Enhancing interdisciplinary mathematics and biology education: a microarray data analysis course bridging these disciplines.

Yolande V Tra, Irene M Evans
Author Information
  1. Yolande V Tra: Schools of Mathematical Sciences and Biological and Medical Sciences, College of Sciences Rochester Institute of Technology, Rochester, NY 14623-5603, USA. yvtsma@rit.edu

Abstract

BIO2010 put forth the goal of improving the mathematical educational background of biology students. The analysis and interpretation of microarray high-dimensional data can be very challenging and is best done by a statistician and a biologist working and teaching in a collaborative manner. We set up such a collaboration and designed a course on microarray data analysis. We started using Genome Consortium for Active Teaching (GCAT) materials and Microarray Genome and Clustering Tool software and added R statistical software along with Bioconductor packages. In response to student feedback, one microarray data set was fully analyzed in class, starting from preprocessing to gene discovery to pathway analysis using the latter software. A class project was to conduct a similar analysis where students analyzed their own data or data from a published journal paper. This exercise showed the impact that filtering, preprocessing, and different normalization methods had on gene inclusion in the final data set. We conclude that this course achieved its goals to equip students with skills to analyze data from a microarray experiment. We offer our insight about collaborative teaching as well as how other faculty might design and implement a similar interdisciplinary course.

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MeSH Term

Biology
Curriculum
Data Collection
Humans
Interdisciplinary Studies
Mathematics
Oligonucleotide Array Sequence Analysis
Statistics as Topic
Students

Word Cloud

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