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8.3: Review of the Negative Feedback Loop

  • Page ID
    140313
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    Negative feedback loops maintain homeostasis by detecting changes, like temperature shifts, and triggering responses that restore balance.

    Master this section and you'll be able to
    • Explain how negative feedback loops maintain homeostasis by detecting and reversing changes that move the body away from normal conditions.
    • Describe how the hypothalamus and thermoreceptors work together to regulate body temperature and maintain thermal homeostasis.

    As you learned in Section 1.9 (Maintaining Balance — Homeostasis and the Power of Negative Feedback), negative feedback loops are the primary mechanism the body uses to maintain homeostasis. They are called “negative” because they work to reverse a change, bringing the system back to its normal balance.
     

    Negative Feedback and Homeostasis

    Negative feedback is essential for keeping the body in balance and maintaining good health. These homeostatic feedback loops help the body regulate itself by reversing any changes that move conditions away from normal. For example, when a body system becomes too active and produces too much of a certain protein or hormone, the negative feedback system steps in to slow or stop that production. This prevents levels from getting too high and brings them back to normal. In this way, negative feedback loops help keep the body’s internal environment within the physiological limits. An example of a negative feedback loop is shown in the figure below.

    Temperature regulation feedback loop

    Figure \(\PageIndex{1}\): Negative Feedback Loop and Body Temperature Regulation.  (a) A negative feedback loop maintains homeostasis by detecting a change, sending it to a control center, and triggering an effector response that reverses the change.
    (b) When body temperature rises above 37°C, the brain activates sweat glands to increase heat loss and restore normal temperature. (Credit: modification of work from Anatomy and Physiology 2e. attribution: Copyright Rice University, OpenStax, under CC BY 4.0 license) Homeostatic Response System

    The body’s homeostatic response system is always working to keep things balanced, even when internal or external factors try to push it off course. This system maintains a stable internal environment so that the body can function properly.

    The hypothalamus acts as the body’s thermostat, setting the normal temperature and keeping this set point steady through homeostasis. The body contains special nerve cells called thermoreceptors that detect changes in temperature. Some thermoreceptors, called peripheral thermoreceptors, are located in the skin and sense surface temperature. Others, called central thermoreceptors, are found in the internal organs (viscera), spinal cord, and hypothalamus itself, where they monitor the body’s core temperature. Together, these thermoreceptors send information to the hypothalamus, which then integrates all the temperature data and creates responses to keep the body temperature within a healthy range.

    In a healthy individual, the core body temperature is about 37 ± 0.5 °C (98.6 ± 0.9 °F). When temperature rises above or falls below this range, the hypothalamus detects the change and acts as the control center. It sends signals to effectors — such as sweat glands or muscles — to counteract the disturbance and restore balance (Figure \(\PageIndex{1}\)). In this way, the homeostatic response system allows the body to adjust to changing conditions and remain stable.


    This page titled 8.3: Review of the Negative Feedback Loop is shared under a CC BY 4.0 license and was authored, remixed, and/or curated by Barbara Zingg.