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Synthesis, characterization, and application of polyethylene glycol modified insulin for oral delivery using complexation hydrogels.

机译:聚乙二醇修饰的胰岛素的合成,表征和应用,使用络合水凝胶进行口服给药。

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Therapeutic proteins and peptides represent a major area of research in current pharmaceutical and biotechnology companies. Due to their inherent instability, the vast majority of these drugs require parenteral administration. Such is the case for as many as 6 million patients in the United States who use insulin in the treatment of diabetes mellitus. Oral insulin delivery would is a highly desirable alternative method of administration, though it continues to be an elusive target due the enzymatic digestion of insulin and low levels of absorption from the gastrointestinal tract. Hydrogel polymers have shown promise as potential carriers for oral insulin delivery. In particular, a pH responsive hydrogel composed of poly(methacrylic acid-g-polyethylene glycol), P(MAA-g-EG), has shown the ability to protect insulin from enzymes in the gastric environment and release in small intestines. It was also able to induce a hypoglycemic effect in vivo when delivered to isolated ileal segments in rats. However, this material has not shown similar potential for oral protein delivery of other model drugs. To date, the unique interaction between P(MAA-g-EG) and insulin, which give it such potential for oral delivery, are not completely understood.; The focus of this research is to investigate how P(MAA-g-EG) hydrogels interact with insulin and to improve upon current designs for oral insulin delivery. An attempt is made to correlate the structure and chemistry of the hydrogel to its interaction with insulin over the pH range exhibited by the gastrointestinal tract in vitro. Further insight is gained by observing the interaction of the hydrogel with insulin-like proteins including insulin glargine, an insulin analog, and polyethylene glycol (PEG) modified insulin. The PEG-insulin conjugate is synthesized and characterized to maintain the bioactivity of the protein, which is confirmed in vivo using intravenous and subcutaneous administration in rats. Finally, the proposed system is tested using an in vivo model in Sprague Dawley rats and related to the potential application of P(MAA-g-EG) to deliver insulin and PEG modified insulin for the treatment of diabetes.
机译:治疗性蛋白质和多肽代表了当前制药和生物技术公司的主要研究领域。由于其固有的不稳定性,这些药物中的绝大多数需要肠胃外给药。在美国,多达600万使用胰岛素治疗糖尿病的患者就是这种情况。尽管由于胰岛素的酶消化和从胃肠道的低吸收水平,口服胰岛素递送仍然是一种难以捉摸的给药方法,但它仍是一种非常理想的给药方法。水凝胶聚合物已显示出有望作为口服胰岛素递送的潜在载体。特别地,由聚(甲基丙烯酸-g-聚乙二醇)P(MAA-g-EG)组成的pH响应水凝胶显示出保护胰岛素免受胃环境中酶和在小肠中释放的能力。当将其递送到大鼠中分离的回肠段时,它还能够在体内诱导降血糖作用。但是,该材料尚未显示出其他模型药物口服蛋白质递送的类似潜力。迄今为止,尚未完全理解P(MAA-g-EG)与胰岛素之间的独特相互作用,从而使其具有口服给药的潜力。这项研究的重点是研究P(MAA-g-EG)水凝胶如何与胰岛素相互作用,并改善当前口服胰岛素递送的设计。试图使水凝胶的结构和化学性质与其在体外胃肠道显示的pH范围内与胰岛素的相互作用相关。通过观察水凝胶与胰岛素样蛋白(包括甘精胰岛素,胰岛素类似物和聚乙二醇(PEG)修饰的胰岛素)的相互作用,可以获得进一步的见解。 PEG-胰岛素缀合物被合成并表征以维持蛋白质的生物活性,这在大鼠中通过静脉内和皮下施用在体内被证实。最后,在Sprague Dawley大鼠中使用体内模型对提出的系统进行了测试,并且与P(MAA-g-EG)可能用于输送胰岛素和PEG修饰的胰岛素来治疗糖尿病有关。

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