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Molecular biological analyses of nutrient transporters and growth physiology in marine invertebrate larvae.

机译:海洋无脊椎动物幼虫营养转运蛋白和生长生理的分子生物学分析。

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摘要

Despite the impact of recruitment success on the population biology of animals in the ocean, the physiological rates influencing this process remain poorly understood. The series of investigations reported here provide a description of these traits from the perspective of molecular physiology. The overall approach consisted of isolating genes involved in these physiological rate processes from cDNA libraries and evaluating their expression patterns in the context of development. Genes encoding amino acid transporters in embryos of the purple sea urchin Strongylocentrotus purpuratus were expressed in oocytes of the frog Xenopus laevis, providing experimental proof of their amino acid transport functions. Comparison of expression patterns revealed that while multiple transporter genes are simultaneously expressed during sea urchin development, the expression patterns differ between genes, suggesting a complex model of regulation of expression and amino acid transport physiology. Genes showing differential expression in fast-growing genotypes of the Pacific oyster Crassostrea gigas were identified through comparison of transcriptomes, resulting in the selection of ca. 200 candidate growth genes. These genes were tentatively identified by sequence similarities with previously characterized genes, revealing the involvement of multiple physiological processes in growth heterosis (e.g. protein synthesis, regulation of feeding, and energy metabolism). Differential expression of a subset of these candidate genes (ribosomal protein genes) was verified in fast-growing genotypes through independent methods and in independent genetic crosses, suggesting that non-additive expression of ribosomal protein genes is a common feature among fast-growing hybrid genotypes. These genotype-specific differences in expression were shown to occur early in development. The data presented here represent the first functional characterization of dissolved nutrient uptake genes in echinoderm larvae, and the first description of global gene expression profiles characteristic of rapid growth in bivalve larvae. These findings thus provide new insights into decades-old questions in marine biology, and molecular tools that will allow more thorough characterization of the mechanisms involved in ecologically important physiological rate processes in marine invertebrate larvae.
机译:尽管招募成功对海洋动物的种群生物学有影响,但是影响这一过程的生理速率仍然知之甚少。本文报道的一系列研究从分子生理学的角度对这些特征进行了描述。总体方法包括从cDNA文库中分离出涉及这些生理速率过程的基因,并在开发过程中评估其表达模式。紫色海胆Strongylocentrotus purpuratus胚胎中编码氨基酸转运蛋白的基因在青蛙Xenopus laevis的卵母细胞中表达,为它们的氨基酸转运功能提供了实验证据。表达模式的比较显示,尽管海胆发育过程中同时表达了多个转运蛋白基因,但基因之间的表达模式不同,这表明表达和氨基酸转运生理的调控模型复杂。通过比较转录组,鉴定了在太平洋牡蛎Crassostrea gigas快速生长的基因型中表现出差异表达的基因,从而选择了ca。 200个候选生长基因。通过与先前鉴定的基因的序列相似性初步鉴定了这些基因,揭示了多个生理过程参与了生长杂种优势(例如蛋白质合成,喂养调节和能量代谢)。通过独立的方法和独立的遗传杂交,在快速增长的基因型中验证了这些候选基因(核糖体蛋白基因)的子集的差异表达,这表明核糖体蛋白基因的非加性表达是快速增长的杂交基因型之间的共同特征。 。这些基因型特异性表达差异显示在发育的早期。此处提供的数据代表棘皮动物幼虫中溶解的养分吸收基因的第一个功能特征,以及双壳幼虫快速生长的全球基因表达谱的第一个描述。因此,这些发现为海洋生物学数十年来的问题提供了新的见识,并提供了分子工具,可以更全面地表征海洋无脊椎动物幼体中具有重要生态意义的生理过程的机制。

著录项

  • 作者

    Meyer, Eli.;

  • 作者单位

    University of Southern California.;

  • 授予单位 University of Southern California.;
  • 学科 Biology Molecular.; Biology Animal Physiology.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 302 p.
  • 总页数 302
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子遗传学;生理学;
  • 关键词

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