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Biology subjects

Bonder, C. S.

Publications and source records attributed to Bonder, C. S..

4 recordsLinked to original sources

Gut-immune signaling drives blood-brain barrier damage in pediatric allogeneic stem cell transplant

Allogeneic hematopoietic stem cell transplantation (allo-HSCT) is a life-saving therapy for children with high-risk hematological diseases. However, allo-HSCT also confers the risk of long-term neurocognitive dysfunction, particularly in pediatric recipients, and the mechanisms underlying this remain poorly understood. While gastrointestinal toxicities and immune responses following allo-HSCT have been well characterized, their contribution to central nervous system toxicities is unknown. Here, using clinical biomarker analysis, we show evidence of blood-brain barrier (BBB) dysfunction in pediatric allo-HSCT, associated with IL-6 signaling and reduced levels of brain-derived neurotrophic factor. Pre-transplant gastrointestinal mucosal barrier injury was associated with post-transplant BBB leakage, implicating disrupted gut-brain-axis signaling. In vitro, gut damage-associated immune activation induced apoptosis and remodeling of brain microvascular endothelial cells (BMECs), with surviving cells exhibiting tight junction disruption and cytoskeletal reorganization. Plasma from allo-HSCT recipients similarly induced BMEC apoptosis. Notably, both immune signaling- and patient plasma-induced BMEC apoptosis were prevented by IL-6 inhibition or supplementation with the gut microbiota-derived metabolite propionate. Together, these findings identify immune signaling as a correlate of BBB damage clinically and a causative driver in vitro in pediatric allo-HSCT.

neuroscience↗

Tumor Protein D54 (TPD54) regulates intracellular protein trafficking, cellular function and disease progression in melanoma

To facilitate survival, migration and evasion of immune surveillance, cancer cells tightly coordinate the synthesis and trafficking of a diverse repertoire of proteins to their cell surface and the surrounding tumor microenvironment. A key mechanism underlying this process is the intracellular membrane trafficking pathways, including vesicular transport systems. There remains a paucity of mechanistic insight into the regulatory components that mediate nascent protein trafficking and their dysregulation in cancer. Herein, we investigate Tumor Protein D54 (TPD54) as a central regulator of intracellular protein transport that is exploited by melanoma cells to promote disease progression. Integrative analyses of patient-derived tumor tissue specimens show that the expression of TPD52L2 (the gene encoding TPD54) is frequently overexpressed in melanoma and correlates with adverse clinical outcomes, including reduced responses to immune checkpoint blockade. Mechanistic investigations further revealed that TPD54 maintains Golgi integrity and orchestrates trafficking of early endosomes, anterograde vesicles and extracellular vesicles. Functionally, TPD54 augments the secretion of pro-cancerous cytokines, increases the cell surface expression of adhesion-signaling receptors (e.g. integrin-{beta}1 and desmoglein-2), promotes melanoma cell migration and elevates their capability to undergo vasculogenic mimicry. Targeting TPD52L2 in two mouse models of melanoma (B16-F10 and HCmel12) showed significant attenuation of tumor growth, disrupted tumor vasculature, enhanced anti-tumor immunity with infiltration of CD8+ T cells and reduced metastatic disease. Collectively, these findings establish TPD54 as a critical and previously underappreciated regulator of protein trafficking in cancer cells that directly contributes to disease progression and highlights its potential as a novel therapeutic target to combat melanoma.

cancer biology↗

Development of a novel murine model of in-stent neoatherosclerosis

ObjectiveIn-stent neoatherosclerosis is a phenomenon of percutaneous coronary intervention with stenting. Whilst similar to de novo atherosclerosis, it develops rapidly over 1-5 years rather than over a lifetime. No preclinical small animal models exist that allow full elucidation of neoatherosclerosis biology and future treatments. The aim of this study was to establish and validate a novel murine model of in-stent neoatherosclerosis. Approach and ResultsMurine stainless-steel stents (2.5 x 0.7 mm) were deployed into donor descending aortas of atherosclerosis-prone apolipoprotein (Apo)e-/- mice, then carotid-interposition grafted into Apoe-/- recipients. Mice (n=6-8/group) received chow or a high cholesterol diet (HCD) for 7- or 28-days post-surgery. Multimodal intravascular imaging, simultaneously combining optical coherence tomography (OCT, plaque burden) and fluorescence for indocyanine green (ICG, plaque instability), visualized in-stent neoatherosclerosis across the entire length of the stented site. Histological analyses revealed that stented vessels from mice fed HCD had neointimas with prominent lipid cores and an elevated CD68+ macrophage content, similar to human neoatherosclerosis. Mice fed chow post-stenting had distinctly different neointimas that were smooth muscle cell rich, resembling neointimal hyperplasia. Consistent with this, flow cytometry revealed a higher content of monocytes/macrophages and dendritic cells in stented aortas from mice fed HCD than in non-stented aortas. ConclusionWe have developed and validated the first murine model that replicates the unique characteristics of human in-stent neoatherosclerosis. This project has implications for exploring the mechanisms that promote neoatherosclerosis and testing targeted new therapies. RESEARCH PERSPECTIVEO_ST_ABSWhat Is New?C_ST_ABSO_LIWe have developed and validated a novel murine model of in-stent neoatherosclerosis, presenting a new platform that will facilitate the discovery of novel mechanistic targets of in-stent neoatherosclerosis and preventative therapies. C_LIO_LIThis model develops lesions with a similar morphology to human in-stent neoatherosclerosis and distinct to in-stent neointimal hyperplasia, with higher extracellular lipid and macrophage content and proportionately less smooth muscle cells. C_LIO_LIWe show a first-time visualization of murine in-stent neoatherosclerosis using bimodal intravascular imaging with simultaneous capture of structural information (optical coherence tomography, plaque burden) and the distribution of areas of plaque instability (high-sensitivity fluorescence, indocyanine green) within the plaque. C_LI What new question does this study raise?O_LIHow can the utility of this novel model be maximized as a platform for discovering novel agents that prevent in-stent neoatherosclerosis? C_LI What question should be addressed next?O_LIAre there unique mechanisms of in-stent neoatherosclerosis, distinct to de novo atherosclerosis, that can be specifically targeted to prevent disease and ultimately increase stent performance? C_LI

cell biology↗

Self-renewing tissue-resident endothelial-macrophage progenitor cells originate from yolk sac and are a local source of inflammation and neovascularization in postnatal aorta

Converging evidence indicates that extra-embryonic yolk sac is the source of both macrophages and endothelial cells in adult mouse tissues. Prevailing views are that these embryonically derived cells are maintained after birth by proliferative self-renewal in their differentiated states. Here we identify clonogenic endothelial-macrophage (EndoMac) progenitor cells in the adventitia of embryonic and postnatal mouse aorta, that are independent of Flt3-mediated bone marrow hematopoiesis and derive from an early embryonic CX3CR1+ and CSF1R+ source. These bipotent progenitors are proliferative and vasculogenic, contributing to adventitial neovascularization and forming perfused blood vessels after transfer into ischemic tissue. We establish a regulatory role for angiotensin II, which enhances their clonogenic and differentiation properties and rapidly stimulates their proliferative expansion in vivo. Our findings demonstrate that embryonically derived EndoMac progenitors participate in local vasculogenic responses in the aortic wall by contributing to the expansion of endothelial cells and macrophages postnatally.

cell biology↗