Plants pass things to their babies. 

A man named Gregor Mendel studied pea plants. 


A monk named Gregor Mendel studied pea plants. 


Mendel saw that these alleles separate during reproduction. This is called segregation. This means a parent only gives one allele to its offspring. He also found that different traits follow their own rules. This is called independent assortment. One trait, like color, does not change another trait, like shape. Scientists use tools to study these patterns. One tool is a Punnett square. It is a chart used to see possible traits.
Have you ever wondered why you look like your parents? This happens because of Mendelian inheritance. This is the way living things pass traits to their children. These rules help explain how specific features move from one generation to the next. 
To understand this, we look at how alleles work. An allele is an alternative form of a gene. 

Gregor Mendel first discovered these rules in the 1800s. He was a monk living in Moravia. 

There are many specific facts about Mendel's plant experiments. He tracked many different traits in his pea plants. These included seed color, flower color, and stem length. He even looked at the shape of the pods. Mendel used math to show his results. He followed several generations, which scientists call the P, F1, F2, and F3 generations.
Today, scientists use special tools to see these patterns. One tool is called a Punnett square.
Mendelian inheritance describes the fundamental principles of biological heredity. This system explains how specific traits move from parents to their offspring. It is a cornerstone of classical genetics. It focuses on the idea that inheritance is driven by singular genes. These genes act as discrete units of information. 
To understand the mechanism, we must look at alleles. An allele is an alternative form of a gene. 

Specific rules govern how these alleles behave during reproduction. First, Mendel observed that one allele can be dominant over another. In a heterozygous individual, the dominant allele determines the phenotype. The recessive allele has no noticeable effect on the appearance. Second, alleles undergo random segregation during the creation of gametes. Gametes are reproductive cells like sperm or egg cells. During this process, the two alleles in a pair separate. This ensures each gamete carries only one allele for a specific trait. Finally, different traits undergo independent assortment. This means the inheritance of one trait does not affect the inheritance of another.
Gregor Mendel discovered these principles through rigorous experimentation. He was a Moravian monk who lived in the nineteenth century. Between 1856 and 1863, Mendel cultivated approximately 5,000 pea plants, known as Pisum sativum. He performed hybridization experiments in his monastery garden. Mendel focused on discrete, binary characteristics rather than variable ones. He studied traits such as seed shape, seed color, and flower color. He also tracked pod shape, pod color, stem length, and flower position. 
Despite his success, Mendel's work was initially ignored by the scientific community. Many biologists believed that traits blended together like paint. They did not see the importance of the discrete units Mendel described. It was not until 1900 that his work was rediscovered. Three scientists—Hugo de Vries, Carl Correns, and Erich von Tschermak—independently reached similar conclusions. William Bateson later became a vigorous promoter of these ideas. He actually coined the terms "genetics" and "allele" to describe these concepts. 
Modern science has expanded upon Mendel's original observations. In 1915, Thomas Hunt Morgan integrated Mendelism with the chromosome theory of inheritance. This theory suggests that chromosomes hold the actual hereditary material. This integration created the foundation for what we now call classical genetics. Later, Ronald Fisher combined Mendelian principles with natural selection. In his 1930 book, *The Genetical Theory of Natural Selection*, he provided a mathematical basis for evolution. This work helped form the basis of population genetics within the modern evolutionary synthesis.
Today, researchers use several tools to study these inheritance patterns. One common tool is the Punnett square. Created by Reginald Punnett, this chart visually demonstrates possible genotypes for offspring.
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