Foxi1 regulates multiple steps of mucociliary development and ionocyte specification through transcriptional and epigenetic mechanisms.

Sarah Bowden, Magdalena Maria Brislinger-Engelhardt, Mona Hansen, Africa Temporal-Plo, Damian Weber, Sandra Hägele, Fabian Lorenz, Tim Litwin, Clemens Kreutz, Peter Walentek
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Abstract

Foxi1 is a master regulator of ionocytes (ISCs / INCs) across species and organs. Two subtypes of ISCs exist, and both α- and β-ISCs regulate pH- and ion-homeostasis in epithelia. Gain and loss of FOXI1 function are associated with human diseases, including Pendred syndrome, male infertility, renal acidosis and cancers. Foxi1 functions were predominantly studied in the context of ISC specification, however, reports indicate additional functions in early and ectodermal development. Here, we re-investigated the functions of Foxi1 in Xenopus laevis embryonic mucociliary epidermis development and found a novel function for Foxi1 in the generation of Notch-ligand expressing mucociliary multipotent progenitors (MPPs). We demonstrate that Foxi1 has multiple concentration-dependent functions: At low levels, Foxi1 confers ectodermal competence through transcriptional and epigenetic mechanisms, while at high levels, Foxi1 induces a multi-step process of ISC specification and differentiation. We further describe how foxi1 expression is affected through auto- and Notch-regulation, how Ubp1 and Dmrt2 regulate ISC subtype differentiation, and how this developmental program affects Notch signaling as well as mucociliary patterning. Together, we reveal novel functions for Foxi1 in Xenopus mucociliary epidermis formation, relevant to our understanding of vertebrate development and human disease.

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Foxi1 通过转录和表观遗传机制调控粘液纤毛发育和离子细胞规格化的多个步骤。
Foxi1 是跨物种和跨器官离子细胞(ISCs / INCs)的主调节器。ISCs有两种亚型,α-和β-ISCs都能调节上皮细胞中的pH值和离子平衡。FOXI1 功能的获得和丧失与人类疾病有关,包括彭德综合征、男性不育、肾性酸中毒和癌症。对 Foxi1 功能的研究主要集中在 ISC 分化方面,但也有报道指出其在早期和外胚层发育中的其他功能。在这里,我们重新研究了 Foxi1 在爪蟾胚胎粘膜表皮发育中的功能,发现了 Foxi1 在生成表达 Notch 配体的粘膜多能祖细胞(MPPs)中的新功能。我们证明了 Foxi1 具有多种浓度依赖性功能:在低浓度下,Foxi1 通过转录和表观遗传机制赋予外胚层能力,而在高浓度下,Foxi1 则诱导 ISC 规格化和分化的多步骤过程。我们进一步描述了foxi1的表达如何通过自身和Notch调控受到影响,Ubp1和Dmrt2如何调控ISC亚型分化,以及这种发育程序如何影响Notch信号传导和粘膜形态。总之,我们揭示了 Foxi1 在爪蟾粘膜表皮形成过程中的新功能,这与我们对脊椎动物发育和人类疾病的理解息息相关。
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