Elizabeth B. Allmon
Environmental Science · Purdue University West Lafayette
Publications
20
Citations
204
Est. group size
~7
Recurring co-author estimate
Active years
8
Publishing since 2017
Elizabeth B. Allmon studies how environmental stressors—such as oil exposure, low oxygen (hypoxia), changes in salinity, and industrial chemicals like PFAS (per- and polyfluoroalkyl substances)—affect the health and development of fish, particularly their heart, gills, and reproductive systems. Her work combines toxicology, gene expression analysis, and physiology to understand how aquatic species respond to pollution and changing environmental conditions, with implications for both wild fish populations and aquaculture (fish farming). Much of this research focuses on estuarine (coastal, brackish-water) species and uses laboratory and field-based approaches to assess ecological risk.
Publication output has been variable but shows a notable increase in activity around 2021 and 2023, following a slower period in 2019-2020, suggesting an overall active but non-linear publishing pace over the last decade.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- An Assessment of Population and Health Status of Native Fish Species from Rivers Kabul and Swat, Khyber Pakhtunkhwa, Pakistan
Pakistan Journal of Zoology · 2024
- A Critical Review of Amphibian Per- and Polyfluoroalkyl Substance Ecotoxicity Research Studies: Identification of Screening Levels in Water and Other Useful Resources for Site-Specific Ecological Risk Assessments
Environmental Toxicology and Chemistry · 2023
- Commercial production of Florida pompano (Trachinotus carolinus) larvae at low salinity induces variable changes in whole-larvae microbial diversity, gene expression, and gill histopathology
Frontiers in Marine Science · 2023
- Reproductive endocrine disruption in fishes
Elsevier eBooks · 2023
- Effects of low salinities on growth, fatty acid composition, and transcriptome in Florida pompano (Trachinotus carolinus) at early developmental stages
Aquaculture · 2022
- Oil induced cardiac effects in embryonic sheepshead minnows, Cyprinodon variegatus
Chemosphere · 2021
- The influence of hypoxia on the cardiac transcriptomes of two estuarine species - C. variegatus and F. grandis
Comparative Biochemistry and Physiology Part D Genomics and Proteomics · 2021
- Haemodynamic dependence of mechano-genetic evolution of the cardiovascular system in Japanese medaka
Journal of The Royal Society Interface · 2021
- Supplemental Table 5.2: Shear dependent factors statistics
2021
- Supplemental Table 4.1: The PAH analysis of the high energy water accommodated fraction (HEWAF)
2021
- Supplemental Table 5.1: Cardiac function and geometry statistics
2021
- Cardiotoxic effects of polycyclic aromatic hydrocarbons and abiotic stressors in early life stage estuarine teleosts
INDIGO (University of Illinois at Chicago) · 2021
- Effects of polycyclic aromatic hydrocarbons and abiotic stressors on Fundulus grandis cardiac transcriptomics
The Science of The Total Environment · 2020
- Effects of Deepwater Horizon crude oil on ocular development in two estuarine fish species, red drum (Sciaenops ocellatus) and sheepshead minnow (Cyprinodon variegatus)
Ecotoxicology and Environmental Safety · 2018
- Mechano-genetics of the cardiac development in embryonic medaka
Bulletin of the American Physical Society · 2018
- Environmental Toxicology and Chemistry×2
- Ecotoxicology and Environmental Safety×1
- Scientific Reports×1
- Aquaculture×1
- Marine Pollution Bulletin×1
- Jonathan C. Wright
Environmental Science · The Ohio State University
- Julie A. Reynolds
Environmental Science · The Ohio State University
- David L. Denlinger
Environmental Science · The Ohio State University
- B. L. Williams
Environmental Science · The Ohio State University
- Kenneth R. Olson
Environmental Science · Indiana University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile