neural stem cells (dark green) in the dentate gyrus continue to generate new neurons throughout adulthood, developing into granule cells (red) in the hippocampus, an area that contributes to complicated memory and limbic circuits
this regenerative process occurs in both mice and humans, permitting the use of murine models for investigation of this unique neural stem cell population
confocal
credit: Ann-Shyn Chiang and Grigori Enikolopov, CSHL

neural stem cells (dark green) in the dentate gyrus continue to generate new neurons throughout adulthood, developing into granule cells (red) in the hippocampus, an area that contributes to complicated memory and limbic circuits

this regenerative process occurs in both mice and humans, permitting the use of murine models for investigation of this unique neural stem cell population

confocal

credit: Ann-Shyn Chiang and Grigori Enikolopov, CSHL

neural stem cells (dark green) in the dentate gyrus continue to generate new neurons throughout adulthood, developing into granule cells (red) in the hippocampus, an area that contributes to complicated memory and limbic circuits
this regenerative process occurs in both mice and humans, permitting the use of murine models for investigation of this unique neural stem cell population
confocal
credit: Ann-Shyn Chiang and Grigori Enikolopov, CSHL

neural stem cells (dark green) in the dentate gyrus continue to generate new neurons throughout adulthood, developing into granule cells (red) in the hippocampus, an area that contributes to complicated memory and limbic circuits

this regenerative process occurs in both mice and humans, permitting the use of murine models for investigation of this unique neural stem cell population

confocal

credit: Ann-Shyn Chiang and Grigori Enikolopov, CSHL

Posted 11 months ago & Filed under cells, stem cells, biology, science, microscopy, 271 notes View high resolution

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(because pluripotency is overrated)