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Energy in Living Systems Quiz

12 questions biology Grades 9-12

The question sheet

Reveal any answer as you study
  1. An oxidation reaction does what to an atom in a compound?

    • Adds a phosphate to it
    • Removes a phosphate from it
    • Strips an electron from it
    • Adds an electron to it
    Reveal answer

    Answer: Strips an electron from it

    Source evidence

    PDF page 211: Energy production within a cell involves many coordinated chemical pathways. Most of these pathways are combinations of oxidation and reduction reactions, which occur at the same time. An oxidation reaction strips an electron from an atom in a compound, and the addition of this electron to another compound is a reduction reaction. Because oxidation and reduction usually occur together, these pairs of reactions are called oxidation reduction reactions, or redox reactions.

  2. When oxidation and reduction occur together, the paired reactions are called what?

    • Hydrolysis reactions
    • Phosphorylation reactions
    • Redox reactions
    • Substrate reactions
    Reveal answer

    Answer: Redox reactions

    Source evidence

    PDF page 211: Energy production within a cell involves many coordinated chemical pathways. Most of these pathways are combinations of oxidation and reduction reactions, which occur at the same time. An oxidation reaction strips an electron from an atom in a compound, and the addition of this electron to another compound is a reduction reaction. Because oxidation and reduction usually occur together, these pairs of reactions are called oxidation reduction reactions, or redox reactions.

  3. Removing an electron from a molecule (oxidizing it) does what to its potential energy?

    • Has no effect
    • Decreases it
    • Doubles it
    • Increases it
    Reveal answer

    Answer: Decreases it

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  4. Most energy stored in atoms to fuel cell functions is in what form?

    • Low-energy protons
    • Free heat energy
    • Stored phosphate bonds
    • High-energy electrons
    Reveal answer

    Answer: High-energy electrons

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  5. Electron carriers in living systems are derived from which vitamin group?

    • B vitamin group
    • Vitamin D
    • Vitamin A
    • Vitamin C
    Reveal answer

    Answer: B vitamin group

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  6. NAD+ is derived from which vitamin?

    • Vitamin C
    • Vitamin B3, niacin
    • Vitamin B12
    • Vitamin B2, riboflavin
    Reveal answer

    Answer: Vitamin B3, niacin

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  7. NADH is formed when NAD+ accepts what?

    • A phosphate group
    • One electron only
    • Two protons only
    • Two electrons and a proton
    Reveal answer

    Answer: Two electrons and a proton

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  8. If a compound has an "H" on it, it is generally in what state?

    • Unbonded
    • Reduced
    • Neutral
    • Oxidized
    Reveal answer

    Answer: Reduced

    Source evidence

    PDF page 211: The removal of an electron from a molecule (oxidizing it), results in a decrease in potential energy in the oxidized compound. The electron (sometimes as part of a hydrogen atom) does not remain unbonded, however, in the cytoplasm of a cell. Rather, the electron is shifted to a second compound, reducing the second compound. The shift of an electron from one compound to another removes some potential energy from the first compound (the oxidized compound) and increases the potential energy of the second compound (the reduced compound). The transfer of electrons between molecules is important because most of the energy stored in atoms and used to fuel cell functions is in the form of high-energy electrons. The transfer of energy in the form of high-energy electrons allows the cell to transfer and use energy in an incremental fashion—in small packages rather than in a single, destructive burst. This chapter focuses on the extraction of energy from food; you will see that as you track the path of the transfers, you are tracking the path of electrons moving through metabolic pathways. Electron Carriers In living systems, a small class of compounds functions as electron shuttles: they bind and carry high-energy electrons between compounds in biochemical pathways. The principal electron carriers we will consider are derived from the B vitamin group and are derivatives of nucleotides. These compounds can be easily reduced (that is, they accept electrons) or oxidized (they lose electrons). Nicotinamide adenine dinucleotide (NAD) + (Figure 7.2) is derived from vitamin B3, niacin. NAD is the oxidized form of the molecule; NADH is the reduced form of the molecule after it has accepted two electrons and a proton (which together are the equivalent of a hydrogen atom with an extra electron). Note that if a compound has an “H” on it, it is generally reduced (e.g., NADH is the reduced form of NAD). + NAD can accept electrons from an organic molecule according to the general equation: +

  9. In the reaction RH + NAD+ → R + NADH, what is RH?

    • An oxidizing agent
    • An electron carrier
    • A phosphate donor
    • A reducing agent
    Reveal answer

