onsdag 30 november 2011

How to balance simple redox reactions.

OXIDATION STATE RULES


Oxidation numbers/states are used to balance redox reactions. Balancing more complicated redox-reactions can be quite challanging. First you must master the rules.


What is the oxidation number of an element uncombined with other elements? (For instance Cl2) ?

Zero, zipp, nada.


What is the sum of all the oxidation numbers of all the atoms in a molecule/a spieces?

It is equal to the total charge. So for instance, MgO is an uncharged molecule. Since O almost always have the oxidation number (-2) when combined with other spieces (see below) Mg must have the oxidation number (+2) in this case.


What is the oxidation number of H when combined with other spieces?

(+1). Consider the H2O molecule – O has the oxidation number (-2), hence the two hydrogens must contribute with one (+1) charge each!


What is the oxidation number of elements in group 1 and 2?

It is equal to their group number!!!


What is the oxidation number of the halogens?

(-1) – unless combined with O or another halogen. F is (-1) in all compounds.


What is the oxidation number of oxygen?

It is (-2) in most of its compounds. However, in combination with F which always has the oxidation number (-1). Other exceptions : peroxides (O22-), superoxides and ozonides. These molecules are so uncommon that I doubt you'll have to remember it for now.


What does an increase in the oxidation number/state of a spieces indicate?

Oxidation! (loss of electrons = increased oxidation state)


What does a decrease in the oxidation number/state of a spieces indicate?

Reduction! (gain of electrons)


TEST YOUR SELF :


What is the oxidation number of S in H2S?

(-2)


What is the oxidation number of P in P4O6?

(+3) – because the sum of the oxidation numbers of O6 is 6 x(-2) is -12 and the molecule is uncharged the P4-part of the molecule must equal 12. 12 divided over 4 molecules is of course +3.


What is the oxidation number of Cl in ClO-?

(+1)


What is an oxidation agent? What happens to it during a redox-reaction?

An oxidation agent (or oxidant) causes oxidation!!! It makes the other spieces in the reaction go through oxidation because the oxidation agent stels electrons. Hence the oxidation agent (or oxidant) gets reduced in the process!!!


What is a reducing agent (or reductant)? What happens to it during a redox-reaction?

It causes reduction, by giving away its electrons. Hence it gets oxidized in the process.


How can you identify the oxidant and reductant in a redox reaction?

You consider the rules listed above. You then compare the oxidation numbers of the spieces before and after the reaction (on each side of the →). I an element has NOT undergone a change in oxidation number it has not been reduced nor oxidized.


Test your self : consider the following reaction, called the claus process :

2H2S(g) + SO2(g) → 3S( s) + 2H2O Identify the oxidant and reductant!

S in H2S(g) goes from (-2) to (0), so it is oxidized and thus the reducing agent.

S in SO2(g) goes from (+4) to (0), so it is reduced and thus the oxidation agent.


What is the most important rule to consider when balancing redox reactions?

Electrons cannot be lost or created – so the number of electrons that the reducing agent loses must add up to the number of electrons gained by the oxidant.


Balance the reaction : Cu(s) + Ag+→ Cu2+ + Ag(s)

This reaction appears to be balanced because the number of atoms is the same on both sides of the arrow. However the number of electrons is not the same on both sides!!!

Thus we must multiply the spieces with insufficient number of electrons with the number 2 (in this case) to make it all add up. The balanced reaction is thus :

Cu(s) + 2Ag+→ Cu2+ + 2Ag(s)


Write a balanced redox-reaction from the following skeleton reactions:

NO2 + O3 → N2O5 + O2?

2NO2 + O3 → N2O5 + O2


S8 + Na → Na2S?

S8 + 16Na → 8Na2S


Cr2+ + Sn4+ → Cr3+ + Sn2+ ?

2Cr2+ + Sn4+ → 2Cr3+ + Sn2+


Ok, so tomorrow I will move on to more complicated reactions, taking place in acidic /basic solutions. Then I'll cover galvanic cells and its relation to the equilibrium constant. Ciao Manhattan for now!


måndag 28 november 2011

Brief and basic redox-chemistry

I've always hated redox reactions and electro chemistry... It's really not that difficult – at least not more difficult than anything else within the field of chemistry – but it's just so... messy, so much to take into account. And if you forget just one detail, everything falls into bits and pieces. Anyhow, I plan to write some sort of summary or whatever about it in the following days. This is part one, starting with the basics.


What is electricity?

Electrons passing from one metal to another. Thus electrictity may be used in order to make chemical reactions occur or the other way around : we can use chemical reactions to produce electricity!

