Lehninger Principles of Biochemistry Sixth Edition Solution Manual

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The Foundations
of Biochemistry
chapter
1
S-1
1. The Size of Cells and Their Components
(a) If you were to magnify a cell 10,000-fold (typical of the magnification achieved using an electron
microscope), how big would it appear? Assume you are viewing a “typical” eukaryotic cell with a
cellular diameter of 50 mm.
(b) If this cell were a muscle cell (myocyte), how many molecules of actin could it hold? Assume
the cell is spherical and no other cellular components are present; actin molecules are spherical,
with a diameter of 3.6 nm. (The volume of a sphere is 4/3 pr3
.)
(c) If this were a liver cell (hepatocyte) of the same dimensions, how many mitochondria could it
hold? Assume the cell is spherical; no other cellular components are present; and the
mitochondria are spherical, with a diameter of 1.5 mm.
(d) Glucose is the major energy-yielding nutrient for most cells. Assuming a cellular concentration of
1 mM (i.e., 1 millimole/L), calculate how many molecules of glucose would be present in our
hypothetical (and spherical) eukaryotic cell. (Avogadro’s number, the number of molecules in 1
mol of a nonionized substance, is 6.02 10 23 .)
(e) Hexokinase is an important enzyme in the metabolism of glucose. If the concentration of hexokinase
in our eukaryotic cell is 20 mM, how many glucose molecules are present per hexokinase molecule?
Answer
(a) The magnified cell would have a diameter of 50 10 4 mm 500 10 3 mm 500 mm,
or 20 inches—about the diameter of a large pizza.
(b) The radius of a globular actin molecule is 3.6 nm/2 1.8 nm; the volume of the
molecule, in cubic meters, is (4/3)(3.14)(1.8 109 m)3 2.4 1026 m3
.*
The number of actin molecules that could fit inside the cell is found by dividing the cell
volume (radius 25 mm) by the actin molecule volume. Cell volume (4/3)(3.14)(25
106 m)3 6.5 1014 m3
. Thus, the number of actin molecules in the hypothetical
muscle cell is
(6.5 1014 m3
)/(2.4 1026 m3
) 2.7 10 12 molecules
or 2.7 trillion actin molecules.
*Significant figures: In multiplication and division, the answer can be expressed with no
more significant figures than the least precise value in the calculation. Because some of the
data in these problems are derived from measured values, we must round off the calculated
answer to reflect this. In this first example, the radius of the actin (1.8 nm) has two significant
figures, so the answer (volume of actin 2.4 1026 m3
) can be expressed with no more
than two significant figures. It will be standard practice in these expanded answers to round
off answers to the proper number of significant figures.
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S-2 Chapter 1 The Foundations of Biochemistry
(c) The radius of the spherical mitochondrion is 1.5 mm/2 0.75 mm, therefore the volume
is (4/3)(3.14)(0.75 106 m)3 1.8 1018 m3
. The number of mitochondria in the
hypothetical liver cell is
(6.5 1014 m3
)/(1.8 1018 m3
) 36 103 mitochondria
(d) The volume of the eukaryotic cell is 6.5 1014 m3
, which is 6.5 108 cm 3 or 6.5
108 mL. One liter of a 1 mM solution of glucose has (0.001 mol/1000 mL)(6.02 1023
molecules/mol) 6.02 10 17 molecules/mL. The number of glucose molecules in the
cell is the product of the cell volume and glucose concentration:
(6.5 108 mL)(6.02 10 17 molecules/mL) 3.9 10 10 molecules
or 39 billion glucose molecules.
(e) The concentration ratio of glucose/hexokinase is 0.001 M/0.00002 M, or 50/1, meaning that
each enzyme molecule would have about 50 molecules of glucose available as substrate.
2. Components of E. coli E. coli cells are rod-shaped, about 2 mm long and 0.8 mm in diameter. The
volume of a cylinder is pr2h, where h is the height of the cylinder.
(a) If the average density of E. coli (mostly water) is 1.1 103 g/L, what is the mass of a single cell?
(b) E. coli has a protective cell envelope 10 nm thick. What percentage of the total volume of the
bacterium does the cell envelope occupy?
(c) E. coli is capable of growing and multiplying rapidly because it contains some 15,000 spherical
ribosomes (diameter 18 nm), which carry out protein synthesis. What percentage of the cell
volume do the ribosomes occupy?
Answer
(a) The volume of a single E. coli cell can be calculated from pr2h (radius 0.4 mm):
3.14(4 105 cm)2
(2 104 cm) 1.0 1012 cm 3 1 1015 m3 1 1015 L
Density (g/L) multiplied by volume (L) gives the mass of a single cell:
(1.1 10 3 g/L)(1 1015 L) 1 1012 g
or a mass of 1 pg.
(b) First, calculate the proportion of cell volume that does not include the cell envelope,
that is, the cell volume without the envelope—with r 0.4 mm 0.01 mm; and h 2 mm
2(0.01 mm)—divided by the total volume.
Volume without envelope p(0.39 mm) 2
(1.98 mm)
Volume with envelope p(0.4 mm) 2
(2 mm)
So the percentage of cell that does not include the envelope is
90%
(Note that we had to calculate to one significant figure, rounding down the 94% to 90%,
which here makes a large difference to the answer.) The cell envelope must account for
10% of the total volume of this bacterium.
(c) The volume of all the ribosomes (each ribosome of radius 9 nm) 15,000 (4/3)p(9
103 mm)3
The volume of the cell p(0.4 mm) 2
(2 mm)
So the percentage of cell volume occupied by the ribosomes is
5%15,000 (4/3)p(9 103 mm)3 100

p(0.4 mm) 2
(2 mm)
p(0.39 mm)2
(1.98 mm) 100

p(0.4 mm) 2
(2 mm)
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3. Genetic Information in E. Coli DNA The genetic information contained in DNA consists of a
linear sequence of coding units, known as codons. Each codon is a specific sequence of three deoxyri-
bonucleotides (three deoxyribonucleotide pairs in double-stranded DNA), and each codon codes for a
single amino acid unit in a protein. The molecular weight of an E. coli DNA molecule is about
3.1 109 g/mol. The average molecular weight of a nucleotide pair is 660 g/mol, and each nucleotide
pair contributes 0.34 nm to the length of DNA.
(a) Calculate the length of an E. coli DNA molecule. Compare the length of the DNA molecule with
the cell dimensions (see Problem 2). How does the DNA molecule fit into the cell?
(b) Assume that the average protein in E. coli consists of a chain of 400 amino acids. What is the
maximum number of proteins that can be coded by an E. coli DNA molecule?
Answer
(a) The number of nucleotide pairs in the DNA molecule is calculated by dividing the molec-
ular weight of DNA by that of a single pair:
(3.1 10 9 g/mol)/(0.66 10 3 g/mol) 4.7 106 pairs
Multiplying the number of pairs by the length per pair gives
(4.7 10 6 pairs)(0.34 nm/pair) 1.6 106 nm 1.6 mm
The length of the cell is 2 mm (from Problem 2), or 0.002 mm, which means the DNA is
(1.6 mm)/(0.002 mm) 800 times longer than the cell. The DNA must be tightly coiled
to fit into the cell.
(b) Because the DNA molecule has 4.7 10 6 nucleotide pairs, as calculated in (a), it must
have one-third this number of triplet codons:
(4.7 10 6
)/3 1.6 106 codons
If each protein has an average of 400 amino acids, each requiring one codon, the number
of proteins that can be coded by E. coli DNA is
(1.6 106 codons)(1 amino acid/codon)/(400 amino acids/protein) 4,000 proteins
4. The High Rate of Bacterial Metabolism Bacterial cells have a much higher rate of metabolism
than animal cells. Under ideal conditions some bacteria double in size and divide every 20 min,
whereas most animal cells under rapid growth conditions require 24 hours. The high rate of bacterial
metabolism requires a high ratio of surface area to cell volume.
(a) Why does surface-to-volume ratio affect the maximum rate of metabolism?
(b) Calculate the surface-to-volume ratio for the spherical bacterium Neisseria gonorrhoeae (diameter
0.5 mm), responsible for the disease gonorrhea. Compare it with the surface-to-volume ratio for a
globular amoeba, a large eukaryotic cell (diameter 150 mm). The surface area of a sphere is 4pr2
.
Answer
(a) Metabolic rate is limited by diffusion of fuels into the cell and waste products out of the
cell. This diffusion in turn is limited by the surface area of the cell. As the ratio of
surface area to volume decreases, the rate of diffusion cannot keep up with the rate of
metabolism within the cell.
(b) For a sphere, surface area 4pr2 and volume 4/3 pr3
. The ratio of the two is the
surface-to-volume ratio, S/V, which is 3/r or 6/D, where D diameter. Thus, rather than
calculating S and V separately for each cell, we can rapidly calculate and compare S/V
ratios for cells of different diameters.
S/V for N. gonorrhoeae 6/(0.5 mm) 12 mm1
S/V for amoeba 6/(150 mm) 0.04 mm1
300
Thus, the surface-to-volume ratio is 300 times greater for the bacterium.
