Dedifferentiation maintains melanocyte stem cells in a dynamic niche.

Dedifferentiation maintains melanocyte stem cells in a dynamic niche.
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去分化使黑素细胞干细胞保持在一个动态的利基位置。

DOI:
10.1038/s41586-023-05960-6
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发表时间:
2023-04
期刊:
影响因子:
64.8
通讯作者:
Ito, Mayumi
Ito, Mayumi
中科院分区:
综合性期刊1区
文献类型:
--
作者:
Sun, Qi;Lee, Wendy;Hu, Hai;Ogawa, Tatsuya;De Leon, Sophie;Katehis, Ioanna;Lim, Chae Ho;Takeo, Makoto;Cammer, Michael;Taketo, M. Mark;Gay, Denise L.;Millar, Sarah E.;Ito, Mayumi

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For unknow reasons, the melanocyte stem cell (McSC) system fails earlier than other adult stem cell populations, which leads to hair greying in most humans and mice. Current dogma states that McSCs are reserved in an undifferentiated state in the hair follicle niche, physically segregated from differentiated progeny that migrate away following cues of regenerative stimuli. Here we show that most McSCs toggle between transit-amplifying and stem cell states for both self-renewal and generation of mature progeny, a mechanism fundamentally distinct from those of other self-renewing systems. Live imaging and single-cell RNA sequencing revealed that McSCs are mobile, translocating between hair follicle stem cell and transit-amplifying compartments where they reversibly enter distinct differentiation states governed by local microenvironmental cues (for example, WNT). Long-term lineage tracing demonstrated that the McSC system is maintained by reverted McSCs rather than by reserved stem cells inherently exempt from reversible changes. During ageing, there is accumulation of stranded McSCs that do not contribute to the regeneration of melanocyte progeny. These results identify a new model whereby dedifferentiation is integral to homeostatic stem cell maintenance and suggest that modulating McSC mobility may represent a new approach for the prevention of hair greying. Local microenvironmental cues modulate melanocyte stem cells, which control hair pigmentation, to enter different differentiation states, shifting between hair follicle stem cell and transit-amplifying compartments, a process that is different to other self-renewing systems.
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