Electrochemistry can also be used to meassure pKa-values, actitvity in the brain, etc...


What is the definition of an oxidation?

The loss of electrons!


Let's consider the following two reactions :

2Mg(s) + O2(g) → 2MgO(s) The solid MgO consists of two ions; 2Mg2+(s) + 2O2- (s)


The reaction above describes the transfer of electrons from Mg to O. Mg loses electrons that go to oxygen instead. When Mg(s) looses its electrons it is transformed to Mg2+ ions, and these ions start a relationship with the 2O2- ions. Remember that opposites attracts! The resulting solid is a salt.


The reaction below is essentially the same, Mg loses electrons, but to Cl this time. Still, it is called “oxidation” since electrons are lost, even though no oxygen is involved.


2Mg(s) + Cl2(g) → 2MgCl2(s) The solid MgCl2 consists of two ions; 2Mg2+(s) + 2Cl-(s)


How can you determine wether an element has undergone oxidation or not?

Its charge is increased. This rule does often, but not always, apply. It can be used on anions as well as on uncharged speices. Consider this reaction :


2 NaBr(s) + 2Cl2(g) →2NaCl + Br2(l)


Br is oxidized by Cl in this case. One might say that Cl breaks up the marriage between Na and Br, since Na is more attracted to Cl. That's how I understand things. (My chemistry professor would kill me...) The charge in Br thus goes from (-1) to (0). I will go through the basic rules of “oxidation numbers” or “oxidation states” further on.


Define “reduction”!

This refers to the opposite of an oxidation; if an atom is reduced it gains electrons. In the case above, 2 NaBr(s) + 2Cl2(g) →2NaCl + Br2(l), Cl is reduced, because its chage goes from (0) to (-1). It takes electrons! The same rule applies to oxygen in the MgO formation described above. This touches on something rather important; electrons cannot just get lost through oxidation, they are in fact particles that go somewhere. So : whenever oxidation occur, reduction will occur.


Identify the spices that have been oxidized and reduced in the following reaction!

3 Ag+(aq) + Al(s) → 3Ag(s) + Al3+(aq)

Ag+ gets reduced. Its charge goes from (1+) to (0), it gains electrons that counteracts the positive charge. Al gets oxidized. It loses electrons and goes from (0) to (+3).


Identify the species that have been oxidized or reduced in the following reaction!

2 Cu+ (aq) + I2(s) → 2 Cu2+ + 2I-

Well, the charge of Cu+ increases from (1+) to (2+), so it is oxidized! The charge of I2(s) is lowered from (0) to (-1) so it is reduced.


What is oxidation number, what is oxidation state, what's the difference?

These terms are often used in the same context. But to be precise (or nerdy, rather) – an oxidation number is given to a spieces, depending on wether it is in a molecule or not, what kind of molecule it is, etc. The oxidation number corresponds to a condition, denoted by oxidation state.

So Mg2+ has the oxidation number (2+) which corresponds to the oxidation state (2+).


In short : no real difference, don't worry your pretty little head.


Eum that's all I have (made...) time for today. More to come. Hope this helps anyone.

måndag 31 oktober 2011

Thermodynamics - calculations of ∆H°, ∆S° and K

Howdy folks!

Time for some thermodynamics. I'll go through strategies of solving common questions.

  1. How does one calculate ∆H° for the following reaction :

CO2 (g, 30 mbar) + H2O → H+ (aq, pH =8) + HCO-3(aq, c=010 mM)


First you have to find values corresponding to each of the species in the reaction. I don't know where you find yours, but I use SI Chemical data, table 5. Units: kJ/mol


Reactants:

CO2 (g, 30 mbar) = -394

H2O = -286

Products :

H+ (aq, pH =8) = 0

HCO-3(aq, c=010 mM) = -690


Once you've listed these values, use the formula : (product+product) – (reactant - reactant)

So, in this case : (0 +(-690 )) - (-394) - (-286) → -10 kJ/mol

∆H° = -10 kJ/mol


In order to find ∆S°, use a similar strategy. First; find the S°f for the different spieces. Units : J/K/mol

Reactants:

CO2 (g, 30 mbar) = 214

H2O = 70

Products :

H+ (aq, pH =8) = 0

HCO-3(aq, c=010 mM) = 98

Again, use the formula : (product + product) – (reactant- reactant) = 0 + 98 – 214 – 70 = -186 J/K/mol.

∆S° = -186 J/K/mol.


Ok, moving on to how you can calculate K for such a reaction.

The equation is : ∆G° = ∆H° - T∆S°

We've just calculated the values corresponding to ∆H° and ∆S°, -10 kJ/mol & -186 J/K/mol, respectively.

