Essentials of Human Anatomy and Physiology (Custom)
Essentials of Human Anatomy and Physiology (Custom)
15th Edition
ISBN: 9781269752862
Author: Marieb
Publisher: PEARSON
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Chapter 6, Problem 2MC
Summary Introduction

Introduction:

The muscle cells have been classified as the skeletal muscles, the smooth muscles, and the cardiac muscles. The skeletal muscles are voluntary, multinucleated, and possess the striations. The smooth muscles are involuntary, uninucleate, and non-striated. The cardiac muscles are multinucleated, involuntary, branched and involuntary.

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The functions of tropomyosin in skeletal muscle include                 A. releasing calcium ions after initiation of contraction.                 B. generating ATP which it passes to the contractile mechanism.                 C. binding to myosin during contraction.                 D. acting as a relaxing protein at rest by covering up the sites where myosin binds to actin.                 E. sliding on actin to produce shortening.
Which of the following statements best describes the sliding filament mechanism of muscle contraction? a. Actin and myosin filaments do not shorten, but rather, slide past each other. b. Actin and myosin filaments shorten and slide past each other. c. As they slide past each other, actin filaments shorten, but myosin filaments do not shorten. d. As they slide past each other, myosin filaments shorten, but actin filaments do not shorten.
What role (function) does calcium have within a muscle fiber? a. trigger muscle potentials along t-tubules b. trigger contraction by causing the formation of cross bridges c. trigger exocytosis of ACh across the synaptic space d. trigger action potentials along axons e. open voltage gates within the sarcoplasmic reticulum 2. Which of the following are regulatory proteins that allow a muscle fiber to contract when calcium is present? (select all that apply) dystrophin troponin myosin tropomyosin actin 3. During this phase of an action potential, potassium ions exit the cell through voltage gated potassium channels. a. depolarization b. repolarization c. glycolysis d. cross bridge formation
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