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首页> 外文期刊>Analytica chimica acta >Quantum-dot nanoprobes and AOTF based cross talk eliminated six color imaging of biomolecules in cellular system
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Quantum-dot nanoprobes and AOTF based cross talk eliminated six color imaging of biomolecules in cellular system

机译:量子点纳米体和基于AOTF的交叉谈话中的纤维分子在细胞系统中消除了六种颜色成像

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摘要

Primary cell cultures mimic the physiology and genetic makeup of in-vivo tissue of origin, nonetheless, a complication in the derivation and propagation of primary cell culture limits its use in biological research. However, in-vitro models using primary cells might be a complement model to mimic in vivo response. But, conventional techniques such as western blot and PCR employed to study the expression and activation of proteins requires a large number of cells, hence repeated establishment and maintenance of primary culture are unavoidable. Quantum dot (Q-dot) and acousto-optic tunable filters (AOTF) based multiplex imaging system is a viable alternative choice to evaluate multiple signaling molecules by using a small number of cells. Q-dots have broad excitation and narrow emission spectra, which allows to simultaneously excite multiple Q-dots by using single excitation wavelength. The use of AOTF in the fluorescence detection system enables to scan the fluorescence emission intensity of a Q-dot at their central wavelength, this phenomenon effectively avoids spectral overlap among the neighboring Q-dots. When Q-dots are conjugated with antibodies it acts as effective sensing probes. To validate this, the expression pattern of p-JNK-1, p-GSK3 beta, p-IRS1ser, p-IRS1tyr, p-FOXO1, and PPAR-gamma, involved in the insulin resistance were concurrently monitored in adipocyte and HepG2 co-cell culture model. The observed results clearly indicate that PPAR-gamma is the critical component in the development of insulin resistance. Moreover, the results proved that developed Q-dot based AOTF imaging methodology is a sensible choice to concurrently monitor multiple signaling molecules with limited cell population. (C) 2017 Elsevier B.V. All rights reserved.
机译:主要细胞培养物模仿原产地的体内组织的生理和遗传构成,仍然是原发性细胞培养的衍生和繁殖中的并发症限制了其在生物研究中的用途。然而,使用主电池的体外模型可能是在体内响应中模拟的补体模型。但是,用于研究蛋白质的表达和活化的蛋白质印迹和PCR等常规技术需要大量的细胞,因此反复建立和维持原发性培养物是不可避免的。量子点(Q-DOT)和声光可调滤波器(AOTF)的多重成像系统是一种可行的替代选择,用于通过使用少量电池来评估多个信令分子。 Q-点具有广泛的激励和窄发射光谱,其允许通过使用单一激发波长同时激发多个Q点。在荧光检测系统中使用AOTF使得能够在其中心波长处扫描Q点的荧光发射强度,这种现象有效地避免了相邻Q点之间的光谱重叠。当Q-点与抗体缀合时,它用作有效的传感探针。为了验证这一点,在Adipocyte和HepG2中同时监测涉及胰岛素抵抗的P-JNK-1,P-GSK3β,P-IR1和PPPAR-γ的P-JNK-1,P-GSK3β,P-IRS1,P-IRS1TYR,P-FOXO1和PPAR-Gamma的表达模式在细胞培养模型。观察结果清楚地表明PPAR-Gamma是胰岛素抵抗力发展中的关键组分。此外,结果证明,开发的Q-Dot基AOTF成像方法是同时监测具有有限细胞群的多个信号分子的明智的选择。 (c)2017 Elsevier B.v.保留所有权利。

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