T has to be tranformed into Kelvins. 25°C corresponds to 298°K . Furthermore, we have to transform -10 kJ/mol into J/mol; -10∙103 J/mol. Now, just insert your values into the equation

∆G° =- -10∙103 J/mol – 298 ∙ (-186 J/K/mol) = 45428 J/mol OR 45,4 kJ/mol.


K is related to ∆G° in this way : K = e(∆G°/RT) R denoting the gas constant; 8,314J/K/mol or 8314 kJ/K/mol. So, in this case : K = e- (45,4/8314∙298) gives 1,08-08


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Another one then...

Calculate ∆H° for the following reaction :

2 Fe2O3 (s) + 3 C (s) → 4 Fe(s) + 3 CO2 (g)

2 Fe2O3 (s) = -824

Fe = 0

3 CO2 = 214

3 C = 0


(Product + product) – (reactant-reactant) = 0 + 3(-394) - 2(-824 – 0) = 466 kJ/mol


So ∆H° = 466 kJ/mol


Calculate ∆S° for the reaction 2 Fe2O3 (s) + 3 C (s) → 4 Fe(s) + 3 CO2 (g)

2 Fe2O3 (s) = 87

Fe = 27

3 CO2 = 214

3 C = 6


Ja osv...


  1. 2011-02-24

Calculate ∆H° and ∆S° at 25°C for the following reaction :

C(s) + 2H2 (g)→ CH4

CH4 = -74

C = 0

H2 = 0


(product + product) – (reactants – reactants) = -74 – 0 - 2∙ 0 = -74 kJ/mol

Enthalpy : -74 kJ/mol


∆S° is calculated through S°f -values.

CH4 = 186

C = 6

H2 = 131


186 – 6- (2∙131) = -82 J/mol/K

Entrophy : -82 J/mol/K


Calculate K for the reaction!

∆G° = ∆H° - T∆S° -74∙103 J/mol- (298)∙(-82 J)) = enligt mig : 74000- 298 x -82 = - 4,9862 ∙104

  • 4,9862 ∙104 /8,314∙298 = -20 → e20 = 4,8∙108

fredag 21 oktober 2011

The autoprotolysis of water explained.

Calculate the molarity of OH- in solutions by the following H3O+ concentrations!

a. 0,02 mol/L H3O+ . → 1 · 10-14 / 0,02 = 5 · 10-13 M/L OH-

b. 3,1 mM/L H3O+ → 1 · 10-14 / 0,0031M = 3,22 · 10-12 M/L OH-


The calculations above lean on the knowledge of the autoprotolysis of water.


Describe the autoprotolysis of water!

The autoprotolysis of water referes to the fact that the H2O molecule is amphoprotic – it can operate both as a Broenstedt base and as an acid. Proton transfer occurs in pure water as well as in other aqueous solutions. This means that there will always be an exchange of protons between water molecules with H3O+ and OH- molecules as the result. This reaction (just as any chemical reaction) leads to an equilibrium. The equilibrium constant (KW) is wiritten as follows :

H2O ↔ H3O+ +OH- → KW = [H3O+]·[OH- ]/[H2O]

The activity of H2O is close to 1 and hence excluded from the equation. KW is thus written as :

KW = [H3O+]·[OH- ] and always equals : 1 · 10-14 M at 25 º C!


In pure water [H3O+] [OH- ] respectively is...?

1 · 10-7 , both of them.


Does KW increase or decrease with temperature?

It increases.


The most important thing to understand about KW is that it, just as all equilibrium constants, always remains the same! That is, if we increase [H3O+] , [OH- ] will decrease enough to preserve

KW = 1 · 10-14 M!!!


tisdag 18 oktober 2011

Acid and bases - part 1.

Define molecular compunds!
Molecular compounds always contain two non-metals, NH3, CO2 etc. In oher words : they are easy to identify. They do not conduct electricity when dissolved in H2O because they are not formed by two ions of opposite charge.

Define ionic compounds!
They are compounds held together by ionic bonds, formed between ions of opposite charges. You probably all know this, but a good rule of thumb is that the cation is usually a metal!

What defines the Brœnstedt acid/base theory?
It is the classic definition of acids as proton donors and bases as proton acceptors. For instance : H2SO4 is an acid. It loses its proton to water and is thus transformed into its conjugate base : HSO4-.


Describe the Lewis-theory!
It is a WIDER definition of acids and bases and goes beyond simple proton transfer. Thus other substances than proton acceptors and donors can be denoted as acids or bases according to the Lewis theory, as it focuses on electron pair donations and acceptations.

