Some things can be bad for us. 
Some things can be bad for us. 

Toxicologists are experts who study poisons. 
A very important rule in this science is the dose. A dose is the amount of a substance used. A famous thinker named Paracelsus said that the dose makes the poison. This means a small amount might be safe. But a large amount could be harmful.
Scientists study how people touch or eat these things. They look at how long it takes to feel an effect. This can be acute, which means it happens fast. It can also be chronic, which means it happens over a long time.
There is a long history of this work. 

Toxicology is a special science that studies how chemicals affect living things. 
How a substance affects a living thing depends on many important steps. One major factor is the dose, which is the amount of the substance. Scientists look at whether an exposure is acute, which happens quickly, or chronic, which lasts a long time. They also study the route of exposure. This means they check if a substance is eaten, breathed in, or absorbed through the skin. Other things like age, sex, and the environment can change how a chemical works. A dose-response curve often shows that low doses might have no effect at all. 
People have studied poisons for a very long time. 

History shows many important discoveries and names in this science. In 1850, Jean Stas became the first person to pull plant poisons out of human tissue. He used this to help solve a murder case involving nicotine. Today, big groups like the FDA and the EPA use science to protect us. The FDA even has a guide called the Redbook 2000 for food safety. In 2007, the National Academy of Sciences shared a vision for new testing ways. They hoped to use more biology and technology to change how we work. 
Scientists use different tools to learn about these substances. Some tests use whole animals, which are called in vivo models. They might use zebrafish or a type of worm called Caenorhabditis elegans. Other tests use cells or tissues in a lab, which is called in vitro. Scientists also use computers to run simulations, which is known as in silico testing. Some places, like the European Union, have banned animal testing for cosmetics. The goal is to use the "Three Rs" to reduce, refine, or replace animal tests. This helps scientists find answers while being careful and smart.
Toxicology is a scientific discipline that studies the adverse effects of chemical substances on living organisms. This field overlaps with several other sciences, including biology, chemistry, pharmacology, and medicine. Toxicologists are experts who study poisons and poisoning. Their work involves diagnosing and treating exposures to toxins and toxicants. They also work to prevent and improve the effects of these harmful agents on both living things and the environment. 
A central principle in toxicology is the relationship between the dose and its effects. The dose is the amount of a substance an organism is exposed to. This relationship is often shown through a dose-response curve. Most chemicals follow a pattern where a low dose, below a certain threshold, causes no observable effect. However, some chemicals show a phenomenon called sufficient challenge. In these cases, a small exposure might actually cause animals to grow more rapidly or live longer. Other substances are more complex. Some have no well-defined safe level of exposure. Others are subject to bioaccumulation, meaning the body stores them instead of excreting them.
Many different factors influence how toxic a chemical is to a living thing. One major factor is the route of exposure. This refers to how the substance enters the body, such as through ingestion, inhalation, or dermal absorption through the skin. The duration of exposure is also vital. Scientists distinguish between acute exposure, which is a large single dose, and chronic exposure, which involves continuous small doses over time. Other variables include the species, age, sex, and health of the organism. Even the surrounding environment can change how a chemical interacts with a living system.
The history of toxicology stretches back to ancient civilizations. 
Modern toxicology grew through the work of specific influential figures. The Swiss physician Paracelsus is often called the "father" of modern toxicology. He emphasized a rigorous approach to how substances affect the body. He is famous for the maxim, "The dose makes the poison." In 1813, Mathieu Orfila provided the first formal treatment of the subject in his work, *Toxicologie générale*. 
Today, toxicologists use several different testing methods to assess risks. In vivo testing uses whole living organisms, such as zebrafish (*Danio rerio*) or the worm *Caenorhabditis elegans*. In vitro methods involve testing on isolated cells or tissues in a lab setting. A third method is in silico, which uses computer simulations to model chemical behavior. Scientists follow the "Three Rs" to guide their work: reducing the number of animals used, refining experiments to cause less suffering, and replacing animal tests with other methods. For example, the European Union prohibited animal testing for cosmetics in 2013.
Modern regulatory bodies now oversee much of this work to ensure public safety. Organizations like the U.S. Food and Drug Administration (FDA), the Environmental Protection Agency (EPA), and the World Health Organization (WHO) enforce protocols to assess chemical risks. The FDA uses documents like the Redbook 2000 to guide the assessment of food additives. In the 21st century, there is a move toward evidence-based toxicology. This movement seeks to make decision-making more transparent and objective. The EPA's ToxCast program is an example of this, using in silico modeling and stem cell assays to predict how chemicals affect development. 
Toxicology also has surprising connections to medicine and cancer research. While many toxins are harmful, some can be used as helpful tools. For instance, ribosome-inactivating proteins are being tested as drugs to kill tumor cells in the treatment of leukemia. This shows that the study of harmful substances can lead to life-saving medical breakthroughs. By understanding the mechanism of how a toxin works, scientists can sometimes turn that mechanism into a way to fight disease.
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