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Kainacher, L.

Publications and source records attributed to Kainacher, L..

3 recordsLinked to original sources

Spatial proteomics reveals mechanisms of cell-intrinsic tryptophan metabolism controlling ovarian cancer survival

Indole-2,3-dioxygenase (IDO1) depletes tryptophan to dampen anti-tumor T cells, yet IDO1 inhibitors (IDO1i) have failed clinically. Using deep visual proteomics, we isolated IDO1 high, medium and low ovarian tumor cells in situ and found IDO1 tightly linked to interferon-{gamma} (IFN-{gamma}) signaling and heterogeneously expressed. Across orthogonal models with tunable IDO1, IFN-{gamma} killed ovarian cancer via a pathway requiring IFN-{gamma} signaling, IDO1-dependent tryptophan depletion, and a biphasic integrated stress response that initially protects from starvation and later drives death. IDO1i or tryptophan supplementation rescued these effects, promoting tumor survival. These data reveal a context-dependent, tumor-suppressive facet of IDO1 and explain how IDO1i can paradoxically favor cancer viability. Our findings call for re-evaluation of IDO1 as a target and suggest exploiting the tryptophan-starvation/GCN2-ISR axis to enhance therapy.

cancer biology↗

IL4i1-sourced oncometabolites promote neuroblastoma cell survival

High-risk neuroblastoma (NB) is driven by the amplification of MYCN in conjunction with additional oncogenic mutations in kinases such as ALK. NB cells require antioxidant responses to maintain redox balance and are highly sensitive to ferroptosis. Here, we show that metabolites derived from infiltrating immune cells expressing IL4i1, a secreted oxidoreductase, are potent suppressors of NB ferroptosis. IL4i1 metabolites (indole-3-pyruvate and 4-hydroxyphenylpyruvate) blocked ferroptosis in all human NB cell lines via a mechanism that depended on free radical scavenging and NRF2 activation but did not require the aryl hydrocarbon receptor. Supernatant transfer experiments confirmed that IL4i1 creates a milieu that protects NB cells from oxidative cell death. Importantly, mice lacking IL4i1 were protected from NB in a high-penetrance MYCN and mutant ALK-driven autochthonous cancer model. Therefore, we propose that immune IL4i1 is permissive for NB growth and survival. IL4i1 produces context-dependent oncometabolites and, as a secreted enzyme, represents a target for cell death manipulation in cancers sensitive to oxidative stress-driven cell death. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=196 HEIGHT=200 SRC="FIGDIR/small/669062v1_ufig1.gif" ALT="Figure 1"> View larger version (63K): org.highwire.dtl.DTLVardef@6e79baorg.highwire.dtl.DTLVardef@f9a9bcorg.highwire.dtl.DTLVardef@f6b2aaorg.highwire.dtl.DTLVardef@4bb764_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

Dual E3 ligase recruitment by monovalent degraders enables redundant and tuneable degradation of SMARCA2/4

Proteolysis-Targeting Chimeras (PROTACs) and Molecular Glue Degraders (MGDs) canonically target proteins for degradation by recruiting them to a single E3 ligase complex. While heterotrivalent PROTACs that can co-opt multiple E3 ligase complexes have been described, to our knowledge all MGDs reported to date are dependent on a single E3. Here, using orthogonal genetic screening, biophysical and structural analyses, we show that a monovalent MGD can covalently recruit CUL4DCAF16 and CRL1FBXO22 in a parallel and redundant manner to degrade SMARCA2/4. Deep mutational scanning identifies a single cysteine (Cys173) in DCAF16 essential for degrader activity, and intact protein MS confirms covalent adduct at this site. The cryo-EM structure of the DCAF16:SMARCA2:degrader ternary complex reveals a unique binding mode and a distinct interface of neo-interactions, providing insights into degrader specificity. We demonstrate that E3 ligase dependency can be tuned both chemically and genetically. Minimal alterations to the compounds "degradation tail" switches ligase preference from DCAF16 to FBXO22, while a single L59W mutation on DCAF16 is sufficient to drive DCAF16 engagement for otherwise FBXO22-dependent compounds. These results establish a molecular and structural framework for the design of tuneable dual glue degraders that could mitigate challenges from resistance mechanisms in degrader therapies.

biochemistry↗