A Lewis acid ACCEPTS an electron pair! (ACCEPT and ACID = two A:s!)

A Lewis base accordingly donates an electron pair! For instance a Lewis base may give an electron pair to a proton that accepts it - and a covalent bond is formed.

Every Brœnstedt base is a Lewis base, but not every Lewis base is a Brœnstedt base. For instance : CO is a Lewis base, because it donates an electron pair to certain METALS. But it is NOT a Brœnstedt base, since it does not accept protons.


Many nonmetal oxides are...?

Lewis acids. They react with water and accepts the electron pair of the oxygen in the H2O molecule. The product is a Brœnstedt acid!


What defines an acidic oxide?

As in the example above, it is a molecular oxide that reacts with water to form a Brœnstedt acid. Acidic oxides may also react with Brœnstedt bases, forming H2O and salt.


Define a basic oxide!

It is a ionic compound. It reacts with water to create Brœnstedt bases. It may also react with acids, thus forming salt and H2O.


Summary :

Acidic oxides are?

Molecular compunds!

They react with?

H2O and the result is a Broensted acid as in the example below :

CO2 + H2O → H2CO3

Or with...?

A base with a salt + H2O as a result! See example below :

CO2 + 2NaOH → Na2CO3 + H2O


Basic oxides are?

Ionic compounds!

They react with?

H2O and the result is a Broensted base as in the example below :

CaO + H2O → Ca(OH)2


So now that's that. But whatabout oxides formed by the metalloids?

These elements form amphoteric oxides; that is they can react with both bases and acids.

Examples below :

Al2O3 + 6 HCl → 2 AlCl3 + 3 H2O

or

Al2O3 + 2 NaOH + 3H2O → 2[NaAl(OH)4]


Several of the d-element also form amphoteric oxides.


Write the two different equilibria between HCO3- and H2O!

  1. When HCO3- acts as an acid : HCO3- + H2O → CO32- + H3O+

  2. When HCO3- acts as a base : HCO3- + H2O → H2CO3 + OH-


State wether the following oxides are acidic, basic or amphoteric! BaO, SO3, As2O3, Bi2O3?

BaO = basic

SO3 = acidic

As2O3 = amphoteric

Bi2O3 = basic

The easiest way to solve the question above is of course by looking at the periodic table.

More to come, bitches! Love/A

söndag 31 juli 2011

PCR - what is it and what is the point?

This is a basic introduction to PCR, basically for biochem. noobies. Please do not copy this without asking.

PCR is one of the most essential methods in biochemistry, molecular biology, medicine and forensic science. The procedure can be described as an imitation of the DNA replication that takes place during each mitosis. During PCR all of the enzymes involved, except for the DNApolymerase, have been replaced by heat cycles. Furthermore a PCR buffer, containing two kinds of primers as well as all four nucleotides necessary to build the DNA strands, is necessary to provide an optimal environment for the polymerase. Mg2+ is also an essential ingredient of the buffer since this cation stabilizes the hybridization of primers to the single strands of DNA as well as the bonds between the nucleotides and the DNA polymerase. The DNA polymerase is derived from organisms tolerant to extreme heat, thus able to function even at the high temperatures needed to denature the
DNA molecules. To begin with, the DNA sample of interest is exposed to a temperature of 92°C , thus denaturing the molecule and causing its strands to separate. Then a temperature of approximately 55°C (depending on the lengths of primers and gene fragments) causes the forward and reverse primers to hybridize to one single strand each. The free OH - -ends of the primers allow the DNA polymerase to find its way to the template and begin to build a complementary strand. The whole routine is repeated approximately thirty times, causing the numbers of DNA molecules to increase exponentially and resulting in roughly 1 million copies in only 30 minutes. In short; one of the main advantages of the PCR method is that it provides amplification of the gene of interest, thus ensuring that scientists have endless amounts of the material they want to study.
Kary Mullis won the Nobel Price in 1993 for inventing the method. Some argued at the time that the method is too "simple" for its inventor to earn this honour. However, the incredible advantages that the method has provided to science cannot be underestimated.

No time for chemistry


After the PCR post above this blog will take a nap til mid/end of august. I´m super happy that people (other than my family and friends) seem to actually read it. I hope it can be of some help. I'll be back this fall, focusing more on physical chemistry - redox reactions, thermodynamics and quantum chemistry. The main focus will be organic chemistry, though. I wish you all a nice summer and leave you with this beautiful tune (Thank's Emil!)

tisdag 17 maj 2011

GLYCOLYSIS

GLYCOLYSIS – INTRO.


Describe the role of glucose in the cell!

