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Biology subjects

Taylor, J. A. G. E.

Publications and source records attributed to Taylor, J. A. G. E..

2 recordsLinked to original sources

Bifidobacterium pseudocatenulatum capsular exopolysaccharide enhances systemic anti-tumour immunity in pre-clinical breast cancer

Gut microbes have merged as powerful regulators of cancer responses, with Bifidobacterium species and strains playing a key role in promoting anti-tumour immunity. While they represent promising candidates for cancer therapeutics, the specific underlying microbial mechanisms driving their efficacy remains poorly understood. In this study, we demonstrate the broad potential of Bifidobacterium species to inhibit breast cancer progression across multiple pre-clinical mouse models. We identify a novel strain, Bifidobacterium pseudocatenulatum 210, which induces systemic anti-tumour immunity and enhances responses to standard-of-care therapies via its cell surface capsular exopolysaccharide (EPS). B. pseudocatenulatum 210 EPS promotes dendritic cell activation and increases systemic cDC1 infiltration, leading to robust CD8+ T cell-mediated anti-tumour activity. Our findings position Bifidobacterium EPS as a novel class of therapeutic compounds with significant potential for cancer treatment.

cancer biology↗

Endothelial neuropilin-1 and neuropilin-2 are essential for tumour angiogenesis

Neuropilin (NRP) expression is highly correlated with poor outcome in multiple cancer subtypes. As known co-receptors for vascular endothelial growth factor receptors (VEGFRs), core drivers of angiogenesis, past investigations have alluded to their functional roles in facilitating tumorigenesis by promoting invasive vessel growth. Despite this, it remains unclear as to whether NRP1 and NRP2 act in a synergistic manner to enhance pathological angiogenesis. Here we demonstrate, using NRP1ECKO, NRP2ECKO and NRP1/NRP2ECKO mouse models, that maximum inhibition of primary tumour development and angiogenesis is only achieved when both endothelial NRP1 and NRP2 are targeted simultaneously. Metastasis and secondary site angiogenesis were also significantly inhibited in NRP1/NRP2ECKO animals. Mechanistic studies revealed that co-depleting NRP1 and NRP2 in mouse-microvascular endothelial cells (ECs) stimulates rapid shuttling of VEGFR-2 to Rab7+ endosomes for proteosomal degradation. Our results highlight the importance of targeting both NRP1 and NRP2 to modulate tumour angiogenesis.

cancer biology↗