12mm1

0.04 mm1
S/V for bacterium

S/V for amoeba
Chapter 1 The Foundations of Biochemistry S-3
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5. Fast Axonal Transport Neurons have long thin processes called axons, structures specialized for
conducting signals throughout the organism’s nervous system. Some axonal processes can be as long
as 2 m—for example, the axons that originate in your spinal cord and terminate in the muscles of your
toes. Small membrane-enclosed vesicles carrying materials essential to axonal function move along mi-
crotubules of the cytoskeleton, from the cell body to the tips of the axons. If the average velocity of a
vesicle is 1 mm/s, how long does it take a vesicle to move from a cell body in the spinal cord to the
axonal tip in the toes?
Answer Transport time equals distance traveled/velocity, or
(2 10 6 mm)/(1 mm/s) 2 10 6 s
or about 23 days!
6. Is Synthetic Vitamin C as Good as the Natural Vitamin? A claim put forth by some purveyors of
health foods is that vitamins obtained from natural sources are more healthful than those obtained by
chemical synthesis. For example, pure L-ascorbic acid (vitamin C) extracted from rose hips is better
than pure L-ascorbic acid manufactured in a chemical plant. Are the vitamins from the two sources dif-
ferent? Can the body distinguish a vitamin’s source?
Answer The properties of the vitamin—like any other compound—are determined by its
chemical structure. Because vitamin molecules from the two sources are structurally identical,
their properties are identical, and no organism can distinguish between them. If different vitamin
preparations contain different impurities, the biological effects of the mixtures may vary with
the source. The ascorbic acid in such preparations, however, is identical.
7. Identification of Functional Groups Figures 1–16 and 1–17 show some common functional groups
of biomolecules. Because the properties and biological activities of biomolecules are largely deter-
mined by their functional groups, it is important to be able to identify them. In each of the compounds
below, circle and identify by name each functional group.
S-4 Chapter 1 The Foundations of Biochemistry
H
H
Ethanolamine
(a)
C
H
H
C OHH 3 N
Glycerol
(b)
H
H
C OH
H C OH
H C OH
H
Threonine, an
amino acid
(d)
H
CH3
C OH
C H
Pantothenate,
a vitamin
(e)
H3 C
CH2 OH
C CH3
H C OH
C O
NH
Phosphoenolpyruvate,
an intermediate in
glucose metabolism
(c)
C C
O
HO P
O
H
H
CH2
CH2
C
O
D-Glucosamine
(f )
H
CH 2OH
C OH
H C OH
HO C H
H C NH3
C
OH
H3N
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Answer
(a) ONH 3
amino; OOH hydroxyl
(b) OOH hydroxyl (three)
(c) OP(OH)O 2
phosphoryl (in its ionized form); OCOO carboxyl
(d) OCOO carboxyl; ONH 3
amino; OOH hydroxyl; OCH 3 methyl (two)
(e) OCOO carboxyl; OCOONHO amide; OOH hydroxyl (two); OCH 3 methyl
(two)
(f) OCHO aldehyde; ONH 3
amino; OOH hydroxyl (four)
8. Drug Activity and Stereochemistry The quantitative differences in biological activity between the
two enantiomers of a compound are sometimes quite large. For example, the D isomer of the drug iso-
proterenol, used to treat mild asthma, is 50 to 80 times more effective as a bronchodilator than the
L isomer. Identify the chiral center in isoproterenol. Why do the two enantiomers have such radically
different bioactivity?
Answer A chiral center, or chiral carbon, is a carbon atom that is bonded to four different
groups. A molecule with a single chiral center has two enantiomers, designated D and L (or in the
RS system, S and R). In isoproterenol, only one carbon (asterisk) has four different groups
around it; this is the chiral center:
The bioactivity of a drug is the result of interaction with a biological “receptor,” a protein
molecule with a binding site that is also chiral and stereospecific. The interaction of the D isomer
of a drug with a chiral receptor site will differ from the interaction of the L isomer with that site.
9. Separating Biomolecules In studying a particular biomolecule (a protein, nucleic acid, carbohy-
drate, or lipid) in the laboratory, the biochemist first needs to separate it from other biomolecules in
the sample—that is, to purify it. Specific purification techniques are described later in the text. How-
ever, by looking at the monomeric subunits of a biomolecule, you should have some ideas about the
characteristics of the molecule that would allow you to separate it from other molecules. For example,
how would you separate (a) amino acids from fatty acids and (b) nucleotides from glucose?
Answer
(a) Amino acids and fatty acids have carboxyl groups, whereas only the amino acids have amino
groups. Thus, you could use a technique that separates molecules on the basis of the prop-
erties (charge or binding affinity) of amino groups. Fatty acids have long hydrocarbon
chains and therefore are less soluble in water than amino acids. And finally, the sizes and
shapes of these two types of molecules are quite different. Any one or more of these prop-
erties may provide ways to separate the two types of compounds.
