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Dissecting the mechanisms for intercellular protein transport and transparency in the lens: Functional studies of gap junction communication and alpha-crystallins.

机译:剖析晶状体中细胞间蛋白质运输和透明度的机制:间隙连接通讯和α-晶状体蛋白的功能研究。

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摘要

Cataracts are the leading cause of blindness in the world. This thesis focuses on studies of the roles of gap junction communication and of alpha-crystallins in establishing and maintaining lens transparency by using unique mouse genetic models for cataractogenesis. Intercellular gap junction communication is essential for maintaining the stability and solubility of lens crystallins. This work provides the first experimental evidence that gap junction communication plays a key role in the regulation of intercellular protein distribution in the lens. The mechanisms that control orderly arrangement and distribution of crystallin proteins between lens fiber cells, which is required for lens transparency and high refractive index, remain unclear. Intercellular gap junction channels formed by alpha3 and alpha8 connexins are known to transport only small molecules, ions and water, but not macromolecules and proteins. Using green fluorescent protein as a protein transport sensor in vivo, we have demonstrated that gap junction communication, formed by either alpha3 or alpha8 connexin, is needed for the protein exchange pathway between lens fibers. Presumably, uniform distribution of crystallin proteins requires proper gap junction communication.;Crystallins, alpha, beta and gamma classes, make up over 90% of total lens proteins. It has been hypothesized that lens transparency requires alpha-crystallins, consisting of alphaA and alphaB subunits, to function as molecular chaperones to prevent aggregation of denatured lens proteins and cataract formation. Using alpha-crystallin mutant mice, we have found that mutant alpha-crystallins with either increased or decreased chaperone-like activity can lead to a variety of cataracts. For comparing the degree of cataract severity between different mouse lenses, we have developed the first quantitative method to measure light scattering in cataractous lenses using a fiber optic cable and spectrometer. Increased chaperone-like activity of alphaA-Y118D mutant proteins causes abnormal protein aggregation and a delay in the formation of the macromolecular exchange pathway. Mutant alphaA-Y118D proteins also inhibit lens fiber cell elongation to reduce lens size in mutant mice.;This work suggests that appropriate chaperone-like activity of alpha-crystallins and gap junction communication are essential for lens growth, transparency and high refractive index as well as cataract prevention.
机译:白内障是世界上失明的主要原因。本文着重研究间隙连接通讯和α-晶状体蛋白在白内障发生的独特小鼠遗传模型建立和维持晶状体透明性中的作用。细胞间间隙连接通讯对于维持晶状体晶状体蛋白的稳定性和溶解性至关重要。这项工作提供了第一个实验证据,即间隙连接通讯在晶状体中细胞间蛋白质分布的调节中起着关键作用。控制晶状体蛋白在晶状体纤维细胞之间有序排列和分布的机制尚不清楚,这是晶状体透明性和高折射率所必需的。由α3和α8连接蛋白形成的细胞间间隙连接通道仅运输小分子,离子和水,而不运输大分子和蛋白质。使用绿色荧光蛋白作为体内的蛋白质转运传感器,我们已经证明,由晶状体纤维之间的蛋白质交换途径需要由alpha3或alpha8连接蛋白形成的间隙连接通讯。据推测,结晶蛋白的均匀分布需要适当的间隙连接通讯。结晶蛋白,α,β和γ类,占总晶状体蛋白的90%以上。已经假设晶状体透明性需要由αA和αB亚基组成的α-晶状体蛋白作为分子伴侣来防止变性的晶状体蛋白聚集和白内障形成。使用α-crystallin突变小鼠,我们发现具有增加或减少的伴侣样活性的突变α-crystallins可以导致多种白内障。为了比较不同鼠标透镜之间的白内障严重程度,我们开发了第一种定量方法,可使用光缆和光谱仪测量白内障透镜中的光散射。 alphaA-Y118D突变蛋白的伴侣状活性增加导致异常的蛋白质聚集和大分子交换途径形成的延迟。突变的alphaA-Y118D蛋白也抑制了突变小鼠的晶状体纤维细胞伸长,从而减小了晶状体的大小。这项工作表明,适当的伴侣蛋白样α-晶状体蛋白活性和间隙连接通讯对于晶状体的生长,透明度和高折射率也必不可少。作为预防白内障。

著录项

  • 作者

    Cheng, Catherine Kehsin.;

  • 作者单位

    University of California, Berkeley with the University of California, San Francisco.;

  • 授予单位 University of California, Berkeley with the University of California, San Francisco.;
  • 学科 Biology Genetics.;Engineering Biomedical.;Biology Cell.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 128 p.
  • 总页数 128
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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