Search bioRxiv⌕ Search

Biology subjects

Nishiga, Y.

Publications and source records attributed to Nishiga, Y..

2 recordsLinked to original sources

Cell state-specific metabolic networks govern ferroptosis versus apoptosis in small cell lung cancer

Cellular heterogeneity and plasticity are hallmarks of cancer that contribute to tumor growth and therapy resistance. Here we investigated metabolic heterogeneity in small cell lung cancer (SCLC), an aggressive neuroendocrine (NE) cancer type. Through integrated transcriptomic and metabolomic analyses, we identified a universal dependency on exogenous cysteine/cystine (Cys) across all NE/non-NE SCLC cell states. Notably, NE and non-NE cells with low levels of the ASCL1 transcription factor die from ferroptosis upon Cys depletion. In contrast, ASCL1-high cells die from apoptosis but are ferroptosis resistant. This resistance to ferroptosis is driven by the direct upregulation of the gene coding for the GCH1 enzyme by ASCL1, which results in higher levels of the BH4/BH2 antioxidants. Accordingly, combining cysteine depletion with BH4/BH2 synthesis inhibition effectively reduces tumor growth in patient-derived xenografts. This work elucidates distinct metabolic states in SCLC and suggests new approaches to induce cell death in this lethal form of cancer.

cancer biology↗

T CELLS promote the growth of small-cell lung carcinoma via an IL-6/CD74 axis

A central challenge in immuno-oncology is overcoming the limited efficacy and durability of immune checkpoint inhibition (ICI). This is particularly true in small-cell lung cancer (SCLC), where chemotherapy plus ICI is standard of care but rarely curative. Here, we found that T cells are surprisingly both necessary and sufficient for optimal tumor growth in mouse models of SCLC. These pro-tumoral effects are mediated by interleukin-6 (IL-6) production, which induces the pro-survival factor CD74 in SCLC cells. Notably, T cells within human SCLC tumors express IL-6, and low IL-6 signaling correlates with improved survival following chemotherapy plus ICI in patients. Accordingly, IL-6 blockade synergizes with ICI to inhibit SCLC growth in vivo. These findings reveal a paradoxical role for T cells in SCLC, uncovering an unexpected T cell-IL-6-CD74 axis that promotes tumor survival, and identify IL-6 as a promising target to help unleash the full potential of immunotherapy in this aggressive cancer.

cancer biology↗