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Neuroscience

life science Maturity 11-13

We study how the body works.

Nervous system diagram-en.svg
Nervous system diagram-en.svg
This includes your brain. It helps you think and move. It is very important for you. It is a big job. Do you want to learn more?
neuron colored.jpg
neuron colored.jpg

38 words

Scientists study how your body sends signals.

Nervous system diagram-en.svg
Nervous system diagram-en.svg
This includes your brain and your spine. Your brain helps you think and move. It is a very busy part of you.
neuron colored.jpg
neuron colored.jpg
Small parts called cells do the work. These cells talk to each other. They use tiny sparks to send messages. This helps you learn new things. Your brain can even change as you grow. It is a very amazing thing to study!

76 words

Neuroscience is the study of the nervous system. This system includes your brain and your spinal cord. It also includes the nerves in your body.

Nervous system diagram-en.svg
Nervous system diagram-en.svg
Scientists want to know how these parts work. They study how we learn and how we think. They also look at how we move.
neuron colored.jpg
neuron colored.jpg

The brain is made of tiny cells called neurons. These cells are built for talking to each other. They send signals through parts called axons. These axons are long, thin filaments.

Cajal-Restored.jpg
Cajal-Restored.jpg
Neurons connect at tiny gaps called synapses. At these synapses, they pass electrical or chemical signals. This is how the brain sends messages.

In the past, people did not know how the brain worked. Some thought the heart was the center of thought. Later, doctors saw that brain damage changed how people acted. This helped them learn which parts of the brain do different jobs. The human brain is very complex. It has about one hundred billion neurons. It also has one hundred trillion synapses. The brain can even change its shape as you live. This is called plasticity.

185 words

Neuroscience is the scientific study of the nervous system. This system includes your brain, your spinal cord, and your peripheral nervous system.

Nervous system diagram-en.svg
Nervous system diagram-en.svg
Scientists study how this system works and how it can have problems. They want to understand how we learn, how we remember, and how we feel. They also look at how we move and how we think.
neuron colored.jpg
neuron colored.jpg
This science is very big and uses many different subjects. It combines things like biology, physics, and even computer science. It is a huge job to understand how the brain creates things like consciousness.
Cajal-Restored.jpg
Cajal-Restored.jpg

To understand the brain, we must look at how its tiny parts work together. The brain is made of special cells called neurons. These cells are built to communicate with each other. Each neuron can grow a long, thin filament called an axon.

PurkinjeCell.jpg
PurkinjeCell.jpg
The axon carries electrical signals to other parts of the body. Neurons connect to each other at tiny gaps called synapses.
GolgiStainedPyramidalCell.jpg
GolgiStainedPyramidalCell.jpg
At these synapses, signals move from one cell to another. This creates neural circuits and networks that allow the brain to work. The human brain has about one hundred billion neurons and one hundred trillion synapses.

People have wondered about the brain for a very long time. In ancient Egypt, people sometimes removed the brain during mummification. They actually believed the heart was the center of intelligence.

Gray739.png
Gray739.png
The Greek physician Hippocrates later argued that the brain was the seat of intelligence. The Roman physician Galen also saw that brain damage changed how people acted. Later, many thinkers in the Medieval Muslim world described brain problems. During the Renaissance, scientists like Vesalius and René Descartes made new discoveries. These early steps helped people stop thinking the heart did everything.

Many important discoveries happened as tools like microscopes improved. In the late 1700s, Luigi Galvani studied how electricity affects muscles and neurons.

Camillo Golgi nobel.jpg
Camillo Golgi nobel.jpg
In the late 1890s, Camillo Golgi created a way to see individual neurons using silver salt. This helped Santiago Ramón y Cajal show that neurons are the brain's main units.
Cajal-Restored.jpg
Cajal-Restored.jpg
Golgi and Ramón y Cajal even shared a Nobel Prize in 1906. In 1909, Korbinian Brodmann mapped 52 different regions of the brain. These maps are still used by scientists today to see which brain areas do different tasks.

Neuroscience connects what we see in a lab to how we live our lives. For example, scientists use math to model how electrical signals move.

Alan Lloyd Hodgkin nobel.jpg
Alan Lloyd Hodgkin nobel.jpg
This helps us understand how our brains process information. We can see how the brain changes throughout our lives. This ability to change is called plasticity. It means the connections in your brain can shift as you learn new things. Today, neuroscience even helps us study new areas like neuroeducation and neurolaw.
Sensory and motor homunculi.jpg
Sensory and motor homunculi.jpg
It is a field that keeps growing every single day.

496 words

Neuroscience is the multidisciplinary scientific study of the nervous system. This system consists of the brain, the spinal cord, and the peripheral nervous system. Scientists investigate how these components function and how they experience various disorders. The field is incredibly broad because it combines many different sciences. It integrates physiology, anatomy, and molecular biology with physics and computer science. It also uses chemistry, statistics, and mathematical modeling. By combining these tools, researchers aim to understand the properties of neurons, glia, and neural circuits. Eric Kandel described the study of learning, memory, and consciousness as an "epic challenge" for biology.

