Derivation of primed sheep embryonic stem cells and conversion to an intermediate naïve-like state

生物 SOX2 同源盒蛋白纳米 胚胎干细胞 细胞生物学 诱导多能干细胞 干细胞 雷克斯1 转录因子 细胞分化 内细胞团 科斯尔 遗传学 外胚层 细胞培养 转录组 再生医学 胚状体 重编程 分子生物学 细胞效价 计算生物学 化学定义介质 细胞 嵌合体(遗传学)
作者
T S Shyamkumar,Manuel A Vásquez-Hidalgo,Viju Vijayan Pillai
出处
期刊:Biology of Reproduction [Oxford University Press]
被引量:2
标识
DOI:10.1093/biolre/ioag078
摘要

Embryonic stem cells (ESCs) derived from the inner cell mass of embryos possess unlimited self-renewal and pluripotency, offering a powerful system to study early development and enable genetic and biotechnological innovation. Although several livestock ESC lines have been reported in recent years, defining culture conditions that support stable long-term self-renewal and controlled transitions across pluripotent states remains challenging. Here, we report the de novo derivation of sheep (ovine) embryonic stem cells (oESCs) from in vivo blastocysts using a chemically defined culture system. The derived cells exhibit morphological and molecular features of primed pluripotency and can be propagated under both feeder-dependent and feeder-free conditions without loss of identity or karyotypic stability. Building on this foundation, we developed enhancer-driven reporter lines that faithfully reflect (Octamer-binding transcription factor 4) OCT4 and (SRY-box transcription factor 2) SOX2 transcriptional activity, enabling dynamic visualization of pluripotency and differentiation in live cultures. These reporter systems revealed the responsiveness of oESCs to signaling modulation and provided a functional readout of pluripotency state transitions. When cultured in defined media previously shown to stabilize naïve pluripotency in human ESCs, oESCs adopted dome-shaped colony morphology, maintained OCT4, SOX2, and NANOG expression, retained differentiation potential, and exhibited a transcriptomic profile consistent with resetting to an intermediate pluripotent state with naïve-like morphological features. These findings establish stable ovine ESC lines and demonstrate their plasticity across the pluripotency spectrum, providing a valuable platform for investigating ruminant stem cell biology and advancing livestock biotechnology.
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