Tumor evolution is one of the major mechanisms responsible for acquiring therapy-resistant and more aggressive cancer clones. Whether the tumor microenvironment through immune-mediated mechanisms might promote the development of more aggressive cancer types is crucial for the identification of additional therapeutic opportunities. Here, we identify a subset of tumor-associated neutrophils, defined as tumor-associated neutrophil precursors (PreNeu). These PreNeu are enriched in highly proliferative hormone-dependent breast cancers and impair DNA repair capacity. Mechanistically, succinate secreted by tumor-associated PreNeu inhibits homologous recombination, promoting error-prone DNA repair through non-homologous end-joining regulated by PARP-1. Consequently, breast cancer cells acquire genomic instability promoting tumor editing and progression. Selective inhibition of these pathways induces increased tumor cell killing in vitro and in vivo. Tumor-associated PreNeu score correlates with copy number alterations in highly proliferative hormone-dependent tumors from breast cancer patients. Treatment with PARP-1 inhibitors counteract the pro-tumoral effect of these neutrophils and synergize with endocrine therapy.
Supplementary Figure 2 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Methods and Materials from Targeting Fibroblast Growth Factor Receptors Blocks PI3K/AKT Signaling, Induces Apoptosis, and Impairs Mammary Tumor Outgrowth and Metastasis
Supplementary Table 3B from Targeting Fibroblast Growth Factor Receptors Blocks PI3K/AKT Signaling, Induces Apoptosis, and Impairs Mammary Tumor Outgrowth and Metastasis
Supplementary Legends for Figures 1-6, Table 1 and Methods and Materials from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Figure 6 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Figure 1 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Methods and Materials, Figure Legends 1-4 from Inhibition of Multiple Vascular Endothelial Growth Factor Receptors (VEGFR) Blocks Lymph Node Metastases but Inhibition of VEGFR-2 Is Sufficient to Sensitize Tumor Cells to Platinum-Based Chemotherapeutics
Supplementary Movie S2 from ERBB1 and ERBB2 Have Distinct Functions in Tumor Cell Invasion and Intravasation
Supplementary Methods, Figures 1-7 from The Serine Protease Inhibitor Protease Nexin-1 Controls Mammary Cancer Metastasis through LRP-1–Mediated MMP-9 Expression
Supplementary Figure 5 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Figure Legends 1-6,Table Legends 1-7 from Targeting Fibroblast Growth Factor Receptors Blocks PI3K/AKT Signaling, Induces Apoptosis, and Impairs Mammary Tumor Outgrowth and Metastasis
Supplementary Figure 3 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Figure 4 from The Ret Receptor Tyrosine Kinase Pathway Functionally Interacts with the ERα Pathway in Breast Cancer
Supplementary Figures S1-S2 from ERBB1 and ERBB2 Have Distinct Functions in Tumor Cell Invasion and Intravasation
RET is a receptor tyrosine kinase with oncogenic potential in the mammary epithelium. Several receptors with oncogenic activity in the breast are known to participate in specific developmental stages. We found that RET is differentially expressed during mouse mammary gland development: RET is present in lactation and its expression dramatically decreases in involution, the period during which the lactating gland returns to a quiescent state after weaning. Based on epidemiological and pre-clinical findings, involution has been described as tumor promoting. Using the Ret/MTB doxycycline-inducible mouse transgenic system, we show that sustained expression of RET in the mammary epithelium during the post-lactation transition to involution is accompanied by alterations in tissue remodeling and an enhancement of cancer potential. Following constitutive Ret expression, we observed a significant increase in neoplastic lesions in the post-involuting versus the virgin mammary gland. Furthermore, we show that abnormal RET overexpression during lactation promotes factors that prime involution, including premature activation of Stat3 signaling and, using RNA sequencing, an acute-phase inflammatory signature. Our results demonstrate that RET overexpression negatively affects the normal post-lactation transition.
Memo1 deletion in mice causes premature aging and an unbalanced metabolism partially resembling Fgf23 and Klotho loss-of-function animals. We report a role for Memo's redox function in renal FGF23-Klotho signaling using mice with postnatally induced Memo deficiency in the whole body (cKO). Memo cKO mice showed impaired FGF23-driven renal ERK phosphorylation and transcriptional responses. FGF23 actions involved activation of oxidation-sensitive protein phosphotyrosyl phosphatases in the kidney. Redox proteomics revealed excessive thiols of Rho-GDP dissociation inhibitor 1 (Rho-GDI1) in Memo cKO, and we detected a functional interaction between Memo's redox function and oxidation at Rho-GDI1 Cys79. In isolated cellular systems, Rho-GDI1 did not directly affect FGF23-driven cell signaling, but we detected disturbed Rho-GDI1 dependent small Rho-GTPase protein abundance and activity in the kidney of Memo cKO mice. Collectively, this study reveals previously unknown layers in the regulation of renal FGF23 signaling and connects Memo with the network of small Rho-GTPases.
