1 |
Reaction models; simple kinetics & equilibria |
Bob Sauer |
2 |
Analyzing kinetic & equilibria experiments |
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3 |
Free energy, entropy, enthalpy & cycles |
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4 |
Forces, hydrophobic effect, chelate effect |
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5 |
Molecular structure and dynamics |
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6 |
Physical properties of proteins and nucleic acids |
Tania Baker |
7 |
Principles and practice of protein purification |
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8 |
Principles and practice of protein purification (cont.) |
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9 |
EXAM 1 |
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10 |
Domain & subunit organization; molecular weight determination |
Tania Baker |
11 |
Macromolecular interactions: specificity, affinity and energetics |
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12 |
Macromolecular interactions: specificity, affinity and energetics (cont.) |
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13 |
Enzyme catalysis: kinetics |
Frank Solomon |
14 |
Mechanism of enzyme catalyzed reactions |
|
15 |
inhibition and intermediates |
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16 |
Mechanism of enzyme catalyzed reactions: chemistry |
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17 |
Mechanism of enzyme catalyzed reactions: partitioning & exchange |
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18 |
Mechanism of enzyme catalyzed reactions: binding energy |
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19 |
Specificity of catalysis: energetics and consequences |
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20 |
Specificity of catalysis: energetics and consequences (cont.) |
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21 |
EXAM 2 |
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22 |
Coupled vectorial processes: making ATP |
Frank Solomon |
23 |
Coupled vectorial processes: pumps |
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24 |
Coupled vectorial processes: OxPhos, morphology to enzymology |
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25 |
Coupled vectorial processes: processivity |
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26 |
Coupled vectorial processes: Motors; Polymers – origins & consequences of structural & thermodynamic polarity |
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27 |
Coupled vectorial processes: motors; structural & thermodynamic polarity |
|
28 |
Coupled vectorial processes: protein folding |
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29 |
Review Session |
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30 |
FINAL EXAM |
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