(b) A nucleotide molecule has three components: a nitrogenous organic base, a five-carbon
sugar, and phosphate. Glucose is a six-carbon sugar; it is smaller than a nucleotide. The size
difference could be used to separate the molecules. Alternatively, you could use the nitroge-
nous bases and/or the phosphate groups characteristic of the nucleotides to separate them
(based on differences in solubility, charge) from glucose.
Chapter 1 The Foundations of Biochemistry S-5
OH
H
Isoproterenol
C
HO
CH2
H
N
CH 3
C CH 3
H
HO
HO
HO
C *
H
OH
CCH2 CH3
CH3
N
H H
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10. Silicon-Based Life? Silicon is in the same group of the periodic table as carbon and, like carbon, can
form up to four single bonds. Many science fiction stories have been based on the premise of silicon-
based life. Is this realistic? What characteristics of silicon make it less well adapted than carbon as the
central organizing element for life? To answer this question, consider what you have learned about car-
bon’s bonding versatility, and refer to a beginning inorganic chemistry textbook for silicon’s bonding
properties.
Answer It is improbable that silicon could serve as the central organizing element for life under
such conditions as those found on Earth for several reasons. Long chains of silicon atoms are not
readily synthesized, and thus the polymeric macromolecules necessary for more complex func-
tions would not readily form. Also, oxygen disrupts bonds between two silicon atoms, so silicon-
based life-forms would be unstable in an oxygen-containing atmosphere. Once formed, the bonds
between silicon and oxygen are extremely stable and difficult to break, which would prevent the
breaking and making (degradation and synthesis) of biomolecules that is essential to the
processes of living organisms.
11. Drug Action and Shape of Molecules Some years ago two drug companies marketed a drug under
the trade names Dexedrine and Benzedrine. The structure of the drug is shown below.
The physical properties (C, H, and N analysis, melting point, solubility, etc.) of Dexedrine and
Benzedrine were identical. The recommended oral dosage of Dexedrine (which is still available)
was 5 mg/day, but the recommended dosage of Benzedrine (no longer available) was twice that.
Apparently, it required considerably more Benzedrine than Dexedrine to yield the same physiologi-
cal response. Explain this apparent contradiction.
Answer Only one of the two enantiomers of the drug molecule (which has a chiral center) is
physiologically active, for reasons described in the answer to Problem 3 (interaction with a
stereospecific receptor site). Dexedrine, as manufactured, consists of the single enantiomer
( D -amphetamine) recognized by the receptor site. Benzedrine was a racemic mixture (equal
amounts of D and L isomers), so a much larger dose was required to obtain the same effect.
12. Components of Complex Biomolecules Figure 1–10 shows the major components of complex bio-
molecules. For each of the three important biomolecules below (shown in their ionized forms at physi-
ological pH), identify the constituents.
(a) Guanosine triphosphate (GTP), an energy-rich nucleotide that serves as a precursor to RNA:
S-6 Chapter 1 The Foundations of Biochemistry
CCH2 CH3
NH2
H
N
C
O
O
O
OP OP O N
N NH
NH2
OP CH 2
O
O
O
O
H H
H H
OH OH
O
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(b) Methionine enkephalin, the brain’s own opiate:
(c) Phosphatidylcholine, a component of many membranes:
Answer
(a) Three phosphoric acid groups (linked by two anhydride bonds), esterified to an
a-D-ribose (at the 5 position), which is attached at C-1 to guanine.
(b) Tyrosine, two glycine, phenylalanine, and methionine residues, all linked by peptide bonds.
(c) Choline esterified to a phosphoric acid group, which is esterified to glycerol, which is
esterified to two fatty acids, oleic acid and palmitic acid.
13. Determination of the Structure of a Biomolecule An unknown substance, X, was isolated from
rabbit muscle. Its structure was determined from the following observations and experiments. Qualita-
tive analysis showed that X was composed entirely of C, H, and O. A weighed sample of X was com-
pletely oxidized, and the H2O and CO2 produced were measured; this quantitative analysis revealed
that X contained 40.00% C, 6.71% H, and 53.29% O by weight. The molecular mass of X, determined
by mass spectrometry, was 90.00 u (atomic mass units; see Box 1–1). Infrared spectroscopy showed
that X contained one double bond. X dissolved readily in water to give an acidic solution; the solution
demonstrated optical activity when tested in a polarimeter.
(a) Determine the empirical and molecular formula of X.
(b) Draw the possible structures of X that fit the molecular formula and contain one double bond.
Consider only linear or branched structures and disregard cyclic structures. Note that oxygen
makes very poor bonds to itself.
(c) What is the structural significance of the observed optical activity? Which structures in (b) are
consistent with the observation?
(d) What is the structural significance of the observation that a solution of X was acidic? Which
structures in (b) are consistent with the observation?
(e) What is the structure of X? Is more than one structure consistent with all the data?