Nervous system diagram-en.svg
Nervous system diagram-en.svg

To understand how the brain works, we must look at its smallest building blocks. The fundamental units of the brain are neurons, which are specialized cells for communication. Many neurons possess a long, thin filament called an axon. This axon carries electrical signals to distant parts of the body. These signals can influence muscles, glands, or other neurons at their termination points. Neurons communicate with each other through specialized junctions called synapses. At these synapses, electrical or electrochemical signals are transmitted from one cell to another. These connections form complex neural circuits and networks.

neuron colored.jpg
neuron colored.jpg

The vertebrate nervous system is organized into two distinct parts. The first is the central nervous system, which includes the brain and the spinal cord. The second is the peripheral nervous system. In many species, including all vertebrates, the nervous system is the most complex organ system. Most of this complexity is located within the brain. The human brain is a massive network of connections. It contains approximately one hundred billion neurons. It also contains about one hundred trillion synapses. Furthermore, at least one out of every three genes in the human genome is expressed mainly in the brain.

PurkinjeCell.jpg
PurkinjeCell.jpg

Humanity's understanding of the brain has changed significantly over thousands of years. In ancient Egypt, the brain was often removed during the mummification process. At that time, many believed the heart was the actual seat of intelligence. This view was not challenged until the Greek physician Hippocrates argued the brain was the seat of intelligence. Aristotle disagreed and believed the heart was the center of intelligence. Later, the Roman physician Galen observed that brain damage caused patients to lose mental faculties. During the Middle Ages, scholars in the Muslim world described various medical problems related to the brain. Eventually, Renaissance thinkers like Vesalius and René Descartes contributed to our growing anatomical knowledge.

Gray739.png
Gray739.png

Technological advances in the 19th and 20th centuries revolutionized the field. In the late 1700s, Luigi Galvani studied the electrical excitability of muscles and neurons. Later, Emil du Bois-Reymond demonstrated that nerve signals are electrical in nature. A major breakthrough occurred in the late 1890s when Camillo Golgi developed a staining procedure. He used a silver chromate salt to reveal the intricate structures of individual neurons. Santiago Ramón y Cajal used this technique to develop the neuron doctrine. This hypothesis states that the neuron is the functional unit of the brain. Golgi and Ramón y Cajal shared the Nobel Prize in 1906 for this work.

Camillo Golgi nobel.jpg
Camillo Golgi nobel.jpg

Researchers have also worked to map where specific functions happen in the brain. This is known as the localization of function hypothesis. In 1909, Korbinian Brodmann published a map defining 52 distinct regions of the cerebral cortex. These are known today as Brodmann areas. Modern neuroimaging still uses these anatomical definitions to show which areas activate during specific tasks. Other researchers, like Paul Broca and Carl Wernicke, identified brain regions responsible for language. Wilder Penfield also produced maps of motor, sensory, and vision functions in the brain. He and his colleagues even developed the concept of the cortical homunculus.

Vergleichende Lokalisationslehre der Grosshirnrinde in ihren Prinzipien dargestellt auf Grund des Zellenbaues.pdf
Vergleichende Lokalisationslehre der Grosshirnrinde in ihren Prinzipien dargestellt auf Grund des Zellenbaues.pdf

Modern neuroscience relies heavily on mathematical and computational models. In 1952, Alan Lloyd Hodgkin and Andrew Huxley created a model for electrical signals called action potentials. This is known as the Hodgkin–Huxley model. Other scientists, such as Richard FitzHugh and J. Nagumo, later simplified this model. Bernard Katz also modeled how neurotransmission works across the synapse. These quantitative methods allow scientists to study the nervous system at a molecular level. Because of the high degree of plasticity in the human brain, these synaptic functions change throughout life. This field continues to expand into new areas like neuroeconomics, neuroeducation, and neurolaw.

Sensory and motor homunculi.jpg
Sensory and motor homunculi.jpg

734 words
🖼️ Images & Media (65)
File:PurkinjeCell.jpg
PurkinjeCell.jpg
File:Gray739.png
Gray739.png
File:GolgiStainedPyramidalCell.jpg
GolgiStainedPyramidalCell.jpg
Vergleichende Lokalisationslehre der...
File:Sensory and motor homunculi.jpg
Sensory and motor homunculi.jpg
File:Nervous system diagram-en.svg
Nervous system diagram-en.svg
File:neuron colored.jpg
neuron colored.jpg
File:Leg Neural Network.jpg
Leg Neural Network.jpg
File:Parasagittal MRI of human head in patient with benign familial macrocephaly prior to brain injury (ANIMATED).gif
Parasagittal MRI of human head in patient...
File:Ivan Pavlov nobel.jpg
Ivan Pavlov nobel.jpg
File:Camillo Golgi nobel.jpg
Camillo Golgi nobel.jpg
File:Cajal-Restored.jpg
Cajal-Restored.jpg

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