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Tyrrell, D. J.

Publications and source records attributed to Tyrrell, D. J..

6 recordsLinked to original sources

Aging increases ovarian cancer growth, metastasis and immunosuppression that can be alleviated by inhibiting hedgehog signaling

Ovarian cancer incidence and mortality increase with age, yet how aging shapes tumor progression and the immune microenvironment remains poorly defined. Using orthotopic syngeneic models of distinct cellular origins (ovarian surface epithelial and fallopian tube-derived) in young versus aged mice, we show that aged hosts exhibit higher tumor burden, metastasis and ascites. Follicle depletion in young mice did not recapitulate these effects, indicating contributions beyond hormonal decline. Spatial transcriptomics revealed distinct age dependent intratumoral heterogeneity, with Hedgehog signaling enrichment in CD45+ cells from aged tumors, alongside elevated CD206+ tumor-associated macrophages and FoxP3+ regulatory T cells. Pharmacologic Hedgehog inhibition in aged mice suppressed tumor growth, reduced metastasis, and decreased CD206+ macrophages and FoxP3+ T cells while preserving CD8+T cells. In human ovarian cancer, Hedgehog activation correlated with immunosuppressive and immune checkpoint resistance signatures. We propose Hedgehog inhibition as an immunomodulatory strategy for Hedgehog activated or post menopausal ovarian cancer.

cancer biology↗

High-Dimensional Single-Cell Analysis Reveals Coordinated Age-Dependent Neuroinflammatory Microglia-T cell Circuits in the Brain

Aging and cerebrovascular pathology drive neuroinflammation in vascular dementia (VaD) but immune mechanisms underlying this interplay remain unresolved. Leveraging multi-modal high-dimensional imaging, flow cytometry, and split pool ligation transcriptomic sequencing in a mouse model of VaD, we constructed a brain immune cell atlas spanning young and aged mice in health and disease. We profiled microglia, T cells, macrophages, neutrophils, and B cells and integrated transcriptomics, cell-cell communication, multiplex imaging, and comparative analysis with human microglia. We found striking depletion of Ccr7+ naive T cells and expansion of Gzmk+ cytotoxic Cd8+ effector memory T cells in the aging brain. At the same time, microglia shifted toward a pro-inflammatory state with enhanced activity of major histocompatibility class complex I (MHC-I) to T cell receptor and co-stimulation from CD86 to CD28. These shifts suggest enhanced neuroinflammatory polarization within the aged brain and in VaD. These signals were strongest from activated microglia to Gzmk+ Cd8+ TEM cells, indicating that age-related microglial polarization may sustain cytotoxic T cell activation in the aged brain. Our findings suggest pro-inflammatory microglia and Gzmk+ CD8+ TEM cells are central drivers of immune brain aging and highlights a therapeutic potential to disrupt age-related neuroinflammatory cascades in VaD.

immunology↗

APOE4 genotype negates the benefits of 17β-estradiol on cerebrovascular endothelial and mitochondrial function

BackgroundPostmenopausal females who carry an APOE{varepsilon}4 allele are at higher risk of late-onset Alzheimers Disease compared to age-matched APOE{varepsilon}4 males. Estrogen deficiency predisposes females to an increased risk of vascular, cognitive, and metabolic impairments. While estrogen and APOE genotype are known to impact metabolic and mitochondrial function in the brain, their cerebrovascular effects are less understood. Thus, the purpose of this study was to determine the interaction between APOE genotype and estrogen on cerebrovascular endothelial and mitochondrial function. MethodsYoung female homozygous APOE{varepsilon}3 and APOE{varepsilon}4 mice (n=19-20/group; ~6 months old) fed a high-fat diet were ovariectomized (OVX), OVX and supplemented with 17{beta}-estradiol, or left intact. ResultsIn APOE{varepsilon}3 mice, OVX was associated with impaired posterior cerebral artery endothelium-dependent dilation, which was rescued by 17{beta}-estradiol. However, in APOE{varepsilon}4 mice, there was no effect of OVX or 17{beta}-estradiol on cerebral artery endothelial function. Carotid artery passive stiffness was greater with OVX and lower with 17{beta}-estradiol treatment in APOE{varepsilon}3 mice, but there was no impact of OVX or 17{beta}-estradiol in the APOE{varepsilon}4 mice. In cerebral arteries and arterioles, mitochondrial complexes I and I+II respiration were lower in APOE{varepsilon}4 mice compared with APOE{varepsilon}3 mice. 17{beta}-estradiol led to higher mitochondrial complex I respiration in APOE{varepsilon}3 but not APOE{varepsilon}4 mice. These functional differences were concomitant with group differences in mitochondrial DNA copy number, antioxidant enzymes, and pro-inflammatory factors. In contrast to other outcomes, we found that 17{beta}-estradiol treatment was associated with lower cerebral artery stiffness in APOE{varepsilon}4 but not APOE{varepsilon}3 mice. ConclusionsOverall, these results indicate that the APOE genotype modulates the impact of estrogen on the cerebral vasculature. We found that 17{beta}-estradiol enhances cerebrovascular endothelial and mitochondrial function in APOE{varepsilon}3 mice but not in APOE{varepsilon}4 mice. The results suggest that 17{beta}-estradiol supplementation has more cerebrovascular benefit for APOE{varepsilon}4 non-carriers. Novelty & SignificanceO_ST_ABSWhat is known?C_ST_ABSO_LIFemales have twice the risk of Alzheimers disease compared with males, and the APOE4 genetic variant is associated with a greater risk for Alzheimers disease compared with the APOE3 variant. C_LIO_LIThe risk for Alzheimers disease increases after menopause in females, suggesting that the loss of female sex hormones may play a role. C_LIO_LIThere are highly inconsistent results among past studies examining the interaction of APOE genotype and estrogens on cognitive function and other brain outcomes. C_LI What new information does this article contribute?Vascular outcomes were not measured in previous studies examining the interaction between APOE genotype and estrogens. As such, we aimed to determine the impact of APOE4 genotype on the cerebrovascular response to estradiol. We found that estradiol improved cerebral artery endothelial function and mitochondrial respiration in APOE3 mice following ovariectomy. In contrast, APOE4 mice were refractory to the beneficial effects of estradiol on cerebrovascular endothelial and mitochondrial function. The broader implication of this research is that APOE genotype may be a consideration when prescribing hormone replacement therapy to menopausal females due to the impact on vascular outcomes.

