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Biology subjects

Verhagen, M. P.

Publications and source records attributed to Verhagen, M. P..

5 recordsLinked to original sources

Hypothalamic oligodendrocytes regulate systemic energy balance through Notch-dependent state transitions

The central mechanisms through which glial cells regulate whole-body metabolism remain poorly understood. Here, we identify Notch signaling in hypothalamic oligodendrocyte lineage cells as a previously unrecognized regulator of systemic energy homeostasis. Pharmacological inhibition of the Notch ligands Jagged1 (Jag1) and Jagged2 (Jag2) induces rapid and reversible weight loss across diverse physiological and metabolic contexts independently of toxicity or caloric intake. Single-nucleus transcriptomic analyses identify hypothalamic oligodendrocyte precursor cells (OPCs) as the principal Notch-responsive population following systemic Jag1/2 inhibition and reveal expansion of a metabolically specialized GPR17 intermediate state characterized by enhanced oxidative metabolism and increased predicted communication with hypothalamic neurons. This glial remodeling is accompanied by fasting-like transcriptional reprogramming of AgRP neurons, reorganization of melanocortin-autonomic circuit activity, and activation of peripheral catabolic programs. Importantly, selective deletion of Notch1/2 in hypothalamic OPCs recapitulates the major physiological and metabolic effects of systemic Jag1/2 inhibition, establishing oligodendrocyte Notch signaling as a causal regulator of whole-body metabolism. Together, our findings establish Notch-dependent oligodendrocyte state transitions as a previously unrecognized mechanism linking glial plasticity to systemic energy homeostasis.

physiology↗

Western diet suppresses canonical intestinal stem cells and reprograms c-Kit+ reserve stem cells via proinflammatory dysbiosis

While colorectal cancer (CRC) is thought to originate primarily from resident stem cells, diet heavily influences intestinal stem cell homeostasis and disease onset. In this study, we demonstrate that a Western-style diet (WSD) alters intestinal homeostasis by uncoupling canonical stemness from tumorigenesis. WSD exposure suppresses canonical Lgr5 stem cells while activating an alternative pool of facultative c-Kit secretory cells. Although these reprogrammed stem-like cells exhibit genotoxic stress, they remain proliferative under prolonged dietary exposure, suggesting increased susceptibility to tumor-initiating mutations. We identify diet-induced microbial shifts and the expansion of enterotoxigenic Bacteroides fragilis (ETBF) as the upstream driver. ETBF and its toxin fragilysin autonomously trigger multipotency in c-Kit+ cells through Wnt/{beta}-catenin and YAP signaling. Importantly, these alterations are fully reversible upon dietary intervention. Together, our results highlight a targetable dietary-microbial axis that shapes epithelial stemness and underscores the role of facultative stem cells in diet-induced CRC onset.

cell biology↗

Integrin-TGFβ axis induces partial EMT in basal-like cells to lead collective invasion

Collective invasion is the predominant mode of cancer cell dissemination in breast cancer and represents the initial step of metastatic spread. Basal-like leader cells drive this process by maintaining cell-cell junctions with the follower cells while extending actin-rich protrusions and remodeling the collagen I-rich peritumoral stroma. These features resemble those of individually-invading cells following epithelial-to-mesenchymal transition (EMT). However, how leader cells acquire these traits while preserving cohesion within the collective remains unclear. Here, we identify a collagen I-responsive subset of basal-like cells that coexpress cytoskeletal, extracellular matrix (ECM)-remodeling, and epithelial junction genes. We show that integrin 2 (Itg2) links collagen I engagement to mesenchymal reprogramming by inducing inhibin beta A (INHBA) expression and activating tumor growth factor {beta} (TGF{beta}) signaling. This, in turn, upregulates vimentin while preserving epithelial junction gene expression. In parallel, Itg2 promotes ECM degradation through a TGF{beta}-independent mechanism. This study identifies Itg2-TGF{beta} axis as a key regulator of partial EMT and leader cell function, highlighting it as a potential therapeutic target in aggressive breast cancers.

cell biology↗

A tug-of-war between the NuRD and SWI/SNF chromatin remodelers regulates the coordinated activation of Epithelial-Mesenchymal Transition and inflammation in oral cancer.

Phenotypic plasticity and inflammation, two well-established hallmarks of cancer, play key roles in local invasion and distant metastasis by enabling rapid adaptation of tumor cells to dynamic micro- environmental changes. Here, we show that in oral squamous carcinoma cell carcinoma (OSCC), the competition between the NuRD and SWI/SNF chromatin remodeling complexes plays a pivotal role in regulating both epithelial-mesenchymal plasticity (EMP) and inflammation. By perturbing these complexes, we demonstrate their opposing downstream effects on inflammatory pathways and EMP regulation. In particular, downregulation of the BRG1-specific SWI/SNF complex deregulates key inflammatory genes such as TNF- and IL6 in opposite ways when compared with loss of CDK2AP1, a key member of the NuRD complex. We show that CDK2AP1 genetic ablation triggers a pro-inflammatory secretome encompassing several chemo- and cytokines thus promoting the recruitment of monocytes into the tumor microenvironment (TME). Furthermore, CDK2AP1 deletion stimulates their differentiation into M2-like macrophages, as also validated on tumor microarrays from OSCC patient- derived tumor samples. Further analysis of the inverse correlation between CDK2AP1 expression and TME immune infiltration revealed specific downstream effects on CD68+ macrophage abundance and localization. Our study sheds light on the role of chromatin remodeling complexes in OSCC locoregional invasion and points at the potential of CDK2AP1 and other members of the NuRD and SWI/SNF chromatin remodeling complexes as prognostic markers and therapeutic targets.

cancer biology↗

The origin of intestinal cancer in the context of inflammation

According to conventional views, colon cancer originates from stem cells. However, inflammation, a key risk factor for colon cancer, was shown to suppress intestinal stemness. Here, we employed Paneth cells (PCs) as a model to assess the capacity of differentiated lineages to trigger tumorigenesis in the context of inflammation. Upon inflammation, PC-specific Apc mutations led to intestinal tumors reminiscent not only of those arising in inflammatory bowel disease (IBD) patients but also of a larger fraction of sporadic colon cancers. The latter is likely due to the inflammatory consequences of Western-style dietary habits, the major colon cancer risk factor. Computational methods designed to predict the cell-of-origin of cancer confirmed that, in a substantial fraction of sporadic colon cancers the cells-of-origin are secretory lineages and not stem cells. One-Sentence SummarySecretory cell lineages trigger tumor formation in the context of the major etiologic colon cancer risk factors.

cancer biology↗