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Study of pH (low) insertion peptides (pHLIPs) interaction with lipid bilayer of membrane.

机译:pH(低)插入肽(pHLIPs)与膜脂双层相互作用的研究。

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The pH-dependent interactions of pHLIPs® (pH (Low) Insertion Peptides) with lipid bilayer of membrane provides an opportunity to study and address fundamental questions of protein folding/insertion into membrane and unfolding/exit, as well as develop novel approach to target acidic diseased tissue such as cancer, ischemic myocardium, infection and others.;The main goal of the work presented here is to answer the following questions: - What is the molecular mechanism of spontaneous insertion and folding of a peptide in a lipid bilayer of membrane; - What is the molecular mechanism of unfolding and exit of a peptide from a lipid bilayer of membrane; - How polar cargo attached to a peptide's inserting end might affect the process of insertion into a lipid bilayer of membrane; How sequence variation will affect a peptide's interactions with a lipid bilayer of membrane (partitioning into bilayer at neutral and low pH; apparent pK of insertion) with the main goal to identify the best pHLIP variants for imaging and therapy of pathological states such as cancer and others.;It has been demonstrated that pHLIP insertion into a membrane is associated with the protonation of Asp/Glu residues, which leads to an increase of hydrophobicity that triggers the folding and insertion of the peptide across a lipid bilayer. The insertion of the pHLIP is unidirectional and it is accompanied by the release of energy. Therefore, the energy of membrane associated-folding can be used to favor the movement of cell-impermeable polar cargo molecules across the hydrophobic membrane bilayer when they are attached to the inserting end of pHLIP. Both pH-targeting behavior and molecular translocation have been demonstrated in cultured cells and in vivo. Thus, there is an opportunity to develop a novel concept in drug delivery, which is based on the use of a monomeric, pH-sensitive peptide molecular transporter, to deliver agents that are significantly more polar than conventional drugs. Understanding the molecular events that occur when a peptide inserts across a membrane, folds, or exits from it and unfolds provides crucial information for the development of new drug delivery agents, as well as improving our understanding of the first step of membrane-associate protein folding.;The promise of exploiting tumor acidosis as a cancer biomarker has not been fully realized in clinical practice, even though the acidity has been a known property since the work of Otto Warburg nearly a century ago. The problem has been to find a practical way to target acidity. pHLIP reversibly folds and inserts across membranes in response to pH changes, and this discovery has led to a novel way to target acidic tissue. Steady state biophysical studies have revealed the molecular mechanism of pHLIP action, which is based on the increase of hydrophobicity of carboxyl groups when they become protonated under mildly acidic conditions, leading to peptide insertion into a membrane. It has been shown that pHLIP can target acidic tissue and selectively translocate polar, cell-impermeable molecules across membranes in response to low extracellular pH. As noted in the Molecular Imaging and Contrast Agent Database (MICAD) at NCBI, a pHLIP labeled with a fluorescent dye, or a PET- and SPECT- agents (64Cu-DOTA, 18F, 99Tc) is a marker for in vivo acidity.;All prior studies in vivo were carried out with the WT-pHLIP sequence and showed that a good contrast and tumor to blood ratio can be achieved only more than 24 hours after pHLIP injection, when it has accumulated in the tumor and largely cleared from the blood. However, for the use of pHLIP-based radioactive imaging agents in the clinic, a more rapid background signal reduction is absolutely essential. We have conducted research in order to address this important need, to tune tumor targeting properties, and to broaden our understanding of the molecular mechanism of pHLIP action. A family of 16 pHLIP variants has been designed based on chemical and physical principles and comprehensive biophysical studies were performed with non-labeled peptides. We have successfully established a set of design criteria and identified the pHLIP candidates for imaging and therapeutic applications, including lead compounds for PET/SPECT and fluorescence/MR imaging.
机译:pHLIPs®(pH(低)插入肽)与膜脂质双层的pH依赖性相互作用为研究和解决蛋白质折叠/插入膜和展开/退出的基本问题提供了机会,并开发了新的靶向方法酸性疾病组织,例如癌症,缺血性心肌炎,感染等。;本文的主要目的是回答以下问题:-膜脂双层中肽的自发插入和折叠的分子机制是什么? ; -肽从膜的脂质双层中解折叠出来的分子机制是什么? -附着在肽插入末端的极性货物如何影响插入膜脂双层的过程;序列变异将如何影响肽与脂膜双层的相互作用(在中性和低pH时分成双层;表观pK插入),其主要目标是确定最佳的pHLIP变体,用于成像和治疗病理学状态(例如癌症和已经证明,pHLIP插入膜与Asp / Glu残基的质子化有关,这导致疏水性增加,其触发肽跨脂质双层折叠和插入。 pHLIP的插入是单向的,并且伴随着能量的释放。因此,当膜相关折叠的能量连接到pHLIP的插入端时,膜相关折叠的能量可用于促进细胞不可渗透的极性货物分子跨过疏水膜双层的运动。在培养的细胞和体内均已证明了pH靶向行为和分子易位。因此,有机会开发新的药物输送概念,该概念基于对单体,pH敏感的肽分子转运蛋白的使用,以输送极性比常规药物强得多的药物。理解当肽跨膜插入,折叠或从膜中退出并展开时发生的分子事件,为开发新的药物递送剂提供了重要信息,同时也增进了我们对膜相关蛋白折叠第一步的理解。尽管将酸度自近一个世纪以来的奥托·沃伯格(Otto Warburg)的研究成果公知,但在临床实践中仍未完全实现将肿瘤酸中毒用作癌症生物标志物的希望。问题是找到一种针对酸度的实用方法。 pHLIP响应于pH的变化可逆地折叠和插入整个膜,这一发现导致了一种靶向酸性组织的新方法。稳态生物物理研究已经揭示了pHLIP作用的分子机制,该机制基于羧基在弱酸性条件下质子化时羧基疏水性的增加,从而导致肽插入膜中。已经显示,pHLIP可以靶向酸性组织,并响应低的细胞外pH值而使极性不渗透细胞的分子选择性地跨膜转运。如NCBI的分子成像和造影剂数据库(MICAD)所述,用荧光染料标记的pHLIP或PET和SPECT-试剂(64Cu-DOTA,18F,99Tc)是体内酸性的标记。所有先前的体内研究均使用WT-pHLIP序列进行,结果表明,当pHLIP注射在肿瘤中积累并从血液中大量清除后,仅在注射pHLIP后24小时以上才能达到良好的对比度和肿瘤与血液的比率。但是,对于在临床中使用基于pHLIP的放射性显像剂,更快速的背景信号降低绝对必要。我们进行了研究,以解决这一重要需求,调整肿瘤的靶向特性,并拓宽我们对pHLIP作用的分子机制的了解。已根据化学和物理原理设计了16种pHLIP变体家族,并对未标记的肽进行了全面的生物物理研究。我们已经成功建立了一套设计标准,并确定了用于成像和治疗应用的pHLIP候选物,包括用于PET / SPECT和荧光/ MR成像的先导化合物。

著录项

  • 作者

    Weerakkody, Dhammika.;

  • 作者单位

    University of Rhode Island.;

  • 授予单位 University of Rhode Island.;
  • 学科 Physics General.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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