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Synthesis of Biological Macromolecules Quiz

12 questions biology Grades 9-12

The question sheet

Reveal any answer as you study
  1. How many major classes of biological macromolecules are there?

    • Five
    • Two
    • Three
    • Four
    Reveal answer

    Answer: Four

    Source evidence

    PDF page 81: As you’ve learned, biological macromolecules are large molecules, necessary for life, that are built from smaller organic molecules. There are four major biological macromolecule classes (carbohydrates, lipids, proteins, and nucleic acids). Each is an important cell component and performs a wide array of functions. Combined, these molecules make up the majority of a cell’s dry mass (recall that water makes up the majority of its complete mass). Biological macromolecules are organic, meaning they contain carbon. In addition, they may contain hydrogen, oxygen, nitrogen, and additional minor elements.

  2. Which of these is one of the four major macromolecule classes?

    • Vitamins
    • Carbohydrates
    • Water
    • Minerals
    Reveal answer

    Answer: Carbohydrates

    Source evidence

    PDF page 81: As you’ve learned, biological macromolecules are large molecules, necessary for life, that are built from smaller organic molecules. There are four major biological macromolecule classes (carbohydrates, lipids, proteins, and nucleic acids). Each is an important cell component and performs a wide array of functions. Combined, these molecules make up the majority of a cell’s dry mass (recall that water makes up the majority of its complete mass). Biological macromolecules are organic, meaning they contain carbon. In addition, they may contain hydrogen, oxygen, nitrogen, and additional minor elements.

  3. Biological macromolecules are described as organic because they contain what element?

    • Carbon
    • Chlorine
    • Nitrogen
    • Sodium
    Reveal answer

    Answer: Carbon

    Source evidence

    PDF page 81: As you’ve learned, biological macromolecules are large molecules, necessary for life, that are built from smaller organic molecules. There are four major biological macromolecule classes (carbohydrates, lipids, proteins, and nucleic acids). Each is an important cell component and performs a wide array of functions. Combined, these molecules make up the majority of a cell’s dry mass (recall that water makes up the majority of its complete mass). Biological macromolecules are organic, meaning they contain carbon. In addition, they may contain hydrogen, oxygen, nitrogen, and additional minor elements.

  4. What makes up the majority of a cell's complete mass?

    • Water
    • Lipids
    • Proteins
    • Carbohydrates
    Reveal answer

    Answer: Water

    Source evidence

    PDF page 81: As you’ve learned, biological macromolecules are large molecules, necessary for life, that are built from smaller organic molecules. There are four major biological macromolecule classes (carbohydrates, lipids, proteins, and nucleic acids). Each is an important cell component and performs a wide array of functions. Combined, these molecules make up the majority of a cell’s dry mass (recall that water makes up the majority of its complete mass). Biological macromolecules are organic, meaning they contain carbon. In addition, they may contain hydrogen, oxygen, nitrogen, and additional minor elements.

  5. What are the single subunits or building blocks of macromolecules called?

    • Enzymes
    • Monomers
    • Polymers
    • Isotopes
    Reveal answer

    Answer: Monomers

    Source evidence

    PDF page 81: Most macromolecules are made from single subunits, or building blocks, called monomers. The monomers combine with each other using covalent bonds to form larger molecules known as polymers. In doing so, monomers release water molecules as byproducts. This type of reaction is dehydration synthesis, which means “to put together while losing water.”

  6. When monomers combine into larger molecules, what type of bond forms?

    • Covalent bonds
    • Ionic bonds
    • Metallic bonds
    • Hydrogen bonds
    Reveal answer

    Answer: Covalent bonds

    Source evidence

    PDF page 81: Most macromolecules are made from single subunits, or building blocks, called monomers. The monomers combine with each other using covalent bonds to form larger molecules known as polymers. In doing so, monomers release water molecules as byproducts. This type of reaction is dehydration synthesis, which means “to put together while losing water.”

  7. What byproduct do monomers release during dehydration synthesis?

    • Water molecules
    • Carbon dioxide
    • Oxygen gas
    • Hydrogen gas
    Reveal answer

    Answer: Water molecules

    Source evidence

    PDF page 81: Most macromolecules are made from single subunits, or building blocks, called monomers. The monomers combine with each other using covalent bonds to form larger molecules known as polymers. In doing so, monomers release water molecules as byproducts. This type of reaction is dehydration synthesis, which means “to put together while losing water.”

  8. In dehydration synthesis, hydrogen of one monomer combines with what group of another?

    • Carbonyl group
    • Hydroxyl group
    • Amino group
    • Phosphate group
    Reveal answer

    Answer: Hydroxyl group

    Source evidence

    PDF page 81: In a dehydration synthesis reaction (Figure 3.2), the hydrogen of one monomer combines with the hydroxyl group of another monomer, releasing a water molecule. At the same time, the monomers share electrons and form covalent bonds. As additional monomers join, this chain of repeating monomers forms a polymer. Different monomer types can combine in many configurations, giving rise to a diverse group of macromolecules. Even one kind of monomer can combine in a variety of ways to form several different polymers. For example, glucose monomers are the constituents of starch, glycogen, and cellulose.

  9. In dehydration synthesis, two glucose molecules link to form which disaccharide?

    • Maltose
    • Sucrose
    • Fructose
    • Lactose
    Reveal answer

    Answer: Maltose

    Source evidence

    PDF page 81: Figure 3.2 In the dehydration synthesis reaction above, two glucose molecules link to form the disaccharide maltose.

  10. Glucose monomers are the constituents of starch, glycogen, and what?

    • Protein
    • Lipid
    • DNA
    • Cellulose
    Reveal answer

    Answer: Cellulose

    Source evidence

    PDF page 81: In a dehydration synthesis reaction (Figure 3.2), the hydrogen of one monomer combines with the hydroxyl group of another monomer, releasing a water molecule. At the same time, the monomers share electrons and form covalent bonds. As additional monomers join, this chain of repeating monomers forms a polymer. Different monomer types can combine in many configurations, giving rise to a diverse group of macromolecules. Even one kind of monomer can combine in a variety of ways to form several different polymers. For example, glucose monomers are the constituents of starch, glycogen, and cellulose.

  11. Which reaction breaks polymers down into monomers?

    • Condensation
    • Hydrolysis
    • Oxidation
    • Dehydration synthesis
    Reveal answer

    Answer: Hydrolysis

    Source evidence

    PDF page 81: Polymers break down into monomers during hydrolysis. A chemical reaction occurs when inserting a water molecule across the bond. Breaking a covalent bond with this water molecule in the compound achieves this (Figure 3.3). During these reactions, the polymer breaks into two components: one part gains a hydrogen atom (H+) and the other gains a hydroxyl molecule (OH–) from a split water molecule.

  12. During hydrolysis, a molecule is inserted across a bond. Which molecule?

    • Carbon dioxide
    • Oxygen
    • Nitrogen
    • Water
    Reveal answer

    Answer: Water

    Source evidence

    PDF page 81: Polymers break down into monomers during hydrolysis. A chemical reaction occurs when inserting a water molecule across the bond. Breaking a covalent bond with this water molecule in the compound achieves this (Figure 3.3). During these reactions, the polymer breaks into two components: one part gains a hydrogen atom (H+) and the other gains a hydroxyl molecule (OH–) from a split water molecule.

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