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Comparative genomics: the key to understanding the Human Genome Project.

机译:比较基因组学:了解人类基因组计划的关键。

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The sequencing of the human genome is well underway. Technology has advanced, such that the total genomic sequence is possible, along with an extensive catalogue of genes via comprehensive cDNA libraries. With the recent completion of the Saccharomyces cerevisiae sequencing project and the imminent completion of that of Caenorhabditis elegans, the most frequently asked question is how much can sequence data alone tell us? The answer is that that a DNA sequence taken in isolation from a single organism reveals very little. The vast majority of DNA in most organisms is noncoding. Protein coding sequences or genes cannot function as isolated units without interaction with noncoding DNA and neighboring genes. This genomic environment is specific to each organism. In order to understand this we need to look at similar genes in different organisms, to determine how function and position has changed over the course of evolution. By understanding evolutionary processes we can gain a greater insight into what makes a gene and the wider processes of genetics and inheritance. Comparative genomics (with model organisms), once the poor relation of the human genome project, is starting to provide the key to unlock the DNA code.
机译:人类基因组的测序正在进行中。技术已经进步,使得通过全面的cDNA文库,总基因组序列以及广泛的基因目录成为可能。随着酿酒酵母测序项目的最新完成和秀丽隐杆线虫的即将完成,最常见的问题是仅测序数据能告诉我们多少?答案是,从单一生物体中分离出来的DNA序列显示得很少。大多数生物中的绝大多数DNA是非编码的。蛋白质编码序列或基因如果不与非编码DNA和邻近基因相互作用,则不能作为分离的单元发挥作用。这种基因组环境对每种生物都是特定的。为了理解这一点,我们需要研究不同生物体中的相似基因,以确定功能和位置在进化过程中是如何变化的。通过了解进化过程,我们可以更深入地了解什么是基因,以及更广泛的遗传和继承过程。一旦人类基因组计划关系不佳,比较基因组学(与模型生物)就开始提供解锁DNA密码的钥匙。

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