Chapter 1 The Foundations of Biochemistry S-7
CH3
CH3
CH3
CH2 CH 2
HC
CH2 CH 3C (CH2 )14O
O C C C(CH2) 7 (CH2 )7 CH 3
CH2 O OPN
O
O
H H
O
O
CH2HO C C CNC N C C N C C N C COO
H HO
NH2 H H HO
H H H H
H H
O CH2
CH 2
CH 2
CH 3
S
O
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Answer
(a) From the C, H, and O analysis, and knowing the mass of X is 90.00 u, we can calculate
the relative atomic proportions by dividing the weight percents by the atomic weights:
S-8 Chapter 1 The Foundations of Biochemistry
H
H
H
OH
CC
C OH
HO
1
HO
H
H
OH
CC
C OH
H
5
H
H
H
C CC
H
OH
6
H
OH
H
H
CC
C OH
HO
2
H
OH
H
OH
CC
C OH
H
3
HO
OH
H
OH
CC
C H
H
4
O
OH
H
H
HO
C CC
H
H
7
O
OH
H
H
HO
C CC
H
OH
8
O
H
H
H
H
C CC
OH
OH
9
O
H
H
HO
HO
C CC
H
H
10
O
H
H H
H
HO O
C CC
H
OH
11 12
H H
H
H O
C CC
OH
OH
Atom Relative atomic proportion No. of atoms relative to O
C (90.00 u)(40.00/100)/(12 u) 3 3/3 1
H (90.00 u)(6.71/100)/(1.008 u) 6 6/3 2
O (90.00 u)(53.29/100)/(16.0 u) 3 3/3 1
Thus, the empirical formula is CH2O, with a formula weight of 12 2 16 30. The
molecular formula, based on X having a mass of 90.00 u, must be C3H6O3.
(b) Twelve possible structures are shown below. Structures 1 through 5 can be eliminated
because they are unstable enol isomers of the corresponding carbonyl derivatives.
Structures 9, 10, and 12 can also be eliminated on the basis of their instability: they are
hydrated carbonyl derivatives (vicinal diols).
(c) Optical activity indicates the presence of a chiral center (a carbon atom surrounded by
four different groups). Only structures 6 and 8 have chiral centers.
(d) Of structures 6 and 8, only 6 contains an acidic group: a carboxyl group.
(e) Structure 6 is substance X. This compound exists in two enantiomeric forms that cannot
be distinguished, even by measuring specific rotation. One could determine absolute
stereochemistry by x-ray crystallography.
14. Naming Stereoisomers with One Chiral Carbon Using the RS System Propranolol is a chiral com-
pound. (R)-Propranolol is used as a contraceptive; (S)-propranolol is used to treat hypertension. Identify
the chiral carbon in the structure below. Is this the (R) or the (S) isomer? Draw the other isomer.
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Answer Determining the chirality of an asymmetric carbon requires ranking the four sub-
stituents in order of decreasing atomic number or decreasing molecular weight with immediate
attachments. The asymmetric carbon is propranolol in the question because it is shown with a
black triangular wedge bond to the hydroxyl. This means that the bond is in front of the plane
of the page.
The four substituents of the alcohol carbon would be ranked (1) the hydroxyl, (2) C—O,
(3) C—N, and (4) a hydrogen (not shown), which is behind the plane of the page. With this
lowest-priority “group” pointing away, the other groups in decreasing priority (1 to 3) are in the
sequence down, left, right—clockwise—so the configuration is (R).
15. Naming Stereoisomers with Two Chiral Carbons Using the RS System The (R,R) isomer of
methylphenidate (Ritalin) is used to treat attention deficit hyperactivity disorder (ADHD). The (S,S)
isomer is an antidepressant. Identify the two chiral carbons in the structure below. Is this the (R,R) or
the (S,S) isomer? Draw the other isomer.
Chapter 1 The Foundations of Biochemistry S-9
O
OH
N
H
O
O
H
HN
O
O
H
NH
Answer The asymmetric carbons can be identified by the presence of the wedge-shaped bonds
indicating the spatial relationship of the bound groups. Wedge bonds always have the narrow
end at the chiral carbon and the wide end at the attached atom or group. Solid wedge bonds
project toward the reader; dashed wedge bonds project away from the reader, behind the plane
of the paper. In this molecule, one wedge bond is solid black; the benzene ring at the wide end
is coming out of the plane of the paper toward the reader. The hydrogen at the wide end of the
dashed wedge bond projects behind the paper.