Glucose is a good fuel, but also a precursor for various compounds!


In what way is glucose stored in the cell, and why?

Glucose is stored as large polymers such as starch or glycogen. When the energy demand rises glucose can be released from these large polymers.

This type of storage ensures storage of a lot of hexose, whilst there is no big increase in cytosolic osmolarity.


Glucose has four major metabolic fates. Describe them all briefly!

  1. Glucose may be synthesized to complex polymers, destined for extracellular matrix and the cell wall.

  2. Glucose may be stored in the cell for later use as glycogen or starch.

  3. Glucose may be oxidized (lose electrons) to pyruvate through a process called glycolysis in order to provide ATP and metabolic intermediates!!!

  4. Glucose may be oxidized via pentose phosphate pathway to yield ribose for nucleic acid synthesis and NADPH for reductive biosynthetic processes!


Organisms that don't have access to glucose must make it. How?

Photosynthetic organisms reduces CO2 from the air to trioses, which are in turn converted to glucose.

Non photosynthetic organisms, such as our selves, make glucose from simple 3/4C-compounds through a process called gluconeogenesis!


Repetition : what does glycolysis mean?

Oxidation of glucose through ten enzymatic steps to yield two molecules of pyruvate. The point of it all is to generate energy – which is conserved in ATP and NADH. The net gain of these reactions is two ATP:s and two NADH:s. (2 ATP:s are invested in glycolysis and four are produced; hence the net gain is two ATP molecules / glucose molecules).


Glycolysis takes place where?

In the cytosol!


Citric acid cycle takes place where?

In mitochondria!



Is glucose universal or specific for mammals?

It is universal = the same in all spices. Glycolysis do differ between spices, but not in enzymes used etc, but in the regulation and in the different fates of pyruvate formed!


The oxidation of glucose is the sole source of energy for some tissues and cell types – which ones?

Most importantly : the brain!

The testis. The erythrocytes and renal medulla.


What does “fermentation” mean?

It means degradation of glucose (or other organic nutrients) in the absence of oxygen, that is under anaerobic or hypoxic conditions.


Glycolysis is separated in two different phases - describe them briefly! PIC

The first five step = preparatory phase, during which energy is invested!

The last five step = the payoff phase; because these steps generate ATP and NADH.


There are three fates of pyruvate – describe briefly! PIC

1. Oxidation through the citric acid cycle - under aerobic conditions, glycolysis is merely the first step of total glucose degradation. This means that pyruvate is further oxidized through the citric acid cycle in order to yield render energy that is used for ATP synthesis in mitochondria. These processes will be addressed thoroughly later on.

  1. Lactic acid fermentation – when the muscles are extra strained they must function under hypoxic conditions. This means that NADH cannot be reoxidized (lose electrons) by giving its electrons to oxygen in order to render NAD+. But NAD+ is necessary as an electron acceptor in the further oxidation of pyruvate. Simply : there is no oxygen present to accept the electrons from NADH. Thus NAD+ cannot be regenerated. This problem has to be solved, because NAD+ is a necessary electron acceptor in the payoff phase of glycolysis. Thus electrons are transferred to pyruvate instead of oxygen, reducing pyruvate to lactate! The lactate can be recycled to pyruvate in the liver during the rest phase following intense work out.

    Some tissues in mammals reduce pryruvate to lactate even under aerobic conditions?

    Yes, retina cells and erythrocytes.


  1. Ethanol fermentation -= In some microorganisms, such as yiest and protists, under anaerobic /hypoxic conditions.


Write the two equations for glycolysis!

Glucose + 2NAD+ → 2 pyruvate + 2NADH +2H+

the reaction above is exergonic : ∆G´°1 = -146 kJ/mol


2ADP + 2Pi → 2ATP + 2 H2O

This reaction is endergonic. ∆G´°2 = 2(30,5kJ/mol) = 61 kJ/mol


The sum of the equations : ∆G´°s = ∆G´°1 + ∆G´°2 = -146 kJ/mol + 61 kJ/mol = -85 kJ/mol!


This means that the overall reaction of glycolysis is accompanied by a large decrease in free energy and thus irreversible in the cell.


Which is the first “committed” step of glycolysis? (The first irreversible step, that is)

step 3 : The phosphorylation of Fructose-6-phosphate to Fructose1,6-bisphosphate. Fructose1,6-bisphosphate has no other possible fate that glycolysis.


The enzyme catalyzing the phosphorylation of Fructose-6-phosphate to Fructose1,6-bisphosphate is subject to allosteric regulation – how?

