Finding Mutations in DNA and Proteins (Bioinformatics VI)

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课程简介

University of California, San Diego

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Welcome to our class! We are glad that you decided to join us.

In this class, we will consider the following two central biological questions (the computational approaches needed to solve them are shown in parentheses):

  1. How Do We Locate Disease-Causing Mutations? (Combinatorial Pattern Matching)
  2. Why Have Biologists Still Not Developed an HIV Vaccine? (Hidden Markov Models)

As in previous courses, each of these two chapters is accompanied by a Bioinformatics Cartoon created by talented artist Randall Christopher and serving as a chapter header in the Specialization's bestselling print companion. You can find the first chapter's cartoon at the bottom of this message.

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课程详情

In previous courses in the Specialization, we have discussed how to sequence and compare genomes. This course will cover advanced topics in finding mutations lurking within DNA and proteins. In the first half of the course, we would like to ask how an individual's genome differs from the "reference genome" of the species. Our goal is to take small fragments of DNA from the individual and "map" them to the reference genome. We will see that the combinatorial pattern matching algorithms solving this problem are elegant and extremely efficient, requiring a surprisingly small amount of runtime and memory. In the second half of the course, we will learn how to identify the function of a protein even if it has been bombarded by so many mutations compared to similar proteins with known functions that it has become barely recognizable. This is the case, for example, in HIV studies, since the virus often mutates so quickly that researchers can struggle to study it. The approach we will use is based on a powerful machine learning tool called a hidden Markov model. Finally, you will learn how to apply popular bioinformatics software tools applying hidden Markov models to compare a protein against a related family of proteins.

在DNA和蛋白质中发现突变(生物信息学VI):在本专业的以前课程中,我们讨论了如何对基因组进行测序和比较。本课程将涵盖寻找DNA和蛋白质中潜伏的突变的高级主题。 在课程的前半部分,我们想问一个人的基因组与该物种的“参考基因组”有何不同。我们的目标是从个体中提取DNA的小片段,并将其“定位”到参考基因组。我们将看到解决这个问题的组合模式匹配算法既优雅又高效,只需要很少的运行时间和内存。 在本课程的后半部分,我们将学习如何识别蛋白质的功能,即使与具有已知功能但几乎无法识别的具有相似功能的相似蛋白质相比,它已经被如此多的突变轰炸了。例如,在HIV研究中就是这种情况,因为该病毒经常突变得如此之快,以至于研究人员很难对其进行研究。我们将使用的方法基于称为隐马尔可夫模型的强大机器学习工具。 最后,您将学习如何应用流行的生物信息学软件工具,这些工具应用隐马尔可夫模型将蛋白质与相关的蛋白质家族进行比较。

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