The chiral center on the ring has the lowest priority group, the hydrogen atom, projecting
away, so we can evaluate it as it stands. The remaining attached atoms, in priority order, are
(1) nitrogen, (2) the carbon with two carbons attached to it, and (3) the ring carbon with one
carbon attached. In decreasing priority (1 to 3) the sequence is left, down, right—counterclock-
wise—so the configuration is (S). The second chiral center also has the lowest priority group,
the hydrogen atom, projecting away from the reader. The priority order of the other sub-
stituents is (1) the carboxyl group (with two oxygens attached), (2) the nitrogen ring, and (3)
the benzene ring. In decreasing priority (1 to 3) the sequence is right, left, down—counter-
clockwise—so the configuration around the second chiral center is also (S). This is the (S,S)
configuration of methylphenidate.
To draw the (R,R) configuration, given the (S,S) configuration, make a complete mirror
image.
To maintain the original orientation of the molecule, it is often possible to begin by making the
dashed wedge bonds solid and the solid wedge bonds dashed. However, it is essential to verify
the configuration and make adjustments as needed, because this method is not foolproof.
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Data Analysis Problem
16. Interaction of Sweet-Tasting Molecules with Taste Receptors Many compounds taste sweet to
humans. Sweet taste results when a molecule binds to the sweet receptor, one type of taste recep-
tor, on the surface of certain tongue cells. The stronger the binding, the lower the concentration re-
quired to saturate the receptor and the sweeter a given concentration of that substance tastes. The
standard free-energy change, G , of the binding reaction between a sweet molecule and a sweet re-
ceptor can be measured in kilojoules or kilocalories per mole.
Sweet taste can be quantified in units of “molar relative sweetness” (MRS), a measure that com-
pares the sweetness of a substance to the sweetness of sucrose. For example, saccharin has an MRS of
161; this means that saccharin is 161 times sweeter than sucrose. In practical terms, this is measured
by asking human subjects to compare the sweetness of solutions containing different concentrations of
each compound. Sucrose and saccharin taste equally sweet when sucrose is at a concentration 161
times higher than that of saccharin.
(a) What is the relationship between MRS and the G of the binding reaction? Specifically, would a
more negative G correspond to a higher or lower MRS? Explain your reasoning.
Shown below are the structures of 10 compounds, all of which taste sweet to humans. The MRS
and G for binding to the sweet receptor are given for each substance.
S-10 Chapter 1 The Foundations of Biochemistry
Deoxysucrose
MRS 0.95
ΔG° 6.67 kcal/mol
H
H
H
H
H
H H
H
O
O
H
OH
OHOH
OH
OH
HO
HOO
Sucrose
MRS 1
ΔG° 6.71 kcal/mol
H
H
HO
H
H
H H
H
O
O
H
OH
OHOH
OH
OH
HO
HOO
D-Tryptophan
MRS 21
ΔG° 8.5 kcal/mol
OH
N
H
O
NH2
Saccharin
MRS 161
ΔG° 9.7 kcal/mol
S O
O
O
NH
Aspartame
MRS 172
ΔG° 9.7 kcal/mol
H
N
O
O
OO
OH
CH 3
NH2
6-Chloro-D-tryptophan
MRS 906
ΔG° 10.7 kcal/mol
OH
Cl N
H
O
NH2
Alitame
MRS 1,937
ΔG° 11.1 kcal/mol
H
N
H
N
O
O
OH
NH2
O
S
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Chapter 1 The Foundations of Biochemistry S-11
Neotame
MRS 11,057
ΔG° 12.1 kcal/mol
H
N
O
O
OO
OH
CH 3
NH
Tetrabromosucrose
MRS 13,012
ΔG° 12.2 kcal/mol
H
Br
HO
H
H
H H
H
O
O
H
Br
BrOH
OH
OH
HO
BrO
Sucronic acid
MRS 200,000
ΔG ° 13.8 kcal/mol
H
N
H
N
O2 N
C 9 H17
HN
HO
O
+
Morini, Bassoli, and Temussi (2005) used computer-based methods (often referred to as “in
silico” methods) to model the binding of sweet molecules to the sweet receptor.
(b) Why is it useful to have a computer model to predict the sweetness of molecules, instead of a
human- or animal-based taste assay?
In earlier work, Schallenberger and Acree (1967) had suggested that all sweet molecules include
an “AH-B” structural group, in which “A and B are electronegative atoms separated by a distance of
greater than 2.5 Å [0.25 nm] but less than 4 Å [0.4 nm]. H is a hydrogen atom attached to one of the
electronegative atoms by a covalent bond” (p. 481).
(c) Given that the length of a “typical” single bond is about 0.15 nm, identify the AH-B group(s) in
each of the molecules shown above.
(d) Based on your findings from (c), give two objections to the statement that “molecules containing
an AH-B structure will taste sweet.”
(e) For two of the molecules shown above, the AH-B model can be used to explain the difference in
MRS and G . Which two molecules are these, and how would you use them to support the AH-B
model?
(f) Several of the molecules have closely related structures but very different MRS and G values.
