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Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes stabilizing T or R states Polycythemia (R) Cyanosis (T) 1

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Page 1: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Abnormal hemoglobin

Changes in internal amino acidsHemolytic anemia

Changes on the surfaceHbSHbE

Changes stabilizing metHbMethemoglobinemia

Changes stabilizing T or R statesPolycythemia (R)

Cyanosis (T)1

Page 2: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Electron micrograph of deoxyHbS fibers spilling out of a ruptured erythrocyte. E6V mutation.

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Page 3: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Locked in the T state3

Page 4: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 5: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Structure of the deoxyHbS fiber

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Page 6: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

There are no sickle cell aggregates in arteries

In the short time when blood passes through capillaries aggregates can form only if the blood is

moving slower than the aggregation time

Small changes in blood flow, O2 content, HbS concentration,

temperature will affect the sickling.

Origin of sickle cell crises

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Page 7: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Mutations that inactivate hemoglobin

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Page 8: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

What is the role of the distal histidine?

Fe(II) + O2 Fe(III)-O2-

Fe(III)-O2- + H+ Fe(III) + HO2

Autoxidation

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Page 9: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Mutations stabilizing the Fe(III) oxidation state of heme.

Result: MethemoglobinemiaCyanosis, brown blood

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Page 10: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Hb Yakima: loss of H-bond that stabilizes TResult: lack of cooperativity, very high affinity for

oxygen Polycythemia (excess red blood cells)Hyperviscous blood, clotting

Ruddy complexion

Hb Kansas: loss of H-bond that stabilizes RResult: low cooperativity, low affinity for oxygen

PolycythemiaHyperviscous blood, clotting

Ruddy complexion

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Page 11: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Properties of Enzymes

Function as catalysts only: play no role in the net rxn

Have no effect on equilibrium or ∆G

Lower the activation energy and thus affect kinetics

Generally have catalytic cofactors

Are usually highly substrate-specific

Are highly regulated

Often prevent more favorable chemistry from happening

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Page 12: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 13: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

∆G = ∆H - T∆S

Cell need a source of free energy

∆G’º = -RT ln Keq

Free energy depends on equilibrium constant

Keq = [P]/[S]

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Page 14: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 15: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Keq = [G6P]/[G1P] = 19 mM/1 mM = 19

Glucose-1-phosphate

∆G’º = -RT ln Keq

At room temperature ∆G’º = -7.3 kJ/mol

Glucose-6-phosphate

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Page 16: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 17: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Actual free energy depends of reactant and product concentrations

When ∆G = 0 this is equilibrium and

∆G’º = -RT ln Keq

This allows you to calculate actual ∆G’ in real conditions

∆G’ = ∆G’º + RT ln Keq

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Page 18: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzymes don’t affect ∆G of the reaction

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Page 19: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 20: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzymes affect rate by several mechanisms

1) Binding transition states2) Proximity effects3) Arresting atomic motions 4) Alter the solvent by excluding water

and changing pKa’s, use metal ions and protein side chains to alter electrostatics

5) Alter the substrate by forming transient covalent bonds

6) Using cofactors to change the chemistry

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Page 21: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

∆GB is energy of binding transition state by enzyme:

Major source of activation energy

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Page 22: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Transition State Stabilization

R

R

CH2OH

COOH

R

R

C

O

O

R = -H or -CH3

Rate is 300x faster with CH3

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Page 23: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 24: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Proximity and Orientation Effects

Reactants must come together with the proper spatial

relationship

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Page 25: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

NH

N

H3C C

O

O NO2

NH

N+

H3C

C

O

-O NO2

NH

N

C

O

O NO2

NH

N+

-O NO2C

O

24 fold enhancement of rate

Proximity - small effect

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Page 26: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Orientation - large effect

Molecules react most readily only if their molecular orbitals

are oriented properly

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Page 27: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

The geometry of an SN2 reaction.

