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Biology subjects

Fox, M. S.

Publications and source records attributed to Fox, M. S..

3 recordsLinked to original sources

Estradiol Reprograms Microglia to Create an Immune-Suppressed Niche Permissive to Breast Cancer Brain Metastasis

BackgroundYoung age is an independent risk factor for the development of breast cancer brain metastases (BM). Prior work showed that 17{beta}-estradiol (E2), the predominant premenopausal hormone, promotes BM of tumors intrinsically unresponsive to E2, in part through modulating estrogen receptor-alpha expressing (ER) glial cells. However, how E2 reshapes the brain tumor microenvironment (TME), particularly microglia-mediated immunity, and its impact to BM progression remains unclear. MethodsscRNA sequencing and multiparametric flow cytometry were used to define the impact of E2 and E2-suppression on brain immune-cell populations across different stages of BM progression using spontaneous and experimental models of BM. Depletion of microglia and T cell co-cultures were used to study microglias role in E2-induced BM. The effects of E2-suppression alone or in combination with whole brain radiotherapy were tested in preclinical models mimicking late-stage BM. ResultsE2 repressed immune surveillance and immune activation programs in microglia from early to late stages of brain metastatic progression, suppressing recruitment of effector immune cells to BM. Estrogen suppression, in turn reactivated anti-tumoral signaling in microglia and increased recruitment of effector immune cells to the brain. Microglia from E2-stimulated BM-bearing mice showed decreased ability to induce interferon cytotoxic function and expansion of activated T cells. Conversely, E2-suppression reactivated an effective anti-tumoral response and synergized with RT to significantly decrease BM progression. ConclusionThese findings reveal a previously unrecognized mechanism by which E2 accelerates BC-BM progression through microglial immunosuppression and support evaluation of endocrine therapies as adjunct treatments for ER- brain metastases. Importance of the StudyStandard of care for BM includes stereotactic radiosurgery (SRS) alone or in combination with surgery, systemic chemotherapy or targeted therapies. Our studies show that ovariectomy (which eliminates ovarian E2) and aromatase inhibitors (AIs, which eliminate peripheral E2 synthesis) reduce progression of BM when used in combination with WBRT and in immuno-competent models. We demonstrate E2 promotes an immunosuppressive brain microenvironment from early stages of metastatic progression, in part through modulation of myeloid cells and repression of recruitment of effector T cells to the brain. Thus, these studies suggest that FDA-approved E2-depletion therapies (aromatase inhibitors and selective-estrogen modulators) could be used in combination with brain irradiation to decrease BM progression.

cancer biology↗

Brain FGF2 and NCAM1 contribute to FGFR1-dependent progression of ER+ breast cancer brain metastases in young and aged hosts

Estrogen receptor positive (ER+) breast cancer represents a significant proportion of breast cancer brain metastasis but remains understudied. Here, we report that FGFR1-amplification, a well-established driver of ER+ breast cancer endocrine resistance, promotes ER+ breast cancer brain metastatic colonization in young and aged female mice, through both canonical FGF2/FGFR1 signaling and non-canonical NCAM1/FGFR1 interactions. Astrocytic FGF2-mediated paracrine activation of FGFR1 promoted breast cancer brain metastasis in estrogen-treated young mice, but FGF2 levels and signaling decreased in the brain with aging and estrogen-depletion. Neuronal and astrocytic NCAM1, which remain unchanged in young and aged brains, promoted adhesion to neurons, migration, and growth of ER+ cells, suggesting that interactions with astrocytes and neurons facilitate early ER+ breast cancer brain metastasis colonization through FGFR1. Importantly, FDA-approved FGFR inhibitors effectively blocked early colonization but not late-stage brain metastases, suggesting prevention of FGFR1+ brain metastases as a window of opportunity for FGFR1 inhibitors.

cancer biology↗

Cholinergic synaptic plasticity shapes resilience and vulnerability to tau

Synaptic dysfunction is a hallmark of Alzheimers disease (AD). Yet due to their plasticity, synapses may also adapt to early AD pathology. Here, we demonstrate that cholinergic neurons mount a presynaptic response to tau pathology in the living human brain. Using multi-tracer positron emission tomography in cognitively normal older adults at risk for AD, we observe that cholinergic neurons increase presynaptic vesicular acetylcholine transporter (VAChT) protein levels when colocalized to tau, but not amyloid. Notably, stronger VAChT responses were associated with cognitive resilience over a decade. Whole-brain single-nucleus RNA sequencing in human and mouse tissue reveal that cholinergic neurons are enriched for a plasticity gene-network anchored to the microtubule-associated protein tau (MAPT) gene. In mice, forebrain-specific deletion of VAChT impairs cortical plasticity and hippocampal structural integrity. Overall, our findings identify cholinergic synaptic plasticity, and its failure, as a fundamental mechanism of resilience and vulnerability to tau in presymptomatic AD.

neuroscience↗