physiology↗

Amyloid-beta, alpha-synuclein and tau aggregated co-pathologies enhance neuropathology and neuroinflammation

Alzheimers (AD) and Parkinson disease (PD) pathology often co-occur. Amyloid-{beta} and phosphorylated tau are found in 30-50% of idiopathic PD cases, while -synuclein inclusions are present in 50% of AD cases. These co-pathologies are linked to increased mortality and earlier onset of cognitive decline. Immune activation is a hallmark of these neurodegenerative diseases, but current models primarily examine each pathology in isolation. How these co-pathologies drive inflammation and neuronal loss remains poorly understood. We therefore developed a mouse model combining tau, amyloid-{beta}, and -synuclein. We found that co-pathologies synergistically trigger an amplified neuroimmune response, with expanded populations of CD4+ and CD8+ tissue-resident memory T cells and CD68+ microglia, compared to single pathologies. These changes were abundant in the hippocampus and cortex, regions with elevated protein pathology load and enhanced neuronal loss. Our findings demonstrate that co-pathologies enhance proteinopathy and synergistically enhance immune activation and neurodegeneration, suggesting that combinatorial therapeutic strategies that target both co-pathologies and inflammation, may be disease modifying. SummaryWebster et al. demonstrate that co-occurring Alzheimers and Parkinson disease protein pathologies, common in cognitively impaired patient populations, amplify proteinopathy and synergistically enhance CNS neuroinflammatory responses and neurodegeneration. This work supports the need for combinatorial therapeutic strategies and positions neuroinflammation as an important link for co-pathology enhanced neurodegeneration.

neuroscience↗

Development of a Spectral Flow Cytometry Analysis Pipeline for High-Dimensional Immune Cell Characterization

Flow cytometry is a widely used technique for immune cell analysis, offering insights into cell composition and function. Spectral flow cytometry allows for high-dimensional analysis of immune cells, overcoming limitations of conventional flow cytometry. However, analyzing data from large antibody panels can be challenging using traditional bi-axial gating strategies. Here, we present a novel analysis pipeline designed to improve analysis of spectral flow cytometry. We employ this method to identify rare T cell populations in aging. We isolated splenocytes from young (2-3 months) and aged (18-19 months) female mice then stained these with a panel of 20 fluorescently labeled antibodies. Spectral flow cytometry was performed, followed by data processing and analysis using Python within a Jupyter Notebook environment to perform batch correction, unsupervised clustering, dimensionality reduction, and differential expression analysis. Our analysis of 3,776,804 T cells from 11 spleens revealed 34 distinct T cell clusters identified by surface marker expression. We observed significant differences between young and aged mice, with certain clusters enriched in one age group over the other. Naive, effector memory, and central memory CD8+ and CD4+ T cell subsets exhibited age-associated changes in abundance and marker expression. Additionally, {gamma}{delta} T cell clusters showed differential abundance between age groups. By leveraging high-dimensional analysis methods borrowed from single-cell RNA sequencing analysis, we identified age-related differences in T cell subsets, providing insights into the immune aging process. This approach offers a robust, free, and easily implemented analysis pipeline for spectral flow cytometry data that may facilitate the discovery of novel therapeutic targets for age-related immune dysfunction.

immunology↗

Analysis of National Institutes of Health Grant K99 to R00 Transitions from 2007 to 2022

Many postdoctoral fellows and scholars who hope to secure tenure-track faculty positions in the United States apply to the National Institutes of Health (NIH) for a Pathway to Independence Award. This award has two phases (K99 and R00) and provides funding for up to five years. Using NIH data for the period 2006-2022, we report that [~]230 K99 awards were made every year, representing up to [~]$250 million annual investment. About 40% of K99 awardees were women and [~]89% of K99 awardees went on to receive an R00 award annually. Institutions with the most NIH funding produced the most recipients of K99 awards and recruited the most recipients of R00 awards. The time between a researcher starting an R00 award and receiving a major NIH award (such as an R01) ranged between 4.6 and 7.4 years, and was significantly longer for women, for those who remained at their home institution, and for those hired by an institution that was not one of the 25 institutions with the most NIH funding. Shockingly, there has yet to be a K99 awardee at a historically Black college or university. We go on to show how K99 awardees flow to faculty positions, and to identify various factors that influence the future success of individual researchers and, therefore, also influence the composition of biomedical faculty at universities in the US.

scientific communication and education↗