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首页> 外文期刊>Antioxidants and redox signalling >NADPH Oxidase-Dependent Reactive Oxygen Species Stimulate beta-Cell Regeneration Through Differentiation of Endocrine Progenitors in Murine Pancreas
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NADPH Oxidase-Dependent Reactive Oxygen Species Stimulate beta-Cell Regeneration Through Differentiation of Endocrine Progenitors in Murine Pancreas

机译:NADPH氧化酶依赖性活性氧物种通过分化小鼠胰腺内分泌祖细胞来刺激β细胞再生。

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摘要

Aims: Reactive oxygen species (ROS) act as second messengers for redox modification of transcription factors essential for differentiation. The nicotinamide adenine dinucleotide phosphate (NADPH) oxidase, a major source of ROS, has been shown to regulate differentiation of various progenitor cells, while its role in pancreatic endocrine cell differentiation is unclear. This study was aimed at this knowledge gap. Results: Our results showed that ROS levels were dynamically changed during pancreas development concomitant with endocrine cell differentiation induced by modest exogenous ROS in rudiment cultures. NOX4, but not NOX2, the member of NADPH oxidase, was expressed persistently in endocrine lineage and showed high activity in critical pancreas development phase. Inhibition of NADPH oxidase activity impeded the differentiation of endocrine progenitors in vitro, and exogenous ROS reversed this effect. Studies performed in streptozotocin (STZ)-injected neonatal rats showed that diphenyleneiodonium (DPI) obstructed beta-cell regeneration through the suppression of neurogenin 3 (NGN3) expression, but not Ki67-labeling beta-cells, indicating that ROS stimulation promoted differentiation beyond proliferation of beta-cells. Inhibition of NADPH oxidase also reduced expression of SRY (sex-determining region Y)-box 9 (SOX9), a transcriptional regulator of Ngn3, in endocrine precursor cells, both in vivo and in vitro. Overexpression of SOX9 attenuated the reduction of NGN3 induced by suppression of NADPH oxidase. Innovation and Conclusion: This is the first study to demonstrate NADPH oxidase, especially NOX4-dependent ROS that promotes pancreatic progenitor cell differentiation into endocrine cells both in vitro and in vivo, probably through the regulation of SOX9. We provide evidence that NADPH oxidase-dependent ROS-mediated signaling is necessary for endocrine cell differentiation, which provides a potential strategy for efficient generation of insulin-producing cells in clinical application. Antioxid. Redox Signal. 27, 419-433.
机译:目的:活性氧(ROS)作为第二信使,用于氧化还原修饰对分化至关重要的转录因子。烟酰胺腺嘌呤二核苷酸磷酸(NADPH)氧化酶是ROS的主要来源,已被证明可调节各种祖细胞的分化,但其在胰腺内分泌细胞分化中的作用尚不清楚。这项研究就是针对这一知识鸿沟。结果:我们的结果表明,在原始发育过程中,适度外源性ROS诱导的胰腺分泌过程中,ROS水平随着内分泌细胞分化而动态变化。 NADPH氧化酶的成员NOX4,而不是NOX2,在内分泌谱系中持续表达,并在关键的胰腺发育阶段表现出高活性。 NADPH氧化酶活性的抑制阻止了内分泌祖细胞的体外分化,而外源性ROS逆转了这一作用。在注射链脲佐菌素(STZ)的新生大鼠中进行的研究表明,联苯二碘铵(DPI)通过抑制神经生成素3(NGN3)的表达而阻碍了β细胞的再生,但没有抑制Ki67标记的β细胞,这表明ROS刺激促进了分化,超越了增殖。 β细胞。 NADPH氧化酶的抑制作用还降低了体内和体外内分泌前体细胞SRY(性别决定区域Y)-box 9(SOX9)(Ngn3的转录调节子)的表达。 SOX9的过表达减弱了由抑制NADPH氧化酶诱导的NGN3的还原。创新与结论:这是第一个证明NADPH氧化酶,尤其是依赖NOX4的ROS的研究,该ROS可能通过调节SOX9在体内外促进胰腺祖细胞分化成内分泌细胞。我们提供的证据表明,NADPH氧化酶依赖性ROS介导的信号传导对于内分泌细胞的分化是必要的,这为临床应用中高效产生胰岛素的细胞提供了潜在的策略。抗氧化。氧化还原信号。 27,419-433。

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