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Lecture 11 Slides rh
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electron transport chain
fig19-16
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fig19-17
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proton-motive force 23.6 kJ/mole H+
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the coupling question…
chemiosmotic hypothesis!
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the coupling question…
chemiosmotic hypothesis!
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fig19-19
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oxidative phosphorylation experiment
measure this add this
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fig19-20
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oxidative phosphorylation experiment
ADP + Pi ATP measure this add this
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fig19-20
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oxidation and phosphorylation are coupled!!!
fig19-20
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oxidation and phosphorylation are coupled!!!
fig19-20
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oxidative phosphorylation experiment
ADP + Pi ATP measure this add this
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oxidative phosphorylation experiment
ADP + Pi ATP remove this this stops
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oxidative phosphorylation experiment
ADP + Pi ATP block ATPase this stops
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weak acid uncouplers high H+ low H+
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Weak acid uncouplers fig19-21
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Chemical uncouplers fig19-21
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Chemical uncouplers fig19-21
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Chemical uncoupler experiment
fig19-20
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From ETC and OxPhos
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Proton gradient experiment fig19-22
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ATP synthase: the F1 subunit
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ATP and ADP are in rapid equilibrium in the F1 ATPase fig19-23
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Energetics of ATP and ADP in F1 ATPase…
fig19-24
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The “binding-change” model for ATP synthase
fig19-25
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The “binding-change” model for ATP synthase
fig19-25
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The “binding-change” model for ATP synthase
fig19-26
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The F1 complex of the ATPase…
fig19-25
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The F0F1 complex fig19-25
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The F0F1 complex membrane soluble fig19-25
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The F0F1 complex of the ATPase…
fig19-25
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The F0F1 complex of the ATPase…
fig19-25
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A direct test of the rotary mechanism fig19-25 Noji et al. 1997
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A direct test of the rotary mechanism
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Snapshots from the direct test of rotary mechanism…
fig19-27
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The movie version of the book
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Bacterial generation of H+ gradient by respiratory chain
an ancient mode of ATP production
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“There’s more than one way to shrink a gradient…”
fig19-39
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Inner membrane translocases (or transporters)
fig19-28
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Glycerol 3-P shuttle fig19-30
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Malate-aspartate shuttle
eeeeek! fig19-29
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Malate-aspartate shuttle
NADH NAD+
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Malate-aspartate shuttle
X
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Malate-aspartate shuttle viewed as e- carrying process
NAD+ NAD+ NADH NADH OAA OAA
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Malate-aspartate shuttle viewed as e- carrying process
with set of transaminations between OAA/Asp, and aKG/Glu malate NADH NAD+ OAA Asp aKG Glu
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Malate-aspartate shuttle viewed as e- carrying process
NAD+ NAD+ NADH NADH OAA OAA
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with set of transaminations between OAA/Asp, and aKG/Glu
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with set of transaminations between OAA/Asp, and aKG/Glu
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with set of transaminations between OAA/Asp, and aKG/Glu
NH3 group from Asp to aKG NH3 group from Glu to OAA
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Malate-aspartate shuttle viewed as e- carrying process
with set of transaminations between OAA/Asp, and aKG/Glu malate NADH NAD+ OAA Asp aKG Glu
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Malate-aspartate shuttle
fig19-29
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Nature’s electric blanket thermogenin fig19-34
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regulation of ATP producing pathways fig19-33
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regulation of ATP producing pathways fig19-33
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regulation of ATP producing pathways fig19-33
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