The enzyme is called phosphofructosekinase-1 and is allosterically activated by ADP and AMP – molecules that are the result of ATP consumption. High levels of ADP and AMP signals low ATP levels in the system. Accordingly; PFK-1 is allosterically inhibited by ATP!

Ribose-5-phosphate, an intermediate in the pentose phoshate cycle also activates PFK-1 allosterically – something that will be addressed later.


What is the difference between substrate level phosphorylation generation ATP and respiration-linked phosphorylation generating ATP?

Substrate level phosphorylation means that a soluble intermediate, such as 1,3bisphosphoglycerate, is phosphorylated during glycolysis.

In the latter case, membrane-bound enzymes are involved as well as transmembrane gradients of protons. I'll return to both cases further on.


Give the complete equation for glycolysis under aerobic conditions!

Glucose + 2NAD+ + 2ADP + 2Pi → 2 pyruvate + 2NADH + 2H+ + 2 ATP + H2O



The two NADPH molecules are, under aerobic conditions, reoxidized to NAD+ - how?

The electrons from NADPH are passed to the electron transfer chain, in eukaryotic cells located in the mitochondria! The ultimate acceptor of the electrons are O2. The electron transfer from NADPH to O2 gives the energy for ATP synthesis by respiration-linked phosphorylation.

The reaction is :

2 NADH + 2H+ + O2 → 2NAD+ + 2H2O


Which enzymes control glycolysis? What other regulation methods contribute?

Insulin, epinephrine and glucagon. Glycolysis is also regulated through allosteric regulations of certain enzymes, such as PFK-1, and through changes in the expression of genes coding for the enzymes involved!


How is the metabolism of glucose limited in mammals?

It is limited through by uptake of glucose in to the cells and its phosphorylation by hezokinase.


How is glucose uptake into the cells from the blood mediated?

It is mediated by the GLUT family.


Describe the different members of the GLUT family and their different roles!

GLUT 1 and 2 are present in the liver tissue.

GLUT 3 is present in the brain.

The common feature of GLUT 1, 2 and 3 is that they are always present in the plasma membranes!

GLUT 4 are present in all other cells, such as muscle cells, heart cells, adipose tissue cells etc.

what separates GLUT 4 from GLUT 1, 2 and 3?

GLUT 4 are NOT present in plasma membranes, but has to “called” to go there by the hormone insulin! GLUT 4 are stored in intracellular vesicles and only comes out when insulin demands it.


How and when is insulin released?

Release by β cells in the pancreas as a response to elevated glucose levels!


Describe the reasons behind and consequences of diabetes type-1 -mellitus!

This type of diabetes is also called “insulin-dependent diabetes”. It is a condition caused by to few

β cells. Hence : no insulin or not enough insulin is released in response to elevated glucose levels. As a result of this muscle, heart and adipose tissue cells are unable to take up glucose from the blood. Glucose levels rises in the blood and eventually accumulates to extreme levels; a condition called hyperglycemia. Furthermore : when the muscle, heart and adipose tissue cells don't get access to glucose they have to get nutrition from other sources. Muscle and fat tissue thus start to use up the stored fatty acids as “new” nutrients. When these fatty acids are degraded in the liver, acetyl-CoA is the resulting compound. Acetyl-CoA in turn is transformed to “ketone bodies”. The ketone bodies can be used as alternative fuel and is critical for the brain in absence of glucose – since fatty acids CANNOT pass the blood-brain barrier.

The consequences of ketone bodies used as fuel is that they accumulate in the blood, forcing the pH to drop. The lowering of pH in blood caused by this is called : ketoacidosis – which is a life threatening condition. Diabetes type 1 is kept under control of insulin injections, causing the GLUT 4 to collect glucose from the blood.


Control questions :

What is the cause of diabetes type 1?

Not enough β cells to release insulin, a hormone which causes GLUT 4 to migrate from their intracellular vesicles to the plasma membrane in order to collect glucose into the cell.

As a result, the cell is unable to collect glucose and must rely on other nutrients. Fatty acids are degraded instead, and the ketone bodies resulting from this is used by the brain. Fatty acids them selves cannot be used by the brain, since they are unable to pass the blood-bran barrier. The result of ketone bodies being used as the primary nutrient is ketoacidosis – lowering of the pH. This is life-threating. Hence insulin must be injected on a regular bases to prevent this.


Feeder pathways...


Not only glucose is oxidized through glycolysis but also other carbohydrates, after initial transformation into what?

Glycolysis intermediates!


Name the most common disaccharides converted to intermediates in order to enter glycolysis!

lactose, maltose, trehalose, sucrose.


Name the most common monosaccharides?

