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Martinelli, N.

Publications and source records attributed to Martinelli, N..

2 recordsLinked to original sources

Tumor-associated macrophages enhance tumor innervation and spinal cord repair

AO_SCPLOWBSTRACTC_SCPLOWTumor-associated macrophages (TAM) enhance cancer progression by promoting angiogenesis, extracellular matrix (ECM) remodeling, and immune suppression. Nerve infiltration is a hallmark of various cancers and is known to directly contribute to tumor growth. However, the role of TAM in promoting intratumoral nerve growth remains poorly understood. In this study, we demonstrate that TAM expressed a distinct "neural growth" gene signature. TAM actively enhance neural growth within tumors and directly promote neurites outgrowth. We identify secreted phosphoprotein 1 (Spp1) as a key mediator of TAM-driven neural growth activity, which triggers neuronal mTORC2 signaling. Leveraging this new neural growth function, which added to the TAM wound healing properties, we explored TAM potential to repair central nervous system. Adoptive transfer of in vitro-generated TAM in a severe complete-compressive-contusive spinal cord injury (scSCI) model, not only repaired the damaged neural parenchyma by improving tissue oxygenation, ECM remodeling, and dampening chronic inflammation, but also resulted in neural regrowth and partial functional motor recovery. Proteomic analysis and subsequent functional validation confirmed that TAM-induced spinal cord regeneration is mediated through the activation of neural mTORC2 signaling pathways. Collectively, our data unveil a previously unrecognized role of TAM in tumor innervation, neural growth, and neural tissue repair.

neuroscience↗

Transposon mutagenesis reveals differential essential pathways in model Salmonella Typhimurium strains SL1344 and SL3261

Salmonella enterica is a globally disseminated pathogen that is the cause of over 100 million infections per year. The resulting diseases caused by S. enterica are dependent upon host susceptibility and the infecting serovar. For example, Typhoid fever is a human exclusive disease caused by S. enterica serovar Typhi. As S. enterica serovar Typhimurium induces a typhoid like disease in mice, this model has been used extensively to illuminate various aspects of Salmonella infection and host responses. However, the infection is so severe that even one infectious bacterium injected intravenously will cause mortality in 100% of animals within one week of infection. Due to this severity, researchers often use strains of mice resistant to infection or attenuated Salmonella strains to understand adaptive immunity and infection dynamics. Despite decades of research, many aspects of Salmonella infection and fundamental biology remain poorly understood. Here, we use a Transposon Insertion Sequencing (TIS) technique to interrogate the essential genomes of widely used isogenic wild-type and attenuated S. Typhimurium strains. We reveal differential essential pathways between strains, provide a direct link between iron starvation, DNA synthesis and bacterial membrane integrity, and show S. Typhi and S. Typhimurium have similar requirements for iron.

microbiology↗