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胰岛素与真核模型膜的相互作用:胰岛素纤维化和膜破坏的机制洞察

Insulin-eukaryotic model membrane interaction: Mechanistic insight of insulin fibrillation and membrane disruption.

作者信息

Ratha Bhisma Narayan, Kim Minsoo, Sahoo Bankanidhi, Garai Kanchan, Lee DongKuk, Bhunia Anirban

机构信息

Department of Biophysics, P-1/12 CIT Scheme VII (M), Kolkata 700054, India.

Department of Fine chemistry, Seoul National University of Science and Technology, Seoul 01811, Republic of Korea.

出版信息

Biochim Biophys Acta Biomembr. 2018 Sep;1860(9):1917-1926. doi: 10.1016/j.bbamem.2018.02.008. Epub 2018 Feb 9.

Abstract

Injection of exogenous insulin in the subcutaneous mass has been a proven therapy for type II diabetes. However, chronic administration of insulin often develops local amyloidosis at the injection site, pathologically known as "Insulin Ball". This reduces the insulin bioavailability and exacerbates the disease pathology. Thus, the molecular interaction between insulin and the recipient's membrane surface plays a co-operative role in accelerating the amyloidosis. This interaction, however, is different from the molecular interaction of insulin with the native membranous environment of the pancreatic β-cells. The differential membrane mediated interaction that directly affects the aggregation kinetics of insulin remains elusive yet intriguing to understand the mechanism of pathological development. In this study we have characterized the interactions of insulin at different states with model eukaryotic membranes using high and low-resolution spectroscopic techniques in combination with microscopic investigation. Our results show that insulin amyloid intermediates are capable of interacting with model membranes with variable functional affinity towards the different compositions. Fluorescence correlation spectroscopy confirms the aggregation states of insulin in presence of the eukaryotic model membranes while solid-state NMR spectroscopy in conjugation with differential scanning calorimetry elucidates the molecular interaction of insulin intermediates with the lipid head groups along with the acyl chains. Additionally, dye leakage assays support the eukaryotic model membrane disruption by insulin intermediates, similar to hIAPP and Aβ40, as previously reported. Thus, the present study establishes the distinct mode of interactions of insulin amyloid with pancreatic β-cell and general mammalian cell mimicking membranes.

摘要

皮下注射外源性胰岛素已被证明是治疗II型糖尿病的一种方法。然而,长期注射胰岛素往往会在注射部位发生局部淀粉样变性,病理上称为“胰岛素球”。这会降低胰岛素的生物利用度并加剧疾病病理。因此,胰岛素与受体膜表面之间的分子相互作用在加速淀粉样变性过程中起协同作用。然而,这种相互作用与胰岛素与胰腺β细胞天然膜环境的分子相互作用不同。直接影响胰岛素聚集动力学的差异膜介导相互作用,在理解病理发展机制方面仍然难以捉摸但又引人入胜。在本研究中,我们使用高分辨率和低分辨率光谱技术结合显微镜研究,表征了不同状态的胰岛素与模型真核膜的相互作用。我们的结果表明,胰岛素淀粉样中间体能够与模型膜相互作用,对不同组成具有可变的功能亲和力。荧光相关光谱证实了在真核模型膜存在下胰岛素的聚集状态,而固态核磁共振光谱与差示扫描量热法相结合,阐明了胰岛素中间体与脂质头部基团以及酰基链的分子相互作用。此外,染料泄漏试验支持胰岛素中间体对真核模型膜的破坏作用,类似于先前报道的人胰岛淀粉样多肽(hIAPP)和淀粉样β蛋白40(Aβ40)。因此,本研究确定了胰岛素淀粉样蛋白与胰腺β细胞以及模拟哺乳动物细胞的膜之间不同的相互作用模式。

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