Single-cell multi-omic analysis of the vestibular schwannoma ecosystem uncovers a nerve injury-like state.
Thomas F BarrettBhuvic PatelSaad M KhanRiley D Z MullinsAldrin K Y YimSangami PugazenthiTatenda MahlokozeraGregory J ZipfelJacques A HerzogMichael R ChicoineCameron C WickNedim DurakovicJoshua W OsbunMatthew ShewAlex D SweeneyAkash J PatelCraig A BuchmanAllegra A PettiSidharth V PuramAlbert H KimPublished in: Nature communications (2024)
Vestibular schwannomas (VS) are benign tumors that lead to significant neurologic and otologic morbidity. How VS heterogeneity and the tumor microenvironment (TME) contribute to VS pathogenesis remains poorly understood. In this study, we perform scRNA-seq on 15 VS, with paired scATAC-seq (n = 6) and exome sequencing (n = 12). We identify diverse Schwann cell (SC), stromal, and immune populations in the VS TME and find that repair-like and MHC-II antigen-presenting SCs are associated with myeloid cell infiltrate, implicating a nerve injury-like process. Deconvolution analysis of RNA-expression data from 175 tumors reveals Injury-like tumors are associated with larger tumor size, and scATAC-seq identifies transcription factors associated with nerve repair SCs from Injury-like tumors. Ligand-receptor analysis and in vitro experiments suggest that Injury-like VS-SCs recruit myeloid cells via CSF1 signaling. Our study indicates that Injury-like SCs may cause tumor growth via myeloid cell recruitment and identifies molecular pathways that may be therapeutically targeted.
Keyphrases
- single cell
- rna seq
- genome wide
- high throughput
- bone marrow
- dendritic cells
- peripheral nerve
- cell therapy
- poor prognosis
- induced apoptosis
- acute myeloid leukemia
- stem cells
- copy number
- mesenchymal stem cells
- machine learning
- cancer therapy
- cell cycle arrest
- gene expression
- drug delivery
- cell death
- oxidative stress
- endoplasmic reticulum stress
- deep learning
- genetic diversity