Biochemistry: Concepts and Connections (2nd Edition)
Biochemistry: Concepts and Connections (2nd Edition)
2nd Edition
ISBN: 9780134641621
Author: Dean R. Appling, Spencer J. Anthony-Cahill, Christopher K. Mathews
Publisher: PEARSON
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Chapter 10, Problem 16P

ATP is synthesized from ADP, Pi  , and a proton on the matrix side of the inner mitochondrial membrane. We will refer to the matrix side as the "inside" of the inner mitochondrial membrane (IMM).
a.  H + transport from the outside of the IMM into the matrix drives this process. The pH inside the matrix is 8.2, and the outside is more acidic by 0.8 pH units. Assuming the IMM membrane potential is 168 mV (inside negative), calculate ?G for the transport of 1 mol of H+ across the IMM into the matrix at
   37 O C: H + (outside)  H + (inside)

b. Assume three mol H+must be translocated to synthesize one mol ATP by coupling of the following reactions.
ADP + Pi + H + inside  ATP + H 2 O    ( ATP synthesis ) Write the overall reaction for ATP synthesis coupled to  H + transport [and use this equation for part (c)]:

c. Assume three mol  H + must be translocated to synthesize one mol ATP as described in part (b) above. Given the following steady-state concentrations:

ATP = 270 mM and
P i = 5 .20 mM , the membrane potential
Δ= 168 mV (inside negative), and the pH values in part (a), calculate the steady-state concentration of ADP at 37 o C when for the coupled process (ATP synthesis + H+ transport), ΔG = - 11 .7 kJ / mol .

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Assuming that the pH of the IMS is 1.4 units lower than the pH of the matrix, the free energy yield associated with the transport of a proton from the mitochondrial intermembrane space (IMS) to the mitochondrial matrix is        △ G of the reaction is 8.310 KJmol-1   What is the minimum number of protons that must enter the mitochondrial membrane from the IMS in order to synthesize one molecule of ATP?
When the antibiotic X is added to actively respiring mitochondria, several things happen: the yield of ATP decreases, the rate of O2 consumption increases, heat is released, and the pH gradient across the inner mitochondrial membrane increases. Does X act as an uncoupler or an inhibitor of oxidative phosphorylation? Explain the experimental observations in terms of the antibiotic’s ability to transfer K+ ions across the inner mitochondrial membrane.
An important function of the inner mitochondrial membrane is to provide a selectively permeable barrier to the movement of water soluble molecules and thus to generate different chemical environments on either side of the mem- brane. However, many of the substrates and products of oxidative phosphorylation are water soluble and must cross the inner membrane. How does this transport occur?

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