QUESTION IMAGE
Question
video 1: your bones do more than you think (scishow)
- what are the obvious roles of bones, as introduced in the video?
- the video argues that bones also function as an endocrine organ. what are two hormones or signaling molecules that bone cells produce, and what is their effect in the body?
- what kinds of cells exist inside bone (beyond osteoblasts/osteoclasts)? name two and briefly describe their roles.
- explain how bones can influence metabolism (blood sugar/insulin).
- the video suggests a link between bone health and brain function. what evidence is presented?
- what implications does this expanded view of bone physiology have for medicine, health, or disease?
- what question(s) are left unanswered, or what further experiments would help solidify the ideas in the video?
video 2: anatomy of a skeletal muscle (khan academy)
- what are the hierarchical levels of organization in skeletal muscle (from gross to microscopic)?
- name three structural components in a muscle fiber (e.g. sarcolemma, myofibril, sarcoplasmic reticulum).
- how does the sliding filament theory describe muscle contraction? what roles do actin, myosin, atp, and calcium play?
- describe how nerves and neuromuscular junctions are involved in initiating contraction.
- what is the role of the sarcoplasmic reticulum in muscle contraction and relaxation?
- what happens inside the muscle fiber during relaxation (i.e. how does contraction stop)?
Brief Explanations
For Video 1:
- Bones provide structural support and protect internal organs.
- Osteocalcin increases insulin - sensitivity and aids in glucose metabolism; Fibroblast growth factor 23 (FGF23) regulates phosphate and vitamin D metabolism.
- Osteocytes maintain bone matrix and respond to mechanical stress; Bone - lining cells cover bone surfaces and regulate ion exchange.
- Osteocalcin produced by bones can increase insulin - sensitivity and affect glucose metabolism.
- Some studies suggest that bone - derived factors may influence neurotransmitter production or brain cell function.
- It could lead to new diagnostic and therapeutic approaches for diseases related to metabolism, brain function, and bone health.
- Questions like the exact molecular mechanisms of bone - brain communication remain unanswered. Further experiments could involve in - depth genetic studies on bone - derived factors and their brain targets.
For Video 2:
- Muscle, fascicle, muscle fiber, myofibril, sarcomere.
- T - tubules, sarcoplasm, myofilaments.
- Actin and myosin filaments slide past each other. ATP provides energy for myosin to bind to actin and pull it. Calcium ions expose binding sites on actin.
- Nerves release neurotransmitters at neuromuscular junctions which trigger an electrical signal in the muscle fiber leading to contraction.
- It stores and releases calcium ions which are crucial for muscle contraction and relaxation.
- Calcium is pumped back into the sarcoplasmic reticulum, myosin detaches from actin, and the muscle relaxes.
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Video 1:
- Provide structural support and protect internal organs.
- Osteocalcin: Increases insulin - sensitivity; FGF23: Regulates phosphate and vitamin D metabolism.
- Osteocytes: Maintain bone matrix and respond to mechanical stress; Bone - lining cells: Cover bone surfaces and regulate ion exchange.
- Osteocalcin produced by bones can increase insulin - sensitivity and affect glucose metabolism.
- Some studies suggest bone - derived factors may influence neurotransmitter production or brain cell function.
- New diagnostic and therapeutic approaches for metabolism, brain function, and bone - related diseases.
- Exact molecular mechanisms of bone - brain communication. In - depth genetic studies on bone - derived factors and their brain targets.
Video 2:
- Muscle, fascicle, muscle fiber, myofibril, sarcomere.
- T - tubules, sarcoplasm, myofilaments.
- Actin and myosin filaments slide past each other. ATP provides energy for myosin to bind to actin and pull it. Calcium ions expose binding sites on actin.
- Nerves release neurotransmitters at neuromuscular junctions which trigger an electrical signal in the muscle fiber leading to contraction.
- Stores and releases calcium ions for muscle contraction and relaxation.
- Calcium is pumped back into the sarcoplasmic reticulum, myosin detaches from actin, and the muscle relaxes.