This dataset contains the raw data for "Redox protein Memo1 coordinates FGF23-driven signaling and small Rho-GTPases in the kidney". We investigated the role of Memo1 redox function in FGF23-driven receptor tyrosine kinase signaling in the kidney. Raw data which are not included here can be found using the following accession codes: RNAseq data: NCBI SRA, Accession: PRJNA672305 LC-MS/MS kidney data: proteomeXchange accession PXD022342 LC-MS/MS recombinant protein data: proteomeXchange PXD022382
Abstract Loss of normal development is a hallmark of cancer. Thus, understanding the mechanisms of tissue-specific developmental regulation and the changes that occur during tumorigenesis may provide insights of both diagnostic and therapeutic importance. In breast cancer, several members of the receptor tyrosine kinases (RTK) family that are well known to promote aggressive breast cancers also have roles in normal breast. We found that Ret, a RTK member, is normally expressed in the mouse glands in lactation. We determined that inhibition of Ret activity in vivo does not alter lactation, however impacts in the transition to involution. Involution is the period with high inflammation which returns the lactating mammary gland to a quiescent state after weaning. Involution has been well described as a post-lactation stage that drives cancer progression. Ret is overexpressed in about 40% of human breast tumors. Previously, using a doxycycline-inducible transgenic mouse model (Ret/MTB) we determined that chronic expression of Ret is oncogenic in the mammary epithelium. However, the stage of development at which Ret expression results in increase mammary tumor incidence has not been identified. To address this, we used the Ret/MTB system, to conditionally overexpress Ret during discrete periods of mammary gland development. We found that Ret is required for efficient transition to involution. We determined that the induction of Ret in Ret/MTB females promotes the expression of factors that drives involution, including premature Stat3 activation. RNA-seq data in Ret-overexpressing glands is supporting these findings, which were confirmed by several techniques. In addition, sustained expression of Ret during post-lactation enhances cancer potential showing a significant increase in pre-neoplastic lesions, defective milk recycling and disrupting Stat3 signaling. These results demonstrate that Ret deregulation increases cancer potential in post-lactation and might be considered as a prognostic marker for post-partum breast cancer. Citation Format: Sabrina A. Vallone, Martín García Solá, Robert D. Cardiff, Roberto P. Meiss, Lewis A. Chodosh, Carolina Shere-Levy, Edith C C. Kordon, Nancy E. Hynes, Albana Gattelli. Sustained Ret expression during mammary gland post-lactation induces premature involution and enhances cancer potential [abstract]. In: Proceedings of the Annual Meeting of the American Association for Cancer Research 2020; 2020 Apr 27-28 and Jun 22-24. Philadelphia (PA): AACR; Cancer Res 2020;80(16 Suppl):Abstract nr 3685.
MEdiator of cell MOtility1 (MEMO1) is a ubiquitously expressed redox protein involved in extracellular ligand-induced cell signaling. We previously reported that inducible whole-body Memo1 KO (cKO) mice displayed a syndrome of premature aging and disturbed mineral metabolism partially recapitulating the phenotype observed in Klotho or Fgf23-deficient mouse models. Here, we aimed at delineating the contribution of systemic mineral load on the Memo1 cKO mouse phenotype. We attempted to rescue the Memo1 cKO phenotype by depleting phosphate or vitamin D from the diet, but did not observe any effect on survival. However, we noticed that, by contrast to Klotho or Fgf23-deficient mouse models, Memo1 cKO mice did not present any soft-tissue calcifications and displayed even a decreased serum calcification propensity. We identified higher serum magnesium levels as the main cause of protection against calcifications. Expression of genes encoding intestinal and renal magnesium channels and the regulator epidermal growth factor were increased in Memo1 cKO. In order to check whether magnesium reabsorption in the kidney alone was driving the higher magnesemia, we generated a kidney-specific Memo1 KO (kKO) mouse model. Memo1 kKO mice also displayed higher magnesemia and increased renal magnesium channel gene expression. Collectively, these data identify MEMO1 as a novel regulator of magnesium homeostasis and systemic calcification propensity, by regulating expression of the main magnesium channels.