Give two such examples, and use these to argue that the AH-B model is unable to explain the
observed differences in sweetness.
In their computer-modeling study, Morini and coauthors used the three-dimensional structure of
the sweet receptor and a molecular dynamics modeling program called GRAMM to predict the G of
binding of sweet molecules to the sweet receptor. First, they “trained” their model—that is, they re-
fined the parameters so that the G values predicted by the model matched the known G values for
one set of sweet molecules (the “training set”). They then “tested” the model by asking it to predict
the G values for a new set of molecules (the “test set”).
(g) Why did Morini and colleagues need to test their model against a different set of molecules from
the set it was trained on?
(h) The researchers found that the predicted G values for the test set differed from the actual val-
ues by, on average, 1.3 kcal/mol. Using the values given with the structures above, estimate the
resulting error in MRS values.
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S-12 Chapter 1 The Foundations of Biochemistry
Answer
(a) A more negative G° corresponds to a larger Keq for the binding reaction, so the equilib-
rium is shifted more toward products and tighter binding—and thus greater sweetness
and higher MRS.
(b) Animal-based sweetness assays are time-consuming. A computer program to predict
sweetness, even if not always completely accurate, would allow chemists to design effec-
tive sweeteners much faster. Candidate molecules could then be tested in the conven-
tional assay.
(c) The range 0.25 to 0.4 nm corresponds to about 1.5 to 2.5 single-bond lengths. The figure
below can be used to construct an approximate ruler; any atoms in the gray rectangle
are between 0.25 and 0.4 nm from the origin of the ruler.
There are many possible AH-B groups in the molecules; a few are shown here.
D-Tryptophan
OH
N
H
O
NH2
6-Chloro-D-tryptophan
OH
Cl N
H
O
NH2
Neotame
H
N
O
O
OO
OH
CH 3
NH
Tetrabromosucrose
H
Br
HO
H
H
H H
H
O
O
H
Br
BrOH
OH
OH
HO
BrO
Sucronic acid
H
N
H
N
O 2 N
C9H 17
HN
HO
O
+
Alitame
H
N
H
N
O
O
OH
NH2
O
S
Saccharin
S O
O
O
NH
Aspartame
H
N
O
O
OO
OH
CH 3
NH 2
Deoxysucrose
H
H
H
H
H
H H
H
O
O
H
OH
OHOH
OH
OH
HO
HOO
Sucrose
H
H
HO
H
H
H H
H
O
O
H
OH
OHOH
OH
OH
HO
HOO
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(d) First, each molecule has multiple AH-B groups, so it is difficult to know which is the im-
portant one. Second, because the AH-B motif is very simple, many nonsweet molecules
will have this group.
(e) Sucrose and deoxysucrose. Deoxysucrose lacks one of the AH-B groups present in su-
crose and has a slightly lower MRS than sucrose—as is expected if the AH-B groups are
important for sweetness.
(f) There are many such examples; here are a few: (1) D-Tryptophan and 6-chloro-
D-tryptophan have the same AH-B group but very different MRS values. (2) Aspartame
and neotame have the same AH-B groups but very different MRS values. (3) Neotame
has two AH-B groups and alitame has three, yet neotame is more than five times sweeter
than alitame. (4) Bromine is less electronegative than oxygen and thus is expected to
weaken an AH-B group, yet tetrabromosucrose is much sweeter than sucrose.
(g) Given enough “tweaking” of parameters, any model can be made to fit a defined dataset.
Because the objective was to create a model to predict G° for molecules not tested in
vivo, the researchers needed to show that the model worked well for molecules it had
not been trained on. The degree of inaccuracy with the test set could give researchers
an idea of how the model would behave for novel molecules.
(h) MRS is related to Keq, which is related exponentially to G°, so adding a constant
amount to G° multiplies the MRS by a constant amount. Based on the values given with
the structures, a change in G° of 1.3 kcal/mol corresponds to a 10-fold change in MRS.
References
Morini, G., Bassoli, A., & Temussi, P.A. (2005) From small sweeteners to sweet proteins: anatomy of the binding sites of the human
T1R2_T1R3 receptor. J. Med. Chem. 48, 5520–5529.
Schallenberger, R.S. & Acree, T.E. (1967) Molecular theory of sweet taste. Nature 216, 480–482.
Chapter 1 The Foundations of Biochemistry S-13
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S-14
1. Solubility of Ethanol in Water Explain why ethanol (CH3CH 2OH) is more soluble in water than is
ethane (CH3CH 3).
Answer Ethanol is polar; ethane is not. The ethanol —OH group can hydrogen-bond with water.
2. Calculation of pH from Hydrogen Ion Concentration What is the pH of a solution that has an
H concentration of (a) 1.75 105 mol/L; (b) 6.50 1010 mol/L; (c) 1.0 104 mol/L;
(d) 1.50 105 mol/L?
