Every thought you have, every movement you make, every memory you hold – all of it traces back to a single organ sitting inside your skull. The brain is a three-pound organ that controls all functions of the body, interprets information from the outside world, and embodies the essence of the mind. Understanding how this organ produces behavior is the central question of neuroscience – and the answer begins with its structure.

Table of Contents

The three core structures of the brain

The human brain is organized into three major divisions, each with a distinct role, yet all working in close coordination. These are the cerebrum, the cerebellum, and the brainstem. Far from being isolated units, these structures communicate continuously – integrating sensory input, coordinating movement, regulating vital functions, and shaping every behavior we exhibit.

The cerebrum: seat of thought and action

The cerebrum is the largest part of the brain, divided into two halves – the left and right hemispheres – connected by a bundle of nerve fibers called the corpus callosum. It governs the most complex aspects of human behavior: conscious thought, language, memory, reasoning, emotional responses, and voluntary movement.

The outer layer of the cerebrum is the cerebral cortex, a wrinkled sheet of gray matter whose folds dramatically increase its surface area. By devoting sections to specific tasks, the brain processes multiple inputs more efficiently. The cortex is divided into four lobes, each specialized in different functions:

The frontal lobe is involved in decision-making, planning, personality, and voluntary movement. The parietal lobe processes touch, temperature, pain, and spatial awareness. The temporal lobe handles hearing, language comprehension, and memory formation – it also contains the hippocampus, a region central to learning and memory. The occipital lobe at the back of the brain serves as the primary visual processing center, interpreting visual information received from the eyes.

Damage to any one of these lobes produces predictable behavioral changes – a fact that has helped neuroscientists map the relationship between specific brain regions and specific behaviors for over a century.

The cerebellum: coordination and beyond

The cerebellum maintains balance, posture, coordination, and fine motor skills. It is a small, half-circle shape located at the back of the brain around the brainstem. For many years, it was understood primarily as a motor structure. More recent research, however, has significantly expanded that picture.

The cerebellum can modulate behavior through many connections with different nervous system structures in motor, sensory, cognitive, autonomic, and emotional processes. It also aids in cognitive functions such as attention, language, pleasure response, and fear memory. The cerebellum is also notable for containing an extraordinary density of neurons – it holds approximately 80% of all neurons in the brain, communicating through a complex internal network that integrates information arriving from multiple regions of the nervous system.

The brainstem: life’s control center

The brainstem connects the cerebrum to the spinal cord and cerebellum. It is composed of three sections: the midbrain, pons, and medulla oblongata. It is responsible for many vital functions of life, such as breathing, consciousness, blood pressure, heart rate, and sleep. Without these automatic functions running seamlessly in the background, higher cognitive and behavioral capacities could not exist.

The brainstem also serves as a critical relay station. Ten of the twelve pairs of cranial nerves that control hearing, eye movement, facial sensations, taste, swallowing, and movement of the face, neck, shoulder, and tongue muscles originate in the brainstem. Its reticular formation – a network of neurons running through the brainstem – plays an essential role in regulating wakefulness, alertness, and attention, all of which directly influence behavioral responsiveness.

How the brain processes sensory information

Behavior does not happen in isolation – it is always a response to information. The brain constantly receives data from the external environment and the body, processes it, and generates a coordinated response. This process is known as sensory processing, and it is the foundation of how the brain connects perception to action.

Sensory data generally passes through the thalamus – a kind of switching station atop the brainstem – en route to dedicated areas of the cortex designed to process them. The auditory cortex in the temporal lobe handles hearing; the visual cortex in the occipital lobe handles sight. Touch, temperature, and pain signals are processed in the parietal lobe’s somatosensory cortex, while taste is processed in the frontal lobe’s gustatory cortex.

At the lowest level, sensory information is mapped separately in the visual and auditory cortexes. This information is then automatically integrated in the parietal lobe, located in the upper area of the brain. But sensory processing does not stop at the cortex. Signals continue to engage wider brain networks – including the limbic system, which processes emotion and memory – shaping how we ultimately experience and react to the world.

The brain processes information by splitting a single behavior into component parts. These different components are split, sent to appropriate regions of the brain, then processed accordingly. This distributed processing adds great speed to our ability to take in information and respond. The result is the seamless, near-instantaneous behavioral responses we often take for granted.

Memory, learning, and the storage of experience

Memory is not a single system stored in one location – it is a distributed process involving several brain regions working together. The hippocampus, located in the medial temporal lobe, plays a pivotal role. The medial temporal lobe contains the hippocampus, a region of the brain important for memory, learning, and emotions. The hippocampus acts as an initial encoder of new experiences, before memories are gradually consolidated and stored in broader regions of the cortex.

