BIOCHEMISTRY II >CUSTOM<
BIOCHEMISTRY II >CUSTOM<
17th Edition
ISBN: 9781337449014
Author: GARRETT
Publisher: CENGAGE C
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Chapter 1, Problem 9P

Answers to all problems are at the end of this book. Detailed solutions are available in the Student Solutions Manual, Study Guide, and Problems Book.

The Dimensions of Prokaryotic Cells and Their Constituents Escherichia coli cells are about 2 μm (microns) long and 0.8 μm in diameter. (Section 1.5)

a. How many E. coli cells laid end to end would fit across the diameter of a pinhead? (Assume a pinhead diameter of 0.5 mm.)

b. What is the volume of an E. coli cell? (Assume it is a cylinder, with the volume of a cylinder given by V = π r 2 h , where π = 3.14.)

c. What is the surface area of ail E coli cell? What is the surface-to- volume ratio of an E coli cell?

d. Glucose, a major energy-yielding nutrient, is present in bacterial cells at a concentration of about 1 mM. What is the concentra¬tion of glucose, expressed as mg/mL? How many glucose molecules are contained in a typical E. coli cell? (Recall that Avogadro’s number = 6.023 × 10 23 .}

e. A number of regulatory proteins are present in E. coli at only one or two molecules per cell. If we assume that an E. coli cell contains just one molecule of a particular protein, what is the molar concentration of this protein in the cell? If the molecular weight of this protein is 40 23 , what is its concentration, expressed as mg/mL?

f. An E coli cell contains about 15,000 ribosomes, which carry out protein synthesis. Assuming ribosomes are spherical and have a diameter of 20 nm (nanometers), what fraction of the E. coli cell volume is occupied by ribosomes?

g. The E coli chromosome is a single DNA molecule whose mass is about 3 × 10 9 daltons. This macromolecule is actually a linear array of nucleotide pairs. The average molecular weight of a nucleotide pair is 660, and each pair imparts 0.34 nm to the length of the DNA molecule. What is the total length of the E. coli chromosome? How does this length compare with the overall dimensions of an E. coli cell? How many nucleotide pairs does this DNA contain? The average E. coli protein is a linear chain of 360 amino acids. If three nucleo¬tide pairs in a gene encode one amino acid in a protein, how many different proteins can the E. coli chromosome encode?

(The answer to this question is a reasonable approximation of the maximum number of different kinds of proteins that can be expected in bacteria.)

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The number of E. coli cells per a pinhead.

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Length of a cell =2μm

Diameter of pinhead =0.5mm

Formula used:

Number of E. coli per pinhead = Diameter of the pinhead/ Length of a cell

Calculation:

Number of E. coli cells that can be fitted to a pinhead =0.5 mm/(2×103mm)=250

Number of E. coli cells that can be fitted to a pinhead =250

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The volume of an E. coli cell.

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Length of a cell =2μm

Diameter of a cell =0.8μm

Formula used:

  V=πr2h

  V=Volume

  r=Radius

  h=Height

Calculation:

  V=πr2h=3.14×(0.4×10-6m)2×(2×10-6m)=1×10-18m3=1×10-15L

The volume of an E. coli cell =1×10-18m3

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The surface area and surface to volume ratio of an E. coli cell.

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Length of a cell =2μm

Diameter of a cell =0.8μm

Formula used:

Surface area = (Surface area of a circle ×2) + Surface area of the side of the cylinder

Surface area = 2πr2+2πrh

  r=Radius

  h=Height

Surface to volume ratio = Surface area/ Volume

Calculation:

Surface area of an E. coli cell

  =(2×3.14×(0.4×10-6m)2)+(2×3.14×(0.4×10-6m)×(2×10-6m))=6×10-12m2

Surface to volume ratio of an E. coli cell =(6×10-12m2)(1×10-18m3)=6×106m-1

Thus, surface area of an E. coli cell =6×1012m2

And, surface to volume ratio of an E. coli cell =6×106m1

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The concentration of glucose in mg/mL and the number of glucose molecules in an E. coli cell

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Glucose concentration =1mM

Molecular weight of glucose =180.156g/mol

Formula used:

Number of moles = Concentration ×Volume

Calculation:

Concentration of glucose =(1×10-3M)×180.156g/mol=0.18g/L=0.18mg/mL

Moles of glucose in an E. coli cell =(1×10-15L)×(1×10-3M)=1×1018mol

Number of glucose molecules in an E. coli cell

  =(1×1018mol)×(6.023×1023 molecules/mol)=6×105 molecules

Thus, concentration of glucose =0.18mg/mL

And, number of glucose molecules in an E. coli cell =6×105molecules

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The molar concentration of the protein in the cell

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Molecular weight of protein =40kD

Formula used:

Molar concentration = Moles/ Volume

Calculation:

Number of moles =1molecule6.023×1023molecules/mol=1.7×10-24mol

Molar concentration =1.7×10-24mol10-15L=1.7×10-9M=1.7nM

Protein concentration =(1.7×10-9M)×(40×103g/mol)=6.8×10-5mg/mL

Thus, molar concentration =1.7 nM

Protein concentration =6.8×105μg/mL

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The fraction of the E. coli cell volume which is occupied by ribosomes.

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Number of ribosomes =15000

Diameter of ribosome =20nm

Formula used:

Volume of a ribosome (cylinder) =43πr3

Fractional volume = Volume of ribosome/ Volume of cell

Calculation:

Volume of one ribosome =43×3.14×(10×109m)3=4.2×1024m3

Volume of 15,000 ribosome =4.2×1024m3×15000=6.3×1020m3

Fractional volume =6.3×1020m31×1018m3=0.063

Thus, fractional volume =0.063

Expert Solution
Check Mark
Interpretation Introduction

To determine:

The total length of E. coli chromosome and compare this length with the overall dimensions of E. coli cells, number of nucleotide pairs contains in the DNA, and number of different proteins can be encoded by E. coli chromosome.

Introduction:

Escherichia coli is a bacterium which lives in the intestine of healthy animals. E. coli genome consists of just one circular DNA.

Explanation of Solution

Given information:

Mass of E. coli chromosome =15000

Average molecular weight of a nucleotide pair =660g/mol

Distance of a nucleotide pair =0.34nm

Number of amino acids is an average protein =360

Calculation:

Number of moles of base pairs in DNA

  =3×109g/mol.DNA660g/mol.bp=4.55×106mol.bp/mol.DNA

Length

  =(4.55×106mol.bp/mol.DNA)×(0.34nm/bp)=1.55×103m=1.55mm=1550μm

Length DNA/ Length E. coli =1550μm2μm=775

Number of base pairs per protein =360×3=1080

Number of different proteins =4.55×1061080=4213

Thus,

Total length of E. coli chromosome =1.55mm

Length DNA/ Length E. coli =775

Number of nucleotide pairs =4.55×106

Number of different proteins =4213

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