcinoma resistance: Integrating microenvironment, host factors, and therapy

Clinical and Molecular Hepatology 2026;32(3):e288-e290.
Published online: February 2, 2026

1Research Center for Single-Cell Omics and Personalized Medicine, Ningbo No. 2 Hospital, Wenzhou Medical University, Ningbo, Zhejiang, China

2Department of Urology, Yichang Central People’s Hospital, China Three Gorges University, The First College of Clinical Medical Science, Yichang, Hubei, China

Corresponding authors : Kejun Yan, Department of Urology, Yichang Central People's Hospital, China Three Gorges University, The First College of Clinical Medical Science, No. 183 Yiling Avenue, Yichang, Hubei 443003, China Tel: +86-13972046367, E-mail: yankejun67@163.com
Glenn Deng, Research Center for Single-Cell Omics and Personalized Medicine, Ningbo No. 2 Hospital, Wenzhou Medical University, No. 41 Northwest Street, Haishu District, Ningbo, Zhejiang 31500, China Tel: +86-13886051153, E-mail: glenndeng@126.com

These authors contributed equally to this work.


Editor: Gi-Ae Kim, Kyung Hee University, Korea

• Received: January 12, 2026   • Revised: January 26, 2026   • Accepted: January 28, 2026

Copyright © 2026 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Dear Editor,
Meticulous radiological classification of Lee et al. [1] successfully associates the type IV infiltrative morphology with markedly poor outcomes following first-line atezolizumab plus bevacizumab (Ate/Bev) therapy, accompanied by distinct genomic (enriched tumor suppressor protein p53 [TP53]/ataxia telangiectasia mutated [ATM] mutations) and transcriptomic (activated transforming growth factor-beta [TGF-β] signaling, epithelial-mesenchymal transition, immunosuppressive microenvironment) features [1]. This represents a significant contribution to the field. To further transform these robust associations into more causal and clinically actionable insights, we wish to propose several key considerations that could refine the interpretation of the findings and directly impact their implications for both biology and clinical strategy.
The study compellingly presents the co-occurrence of TP53/ATM loss-of-function mutations and upregulated pathways like TGF-β as defining molecular characteristics of the infiltrative subtype. However, an intriguing alternative interpretation warrants consideration: these features may not stem solely from tumor-cell-autonomous programs but could also reflect the tumor’s adaptation to, or selection by, a pre-existing fibro-inflammatory liver microenvironment. The hypothesis is particularly relevant for hepatocellular carcinoma (HCC), where chronic liver disease creates a pervasive backdrop of activated hepatic stellate cells, immunosuppressive macrophages, and pro-fibrotic signaling [2]. Recent spatial transcriptomic evidence suggests that hepatocarcinogenesis may be influenced by the metabolic and oxidative stress gradients within the liver lobule, implying that tumor growth patterns, including infiltrative spread, could be fundamentally shaped by this parenchymal context [3]. Consequently, the multi-omics signatures identified from bulk tumor tissue may represent an amalgam of intrinsic tumor drivers and extrinsic microenvironmental pressures. Acknowledging this possibility would subtly but importantly refine the conclusion from “these molecular features define the subtype” to “these features are associated with the subtype and may be co-shaped by a pro-fibrotic, immunosuppressive niche.” This distinction is critical as it expands the therapeutic horizon beyond targeting tumor cells alone to potentially combining strategies that modulate the pathogenic stroma.
Furthermore, while the study establishes infiltrative morphology as an independent predictor of poor Ate/Bev response via multivariate analysis, the robustness of this conclusion would be strengthened by accounting for additional key prognostic variables. Two categories warrant consideration. First, tumor mutational burden (TMB), a potentially important genomic covariate whose prognostic role in HCC is still evolving, could serve as a key mediator [4]. If the TP53/ATM mutation enrichment correlates with a lower TMB, the primary driver of resistance might be a “cold tumor” phenotype. In this case, infiltrative morphology could be a radiographic correlate of this low-immunogenicity state rather than an independent biological driver. Conversely, a higher TMB might act as a mediating variable. Integrating TMB into the multivariate model would clarify whether morphology retains independent prognostic significance after adjusting for this key genomic metric. Second, the host’s systemic inflammatory and nutritional status, quantifiable by scores like the prognostic nutritional index or neutrophil-to-lymphocyte ratio, are powerful independent prognostic factors [5,6]. High tumor burden can exacerbate inflammation and cachexia. If patients with infiltrative morphology have a worse baseline host status, their poor survival may be partly mediated by this ‘host vulnerability,’ potentially overstating the independent predictive value of morphology alone. Future studies should incorporate these host factors, ideally using integrated scores that combine inflammation and nutrition with liver function and tumor burden for superior predictive power [7], to disentangle their contribution from that of tumor morphology.
Finally, we appreciate the authors’ precise framing of their findings within the context of first-line Ate/Bev. This specificity is, in fact, a major strength of the study. It reveals not a general resistance to immunotherapy, but a precise vulnerability in the “anti-programmed death ligand-1 (PD-L1) plus anti-vascular endothelial growth factor (VEGF)” strategy. This naturally leads to the next, more constructive set of clinical questions: Is the resistance primarily driven by evading VEGF inhibition, PD-L1 blockade, or the synergy of both? The answer would guide subsequent therapy. For instance, dual immune checkpoint blockade (e.g., anti-cytotoxic T lymphocyte antigen 4 [CTLA-4] plus anti-programmed death-1 [PD-1]) has demonstrated efficacy as an alternative first-line regimen [8]. Importantly, recent pharmacodynamic analyses suggest that CTLA-4/PD-1 dual blockade and PD-L1/VEGF inhibition exert distinct mechanisms of action on the peripheral immune response, supporting their non-cross-resistant potential [9]. Furthermore, other targeted agents (e.g., against fibroblast growth factor 19 [FGF19]/fibroblast growth factor receptor 4 [FGFR4]) represent a promising direction, as preclinical evidence links this pathway to PD-L1 regulation and immune evasion [10]. Therefore, the crucial clinical implication of this work is to caution against excluding all other immunotherapies for patients with infiltrative HCC after Ate/Bev failure. Instead, it should motivate the investigation of alternative or additive mechanisms, such as different immune checkpoints or stroma-modulating agents.
In summary, Lee et al. [1] have identified a high-risk HCC subtype. By integrating analyses of the tumor-microenvironment interface and key biomarkers like TMB, the “infiltrative” classification could evolve from a prognostic phenotype to a more etiologically defined category with clearer therapeutic implications. This progression would ultimately advance patient care from risk stratification towards personalized strategies designed to overcome the specific resistance mechanisms this important study has brought to light.