The hippocampus sends memories to be stored in areas of the cerebrum. Sleep plays a vital role in this consolidation process. There is now a tremendous body of evidence that memories are consolidated during sleep. Memory consolidation is the process by which short-term memories turn into long-term memories.

Beyond the hippocampus, the cerebellum is also involved in procedural memory – the kind that underlies learned motor skills. The cerebellum activates when you learn to play the piano, for example. This division of memory function across structures illustrates a core principle: different types of learning engage different brain systems, all interconnected.

Brain plasticity: the brain’s capacity to change

Perhaps the most remarkable feature of the brain is its ability to reorganize itself in response to experience. This property, known as neuroplasticity, is at the heart of how the brain supports learning, adaptation, and recovery.

Neuroplasticity is the brain’s capacity to reorganize itself by forming new neural connections. Once believed to occur only during early development, research now shows that plasticity continues throughout the lifespan, supporting learning, memory, and recovery from injury or disease.

At the cellular level, plasticity works primarily through changes at the synapse – the junction between two neurons. When you learn a new skill, specific synapses become stronger and more efficient. Neural networks, which are groups of neurons that work together, become better organised. Communication between brain regions involved in that skill improves.

Two key mechanisms underpin synaptic plasticity. Long-term potentiation (LTP) refers to the persistent strengthening of synapses in response to repeated stimulation, and is widely considered a key mechanism underlying learning and memory. Long-term depression (LTD), conversely, involves the persistent weakening of synapses, and also plays a role in shaping memory and behavior by pruning unnecessary connections.

The connections between neurons, through the synapses, are constantly changing throughout life and are predominantly responsible for learning and memory in the brain. These changes involve forming new connections – synaptogenesis – or strengthening existing connections through long-term potentiation.

Neurogenesis: growing new neurons

Beyond synaptic changes, some parts of the adult brain continue to generate entirely new neurons – a process called neurogenesis. The hippocampus plays a crucial role in memory and learning, and it is only in the last decade that researchers have confirmed that new neurons are born in the hippocampus in the human brain throughout life. Researchers estimated that around 700 new neurons are added to each hippocampus every day.

Several studies have shown that increased physical activity, exposure to enriched environments, and certain drugs can enhance neurogenesis and improve learning and memory. This finding carries profound implications – it suggests that lifestyle choices directly shape the brain’s capacity for learning and behavioral flexibility.

Structural and functional plasticity

Neuroplasticity takes two main forms. Structural plasticity refers to physical changes in neurons and their connections – the number, shape, and strength of synapses. Functional plasticity refers to changes in how neural networks operate – their efficiency, synchrony, and connectivity. Functional plasticity occurs rapidly, affecting various cognitive and behavioral processes relating to attention, memory, and perception.

One striking example of functional plasticity is cortical reorganization. Blind individuals can have enhanced sensory processing in other modalities, such as touch and hearing, due to cortical reorganization. This demonstrates that the brain’s sensory maps are not fixed – they shift to maximize function based on actual experience and need.

It is equally important to recognize that plasticity is not always beneficial. The brain adapts to repeated experiences whether those experiences are helpful or harmful. This helps explain why conditions such as chronic pain, anxiety disorders, and addiction can become self-reinforcing. Through repeated patterns of thought, feeling, or behaviour, the brain learns responses that are unhelpful but deeply ingrained – a process known as maladaptive plasticity.

What drives brain-behaviour change in everyday life

The brain-behaviour relationship is not static. It is constantly being shaped by experience, habits, and environment. Neuroplasticity is the brain’s ability to learn, remember, and change when it is appropriate for the circumstances. Certain activities are especially effective at driving meaningful neural change.

Aerobic exercise promotes the release of brain-derived neurotrophic factor (BDNF), a protein that supports the growth and maintenance of neurons. Research suggests that lower levels of BDNF may contribute to cognitive decline, affecting memory, concentration, and learning ability. Learning new skills, engaging in social interaction, and exposure to novel environments all similarly strengthen neural pathways.

On the other hand, chronic stress works against plasticity. Long-term exposure to stress hormones is associated with reduced complexity of neural connections in memory-related brain regions and heightened sensitivity in threat-processing systems, undermining learning and flexibility.

The overarching principle is clear: behavior shapes the brain just as the brain shapes behavior. According to the theories of neuroplasticity, thinking and learning change both the brain’s physical structure and functional organization. This bidirectional relationship – where experience rewires the brain, and the rewired brain influences future experience – is the core of the brain-behaviour connection.