    Answer: A reducing agent

    Source evidence

    PDF page 211: RH NAD R NADH + Reducing + Oxidizing → Reduced Oxidized agent agent When electrons are added to a compound, it is reduced. A compound that reduces another is called a reducing + agent. In the above equation, RH is a reducing agent, and NAD is reduced to NADH. When electrons are removed from a compound, it is oxidized. A compound that oxidizes another is called an oxidizing agent. In the + above equation, NAD is an oxidizing agent, and RH is oxidized to R. + Similarly, flavin adenine dinucleotide (FAD ) is derived from vitamin B2, also called riboflavin. Its reduced form + + is FADH2. A second variation of NAD, NADP, contains an extra phosphate group. Both NAD and FAD are extensively used in energy extraction from sugars, and NADP plays an important role in anabolic reactions and photosynthesis in plants.

  10. FAD is derived from which vitamin?

    • Vitamin C
    • Vitamin B2, riboflavin
    • Vitamin B6
    • Vitamin B3, niacin
    Reveal answer

    Answer: Vitamin B2, riboflavin

    Source evidence

    PDF page 211: RH NAD R NADH + Reducing + Oxidizing → Reduced Oxidized agent agent When electrons are added to a compound, it is reduced. A compound that reduces another is called a reducing + agent. In the above equation, RH is a reducing agent, and NAD is reduced to NADH. When electrons are removed from a compound, it is oxidized. A compound that oxidizes another is called an oxidizing agent. In the + above equation, NAD is an oxidizing agent, and RH is oxidized to R. + Similarly, flavin adenine dinucleotide (FAD ) is derived from vitamin B2, also called riboflavin. Its reduced form + + is FADH2. A second variation of NAD, NADP, contains an extra phosphate group. Both NAD and FAD are extensively used in energy extraction from sugars, and NADP plays an important role in anabolic reactions and photosynthesis in plants.

  11. Which molecule contains an extra phosphate group and aids photosynthesis?

    • FADH2
    • NADH
    • NADP
    • AMP
    Reveal answer

    Answer: NADP

    Source evidence

    PDF page 211: RH NAD R NADH + Reducing + Oxidizing → Reduced Oxidized agent agent When electrons are added to a compound, it is reduced. A compound that reduces another is called a reducing + agent. In the above equation, RH is a reducing agent, and NAD is reduced to NADH. When electrons are removed from a compound, it is oxidized. A compound that oxidizes another is called an oxidizing agent. In the + above equation, NAD is an oxidizing agent, and RH is oxidized to R. + Similarly, flavin adenine dinucleotide (FAD ) is derived from vitamin B2, also called riboflavin. Its reduced form + + is FADH2. A second variation of NAD, NADP, contains an extra phosphate group. Both NAD and FAD are extensively used in energy extraction from sugars, and NADP plays an important role in anabolic reactions and photosynthesis in plants.

  12. Why can a living cell not store significant amounts of free energy?

    • It lacks storage organelles
    • Enzymes would degrade
    • Membranes cannot hold it
    • Excess heat could destroy the cell
    Reveal answer

    Answer: Excess heat could destroy the cell

    Source evidence

    PDF page 212: A living cell cannot store significant amounts of free energy. Excess free energy would result in an increase of heat in the cell, which would result in excessive thermal motion that could damage and then destroy the cell. Rather, a cell must be able to handle that energy in a way that enables the cell to store energy safely and release it for use only as needed. Living cells accomplish this by using the compound adenosine triphosphate (ATP). ATP is often called the “energy currency” of the cell, and, like currency, this versatile compound can be used to fill any energy need of the cell. How? It functions similarly to a rechargeable battery. When ATP is broken down, usually by the removal of its terminal phosphate group, energy is released. The energy is used to do work by the cell, usually when the released phosphate binds to another molecule, thereby activating it. For example, in the mechanical work of muscle contraction, ATP supplies the energy to move the contractile muscle proteins. Recall the active transport work of the sodium-potassium pump in cell membranes. ATP alters the structure of the integral protein that functions as the pump, changing its affinity for sodium and potassium. In this way, the cell performs work, pumping ions against their electrochemical gradients. ATP Structure and Function At the heart of ATP is a molecule of adenosine monophosphate (AMP), which is composed of an adenine molecule bonded to a ribose molecule and to a single phosphate group (Figure 7.3). Ribose is a five-carbon sugar found in RNA, and AMP is one of the nucleotides in RNA. The addition of a second phosphate group to this core molecule results in the formation of adenosine diphosphate (ADP); the addition of a third phosphate group forms adenosine triphosphate (ATP).

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