p53 deficient breast cancer cells reprogram preadipocytes toward tumor-protective immunomodulatory cells.
Ori HassinMiriam SernikAdi SeligmanFelix C E VogelMax D WellensteinJoachim SmollichCoral HalperinAnna Chiara PironaLiron Nomi ToledanoCarolina Dehesa CaballeroLisa SchlickerTomer-Meir SalameAvital Sarusi PortuguezYael AylonRuth Scherz-ShouvalTamar GeigerKarin E de VisserAlmut SchulzeMoshe OrenPublished in: Proceedings of the National Academy of Sciences of the United States of America (2023)
The TP53 gene is mutated in approximately 30% of all breast cancer cases. Adipocytes and preadipocytes, which constitute a substantial fraction of the stroma of normal mammary tissue and breast tumors, undergo transcriptional, metabolic, and phenotypic reprogramming during breast cancer development and play an important role in tumor progression. We report here that p53 loss in breast cancer cells facilitates the reprogramming of preadipocytes, inducing them to acquire a unique transcriptional and metabolic program that combines impaired adipocytic differentiation with augmented cytokine expression. This, in turn, promotes the establishment of an inflammatory tumor microenvironment, including increased abundance of Ly6C+ and Ly6G+ myeloid cells and elevated expression of the immune checkpoint ligand PD-L1. We also describe a potential gain-of-function effect of common p53 missense mutations on the inflammatory reprogramming of preadipocytes. Altogether, our study implicates p53 deregulation in breast cancer cells as a driver of tumor-supportive adipose tissue reprogramming, expanding the network of non-cell autonomous mechanisms whereby p53 dysfunction may promote cancer. Further elucidation of the interplay between p53 and adipocytes within the tumor microenvironment may suggest effective therapeutic targets for the treatment of breast cancer patients.
Keyphrases
- breast cancer cells
- adipose tissue
- poor prognosis
- induced apoptosis
- oxidative stress
- cell cycle arrest
- gene expression
- transcription factor
- insulin resistance
- single cell
- stem cells
- high fat diet
- signaling pathway
- genome wide
- long non coding rna
- papillary thyroid
- autism spectrum disorder
- mesenchymal stem cells
- cell proliferation
- combination therapy
- heat shock
- microbial community