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胰岛素/胰岛素样生长因子信号和卵黄蛋白原供应介导了营养胁迫的跨代适应。

Insulin/IGF Signaling and Vitellogenin Provisioning Mediate Intergenerational Adaptation to Nutrient Stress.

机构信息

Department of Biology, Duke University, Durham, NC 27708, USA.

Skirball Institute of Biomolecular Medicine, Department of Cell Biology, New York University School of Medicine, New York, NY 10016, USA.

出版信息

Curr Biol. 2019 Jul 22;29(14):2380-2388.e5. doi: 10.1016/j.cub.2019.05.062. Epub 2019 Jul 4.

Abstract

The roundworm C. elegans reversibly arrests larval development during starvation [1], but extended early-life starvation reduces reproductive success [2, 3]. Maternal dietary restriction (DR) buffers progeny from starvation as young larvae, preserving reproductive success [4]. However, the developmental basis of reduced fertility following early-life starvation is unknown, and it is unclear how maternal diet modifies developmental physiology in progeny. We show here that extended starvation in first-stage (L1) larvae followed by unrestricted feeding results in a variety of developmental abnormalities in the reproductive system, including proliferative germ-cell tumors and uterine masses that express neuronal and epidermal cell fate markers. We found that maternal DR and reduced maternal insulin/insulin-like growth factor (IGF) signaling (IIS) increase oocyte provisioning of vitellogenin lipoprotein, reducing penetrance of starvation-induced abnormalities in progeny, including tumors. Furthermore, we show that maternal DR and reduced maternal IIS reduce IIS in progeny. daf-16/FoxO and skn-1/Nrf, transcriptional effectors of IIS, are required in progeny for maternal DR and increased vitellogenin provisioning to suppress starvation-induced abnormalities. daf-16/FoxO activity in somatic tissues is sufficient to suppress starvation-induced abnormalities, suggesting cell-nonautonomous regulation of reproductive system development. This work reveals that early-life starvation compromises reproductive development and that vitellogenin-mediated intergenerational insulin/IGF-to-insulin/IGF signaling mediates adaptation to nutrient availability.

摘要

秀丽隐杆线虫在饥饿时会可逆地阻止幼虫发育[1],但早期的长期饥饿会降低生殖成功率[2,3]。母体饮食限制(DR)可以缓冲幼龄幼虫免受饥饿的影响,从而保持生殖成功率[4]。然而,早期饥饿后生育能力降低的发育基础尚不清楚,也不清楚母体饮食如何改变后代的发育生理。我们在这里表明,在第一阶段(L1)幼虫中进行长时间的饥饿,然后进行无限制的喂养,会导致生殖系统出现多种发育异常,包括增殖性生殖细胞肿瘤和子宫肿块,这些肿瘤表达神经元和表皮细胞命运标记物。我们发现,母体 DR 和降低的母体胰岛素/胰岛素样生长因子(IGF)信号转导(IIS)会增加卵母细胞提供的卵黄蛋白脂,从而降低饥饿诱导的后代异常的发生率,包括肿瘤。此外,我们还表明,母体 DR 和降低的母体 IIS 会降低后代中的 IIS。daF-16/FoxO 和 skn-1/Nrf,IIS 的转录效应因子,在后代中是必需的,母体 DR 和增加卵黄蛋白的供应可以抑制饥饿诱导的异常。体细胞组织中的 daF-16/FoxO 活性足以抑制饥饿诱导的异常,这表明生殖系统发育的细胞非自主性调节。这项工作揭示了早期饥饿会损害生殖发育,而卵黄蛋白介导的代际胰岛素/IGF 到胰岛素/IGF 信号转导介导了对营养可用性的适应。

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