Deviation by 10º will result in 100 fold rate dimunition27

Page 28: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Elimination of motion/entropy reduction

Enzymes immobilize substrates

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Page 29: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Exclusion of water changing electrostatics

+H3N

C

C

O

O-

CH2H

NNH

C

O

-O

CH2OH

C

O

OH

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Page 30: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Metal Ions alter electrostatics

Metalloenzymes(Fe, Zn, Cu, Mn, Co, Ni, Na, K, Ca, Mg)

Substrate binding and orientationShielding of negative charges

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Page 31: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Covalent catalysis

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Page 32: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzyme active sites are designed for specific substrates

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Page 33: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Geometric specificity

Many ADH enzymes accept different size substrates

Few enzymes are absolutely specific

CH3OHCH3CH2OH

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Page 34: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

R

C

O

N

H

R'

R

C

O

O

R'

R

C

O

O- +H3N

R'

R

C

O

O- HO

R'

Chymotrypsin catalyzes both ester and amide hydrolysis

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Page 35: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

C Hpro-RHpro-S

OH

CH3

Pro-chiral ethanol

CH3CH2OH + NAD+

YADHCH3CHO + NADH + H+

Stereospecificity

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Page 36: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

C DD

OH

CH3

N+

R

C

O

NH2

H

N

R

C

O

NH2

D

C

O

H3C D

H

NAD+ NADD

YADH

R isomer

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Page 37: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

C DH

OH

CH3

N+

R

C

O

NH2

H

N

R

C

O

NH2

D

C

O

H3C H

H

NAD+ NADD

H+

R isomer

R isomer

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Page 38: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

C HD

OH

CH3

N+

R

C

O

NH2

H

N

R

C

O

NH2

H

C

O

H3C D

H

NAD+ NADH

H+

S isomer

Non-chiral

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Page 39: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

CH3

HproS O

HproR

N+

HH

R

H C

H

O

H2N

si-side

re-side

C-

HH

R

H C O

H2N

Hpro-S

Hpro-R

H

B

N+

HH

R

H C

H

O

H2Nsi-side

re-side

C-

HH

R

H C O

H2N

Hpro-S

Hpro-R

H3C

O H BHproS

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Page 40: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzymes have coenzymes and cofactors

Organic

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Page 41: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzymes have coenzymes and cofactorsInorganic

Cu2+, Fe2+, Mn2+, Ni2+, Mo4+ Electron transferZn2+, Ni2+, Fe3+, Mn2+, Mg2+, K+ Charge stabilization 41

Page 42: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Vitamins That Are Coenzyme Precursors.

Zn2+ Acrodermatitis enteropathicaCu2+ Menkes diseaseFe2+ Anemia 42

Page 43: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enzyme activity is regulated

1. Gene transcription2. mRNA translation3. Enzyme localization4. Enzyme activity

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Page 44: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Allosteric Regulation

Effectors/Modulators

Homotropic/Heterotropic

Positive/Negative

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Page 45: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 46: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 47: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

OC

NH2

OPO32-

O

C

O-

CH2

C

COO-+H3N

H+NH2

C

NH

CH

CH2

C

O COO-

O-

O

Aspartate transcarbamolyase

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Page 48: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

OC

NH2

OPO32-

O

C

O-

CH2

C

COO-+H3N

H+NH2

C

NH

CH

CH2

C

O COO-

O-

O

NH2

C

NH

CH

CH2

C

O COO-

O-

O

HN

NH

O COO-

O

Orotate: precursor for pyrimidines

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Page 49: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

The rate of the reaction catalyzed by ATCase as a function of aspartate

concentration 49

Page 50: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Schematic representation of the pyrimidine biosynthesis pathway.

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Page 51: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

∆Gº’ values for sequential reactions are additive

(1) A ---> B ∆Gº’1

(2) B ---> C ∆Gº’2

Sum: A ---> C ∆Gº’1 + ∆Gº’2

Enzymes can couple endergonic reactions with exergonic ones to make

them go spontaneously

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Page 52: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Enter ATP

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Page 53: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 54: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 55: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

Other ‘high energy’ phosphate compounds

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Page 56: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 57: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 58: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 59: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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Page 60: Abnormal hemoglobin Changes in internal amino acids Hemolytic anemia Changes on the surface HbS HbE Changes stabilizing metHb Methemoglobinemia Changes

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