Search bioRxiv⌕ Search

Biology subjects

Vanneste, D.

Publications and source records attributed to Vanneste, D..

2 recordsLinked to original sources

mTORC2 stabilizes HIF-1β to coordinate metabolic adaptation in lung cancer

Despite extensive genetic heterogeneity, lung tumors frequently converge on shared signaling dependencies that remain therapeutically underexploited. Here, we identify mTORC2 signaling as a convergent dependency across genetically distinct lung cancer subtypes and uncover HIF-1{beta} as a selective metabolic effector downstream of mTORC2 that promotes lung tumor progression. Elevated mTORC2 signaling in lung adenocarcinoma was associated with poor overall survival, metastatic dissemination and metabolic rewiring. Using complementary genetically engineered mouse models of Rictor deletion or overexpression in Kras-driven lung tumors, we show that mTORC2 activity is dispensable for normal lung homeostasis but required for tumor progression and metabolic adaptation in vivo. Mechanistically, mTORC2 stabilized HIF-1{beta} by preventing its ubiquitin-independent proteasomal degradation through a non-canonical PKC-CK2 signaling axis, independently of AKT. Integrated multi-omics analyses identified extensive metabolic rewiring downstream of the mTORC2-HIF-1{beta} axis, with sphingolipid metabolism emerging as a prominent and therapeutically exploitable vulnerability. Accordingly, pharmacological targeting of sphingolipid metabolism markedly impaired the growth of mTORC2-driven lung tumors in vivo. Together, our findings establish a non-canonical mTORC2-HIF-1{beta} signaling axis that couples oncogenic signaling to metabolic adaptation and defines therapeutically actionable metabolic vulnerabilities in lung cancer.

cancer biology↗

M-CSF drives alveolar macrophage plasticity during development and cytomegalovirus infection

Alveolar macrophages (AM), the most frequent resident immune cells of the lung, are at the first line of defence against respiratory pathogens and instruct structural lung cells, e.g. in tissue repair. They are long-lived and receive their terminal phenotypic imprint through signals originating from the unique location at the tissue-air interface, as well as through cytokines like granulocyte-macrophage colony-stimulating factor (GM-CSF) and transforming growth factor-{beta} (TGF-{beta}). However, the regulatory mechanisms governing their phenotypic plasticity, which is conceptually critical for their positioning and differentiation in early life and for their functional adaptation during infection, remain poorly defined. Here we explored respiratory tract infection with cytomegalovirus (CMV), which is closely linked to mammalian immune evolution. Complementary host-pathogen fate-mapping strategies revealed AM to constitute the bottleneck for efficient mouse (M)CMV infection. MCMV infection induced macrophage colony-stimulating factor (M-CSF) in the alveolar space, and culturing of AM in M-CSF led to a profound remodelling of morphology, immunophenotype, and transcriptional identity, e.g. it increased the expression of interferon-stimulated genes (ISG), which modulated susceptibility to infection. Notably, already at baseline recently differentiated neonatal AM across species retained an M-CSF-associated transcriptional program. This was linked to reduced permissiveness to respiratory MCMV infection in vivo. Overall, our findings identify the role of M-CSF-dependent signalling in conferring plasticity to AM, when it is most needed, particularly during early-life establishment and in response to viral infection.

immunology↗