Organization of the Human Body
5. Maintaining Internal Balance
Learning outcomes
- I can describe how the body regulates temperature.
- I can explain how blood glucose levels are controlled.
- I can identify organs involved in maintaining internal balance.
- I can describe examples of negative feedback in the body.
- I can explain how multiple organ systems work together to maintain homeostasis.
Introduction
Every second of every day, your body works to keep its internal environment stable. Whether you are exercising, sleeping, eating, or sitting in a cold room, your organs constantly monitor and adjust important conditions such as body temperature, blood glucose, water balance, and oxygen levels. This continuous regulation allows your cells to function efficiently.
Maintaining this internal balance is essential for survival. The body achieves this through homeostasis, using specialised organs and negative feedback mechanisms that detect changes and return conditions to their normal range. Understanding how these systems work together helps explain how the human body remains healthy despite constant changes in the environment.
Maintaining Internal Balance
The body continually regulates conditions including:
- Body temperature
- Blood glucose levels
- Water balance
- Oxygen levels
- Carbon dioxide levels
- Blood pressure
These conditions are kept within narrow limits so that cells can function normally.
This process is known as homeostasis.
Figure 1. Homeostasis maintains stable internal conditions despite changes inside and outside the body.
Regulating Body Temperature
The normal human body temperature is approximately 37°C.
The brain, specifically the hypothalamus, acts as the body's thermostat.
If the Body Becomes Too Hot
The hypothalamus responds by:
- Activating sweat glands.
- Widening blood vessels near the skin (vasodilation).
Sweat evaporates from the skin, removing heat.
Increased blood flow near the skin allows more heat to escape.
If the Body Becomes Too Cold
The hypothalamus responds by:
- Causing muscles to shiver.
- Narrowing blood vessels near the skin (vasoconstriction).
Shivering produces heat.
Reduced blood flow near the skin decreases heat loss.
These responses return body temperature toward normal.
Figure 2. The body regulates temperature through sweating, shivering, and changes in blood flow.
Controlling Blood Glucose Levels
Cells require a steady supply of glucose for energy.
After eating:
- Blood glucose levels increase.
- The pancreas releases insulin.
- Body cells absorb glucose.
- The liver stores excess glucose as glycogen.
Between meals:
- Blood glucose levels decrease.
- The pancreas releases glucagon.
- The liver breaks down glycogen into glucose.
- Glucose is released into the bloodstream.
These actions keep blood glucose within a healthy range.
Organs Involved in Internal Balance
Many organs work together to maintain homeostasis.
| Organ | Role |
|---|---|
| Brain (hypothalamus). | Detects changes and coordinates responses |
| Skin | Regulates heat loss through sweating and blood flow |
| Pancreas | Releases insulin and glucagon to regulate blood glucose |
| Liver | Stores and releases glucose |
| Kidneys | Regulate water, salts, and waste removal |
| Heart | Pumps blood carrying oxygen, nutrients, and hormones |
| Lungs | Maintain oxygen and carbon dioxide levels |
Each organ has a specialised role but depends on the others.
Figure 3. Several organs cooperate to maintain the body's internal balance.
Negative Feedback
Most homeostatic processes use negative feedback.
Negative feedback works by:
- Detecting a change.
- Comparing it with the normal level.
- Producing a response that reverses the change.
- Returning the condition toward normal.
Once normal conditions are restored, the response is reduced or stopped.
Negative feedback helps prevent conditions from becoming too high or too low.
Examples of Negative Feedback
Body Temperature
- Body temperature rises.
- The hypothalamus detects the change.
- Sweating and vasodilation increase heat loss.
- Temperature returns toward 37°C.
Blood Glucose
- Blood glucose rises after eating.
- The pancreas releases insulin.
- Cells absorb glucose.
- Blood glucose falls toward normal.
Water Balance
- Water is lost through sweating.
- The brain detects dehydration.
- You feel thirsty.
- The kidneys conserve water by producing less urine.
These are all examples of negative feedback maintaining homeostasis.
Figure 4. Negative feedback helps restore normal conditions after internal changes.
Organ Systems Working Together
Homeostasis requires cooperation between many organ systems.
Nervous System
Detects changes and coordinates rapid responses.
Endocrine System
Releases hormones such as insulin and glucagon.
Circulatory System
Transports oxygen, nutrients, hormones, and heat.
Respiratory System
Maintains oxygen and carbon dioxide concentrations.
Urinary System
Regulates water balance and removes wastes.
Integumentary System
Helps control body temperature through sweating and blood flow.
Together, these systems maintain stable conditions for every cell in the body.
Why Internal Balance Is Essential
Without homeostasis:
- Enzymes would not function properly.
- Cells would become damaged.
- Organs could fail.
- The body would be unable to survive.
Maintaining internal balance allows the body to continue functioning even when external conditions change dramatically.
Figure 5. Homeostasis depends on the coordinated action of multiple organ systems.
Worked Example
Question
A person has been running for 20 minutes on a warm day.
Describe how the body helps maintain internal balance.
Solution
- Exercise increases body temperature.
- The hypothalamus detects the rise in temperature.
- Sweat glands produce sweat.
- Blood vessels near the skin widen (vasodilation).
- Sweat evaporates and heat is lost through the skin.
- Body temperature returns toward its normal value of about 37°C.
This is an example of negative feedback maintaining homeostasis.
Real-World Connection
During a long sporting event, athletes lose water and salts through sweating. Their integumentary system helps cool the body, the circulatory system transports heat to the skin, the nervous system detects changes in body temperature, and the urinary system conserves water by reducing urine production. Drinking water and replacing electrolytes help these organ systems maintain internal balance and prevent dehydration.
Did You Know?
Your kidneys filter about 180 litres of fluid every day, but almost all of it is reabsorbed back into the body. Only about 1–2 litres is normally excreted as urine. This remarkable process helps regulate water balance, remove waste products, and maintain homeostasis.
Key Terms
Glucagon – A hormone released by the pancreas that raises blood glucose levels.
Homeostasis – The maintenance of a stable internal environment.
Hypothalamus – A region of the brain that regulates many homeostatic processes, including body temperature.
Insulin – A hormone released by the pancreas that lowers blood glucose levels.
Negative feedback – A control mechanism that reverses changes and restores conditions toward normal.
Vasoconstriction – The narrowing of blood vessels, reducing blood flow near the skin and decreasing heat loss.
Vasodilation – The widening of blood vessels, increasing blood flow near the skin and increasing heat loss.
Key Takeaways
- Maintaining internal balance is essential for the survival of cells and the proper functioning of the body.
- The hypothalamus regulates body temperature through sweating, shivering, vasodilation, and vasoconstriction.
- Blood glucose levels are controlled by the hormones insulin and glucagon, released by the pancreas.
- Many organs, including the brain, skin, pancreas, liver, kidneys, heart, and lungs, contribute to homeostasis.
- Most homeostatic processes operate through negative feedback, which reverses changes and restores normal conditions.
- Homeostasis depends on the coordinated action of multiple organ systems working together to maintain a stable internal environment.