Search bioRxiv⌕ Search

Biology subjects

Wilde, D.

Publications and source records attributed to Wilde, D..

2 recordsLinked to original sources

Low-order assemblies drive oncogenic RTK fusion signaling without condensation

Receptor tyrosine kinase (RTK) fusions are a large class of oncoproteins found in [~]5% of cancers. Key questions remain, however, about how RTK fusions transmit oncogenic signals, including how these largely cytoplasmic proteins activate downstream pathways that originate at the plasma membrane. Fusions are multimeric and can form mesoscale condensates in cancer cells, and condensation has been implicated as an essential mechanism to enable signal transmission from the cytoplasm. However, whether condensates play a causal role, or whether smaller diffuse assemblies are sufficient to transduce signals, has been challenging to establish. Here we apply advanced microscopy, single-cell analysis, and synthetic fusions to determine the principles by which multimerization and condensation drive signaling from cytoplasmic RTK fusions. For EML4-ALK, a prominent fusion that forms condensates, we found poor correlation between condensation and signaling. By contrast, EML4-ALK activity was abundant in the diffuse phase, and the kinetics of diffuse-phase activity aligned more closely with downstream Erk signaling than did kinetics of signaling within condensates. Synthetic RTK fusions showed that cytoplasmic ALK or RET fusion dimers--and even constitutively active monomers--were sufficient to induce strong Ras-Erk signaling despite the absence of condensates, and diffuse fusions were sufficient to transform cells in vitro and in subcutaneous tumor models. A panel of various other cancer-driving RTK fusions showed that low-order multimerization was universal across fusions, whereas mesoscale condensation was rare and did not correlate with signaling. Our results suggest that low-order fusion multimerization is sufficient to drive its phosphorylation, which is necessary and sufficient to trigger downstream oncogenic signaling.

cancer biology↗

A temperature-inducible protein module for control of mammalian cell fate

Inducible protein switches allow on-demand control of proteins in response to inputs including chemicals or light. However, these inputs either cannot be controlled with precision in space and time or cannot be applied in optically dense settings, limiting their application in tissues and organisms. Here we introduce a protein module whose active state can be reversibly toggled with a small change in temperature, a stimulus that is both penetrant and dynamic. This protein, called Melt (Membrane localization through temperature), exists as a monomer in the cytoplasm at elevated temperatures but both oligomerizes and translocates to the plasma membrane when temperature is lowered. The original Melt variant switched states between 28-32{degrees}C, and state changes could be observed within minutes of temperature change. Melt was highly modular, permitting thermal control over diverse processes including signaling, proteolysis, nuclear shuttling, cytoskeletal rearrangements, and cell death, all through straightforward end-to-end fusions. Melt was also highly tunable, giving rise to a library of variants with switch point temperatures ranging from 30-40{degrees}C. The variants with higher switch points allowed control of molecular circuits between 37{degrees}C-41{degrees}C, a well-tolerated range for mammalian cells. Finally, Melt permitted thermal control of cell death in a mouse model of human cancer, demonstrating its potential for use in animals. Thus Melt represents a versatile thermogenetic module for straightforward, non-invasive, spatiotemporally-defined control of mammalian cells with broad potential for biotechnology and biomedicine.

synthetic biology↗