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Kitagawa, T.

Publications and source records attributed to Kitagawa, T..

2 recordsLinked to original sources

Novel System to Monitor In Vivo Neural Graft Activity After Spinal Cord Injury

Expectations for neural stem/progenitor cell (NS/PC) transplantation as a treatment for spinal cord injury (SCI) are increasing. However, whether and how grafted cells are incorporated into the host neural circuit and contribute to motor function recovery remain unknown. The aim of this project was to establish a novel non-invasive in vivo imaging system to visualize the activity of neural grafts by which we can simultaneously demonstrate the circuit-level integration between the graft and host, and the contribution of graft neuronal activity to host behaviour. We introduced Akaluc, a newly engineered luciferase, under control of a potent neuronal activity-dependent synthetic promoter, E-SARE, into NS/PCs and engrafted the cells into SCI model mice. Through the use of this system, we reveal that the activity of grafted cells was integrated with host behaviour and driven by host neural circuit inputs. This non-invasive system is expected to help elucidate the therapeutic mechanism of cell transplantation treatment for SCI and determine better therapy techniques that maximize the function of cells in the host circuit.

neuroscience

Antimalarial drugs lose their activity with a slight drop in pH

Antimalarial drugs have antimicrobial, antiviral, antimalarial and immunosuppressive activities, although the mechanisms remain unknown. Quinacrine (QC) increases the antimicrobial activity against yeast exponentially with a pH-dependent increase in the cationic amphiphilic drug (CAD) structure. CAD-QC localizes in membranes and induces glucose starvation by noncompetitively inhibiting glucose uptake. A logarithmic increase in antimicrobial activity with pH-dependent CAD formation was also observed for chloroquine, indicating that the CAD structure is crucial for its pharmacological activity. A decrease in CAD structure with a slight decrease in pH from 7.4 greatly reduced their effects; namely, these drugs would inefficiently act on falciparum malaria and COVID-19 pneumonia patients with acidosis, resulting in resistance. Recovering normal blood pH or using pH-insensitive quinoline drugs might be effective.

pharmacology and toxicology