Fructose, mannose and galactose.


What are the sources of alternative carbohydrates?

Intracellular stored polysaccharides such as glycogen and starch.

Or disaccharides and monosaccharides obtained through the diet!


How does degradation of starch through the diet begin?

α-amylase in the saliva hydrolyzes the internal glycosidic links.

In the stomach, the pH is to low for the α-amylase to function, but another form of the enzyme is released by the pancreas into the small intestine and the process proceeds.

Dietary glycogen has the same overall structure as starch and is hence metabolized in the same way.


What is the difference in degradation of endogenous glycogen and starch compared to the dietary dito?

Endogenous glycogen and starch can be mobilized for use within the same cell by phosphorylysis – the glycosidic bond is thus broken not by water but by Pi – a reaction catalyzed by glycogen phosphorylase. (starch phosphorylase in plants). The enzyme acts repeatably until it reaches a branch point.

The result of a glycogen unit plus the attached Pi is glucose-1-phosphate which can then enter glycolysis or the pentose phosphate pathway.


What is most beneficial energy-wise; hydrolysis or phosphorylysis?

Phosphorylation is more beneficial, because it converts the substrate directly to glucose-1-phosphate that can be converted to glucose-6-phosphate without the expense of 1 ATP that is required to convert free glucose to glucose-6-phosphate – an intermediate that can readily enter glycolysis or penthose phosphate pathway. The net gain will thus be 3 ATP:s rather than 2 ATP:s, in this case.

Hydrolysis on the other hand starts with free glucose, and is hence more expensive!


We have now concluded that phosphorylation is cheaper than hydrolysis energy-wise. But hydrolysis is still the only “method” used by the body to degrade dietary polysaccharides. Why would breakdown of dietary polysaccharides such as glycogen or starch be useless if phosphorylysis instead of hydrolysis was used?

Because a phosphoryl group on sugars in the intestines would prevent them from entering the typical epithelial cells there. The sugars most be dephosphorylated first! And disaccharides must be degraded to monosaccharides! These monosaccharides must in turn be transported to other tissues – where they are phosphorylated and enter glycolysis there!


Which “method” is used to degrade dietary polysaccharides? Which method is used to degrade endogenous polysaccharides?

Dietary = hydrolysis.

Endogenous = phosphorylysis.


What is lactose intolerance caused by?

Deficiency of the enzyme lactase. Because lactose cannot be completely degraded to monsaccharides, and cannot be absorbed into the cells of the mall intestines. Instead it passes on to the large intestine where it causes cramp and other unpleasant effects. Furthermore, osmolarity is increased with retention of water in the intestine as a result.

This is a common condition in many parts of the world, where lactose is only consumed during childhood. There are, however, more complicated conditions – all the disaccharidases are missing, which means an extremely restricted diet must be held.


What is the condition cataracts in childhood a result of?

A defect in one or all three of the enzymes – öh, böff böff.


Fourteen.three.

What happened to pyruvate after glycolysis under aerobic conditions?

It is oxidized to Acetyl-CoA (also called : acetate) and funneled into citric acid cycle – where it is oxidized even further to CO2 and H2O!


How is NADH synthesized during glycolysis and what happens to the NADH molecules under aerobic conditions?

Glyceraldehyde 3-phosphate is dehydrogenated to NADH in the step 6 of glycolysis. NADH gives electrons to O2 in the mitochondrial respiration, rendering NAD+.


What happens to NADH under aerobic conditions? What is the cause of anaerobic conditions in humans?

Very active skeletal muscles or solid tumors both produces anaerobic /hypoxic conditions. This means that no O2 molecules are available to accept electrons from NADH. But NAD+ must be regenerated somehow – otherwise no glyceraldehyde 3-phosphate would be dehydrogenated, and glycolysis would stop. The problem is solved by reduction of pyruvate to lactate.


What happens to the lactate?

It is usually recycled – it is carried by the bloodstream to the LIVER where it is converted back to glucose.


What is the chemical reason why you can't work out vigorously at the top of your capacity for much long?

The lactate that builds up in the blood because of the fermentation causes a drop in pH. Not even top athletes can keep top speed for more than a minute because of this.


Why do you have to breath heavily after a long run? Why do alligators have to take rest for hours after a hunt?

Because no oxygen was present during the straining activities, forcing the body to reduce pyruvate to lactate instead. Afterwards, lactate has to be converted back to glucose in the liver through gluconeogenesis! This requires oxygen – time to pay the oxygen dept through heavy breathing. The amount oxygen needed and payed for by heavy breathing is the amount of oxygen needed top produce the ATP needed for gluconeogenesis. Gluconeogenesis is needed as the body used up all its stored glycogen during the sprint/hunt.


