AI Insight
This study describes the development of an inquiry-based undergraduate Genetics laboratory course where students investigate DNA mutations in four genes (sepia, white, yellow, and vestigial) responsible for eye color, body pigmentation, and wing development in Drosophila melanogaster fruit flies. Students performed molecular biology techniques including DNA amplification and cloning to identify both novel and previously documented mutations linked to observable phenotypic changes. End-of-semester surveys showed students valued hands-on experience with protocols, experimental design, real-world applications, and the opportunity to reflect on career interests.
Why it matters
This curriculum provides a replicable model for integrating authentic research experiences into undergraduate education, helping students develop practical laboratory skills and scientific thinking while contributing to genetic research. The flexible design can be adapted by other institutions to enhance genetics education and provide sustainable research opportunities for both undergraduate and graduate students.
Understand the Science
by Krishna K. Rentachintala, Catherine A. K. Bricker, Parker R. Jain, Meera Nanjundan
Eye, body, and wing morphology in D. melanogaster are distinctly tied to genes that can easily be monitored to decipher the association between phenotype and genotype. Toward the goal of uncovering the DNA mutations responsible for these phenotypes, we share the development and implementation of a semester-long upper-level general Genetics laboratory course, in which an inquiry-based research component is integrated into the curriculum. The experimental design can be adaptable and covers essential molecular biology concepts as well as experimental procedures. Specifically, we obtained mutant and wild-type fly populations to uncover mutations that inhibit gene expression, protein production, and/or function of the sepia, white, yellow, and vestigial genes. We amplified regions of interest to identify novel and previously annotated DNA mutations that may be responsible for observed mutant phenotypes. Further analysis of these and other genes may advance our understanding of their function and regulation that mediate eye color, body pigment, and wing development. Program evaluation was performed by collecting student perspectives in an end-of-semester course survey, and responses were analyzed to identify that they valued learning hands-on protocols including amplifying and cloning DNA, learning scientific methods involving experimental design and data analysis, making connections to real-world applications, as well as sharing their reflection on career interests. In addition, flexible, sustainable, and creative extracurricular opportunities in research and curriculum development for undergraduate and graduate students are associated with the implementation of our General Genetics Laboratory course. Altogether, our curriculum development extends beyond the classroom and aims to support students in research experiences and future career advancements.