Parity-induced changes to mammary epithelial cells control NKT cell expansion and mammary oncogenesis
Author:
Hanasoge Somasundara Amritha V.,Moss Matthew A.,Feigman Mary J.,Chen Chen,Cyrill Samantha L.,Ciccone Michael F.,Trousdell Marygrace C.,Vollbrecht Macy,Li Siran,Kendall Jude,Beyaz Semir,Wilkinson John E.,dos Santos Camila O.
Abstract
SummaryPregnancy reprograms the epigenome of mammary epithelial cells (MECs) in a manner that control responses to pregnancy hormone re-exposure and the rate of carcinoma progression. However, the influence of pregnancy on the tissue microenvironment of the mammary gland is less clear. Here, we used single-cell RNA sequencing to comparatively profile the composition of epithelial and non-epithelial cells in mammary tissue from nulliparous and parous female mice. Our analysis revealed an expansion of γδ Natural Killer T (NKT) immune cells following pregnancy, in association with upregulation of immune signal molecules in post-pregnancy MECs. We show that expansion of NKT cells following pregnancy is due to elevated expression of the antigen presenting molecule CD1d protein, which is known to induce NKT activation. Accordingly, loss of CD1d expression on post-pregnancy MECs, or overall lack of activated NKT cells, accompanied the development of mammary oncogenesis in response to cMYC overexpression and loss of Brca1 function. Collectively, our findings illustrate how pregnancy-induced epigenetic changes modulate the communication between MECs and the mammary immune microenvironment, and establish a causal link between pregnancy, the immune microenvironment, and mammary oncogenesis.
Publisher
Cold Spring Harbor Laboratory
Reference75 articles.
1. Almishri, W. , Santodomingo-Garzon, T. , Le, T. , Stack, D. , Mody, C.H. , and Swain, M.G. (2016). TNFα Augments Cytokine-Induced NK Cell IFNγ Production through TNFR2. Journal of Innate Immunity. 2. Bach, K. , Pensa, S. , Grzelak, M. , Hadfield, J. , Adams, D.J. , Marioni, J.C. , and Khaled, W.T. (2017). Differentiation dynamics of mammary epithelial cells revealed by single-cell RNA sequencing. Nature Communications. 3. Bach, K. , Pensa, S. , Zarocsinceva, M. , Kania, K. , Stockis, J. , Pinaud, S. , Lazarus, K.A. , Shehata, M. , Simões, B.M. , Greenhalgh, A.R. , et al. (2021). Time-resolved single-cell analysis of Brca1 associated mammary tumourigenesis reveals aberrant differentiation of luminal progenitors. Nature Communications. 4. Balato, A. , Unutmaz, D. , and Gaspari, A.A. (2009). Natural killer T cells: An unconventional t-cell subset with diverse effector and regulatory functions. Journal of Investigative Dermatology. 5. Beyaz, S. , Kim, J.H. , Pinello, L. , Xifaras, M.E. , Hu, Y. , Huang, J. , Kerenyi, M.A. , Das, P.P. , Barnitz, R.A. , Herault, A. , et al. (2017). The histone demethylase UTX regulates the lineage-specific epigenetic program of invariant natural killer T cells. Nature Immunology.
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