Effects of High-Sucrose, High-Fat, and High-Sodium Diets on Female Drosophila melanogaster Fertility and Health

Authors

  • Hena Patel American High School
  • Dr. Daniela Drummond-Barbosa Johns Hopkins University

DOI:

https://doi.org/10.47611/jsrhs.v10i4.2112

Keywords:

Drosophila melanogaster, Obesity, High-Sucrose Diet, High-Sodium Diet, High-Fat Diet

Abstract

The obesity epidemic has become a global concern, affecting millions of people. Plummeting global fertility rates indicate a correlation between obesity and infertility, an issue that will likely worsen as the prevalence of maternal obesity rises. The effects of diet can be studied in Drosophila melanogaster, an ideal multicellular model with reproductive processes similar to those of humans. Obesity caused by diets rich in sucrose, sodium, or fat is known to negatively impact Drosophila health, decreasing egg production, shortening lifespan, and even causing transgenerational effects. Conversely, exercise may have beneficial outcomes on female Drosophila that are producing eggs, and its transgenerational effects are yet to be explored. By focusing future studies on female Drosophila affected by a combined diet, results will better replicate a Western diet consumed by women today. This literature review summarizes previous research correlating diet with detrimental effects on health and fertility to better understand the effects of a combined high-fat, sucrose, and sodium diet on female Drosophila. Additionally, this paper explains potential experimentation methods to implement in future studies to improve understanding of diet and fertility in Drosophila and its connotations to human diet and modern-day health.

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References or Bibliography

Brookheart, R. T., Swearingen, A. R., Collins, C. A., Cline, L. M., & Duncan, J. G. (2017, March 24). High-sucrose-induced maternal obesity disrupts ovarian function and decreases fertility in Drosophila melanogaster. https://pubmed.ncbi.nlm.nih.gov/28344128/.

Chandegra, B., Tang, J. L. Y., Chi, H., & Alic, N. (2017, December 4). Sexually dimorphic effects of dietary sugar on lifespan, feeding and starvation resistance in Drosophila. Aging (Albany NY).

https://pubmed.ncbi.nlm.nih.gov/29207375/.

Dew-Budd, K., Jarnigan, J., & Reed, L. K. (2016, August 12). Genetic and sex-specific transgenerational effects of a high fat diet in Drosophila melanogaster. Plos One. https://pubmed.ncbi.nlm.nih.gov/27518304/.

Fedorova, E. V., Dorogova, N. V., Bolobolova, E. U., Fedorova, S. A., Karagodin, D. A., Ogienko, A. A., Khruscheva, A. S., & Baricheva, E. M. (2018, December 10). GAGA protein is required for multiple aspects of Drosophila oogenesis and female fertility. Wiley Online Library. https://onlinelibrary.wiley.com/doi/10.1002/dvg.23269.

Gallagher, J. (2020, July 15). Fertility rate: 'Jaw-dropping' global crash in children being born. BBC News. https://www.bbc.com/news/health-53409521.

Gilbert SF. Developmental Biology. 6th edition. Sunderland (MA): Sinauer Associates; 2000. Early Drosophila Development. Available from: https://www.ncbi.nlm.nih.gov/books/NBK10081/

Jensen, T., Abdelmalek, M. F., Sullivan, S., Nadeau, K. J., Green, M., Roncal, C., Nakagawa, T., Kuwabara, M., Sato, Y., Kang, D.-H., Tolan, D. R., Sanchez-Lozada, L. G., Rosen, H. R., Lanaspa, M. A., Diehl, A. M., & Johnson, R. J. (2018, February 2). Fructose and sugar: A major mediator OF non-alcoholic fatty liver disease. https://pubmed.ncbi.nlm.nih.gov/29408694/.

Lushchak, O. V., Gospodaryov, D. V., Rovenko, B. M., Yurkevych, I. S., Perkhulyn, N. V., & Lushchak, V. I. (2013, May 30). Specific dietary Carbohydrates Differentially influence the life span and fecundity of Drosophila melanogaster. The Journals of Gerontology. https://academic.oup.com/biomedgerontology/article/69/1/3/547668.

Monaco, K. (2020, December 11). Over 73% of U.S. Adults overweight or obese. Medical News. https://www.medpagetoday.com/primarycare/obesity/90142.

Murashov, A. K., Pak, E. S., Lin, C.-T., Boykov, I. N., Buddo, K. A., Mar, J., Bhat, K. M., & Neufer, P. D. (2020, December 4). Preference and detrimental effects of high fat, sugar, and salt diet in wild-caught Drosophila simulans are reversed by flight exercise. FASEB Bioadvances.

https://pubmed.ncbi.nlm.nih.gov/33490883/.

Pasco, M. Y., & Léopold, P. (2012, May 2). High sugar-induced insulin resistance in Drosophila relies on THE Lipocalin Neural Lazarillo. Plos One. https://journals.plos.org/plosone/article?id=10.1371%2Fjournal.pone.0036583.

Reis, T. (2016, January 7). Effects of synthetic diets enriched in specific nutrients on Drosophila development, body fat, and lifespan. Plos One. https://journals.plos.org/plosone/article?id=10.1371%2Fjournal.pone.0146758.

Rust, K., Byrnes, L. E., Yu, K. S., Park, J. S., Sneddon, J. B., Tward, A. D., & Nystul, T. G. (2020, November 6). A single-cell atlas and lineage analysis of the adult Drosophila ovary. Nature News. https://www.nature.com/articles/s41467-020-19361-0.

Segula, D. (2014, March 26). Complications of obesity in adults: A short review of the literature. Malawi Medical Journal : The Journal of Medical Association of Malawi. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4062780/.

Xie, J., Wang, D., Ling, S., Yang, G., Yang, Y., & Chen, W. (2019, November 29). High-salt diet causes sleep fragmentation in young Drosophila through circadian rhythm and dopaminergic systems. Frontiers. https://www.frontiersin.org/articles/10.3389/fnins.2019.01271/full.

Published

06-10-2022

How to Cite

Patel, H., & Drummond-Barbosa, D. (2022). Effects of High-Sucrose, High-Fat, and High-Sodium Diets on Female Drosophila melanogaster Fertility and Health. Journal of Student Research, 10(4). https://doi.org/10.47611/jsrhs.v10i4.2112

Issue

Section

HS Review Articles