13.2
関節の機能的分類
関節の機能的分類は、隣接する骨の可動性の程度によって決定されます。関節は、シナスロシス(不動関節)またはほとんど可動しない関節、アンフィアスロシス(わずかに可動する関節)、またはディアスロシス(自由に可動する関節)として機能的に分類されます。繊維性および軟骨性関節は、シナスロシス(…
関節は、その可動性に基づいて機能的に3つのカテゴリに分類できます。
シナスロースは動かない関節、両性関節はわずかに動く関節、ディアースは自由に動く関節です。
シナースロースと両性関節はどちらも、線維性または軟骨性の結合組織でできた安定した関節です。
シナースロースの例は、歯と歯のソケットとの間の線維性関節、および最初の肋骨のペアと胸骨のマヌブリウムとの間の軟骨性関節である。
角閃菌の例は、脛骨と下腿の腓骨との間の線維性関節、および恥骨との間の軟骨性関節である。
関節下関節は、関節骨表面の間に液体で満たされた滑膜腔を持つ滑膜関節です。シナスロースやアンフィアースロースに比べて安定性が低いため、ダイアースロースは脱臼しやすいです。
下関節症の例としては、膝、肘、肩の関節があります。
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Q1: What are the three functional classifications of joints?
Joints are functionally classified based on mobility into three categories: synarthroses are immovable joints providing strong unions between bones; amphiarthroses are slightly movable joints allowing limited motion; and diarthroses are freely movable joints with the greatest range of motion. Each classification reflects the joint's structural composition and functional role in the body.
Q2: How do synarthroses protect internal organs?
Synarthroses are immobile joints that create strong, stable unions between bones, making them ideal for protecting vital organs. Examples include skull sutures that surround and protect the brain, and the manubriosternal joint that unites the sternum to protect the heart. Their immobile nature ensures bones remain firmly positioned around these sensitive structures.
Q3: What role do intervertebral discs play in amphiarthroses?
Intervertebral discs are thick pads of fibrocartilage that fill gaps between vertebrae in amphiarthrotic joints. They strongly unite adjacent vertebrae while allowing limited movement between them. Small individual movements sum along the vertebral column to enable large ranges of body motion despite each joint's restricted mobility.
Q4: Why are diarthroses more susceptible to dislocation than other joint types?
Diarthroses are freely movable synovial joints with a fluid-filled cavity between articulating bone surfaces, providing greater mobility but lower stability compared to synarthroses and amphiarthroses. Their increased range of motion comes at the cost of reduced structural stability, making them more vulnerable to dislocation during extreme movements or trauma.
Q5: How are diarthroses classified based on axes of motion?
Diarthroses are classified into three categories by their axes of motion: uniaxial joints move in one plane, such as the elbow; biaxial joints move in two planes, like metacarpophalangeal joints; and multiaxial joints move in all three anatomical planes, such as the shoulder. This classification determines the range and type of movements each joint can perform.
Q6: What structural tissues compose synarthroses and amphiarthroses?
Both synarthroses and amphiarthroses are stable joints composed of fibrous or cartilaginous connective tissues. Synarthroses include fibrous joints like those between teeth and sockets, while amphiarthroses include cartilaginous joints like the pubic symphysis. These tissue types provide the strength and limited flexibility characteristic of each joint classification.
Q7: Where are most diarthrotic joints located in the skeleton?
Most diarthrotic joints are found in the appendicular skeleton, which includes the limbs and girdles. These synovial joints provide the majority of body movements and give the limbs a wide range of motion. The appendicular skeleton's abundance of diarthroses enables the complex, coordinated movements necessary for locomotion and manipulation of objects.