Stem cell dysfunction drives many age-related disorders. Identifying mechanisms that initially compromise stem cell behavior represent early targets to promote tissue function later in life. Here, we pinpoint multiple factors that disrupt neural stem cell (NSC) behavior in the adult hippocampus. Clonal tracing showed that NSCs exhibit asynchronous depletion by identifying short-term NSCs (ST-NSCs) and long-term NSCs (LT-NSCs). ST-NSCs divide rapidly to generate neurons and deplete in the young brain. Meanwhile, multipotent LT-NSCs are maintained for months but are pushed out of homeostasis by lengthening quiescence. Single-cell transcriptome analysis of deep NSC quiescence revealed several hallmarks of molecular aging in the mature brain an...
Quiescence is essential for the long-term maintenance of adult stem cells and tissue homeostasis and...
poster abstractThe U.S. population is aging. Age-related cognitive decline is a major public health ...
Neural stem cells (NSCs) are crucial for development, regeneration, and repair of the nervous system...
Stem cell dysfunction drives many age-related disorders. Identifying mechanisms that initially compr...
Abstract Aging associated cognitive decline has been linked to dampened neural stem/progenitor cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
Summary: Deciphering the mechanisms that regulate the quiescence of adult neural stem cells (NSCs) i...
Adult neurogenesis persists in the hippocampus of most mammal species during postnatal and adult lif...
Adult neurogenesis supports cognitive and sensory functions in mammals and is significantly reduced ...
The function of somatic stem cells declines with age. Understanding the molecular underpinnings of t...
Summary: Adult murine neural stem cells (NSCs) generate neurons in drastically declining numbers wit...
Quiescence is essential for the long-term maintenance of adult stem cells and tissue homeostasis and...
poster abstractThe U.S. population is aging. Age-related cognitive decline is a major public health ...
Neural stem cells (NSCs) are crucial for development, regeneration, and repair of the nervous system...
Stem cell dysfunction drives many age-related disorders. Identifying mechanisms that initially compr...
Abstract Aging associated cognitive decline has been linked to dampened neural stem/progenitor cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
International audienceThe adult mammalian central nervous system contains resident neural stem cells...
Summary: Deciphering the mechanisms that regulate the quiescence of adult neural stem cells (NSCs) i...
Adult neurogenesis persists in the hippocampus of most mammal species during postnatal and adult lif...
Adult neurogenesis supports cognitive and sensory functions in mammals and is significantly reduced ...
The function of somatic stem cells declines with age. Understanding the molecular underpinnings of t...
Summary: Adult murine neural stem cells (NSCs) generate neurons in drastically declining numbers wit...
Quiescence is essential for the long-term maintenance of adult stem cells and tissue homeostasis and...
poster abstractThe U.S. population is aging. Age-related cognitive decline is a major public health ...
Neural stem cells (NSCs) are crucial for development, regeneration, and repair of the nervous system...