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Biology subjects

Zhang, X.-P.

Publications and source records attributed to Zhang, X.-P..

2 recordsLinked to original sources

Dysfunction of microglia-mediated synaptic pruning in Autism spectrum disorder

Autism spectrum disorder (ASD) has been increasingly associated with abnormalities in synaptic pruning. Although significant progress has been made in elucidating the genetic and immunological underpinnings of ASD, its core pathological mechanisms remain poorly understood. In this study, we developed a network model integrating the in flammatory response pathway in microglia with synaptic signaling pathway to investigate how lipopolysaccharide (LPS) and synaptic activity jointly regulate microglia-mediated synaptic pruning. Our results reveal that pro-in flammatory activation of microglia impairs pruning efficiency under reduced synaptic activity, leading to excessive synaptic accumulation particularly in the prefrontal cortex and contributing to ASD-like phenotypes. Conversely, enhanced synaptic activity partially suppresses LPS-induced synaptic apoptosis and promotes synaptic retention. These findings suggest multiple therapeutic strategies, including targeting pruningrelated molecular pathways, mitigating neuroinflammation, and modulating synaptic excitability to alleviate ASD symptoms.

systems biology↗

Self-adjusting Engineered Probiotic for Targeted Tumor Colonization and Local Therapeutics Delivery

Engineered bacteria have demonstrated great potential for treating a broad array of tumors. However, the precision and safety of controlling the performance of engineered bacteria in vivo remains a central challenge. Here, we utilized genetic circuit programming strategy to construct an engineered Escherichia coli Nissle 1917 with accurate targeted colonizing and on-demand payloads releasing ability. The engineered probiotic survives only in the presence of more than 5 mM L-lactate by employing an improved lactate-sensing system, which leads to preventing the growth outside the permissive environments in mice. Meanwhile we introduce an expressing -hemolysin (SAH) circuit based on quorum-sensing system to augment anti-tumor effect. Furthermore, coagulase induced by high-level lactate creates the closure to deprive tumor of nutrients and oxygen and prevents leakage of bacteria and SAH, which enhances the therapeutic effectiveness and biosafety. This self-adjusting living biotherapeutics significantly inhibits tumor proliferation and prolongs the survival time of colorectal tumor-bearing mice. Together, our work takes a step towards safer and more effective application of living bacteria for tumor treatment in practice.

synthetic biology↗