Tumor-associated B-cells induce tumor heterogeneity and therapy resistance.
Level II
Where this comes from
- Record sourced from PubMed, PMID 28928360.
- Also identified by DOI 10.1038/s41467-017-00452-4 and PMC identifier 5605714.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
In melanoma, therapies with inhibitors to oncogenic BRAF<sup>V600E</sup> are highly effective but responses are often short-lived due to the emergence of drug-resistant tumor subpopulations. We describe here a mechanism of acquired drug resistance through the tumor microenvironment, which is mediated by human tumor-associated B cells. Human melanoma cells constitutively produce the growth factor FGF-2, which activates tumor-infiltrating B cells to produce the growth factor IGF-1. B-cell-derived IGF-1 is critical for resistance of melanomas to BRAF and MEK inhibitors due to emergence of heterogeneous subpopulations and activation of FGFR-3. Consistently, resistance of melanomas to BRAF and/or MEK inhibitors is associated with increased CD20 and IGF-1 transcript levels in tumors and IGF-1 expression in tumor-associated B cells. Furthermore, first clinical data from a pilot trial in therapy-resistant metastatic melanoma patients show anti-tumor activity through B-cell depletion by anti-CD20 antibody. Our findings establish a mechanism of acquired therapy resistance through tumor-associated B cells with important clinical implications.Resistance to BRAFV600E inhibitors often occurs in melanoma patients. Here, the authors describe a potential mechanism of acquired drug resistance mediated by tumor-associated B cells-derived IGF-1.
Medical subject headings
- Antineoplastic Agents
- B-Lymphocytes
- Drug Resistance, Neoplasm
- Insulin-Like Growth Factor I
- Lymphocytes, Tumor-Infiltrating
- Melanoma
- Protein Kinase Inhibitors
- Skin Neoplasms