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Fish Models

Fish Models as An Indispensable Tool in Biomedical Research

Fish, especially zebrafish, have become the fastest growing segment of research populations. They have become indispensable tools in biomedical research. Fish model used in biomedical research include zebrafish, medaka, killifish, swordtail fish, cavefish, Stickleback, goldfish, and Danionella translucida. Among them, zebrafish is the most commonly used fish model, and its transparent embryos and rapid growth make it ideal for studying genetics, toxicology, pharmacology, and cancer. In addition to this, zebrafish are popular among scientists because they share about 70% genetic similarity with humans.

Laboratory Fish

What Fields of Scientists Benefit from Fish Model?

  • Gene mutation studies. The transparent ectoderm of zebrafish makes it easy to observe its development in real time and allows rapid screening for specific gene mutations.
  • High-throughput drug screening and testing. Because of their small size, short life cycle, and rapid reproduction, experimental fish allow for rapid and efficient large-scale drug screening and testing.
  • Disease modeling. Many human diseases can be replicated in experimental fish, which in turn allows for the study of their pathogenesis, disease processes, and potential therapeutic strategies.
  • Developmental biology research. Embryonic development in experimental fish (especially zebrafish) is rapid, with the first cell divisions of the embryo observed within a few hours. This makes them ideal models for studying developmental biology.
  • Cellular and molecular biology studies. Using transgenic technology, it is possible to visualize the expression patterns of specific genes, cell migration pathways, etc. in experimental fish.
  • Gene editing applications. Gene editing technology is widely used in experimental fish, allowing researchers to insert, repair, or knock out specific genes precisely.
  • Behavioral studies. Because experimental fish can adapt and demonstrate a range of complex behaviors in a laboratory environment, such as learning behavior, memory, social behavior, etc.

What Disease Areas Does Our Lab Fish Support?

Cardiovascular Diseases Duchenne Muscular Dystrophy Inflammatory Diseases
Kidney Diseases Neurological Diseases Bone Diseases
Eye Diseases Blood Diseases Liver Diseases
Tumors Hearing Related Diseases Regenerative
Metabolic Diseases Infectious Diseases Skeletal Diseases

Related Models

Browse our list of fish models

Models Name Cat.No. Animal Type Disease Area
Chronic granulomatous disease, Rag1 mutated/Mycobacterium leprae-induced, in zebrafish (AB) AB234779 zebrafish Chronic granulomatous disease
Chronic intestinal pseudo-obstruction, Tfap2b knockout, in zebrafish AB234780 zebrafish Intestinal pseudo-obstruction
Chronic kidney disease, nfkb1 knockout, in zebrafish AB234781 zebrafish Chronic kidney disease
Chronic kidney disease, Sec61a1 mutated, in zebrafish AB234782 zebrafish Chronic kidney disease
Chronic kidney disease, Tmem63c knockdown, in zebrafish (Tg (fabp10a::gc-EGFP)) AB234783 zebrafish Chronic kidney disease
Chronic kidney disease, transgenic (APOL1), in zebrafish AB234784 zebrafish Chronic kidney disease
Chronic myeloid leukemia, transgenic (BCR-ABL1), in zebrafish AB234785 zebrafish Chronic myeloid leukemia
Chronic pain, in zebrafish AB234786 zebrafish Pain,chronic
Chronic toxicity, Ahr2 knockout/Benzo(a)pyrene-induced, in zebrafish AB234787 zebrafish
Chronic toxicity, cmlc1 mutated/physical stress-induced, in zebrafish AB234788 zebrafish