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RESEARCH PAPER ANALYSIS

FECH, a novel metabolic target influencing CAR T-cell phenotype and function.

The study reports that linsitinib or selective FECH inhibition lowers heme and energy production in chronically antigen-activated GD2.CAR T cells, shifts them toward a less activated/exhausted central-memory phenotype, and that linsitinib enhances CAR T-cell activity against linsitinib-sensitive neuroblastoma cell lines.

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PMID42587334
JournalBiomarker research
Publication Date2026-08-12
Ingested2026-08-17 12:23 AM
EXECUTIVE SUMMARY

What the AI sees

The study reports that linsitinib or selective FECH inhibition lowers heme and energy production in chronically antigen-activated GD2.CAR T cells, shifts them toward a less activated/exhausted central-memory phenotype, and that linsitinib enhances CAR T-cell activity against linsitinib-sensitive neuroblastoma cell lines.

WHY IT MATTERS

Research significance

Supported by the reported experiments, FECH inhibition alters heme-dependent CAR T-cell metabolism and phenotype; it is therefore hypothesized—but not clinically demonstrated here—that controlled FECH targeting or linsitinib treatment could improve GD2.CAR T-cell persistence and efficacy in neuroblastoma.

ABSTRACT

Source abstract

Recent phase I/II clinical trials have demonstrated that chimeric antigen receptor (CAR) T cells targeting the disialogangliosade GD2 represent a promising therapeutic option for pediatric patients with relapsed or refractory high-risk neuroblastoma (NB). However, incomplete and heterogeneous clinical responses highlight the need to improve CAR T-cell efficacy and persistence. We previously demonstrated the therapeutic benefit of combining the dual insulin-like growth factor 1 receptor/insulin receptor (IGF1R/IR) inhibitor linsitinib (LIN) with third-generation GD2.CAR T cells in diffuse intrinsic pontine glioma, where LIN induced tumor cell death and modulated the CAR T-cell phenotype. Here, we extended these findings to NB and explored the mechanisms of LIN-mediated CAR T-cell modulation. LIN, in combination with CAR T cells, significantly enhanced antitumor activity in LIN-sensitive NB cell lines. Mechanistically, we investigated ferrochelatase (FECH), a mitochondrial enzyme involved in heme biosynthesis, and a known off-target of LIN. LIN treatment or selective FECH inhibition with N-methyl protoporphyrin IX reduced intracellular heme, attenuated activation and exhaustion marker expression and promoted central memory characteristics associated with improved in vivo CAR T-cell persistence and functionality. Both treatments similarly decreased ATP production by reducing glycolysis and mitochondrial respiration in chronical antigen-activated CAR T cells. Collectively, these data reveal a dual mechanism of action for LIN, combining direct tumor cell cytotoxicity with metabolic reprogramming of CAR T cells linked to heme biosynthesis. These findings identify heme metabolism as regulator of CAR T-cell phenotype and function and support further investigation of FECH to enhance therapeutic efficacy in NB and beyond.

SUPPORTING PAPER SET

32 more papers to review

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PATIENT-FRIENDLY SUMMARY

FECH, a novel metabolic target influencing CAR T-cell phenotype and function.

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