What is the cycle “pyruvate to lactate, lactate to glucose” called?

The Cori cycle! Named after the Cori couple who deduced the cycle in the 1940s.



How come migratory birds can fly such long distances without resting much?

Small animals have small systems, capable of carrying oxygen fast to the muscle cells in need. Bigger animals, such as humans, have systems to big and complicated to supply oxygen for sudden, intense muscle work. Such animals are usually slow-moving under normal conditions. We don't like to engage in intense muscle work and we don't unless we really have to run from a bear or loose the belly. Then lactate fermentation is needed to provide ATP in the muscles.


What is the result of fermentation preformed by yiest and other microorganisms?

Not lactate, but ethanol. Glucose is first converted to pyruvate – then pyruvate is converted to ethanol through this reaction : rita.


What is the enzyme present in all microorganisms that produce ethanol fermentation called?

Pyruvate decarboxylase. The CO2 resulting from ethanol fermentation is responsible for the bubbles in champagne as well as the holes in swiss cheese and causes the dough to rise when mixed with fermentable sugar during baking.


Thiamine pyrophosphate (TPP) is a co-enzyme facilitating the decarboxylation reactions catalyzed by both pyruvate dehydrogenase and pyruvate decarboxylate. Which property of the TPP facilitates this reaction?

The overall reaction is : pyruvate to acetaldehyde, catalyzed by pyruvate decarboxylate. This reaction requires TPP and Mg2+. TPP is a co-enzyme of pyruvate decarboxylate, and it is derived from vitamine B1. The functional part of TPP, that enables the reaction, is the thiazolium ring. See picture below :

The second carbon of the ring has an acidic H bound to it. Loss of this proton renders a carbanion which is the active agent in the following reactions. Normally, reactions that form carbanions are highly unfavorable, but in this case the positive charge on the tetravalent nitrogen next to the carbanion stabilizes the negative charge. The thiazolium ring acts as an “electron sink”, which is a very important feature in decarboxylation reactions. Electric sinks are, by definition, such groups that pulls electrons from a reactive center (in this case a carbanion) and thus stabilize an electron-deficient intermediate or transition state.

The carbanion of the TPP can perform a nucleophilic attack on the carbonyl group on the substrate. (This forms a single bond between the TPP and the substrate.)

The detailed description below is nicked from wikipedia :

1. The target bond on the substrate is broken, and its electrons are pushed towards the TPP. This creates a double bond between the substrate carbon and the TPP carbon and pushes the electrons in the N-C double bond in TPP entirely onto the nitrogen atom, reducing it from a positive to neutral form. 2. In what is essentially the reverse of step two, the electrons push back in the opposite direction forming a new bond between the substrate carbon and another atom. (In the case of the decarboxylases, this creates a new carbon-hydrogen bond. 3. In the case of transketolase, this attacks a new substrate molecule to form a new carbon-carbon bond.)In what is essentially the reverse of step one, the TPP-substrate bond is broken, reforming the TPP ylid and the substrate carbonyl.

Is the ATP yield from glycolysis under anaerobic conditions greater or smaller than the corresponding yield under aerobic conditions?

The yield of ATP by complete oxidation of a glucose molecule to CO2 is 30 32 ATP molecules – under aerobic conditions.

The ATP yeild from glycolysis during anaerobic conditions is only 2 ATP molecules!

This means that 15 times as much glucose must be consumed to yield sufficient ATP supply under anaerobic conditions. This is evident when studying cancer cells that initially don't have access to blood vessels – these tumors therefor consume glucose at a very high rate – a fact that is used in cancer diagnostics.


How can fermentation be used in food and industries?

Yoghurt's is produced when the bacterium lactobacillus ferments carbohydrates in milk to lactic acid. This causes the proteins to precipitate and gives rise to the characteristic texture and sour taste.


This drop in pH due to fermentation is an advantage over microorganisms usually living in higher pH – hence fermentation is a way to preserve food.


Industrial fermentation is used to different acids, such as formic, acetic and propionic acid. These fermentations are subjects to rigorous control of temperature and restricted air, of course. The factories; the microorganisms, reproduce them selves and don't give rise to many side products – a dream scenario for engineers.


How do yiest and other microorganisms regenerate NAD+?

Through ethanol fermentation


How is NAD+ regenerated in eykaryotic cells during hypoxic conditions?

Through reduction of pyruvate to lactate.



Some tissues are completely dependent on glucose as fuel – which ones?

Human brain. Testes. Renal medulla. Embryotic tissue.