Some animals change their shape. 

Some animals change their shape as they grow. 

Metamorphosis is a way that some animals change their bodies. They go through big changes as they grow.
Some insects have complete metamorphosis. This is called holometaboly. They start as larvae. Then they stay still in a pupa stage. Finally, they emerge as adults. The adult looks very different from the larva. 
Other insects have incomplete metamorphosis. This is called hemimetaboly. They start as nymphs. Nymphs look like small adults. They just grow bigger by shedding their skin. They do not have a pupa stage. 
Amphibians like frogs also change. Tadpoles live in water and have gills. They use a long gut to eat plants. As they change, their bodies make lungs. They grow legs and a big jaw. Their long gut shortens to eat insects. 
Metamorphosis is a wonderful way that some animals grow and change. It is a biological process where an animal's body structure changes quickly. These changes happen through cell growth and differentiation. This means cells change to become different parts of the body. Many living things undergo this, including insects, fish, and amphibians. This change often means the animal starts eating different foods. It can also change how the animal acts in its environment.
Insects use different ways to complete this big change. Some insects use complete metamorphosis, or holometaboly. They start as larvae that look nothing like adults. They then enter a resting stage called a pupa. Some people call a butterfly's pupa a chrysalis. Finally, the adult emerges from the pupa. Other insects use incomplete metamorphosis, or hemimetaboly. These insects start as nymphs that look like small adults. They grow by shedding their skin in stages called instars. 
Scientists have studied how these changes are controlled. In insects, hormones near the front of the body manage growth. A hormone called PTTH helps activate other glands. These glands then release a hormone called ecdysone. This hormone causes ecdysis, which is the shedding of the exoskeleton. Another hormone, called juvenile hormone, helps control when adult features appear. In holometabolous insects, the level of juvenile hormone drops during the pupa stage. This allows the final molt to create a full adult.
Many different animals show these amazing patterns. For example, some fish like the salmon change lifestyles. They move from living in fresh water to living in salt water. The European eel goes through several different stages. It starts as a larva and becomes a glass eel. Some amphibians, like frogs, change from water to land. Tadpoles have gills and long guts for eating plants. As they undergo metamorphosis, they grow lungs and big jaws. Their guts shorten so they can eat insects instead. 
Nature uses many tools to make these changes happen. One way is through programmed cell death, or apoptosis. This is when the body tells certain cells to disappear. This helps the animal reshape itself, like when a tadpole loses its tail. Temperature also matters for many insects. They often have specific thermal windows to grow properly. Some animals even keep what they learn. A caterpillar called Manduca sexta can remember things as an adult moth. This shows how connected an animal's life stages really are. 
Metamorphosis is a profound biological process involving dramatic physical development. It describes a conspicuous and relatively abrupt change in an animal's body structure. These transformations occur through cell growth and differentiation, where cells change to become specific body parts. This process often leads to changes in nutrition sources or behaviors. Many different groups of animals undergo metamorphosis, including insects, fish, amphibians, mollusks, and crustaceans.
Insects demonstrate three distinct types of development. The first is ametaboly, or no metamorphosis, where larvae look very similar to adults. The second is hemimetaboly, known as incomplete metamorphosis. In these species, immature stages are called nymphs. Nymphs grow through repeated stages of growth and ecdysis, which is the shedding of the exoskeleton. These stages are called instars, and the time between molts is a stadium. The third type is holometaboly, or complete metamorphosis. These insects pass through a larval stage, then enter an inactive pupal stage, and finally emerge as adults. 
Biological mechanisms control these changes through complex hormonal signals. In insects, neurosecretory cells in the brain secrete prothoracicotropic hormone, or PTTH. This hormone activates prothoracic glands to secrete ecdysone, an ecdysteroid that induces ecdysis. Simultaneously, PTTH stimulates the corpora allata to produce juvenile hormone. This hormone prevents the development of adult characteristics during growth. In holometabolous insects, juvenile hormone levels are high during larval instars. The level drops during the pupal stage. Finally, the imaginal molt occurs when no juvenile hormone is present at all.
Chordates, such as fish and amphibians, use different chemical triggers. In many chordates, metamorphosis is iodothyronine-induced. For amphibians like frogs, the process is regulated by thyroxin concentration in the blood. Thyroxin stimulates metamorphosis, while prolactin works to counteract its effects. These chemical shifts allow for massive structural reorganizations. For example, a tadpole's long, spiral-shaped gut shortens to favor an insect-based diet. This allows the animal to transition from a vegetarian lifestyle to a predatory one. 
Evolutionary history shows that metamorphosis helped insects succeed. The earliest insect forms used direct development, or ametabolism. The evolution of metamorphosis is thought to have fueled the dramatic radiation of insect species. Some ancient ametabolous insects, like silverfish, still exist today. Most winged insects, known as Pterygota, undergo marked changes in form and texture. Scientists study how hemimetabolous forms might have evolved into holometabolous forms. They look at whether the intermediate stages are homologous, or sharing a common origin, to the pupal stage. 
Specific biological tools facilitate these transformations. One critical process is apoptosis, or programmed cell death. This process allows an organism to reshape itself by removing unnecessary parts. In tadpoles, apoptosis helps resorb the lateral line system and the tail. Recent research also highlights autophagy as a way programmed cell death occurs during metamorphosis. Temperature also acts as a vital regulator. Many insect species have specific thermal windows that allow them to progress through developmental stages. These windows are often phylogenetically adapted to their specific environments.
Metamorphosis also reveals surprising connections between life stages. Research shows that some insects retain information across transformations. For example, the adult Manduca sexta can retain behaviors learned while it was a caterpillar. Other insects, like the ornate moth caterpillar, carry toxins through metamorphosis. These toxins continue to protect the animal even in its adult form. These examples show that metamorphosis is not just a change in shape. It is a complex transition that connects different stages of an animal's life and survival strategies.
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