Extracellular phase separation mediates storage and release of thyroglobulin in the thyroid follicular lumen.

IF 5.1 1区 生物学 Q1 BIOLOGY Communications Biology Pub Date : 2025-03-21 DOI:10.1038/s42003-025-07909-z
Yihan Yao, Nadia Erkamp, Tomas Sneideris, Xiqiao Yang, Rob Scrutton, Matthias M Schneider, Charlotte M Fischer, Erik Schoenmakers, Nadia Schoenmakers, Tuomas P J Knowles
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Abstract

Thyroid hormones are produced by the thyroid gland and are essential for regulating metabolism, growth and development. Maintenance of circulating thyroid hormone levels within an appropriate range is thus a prerequisite for health. In vivo, this objective is, at least in part, facilitated through an extracellular storage depot of thyroglobulin, the glycoprotein precursor for thyroid hormones, in the thyroid follicular lumen. The molecular basis for how soluble thyroglobulin molecules form such dense depot assemblies remains elusive. Here, we describe in vitro biophysical analysis of thyroglobulin phase behaviour, suggesting that thyroglobulin is prone to undergoing ionic strength-dependent phase separation, leading to the formation of liquid-like condensates. Fluorescence photobleaching measurements further show that these condensates age as a function of time to form reversible gel-like high density storage depots of thyroglobulin. IF experiments on mouse and human thyroid follicles ex vivo reveal that spherical globules of Tg protein dense phase are present in the follicular lumen, consistent with the idea that Tg undergoes phase separation. These findings reveal a molecular mechanism for the last-come-first-served process of thyroglobulin storage and release, suggesting a role for extracellular phase separation in thyroid hormone homeostasis by providing organizational and architectural specificity without requiring membrane-mediated confinement.

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细胞外相分离介导甲状腺滤泡腔内甲状腺球蛋白的储存和释放。
甲状腺激素是由甲状腺产生的,对调节新陈代谢、生长和发育至关重要。因此,将循环甲状腺激素水平维持在适当范围内是健康的先决条件。在体内,这一目标至少在一定程度上是通过甲状腺球蛋白(甲状腺激素的糖蛋白前体)在甲状腺滤泡腔内的细胞外储存库来实现的。可溶性甲状腺球蛋白分子如何形成如此密集的仓库组装的分子基础仍然难以捉摸。在这里,我们描述了甲状腺球蛋白相行为的体外生物物理分析,表明甲状腺球蛋白容易经历离子强度依赖的相分离,导致液体状凝聚物的形成。荧光光漂白测量进一步表明,这些凝聚物随着时间的推移而老化,形成可逆的凝胶状高密度甲状腺球蛋白储存库。对小鼠和人甲状腺滤泡的离体IF实验表明,在滤泡腔内存在Tg蛋白致密相的球形球体,这与Tg经历相分离的观点一致。这些发现揭示了甲状腺球蛋白储存和释放后先到先得过程的分子机制,提示细胞外相分离通过提供组织和结构特异性而不需要膜介导的限制,在甲状腺激素稳态中起作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Communications Biology
Communications Biology Medicine-Medicine (miscellaneous)
CiteScore
8.60
自引率
1.70%
发文量
1233
审稿时长
13 weeks
期刊介绍: Communications Biology is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the biological sciences. Research papers published by the journal represent significant advances bringing new biological insight to a specialized area of research.
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