What do you think? Given that the brain physically changes in response to experience, how might everyday habits – both positive and negative – be quietly reshaping the neural pathways that drive your own behaviour? And considering that neuroplasticity continues throughout the lifespan, what does that mean for our understanding of human potential for change and recovery?

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Neuropsychology

1 Introduction, Definition and Description of Neuropsychology

  1. Introduction to Neuropsychology
  2. Historical Perspective of Neuropsychology
  3. Central Nervous System
  4. Definition and Concept of Neuropsychology
  5. Neuropsychological Test Selection

2 Neuropsychology and other Disciplines

  1. Neuropsychology and Neuroscience
  2. Cognitive Neuropsychology and Neuroscience
  3. Biological Psychology and Neuropsychology
  4. Cognitive Psychology and Neuropsychology
  5. Neurobiology and Neuropsychology

3 Historical Perspective of Neuropsychology

  1. Trephanation
  2. Ancient Egyptian
  3. Ancient Greek
  4. The Cell Doctrine
  5. Phrenology
  6. Localisation

4 Domains of Neuropsychology

  1. Clinical Neuropsychology
  2. Experimental Neuropsychology
  3. Attention
  4. Motor Function
  5. Language
  6. Learning and Memory
  7. Visual Perception and Constructional Ability
  8. Executive Functions

5 Neuropsychology Methods

  1. Examining Tissue
  2. Lesions and Ablation
  3. Electrical Stimulation
  4. Neurochemical Manipulations
  5. Electrical Recording
  6. In-Vivo Imaging

6 Neuropsychological Assessment and Screening

  1. Neuropsychological Assessment of Infants and Young Children
  2. Advances in Neurodiagnostic Techniques
  3. Neuropsychological Assessment of Older Children
  4. Neuropsychological Assessment of Adults
  5. Validity and Reliability
  6. Neuropsychological Screening of Adults

7 Neuropsychology Test Batteries

  1. Neuropsychological Assessment
  2. The Nervous System and Behaviour
  3. Neuropsychological Examination
  4. Goals of Neuropsychological Assessment
  5. The Luria-Nebraska Neuropsychological Battery
  6. The Halstead-Reitan Neuropsychological Battery
  7. The NIMHANS Neuropsychological Battery

8 Behavioural Neuropsychology, Brain Fitness and Activities that Promote Brain Fitness

  1. Neuropsychology
  2. Behavioural Neuropsychology
  3. Brain and Behaviour
  4. Brain Fitness
  5. Brain Training
  6. Activities for Improving Specific Cognitive Domains

9 Brain Size and Devaluation, Genes, Brain and Behaviour

  1. Brain Size
  2. Male-Female Brain Differences
  3. Indicators of Biological Basis of Behaviour
  4. Human Brain and Human Behaviour
  5. Genes Brain and Behaviour
  6. Genes Influence Behaviour and Attitudes

10 The Brain

  1. The Brain
  2. The Forebrain
  3. The Midbrain
  4. The Hindbrain
  5. The Neurons or the Brain Cells
  6. Functions of the Brain

11 The Cerebrum and the Cerebral Hemispheres and their Functions

  1. The Cerebrum and the Cerebellum
  2. The Brain Stem
  3. The Diencephalon
  4. The Cerebrum
  5. The Cerebral Cortex and Functional Areas
  6. The Cerebellum
  7. The Limbic System
  8. The Forebrain
  9. Lobes of the Brain

12 Cerebral Lobes and the Limbic System

  1. The Lobes of the Brain
  2. The Frontal Lobe
  3. The Occipital Lobe
  4. The Parietal Lobe
  5. The Temporal Lobe
  6. The Limbic System

13 Brain Behaviour Relationship, Consiousness and Mind Brain Relationship

  1. Brain-Behaviour Relationship
  2. Mind-Brain Relationship
  3. Consciousness

14 Consciousness and Neuro Chemical Process and Higher Cerebral Functions

  1. Consciousness
  2. Neurochemical Process
  3. Neurons and Neurotransmission
  4. Neurochemical Process and Higher Cerebral Functions

15 Neurobiological and Neuropsychological Aspects in the Development of Memory, Emotion and Consciousness

  1. Neurobiological and Neuropsychological Aspects of Memory
  2. Anatomy of the Hippocampus
  3. Emotion
  4. Consciousness

16 Nervous System Diseases

  1. Cerebral Ischemia
  2. Migraine Stroke
  3. Cerebral Hemorrhage
  4. Angiomas and Aneurysms
  5. Epilepsy: Focal and Generalised Seizures
  6. Headaches: Migraine and Tension
  7. Infections: Viral, Bacterial, Mycotic
  8. Disorders of Motor Neurons and the Spinal Cord
  9. Disorders of Sleep: Narcolepsy and Insomnia