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Biology subjects

Dos Santos, C. O.

Publications and source records attributed to Dos Santos, C. O..

3 recordsLinked to original sources

Host response during unresolved urinary tract infection alters mammary tissue homeostasis through collagen deposition and TIMP1

Exposure to pathogens throughout a lifetime influences immunity and organ function. Here, we explored how the systemic host-response to bacterial urinary tract infection (UTI) induces tissue-specific alterations to the mammary gland. Utilizing a combination of histological tissue analysis, single cell RNA sequencing and flow cytometry, we identified that mammary tissue from UTI-bearing mice display collagen deposition, enlarged ductal structures, ductal hyperplasia with atypical epithelial transcriptomes and altered immune composition. Bacterial cells were absent in the mammary tissue and blood of UTI-bearing mice, therefore, alterations to the distal mammary tissue were mediated by the systemic host response to local infection. Furthermore, broad spectrum antibiotic treatment resolved the infection and restored mammary cellular and tissue homeostasis. Systemically, unresolved UTI correlated with increased plasma levels of the metalloproteinase inhibitor, TIMP1, which controls extracellular matrix (ECM) remodeling and neutrophil function. Treatment of nulliparous and post-lactation UTI-bearing female mice with a TIMP1 neutralizing antibody, or broad-spectrum antibiotic, prevented mammary collagen deposition, thus providing evidence for an unexpected link between the systemic host response during UTI and mammary alterations. SummaryThe systemic response during urinary tract infection induces TIMP1-driven collagen deposition specifically into the mammary gland.

developmental biology↗

Single-cell transcription mapping of murine and human mammary organoids responses to female hormones

During female adolescence and pregnancy, rising levels of hormones result in a cyclic source of signals that control the development of mammary tissue. While such alterations are well understood from a whole-gland perspective, the alterations that such hormones bring to organoid cultures derived from mammary glands have yet to be fully mapped. This is of special importance given that organoids are considered suitable systems to understand cross species breast development. Here we utilized single-cell transcriptional profiling to delineate responses of murine and human normal breast organoid systems to female hormones across evolutionary distinct species. Collectively, our study represents a molecular atlas of epithelial dynamics in response to estrogen and pregnancy hormones.

developmental biology↗

Parity-induced changes to mammary epithelial cells control NKT cell expansion and mammary oncogenesis

Pregnancy 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 {gamma}{delta} 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.

developmental biology↗