Maintenance of germline stem cell homeostasis despite severe nuclear distortion

IF 2.1 3区 生物学 Q2 DEVELOPMENTAL BIOLOGY Developmental biology Pub Date : 2024-07-20 DOI:10.1016/j.ydbio.2024.07.009
Isabella E. Perales, Samuel D. Jones, Tingting Duan , Pamela K. Geyer
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Abstract

Stem cell loss in aging and disease is associated with nuclear deformation. Yet, how nuclear shape influences stem cell homeostasis is poorly understood. We investigated this connection using Drosophila germline stem cells, as survival of these stem cells is compromised by dysfunction of the nuclear lamina, the extensive protein network that lines the inner nuclear membrane and gives shape to the nucleus. To induce nuclear distortion in germline stem cells, we used the GAL4-UAS system to increase expression of the permanently farnesylated nuclear lamina protein, Kugelkern, a rate limiting factor for nuclear growth. We show that elevated Kugelkern levels cause severe nuclear distortion in germline stem cells, including extensive thickening and lobulation of the nuclear envelope and nuclear lamina, as well as alteration of internal nuclear compartments. Despite these changes, germline stem cell number, proliferation, and female fertility are preserved, even as females age. Collectively, these data demonstrate that disruption of nuclear architecture does not cause a failure of germline stem cell survival or homeostasis, revealing that nuclear deformation does not invariably promote stem cell loss.

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尽管核严重畸变,生殖干细胞仍能保持稳定。
干细胞在衰老和疾病中的丧失与核变形有关。然而,人们对核形状如何影响干细胞稳态还知之甚少。我们利用果蝇种系干细胞研究了这种联系,因为这些干细胞的存活会受到核薄层功能障碍的影响,核薄层是排列在核内膜上并赋予细胞核形状的广泛蛋白质网络。为了诱导生殖干细胞的核变形,我们使用GAL4-UAS系统来增加永久法尼基化的核薄层蛋白Kugelkern的表达,Kugelkern是核生长的限制因子。我们发现,Kugelkern水平升高会导致生殖干细胞的核严重变形,包括核包膜和核薄层的广泛增厚和分叶,以及内部核区的改变。尽管发生了这些变化,生殖系干细胞的数量、增殖和雌性生育能力仍得以保留,甚至随着雌性年龄的增长。总之,这些数据表明,核结构的破坏并不会导致生殖系干细胞存活或平衡失调,从而揭示了核变形并不会一成不变地导致干细胞丧失。
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来源期刊
Developmental biology
Developmental biology 生物-发育生物学
CiteScore
5.30
自引率
3.70%
发文量
182
审稿时长
1.5 months
期刊介绍: Developmental Biology (DB) publishes original research on mechanisms of development, differentiation, and growth in animals and plants at the molecular, cellular, genetic and evolutionary levels. Areas of particular emphasis include transcriptional control mechanisms, embryonic patterning, cell-cell interactions, growth factors and signal transduction, and regulatory hierarchies in developing plants and animals.
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