Muscle & Motility
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Adaptations for Movement
- Movement is a unifying feature of all living organisms, but its form varies hugely.
- Motile organisms can move from place to place; most animals and many predatory bacteria are motile.
- Motile organisms also show internal movement in response to stimuli, e.g. peristalsis in the digestive system.
- Sessile organisms cannot move from place to place but can move parts of their body in response to environmental stimuli.
- Examples of sessile organisms: sponges, corals, anemones, most fungi and all plants.
- Sessile movement includes orientation of plant stems towards the sun and movement of cytoplasm within a unicellular organism.
- You need to know one named example of a motile species and one of a sessile species for the exam.
Skeletal Muscle Structure
- Skeletal muscles are attached to the skeleton and aid movement; they appear striated (stripy) under a microscope.
- Striated muscle cells are bundled into fibres — highly specialised cell-like units.
- Each muscle fibre contains an organised arrangement of contractile proteins, many nuclei, and a specialised endoplasmic reticulum called the sarcoplasmic reticulum (SR).
- The SR stores calcium and conveys signals to all parts of the fibre at once using protein pumps in its membranes.
- The specialised cytoplasm is called sarcoplasm and contains mitochondria and myofibrils.
- Mitochondria carry out aerobic respiration to generate the ATP required for muscle contraction.
- Myofibrils are bundles of actin and myosin filaments that slide past each other during contraction.
Myofibril Structure and Bands
- Each myofibril is made of two protein filaments: thick filaments of myosin and thin filaments of actin.
- H band: only thick myosin filaments are present.
- I band: only thin actin filaments are present.
- A band: contains areas where only myosin is present and areas where myosin and actin overlap.
- M line: attachment point for myosin filaments.
- Z line: attachment point for actin filaments.
- A sarcomere is the section of myofibril between two Z lines.
Sliding Filament Model
- Myosin molecules are fibrous proteins with a globular head; the fibrous part anchors the molecule into the thick filament.
- In the thick filament, many myosin molecules lie next to each other with their globular heads pointing away from the M line.
- Actin molecules are globular proteins; many link together to form a chain, and two chains twist together to form one thin filament.
- Tropomyosin is a fibrous protein twisted around the two actin chains; troponin is attached to the actin chains at regular intervals.
- During contraction, myosin heads form cross-bridges by binding to sites on the actin filaments.
- The myosin heads then change orientation, pulling the actin filaments so they slide next to the myosin — this is the power stroke.
- Sarcomeres shorten as the Z lines are pulled closer together; the A band stays the same length while the I band and H zone shorten.
Muscle Relaxation and Titin
- Muscles can only contract or pull — they cannot push.
- Muscles therefore generally operate in antagonistic pairs: one pulls in one direction at a joint, the other pulls in the opposite direction.
- Isometric contraction is a muscle contraction without motion; antagonistic muscles both contract at a joint to maintain posture.
- Titin is a large protein that joins the ends of the myosin filaments to the Z line.
- The many folds in titin give it spring-like properties; when a muscle is relaxed the sarcomere lengthens and titin is stretched out.
- Stretched titin stores chemical energy and prevents overstretching.
- During contraction, sarcomeres shorten and titin recoils, releasing stored energy that adds to the force of contraction.
Motor Units and the Neuromuscular Junction
- Skeletal muscle contracts when it receives an impulse from a motor neurone via the neuromuscular junction.
- Neuromuscular junctions work in a very similar way to synapses and are located between a motor neurone and a muscle cell.
- A motor unit is the collection of a motor neurone, the skeletal muscle fibres, and the neuromuscular junctions between them.
- There are multiple neuromuscular junctions spread across several muscle fibres within a motor unit, varying the intensity of contraction.
- A low intensity contraction activates a low number of motor units.
- A high intensity contraction involves more motor units receiving impulses.
Skeleton, Levers and Joints
- Effective movement of the human body requires both muscle and an incompressible skeleton.
- Bones and exoskeletons provide anchorage for muscles and act as levers.
- Vertebrates have an internal endoskeleton; arthropods and molluscs have an external exoskeleton made of the polysaccharide chitin.
- Skeletons provide support and facilitate movement; exoskeletons also protect soft tissues.
- Levers have a point of effort, a point of load, and a pivot called the fulcrum — the same three features are seen in skeletons.
- Synovial joints are the most common joint type; they have a joint cavity filled with lubricating synovial fluid that reduces friction.