Answer Using pH log [H]:
(a) log (1.75 105
) 4.76; (b) log (6.50 1010
) 9.19; (c) log (1.0 104
) 4.0;
(d) log (1.50 105
) 4.82.
3. Calculation of Hydrogen Ion Concentration from pH What is the H concentration of a solution
with pH of (a) 3.82; (b) 6.52; (c) 11.11?
Answer Using [H] 10pH
:
(a) [H] 103.82 1.51 104 M; (b) [H] 106.52 3.02 107 M;
(c) [H] 1011.11 7.76 1012 M.
4. Acidity of Gastric HCl In a hospital laboratory, a 10.0 mL sample of gastric juice, obtained several
hours after a meal, was titrated with 0.1 M NaOH to neutrality; 7.2 mL of NaOH was required. The pa-
tient’s stomach contained no ingested food or drink; thus assume that no buffers were present. What
was the pH of the gastric juice?
Answer Multiplying volume (L) by molar concentration (mol/L) gives the number of moles in
that volume of solution. If x is the concentration of gastric HCl (mol/L),
(0.010 L)x (0.0072 L)(0.1 mol/L)
x 0.072 M gastric HCl
Given that pH log [H] and that HCl is a strong acid,
pH log (7.2 102
) 1.1
5. Calculation of the pH of a Strong Acid or Base (a) Write out the acid dissociation reaction for
hydrochloric acid. (b) Calculate the pH of a solution of 5.0 104 M HCl. (c) Write out the acid
dissociation reaction for sodium hydroxide. (d) Calculate the pH of a solution of 7.0 105 M NaOH.
Water
chapter
2
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Chapter 2 Water S-15
Answer
(a) HCl H Cl
(b) HCl is a strong acid and fully dissociates into H and Cl. Thus, [H] [Cl] [HCl].
pH log [H] log (5.0 104 M) 3.3 (two significant figures)
(c) NaOH Na OH
(d) NaOH is a strong base; dissociation in aqueous solution is essentially complete, so
[Na] [OH] [NaOH].
pH pOH 14
pOH log [OH]
pH 14 log [OH]
14 log (7.0 105
) 9.8 (two significant figures)
6. Calculation of pH from Concentration of Strong Acid Calculate the pH of a solution prepared
by diluting 3.0 mL of 2.5 M HCl to a final volume of 100 mL with H 2O.
Answer Because HCl is a strong acid, it dissociates completely to H Cl. Therefore,
3.0 mL 2.5 M HCl 7.5 meq of H. In 100 mL of solution, this is 0.075 M H.
pH log [H] log (0.075) (1.1) 1.1 (two significant figures)
7. Measurement of Acetylcholine Levels by pH Changes The concentration of acetylcholine (a
neurotransmitter) in a sample can be determined from the pH changes that accompany its hydrolysis.
When the sample is incubated with the enzyme acetylcholinesterase, acetylcholine is converted to
choline and acetic acid, which dissociates to yield acetate and a hydrogen ion:
In a typical analysis, 15 mL of an aqueous solution containing an unknown amount of acetylcholine had
a pH of 7.65. When incubated with acetylcholinesterase, the pH of the solution decreased to 6.87. As-
suming there was no buffer in the assay mixture, determine the number of moles of acetylcholine in
the 15 mL sample.
Answer Given that pH log [H], we can calculate [H] at the beginning and at the end of
the reaction:
At pH 7.65, log [H] 7.65 [H] 107.65 2.24 108 M
At pH 6.87, log [H] 6.87 [H] 106.87 1.35 107 M
The difference in [H] is
(1.35 0.22) 107 M 1.13 107 M
For a volume of 15 mL, or 0.015 L, multiplying volume by molarity gives
(0.015 L)(1.13 107 mol/L) 1.7 109 mol of acetylcholine
8. Physical Meaning of pKa Which of the following aqueous solutions has the lowest pH: 0.1 M HCl; 0.1 M
acetic acid (pKa 4.86); 0.1 M formic acid (pKa 3.75)?
Answer A 0.1 M HCl solution has the lowest pH because HCl is a strong acid and dissociates
completely to H Cl, yielding the highest [H].
9. Meanings of Ka and pKa (a) Does a strong acid have a greater or lesser tendency to lose its proton
than a weak acid? (b) Does the strong acid have a higher or lower Ka than the weak acid? (c) Does
the strong acid have a higher or lower pKa than the weak acid?
zy
zy
Acetylcholine
O
Choline Acetate
N HC
O
CH3HO
CH3
CH3
CH3CH2 CH2
N H 2 O
CH3 CH2C O
O
CH2 CH3
CH3
CH3
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