Authors’ contribution

Conceptualization: GD, KY. Methodology: DH. Visualization: GD, DH, KY. Funding acquisition: GD, DH, KY. Project administration: GD, DH, KY. Supervision: GD, KY. Writing - original draft: GD. Writing - review & editing: KY, DH.

Conflicts of Interest

The authors have no conflicts to disclose.

Ate/Bev

atezolizumab plus bevacizumab

ATM

ataxia telangiectasia mutated

CTLA-4

cytotoxic T lymphocyte antigen 4

FGF19

fibroblast growth factor 19

FGFR4

fibroblast growth factor receptor 4

HCC

hepatocellular carcinoma

PD-1

programmed death-1

PD-L1

programmed death ligand-1

TGF-β

transforming growth factorbeta

TMB

tumor mutational burden

TP53

tumor suppressor protein p53

VEGF

vascular endothelial growth factor
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Infiltrative hepatocellular carcinoma resistance: Integrating microenvironment, host factors, and therapy
Clin Mol Hepatol. 2026;32(3):e288-e290.   Published online February 2, 2026
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Infiltrative hepatocellular carcinoma resistance: Integrating microenvironment, host factors, and therapy
Clin Mol Hepatol. 2026;32(3):e288-e290.   Published online February 2, 2026
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Infiltrative hepatocellular carcinoma resistance: Integrating microenvironment, host factors, and therapy
Infiltrative hepatocellular carcinoma resistance: Integrating microenvironment, host factors, and therapy