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1.
Dev Growth Differ ; 64(7): 379-394, 2022 Sep.
Article in English | MEDLINE | ID: mdl-36057539

ABSTRACT

When the regulation of axonal and dendritic growth is altered, the neuronal network becomes disordered, which may contribute to the development of psychiatric disorders. Some genome analyses have suggested relationships between mutations in strawberry notch homologue 1 (SBNO1) and neurodevelopmental disorders. However, the function of SBNO1 has not yet been reported. Here, SBNO1 expression pattern during the development of the cerebral cortex in mice was examined. SBNO1 was strongly expressed in the cortical plate and its expression was maintained at a low level during the postnatal stage. CRISPR/Cas9-based knockout of Sbno1 in Neuro2A cultured cells showed delayed growth of neurites. A cortical neuron-specific conditional knockout mouse was constructed, which resulted in hypotrophy of axon bundles and dendrites in cortical neurons. Thus, when mutated, SBNO1 is a candidate gene for psychiatric diseases, such as schizophrenia, as suggested by human genome studies.


Subject(s)
Neuronal Outgrowth , Neurons , Animals , Cells, Cultured , Cerebral Cortex/metabolism , Humans , Mice , Mice, Knockout , Neurites/metabolism , Neuronal Outgrowth/genetics
2.
Inflamm Regen ; 39: 8, 2019.
Article in English | MEDLINE | ID: mdl-31057688

ABSTRACT

BACKGROUND: Senescence increases the risks of inflammatory bowel diseases and colon cancer. Intestinal stem cells (ISCs) in crypts differentiate into epithelial cells and thereby maintain intestinal homeostasis. However, the influence of aging on the functions of ISCs is largely unknown. The mutation rate is highest in the small and large intestines. Numerous types of naturally occurring DNA damage are removed by the DNA damage response (DDR). This response induces DNA repair and apoptosis; therefore, its dysregulation leads to accumulation of damaged DNA and consequently cellular dysfunctions, including tumorigenesis. This study investigated whether aging affects the DDR in mouse ISCs. METHODS: Young (2-3-month-old) and old (> 19-month-old) Lgr5-EGFP-IRES-creERT2 mice were irradiated. The DDR in Lgr5-positive ISCs was compared between these mice by immunohistochemical analyses. RESULTS: Induction of DDR marker proteins (phosphorylated ATR and 53BP1), inflammatory factors (phosphorylated NF-κB and interleukin-6), and a mitochondrial biogenesis-associated gene (peroxisome proliferator-activated receptor-γ coactivator 1α) was lower in old ISCs than in young ISCs in vivo. CONCLUSION: The competence of the DDR in ISCs declines with age in vivo.

3.
Inflamm Regen ; 38: 9, 2018.
Article in English | MEDLINE | ID: mdl-29991971

ABSTRACT

Restoration of tissue homeostasis by controlling stem cell aging is a promising therapeutic approach for geriatric disorders. The molecular mechanisms underlying age-related dysfunctions of specific types of adult tissue stem cells (TSCs) have been studied, and various microRNAs were recently reported to be involved. However, the central roles of microRNAs in stem cell aging remain unclear. Interest in this area was sparked by murine heterochronic parabiosis experiments, which demonstrated that systemic factors can restore the functions of TSCs. Age-related changes in secretion profiles, termed the senescence-associated secretory phenotype, have attracted attention, and several pro- and anti-aging factors have been identified. On the other hand, many microRNAs are linked with the age-dependent dysregulations of various physiological processes, including "stem cell aging." This review summarizes microRNAs that appear to play common roles in stem cell aging.

4.
Aging (Albany NY) ; 8(6): 1259-75, 2016 06.
Article in English | MEDLINE | ID: mdl-27311402

ABSTRACT

The senescence-associated secretory phenotype (SASP) has attracted attention as a mechanism that connects cellular senescence to tissue dysfunction, and specific SASP factors have been identified as systemic pro-aging factors. However, little is known about the age-dependent changes in the secretory properties of stem cells. Young, but not old, mesenchymal stem/stromal cells (MSCs) are a well-known source of critical regenerative factors, but the identity of these factors remains elusive. In this study, we identified growth differentiation factor 6 (Gdf6; also known as Bmp13 and CDMP-2) as a regenerative factor secreted from young MSCs. The expression of specific secretory factors, including Gdf6, was regulated by the microRNA (miRNA) miR-17, whose expression declined with age. Upregulation of Gdf6 restored the osteogenic capacity of old MSCs in vitro and exerted positive effects in vivo on aging-associated pathologies such as reduced lymphopoiesis, insufficient muscle repair, reduced numbers of neural progenitors in the brain, and chronic inflammation. Our results suggest that manipulation of miRNA could enable control of the SASP, and that regenerative factors derived from certain types of young cells could be used to treat geriatric diseases.


Subject(s)
Cellular Senescence/physiology , Growth Differentiation Factor 6/metabolism , Mesenchymal Stem Cells/metabolism , Osteogenesis/physiology , Animals , Cell Differentiation/physiology , Cell Proliferation/physiology , Cells, Cultured , Mice , MicroRNAs/metabolism , Up-Regulation
6.
Proc Natl Acad Sci U S A ; 111(4): 1604-9, 2014 Jan 28.
Article in English | MEDLINE | ID: mdl-24474786

ABSTRACT

Neural stem/progenitor cell (NSPC) multipotency is highly regulated so that specific neural networks form during development. NSPCs cannot respond to gliogenic signals without acquiring gliogenic competence and decreasing their neurogenic competence as development proceeds. Coup-tfI and Coup-tfII are triggers of these temporal NSPC competence changes. However, the downstream effectors of Coup-tfs that mediate the neurogenic-to-gliogenic competence transition remain unknown. Here, we identified the microRNA-17/106 (miR-17/106)-p38 axis as a critical regulator of this transition. Overexpression of miR-17 inhibited the acquisition of gliogenic competence and forced stage-progressed NSPCs to regain neurogenic competence without altering the methylation status of a glial gene promoter. We also identified Mapk14 (also known as p38) as a target of miR-17/106 and found that Mapk14 inhibition restored neurogenic competence after the neurogenic phase. These results demonstrate that the miR-17/106-p38 axis is a key regulator of the neurogenic-to-gliogenic NSPC competence transition and that manipulation of this axis permits bidirectional control of NSPC multipotency.


Subject(s)
Cell Differentiation/physiology , MicroRNAs/physiology , Neural Stem Cells/cytology , Neuroglia/cytology , Neurons/cytology , p38 Mitogen-Activated Protein Kinases/metabolism , Animals , Base Sequence , Glial Fibrillary Acidic Protein/genetics , Mice , Mice, Inbred ICR , MicroRNAs/chemistry , Neural Stem Cells/metabolism , Promoter Regions, Genetic , Sequence Homology, Amino Acid
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