- The fluid is produced by the synovial membrane, which surrounds the joint.
- Movements possible at synovial joints include flexion, extension, rotation, abduction (away from the body) and adduction (towards the body).
Joint Types and the Hip Joint
- Knee and elbow are hinge joints allowing flexion and extension.
- Hip is a ball and socket joint allowing flexion, extension, rotation, and sideways and backwards movement.
- Shoulder allows abduction and adduction, flexion and extension.
- The hip joint articulates between the femur (the ball) and the pelvis (the socket).
- Cartilage covers both bones, providing a surface that prevents the bones rubbing against each other.
- Synovial fluid is enclosed within the ball and socket by a membrane and lubricates for smooth movement.
- The joint is encircled by ligaments (tough connective tissue) that hold the bones in place.
- Skeletal muscles move the femur within the pelvis socket and are connected to each bone via tendons.
Antagonistic Muscles: Intercostal Example
- There are over 600 skeletal muscles in the human body; muscles are effectors stimulated by nerve impulses from motor neurones.
- Tendons are lengths of strong connective tissue that connect muscles to bones; they are flexible but do not stretch when a muscle contracts.
- The intercostal muscles of the rib cage are an example of an antagonistic pair.
- External intercostal muscles pull the rib cage up; internal intercostal muscles pull the rib cage down.
- During inhalation, the external intercostals contract to pull the ribs up and out, increasing thorax volume, decreasing lung air pressure, so air is drawn in.
- During exhalation, the external intercostals relax so the ribs drop down and in, decreasing thorax volume, increasing lung air pressure, so air is forced out.
- The opposite rib movements are due to the orientation of muscle fibres in the internal and external layers.
- Contraction of the external intercostals stretches the internal intercostals, storing potential energy in the titin protein of their sarcomeres.
Movement of Joints: Skills and Locomotion
- The range of motion of a joint can be measured using a goniometer, which measures the distance and direction a joint can move in degrees.
- Computer analysis can track and measure joint movement, and phone apps can simulate a goniometer.
- Locomotion is the movement or ability to move from one place to another; it is particularly important in the animal kingdom.
- Reasons for locomotion include foraging for food, escaping from danger, searching for a mate and migration.
- Examples: guinea pigs forage for food; jumping spiders (Salticidae) jump away from predators; salmon swim from ocean to freshwater rivers to mate; caribou migrate over 3,000 miles a year.
- Marine mammals are adapted for swimming: streamlined bodies, front limbs modified into flippers for steering, and rear legs lost for streamlining.
- Their tails form a fluke that moves up and down for propulsion, and a blowhole allows periodic breathing between dives and can be sealed to keep water out.
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Câu hỏi luyện tập
Xem trước miễn phí — 8 trên 64 câu hỏi. Đăng ký để xem tất cả.
1.Which of the following is an example of a sessile organism?
Easy- AA sponge
- BA salmon
- CA jumping spider
- DA caribou
2.Which of the following is NOT a reason for locomotion in animals?
Easy- AForaging for food
- BEscaping from danger
- CSearching for a mate
- DPhotosynthesis
3.The A band of a sarcomere contains areas where only myosin filaments are present and areas where myosin and actin filaments overlap.
EasyTrue or false?
4.Which of the following describes a function of ATP in muscle contraction?
Medium- ATo actively transport calcium ions into myofibrils from the sarcoplasmic reticulum
- BTo move tropomyosin and expose myosin binding sites
- CTo allow crossbridge formation
- DTo cause cocking of the myosin head
5.Which of the following are features of a muscle fibre? (select all that apply)
Medium- AMany nuclei
- BSarcoplasmic reticulum that stores calcium
- CSarcoplasm containing mitochondria and myofibrils
- DA single nucleus
- ENo mitochondria
6.Match each part of the myofibril with its correct description.
Medium- H band
- I band
- A band
- Z line
- Only thick myosin filaments present
- Only thin actin filaments present
- Contains areas of only myosin and areas of overlap
- Attachment for actin filaments
7.Place the following structures in descending order of size, from largest to smallest.
Medium- Muscle fibre
- Myofibril
- Sarcomere
- Myofilament
8.Which of the following are adaptations of marine mammals for swimming? (select all that apply)
Medium- AStreamlined body shape
- BFront limbs modified into flippers
- CPresence of a blowhole
- DRear limbs enlarged for propulsion
- ETails forming a fluke for up-and-down movement
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