Unit 6: Bioenergetics — Long Questions
11th Class Biology · Unit 6: Bioenergetics
Definition Bioenergetics is the study of how energy flows through living systems.
Explanation It explores the processes through which cells store and expend energy. The processes of photosynthesis and respiration help to understand some of the principles of bioenergetics. Photosynthesis acts as an energy-capturing while respiration as an energy-releasing process.
ATP
★Discovery of ATP: ATP was discovered in 1929 by Karl Lohmann. In 1941, the Nobel prize winner Fritz Lipmann proposed that ATP is the main energy-transfer molecule in the cell.
The energy currency of cells
Cells use a special energy currency for their reactions. This currency is actually a nucleotide called adenosine triphosphate (ATP). When cells store energy, they make ATP. When cells need energy, they break down ATP. A molecule of ATP has three subunits i.e. adenine, (a nitrogen containing base); ribose (a five-carbon sugar) and three phosphate groups.
ATP-ADP Cycle
The covalent bonds between two phosphates are high-energy bonds. When one of these bonds is high-energy bonds. When one of these bonds is broken, inorganic phosphate (Pi) separates and energy is released. The breaking of one phosphate bond releases about 7.3 kcal (7,300 calories) per mole of ATP.
ATP + H₂O → ADP + Pi + energy (7.3 kcal/mole)
In common energy reactions only the outer P-P high energy bond breaks. When this happens, ATP becomes ADP (adenosine diphosphate) and one Pi is released.
In some cases, ADP is further broken down to AMP (adenosine monophosphate) and Pi.
ADP + H₂O → AMP + Pi + energy (7.3 kcal/mole)
Cells get energy from the oxidation of food. They store this energy by combining ADP with Pi to form ATP. So, we can summarize that ATP is made during energy-releasing processes and it is broken down during energy-consuming processes. In this way ATP transfers energy between metabolic reactions.
Photosynthesis
Definition Photosynthesis involves the use of light energy that is absorbed and converted into chemical energy by photosynthetic pigments.
★In this process the energy-poor inorganic compounds of carbon (i.e. CO₂) are reduced to energy-rich carbohydrates.
Equation Photosynthesis in plants can be summarized as:
6CO₂ + 12H₂O+ Light ——→ C₆H₁₂O₆ + 6O₂ + 6H₂O
Explanation Carbon dioxide, water and light are the reactants while glucose and oxygen are the products. Water appears on both sides of the equation because water is used as reactant in some reactions and released as product in others. However, there is no yield of water.
★Compensation Point: Photosynthesis uses the products of respiration and respiration uses the products of photosynthesis. Photosynthesis occurs only during day time but respiration goes on day and night.
In Dark During darkness, leaves and other parts respire and utilize oxygen and release carbon dioxide.
Dawn and dusk At dawn and dusk, when light intensity is low, the rate of photosynthesis and respiration may be equal for a short time. Thus, the oxygen released from photosynthesis is just equal to the amount required for cellular respiration. Also, the carbon dioxide released by respiration is just equal to the amount required by photosynthesizing cells. At this moment there is no net gas exchange between leaves and atmosphere. This is termed as compensation point.
At noon when the light intensity increases, the rate of photosynthesis also increases. At this time, there is more requirement of carbon dioxide. Respiration alone cannot supply this carbon dioxide. Similarly, the oxygen produced during photosynthesis is more than the need of the respiring cells. So, the result is the net release of oxygen coupled with the uptake of carbon dioxide.
Role of Light Light plays a crucial role in photosynthesis, providing the energy required to drive the chemical reactions that transform simple molecules into complex organic compounds. Light energy is absorbed by chlorophyll. The absorbed light energy is converted into chemical energy, which is in turn stored in organic compounds in the form of C-H bond energy.
Role of Carbon Dioxide
Sugar is formed by the reduction of CO₂ by using ATP and NADPH. In this way, CO₂ acts as the source of carbon for making sugars. Carbon dioxide enters the leaves through stomata. Carbon dioxide enters the leaves through stomata in large numbers in leaves. The entry of CO₂ into the leaves is dependent upon the opening of stomata.
★Source of CO₂: About 10% of total photosynthesis is carried out by terrestrial plants, the rest occurs in oceans, lakes and ponds. Aquatic photosynthetic organisms use dissolved CO₂, bicarbonates and soluble carbonates as carbon source. Land photosynthetic organisms use atmospheric CO₂ as carbon source.
Role of Water
Water is the source of hydrogen, for the reduction of CO₂ during photosynthesis. Oxygen released during photosynthesis comes from water and so water is an important source of atmospheric oxygen which most organisms need for aerobic respiration and thus for obtaining energy to live.
Contribution of Van Neil In 1930s, Van Neil hypothesized that plant splits water as a source of hydrogen, releasing oxygen as a by-product. Neil's hypothesis was based on the investigation on photosynthetic bacteria that make carbohydrate from carbon dioxide, but do not release oxygen later confirmed by scientists during 1940s.
• An experiment was conducted in which isotopic tracer (¹⁸O) of oxygen was used. In laboratory, scientists prepared water with heavy-oxygen i.e., H₂¹⁸O.
• They also prepared carbon dioxide with heavy oxygen i.e., C¹⁸O₂.
• Experimental green plants in one group were give water H₂¹⁸O and normal carbon dioxide i.e., C¹⁶O₂.
• Plants in the second group were given C¹⁸O₂ and normal water i.e., H₂¹⁶O.
• Both plants were given environment to conduct photosynthesis.
• Oxygen released during photosynthesis of both plants was collected and tested.
• It was found that plants of first group produced ¹⁸O but the plants of second group produced normal oxygen (¹⁶O).
Photosynthetic pigment
Photosynthetic pigments are present in thylakoid membranes. These pigments capture light energy necessary for photosynthesis. Some of the pigments are chlorophyll a, chlorophyll b, xanthophylls, carotenes.
Role of photosynthetic pigments Different pigments absorb light of different wavelengths (colours). Light behave like a stream of particles called photons. Pigment molecules absorb one photon at a time. When a pigment molecule absorbs a photon, its electrons move to higher energy level, so, it becomes energy-rich or excited.
★Wavelength of photon: Short wavelength photons (blue) have a higher energy than long wavelength (red) photons. More energetic photons (shorter wavelength) promote electrons to higher energy levels.
Bacteriochlorophylls
Chlorophyll is a lipid molecule. Chlorophylls are of different kinds. Chlorophyll a,b,c and d are found in plants and algae, while the others are found in photosynthetic bacteria and are known as bacteriochlorophylls.
Parts A molecule of chlorophyll consists of two parts i.e., a hydrophilic head and a hydrophobic tail.
Head The head is made of porphyrin ring, which further consists of four pyrrole rings (5-sided N-containing compounds). The four pyrrole rings are held together by a magnesium atom in the centre. In chlorophyll-a, the second pyrrole ring has methyl (CH₃) group while in chlorophyll-b, it has aldehyde (CHO) group at the same spot. The porphyrin ring of chlorophyll absorbs light.
Tail The tail is made of long hydrocarbon chain. It anchors the molecule in the thylakoid membrane.
Light Absorption Chlorophyll absorb mainly violet-blue and orange-red wavelengths of light. Green wavelengths of light are least absorbed by chlorophyll and are transmitted or reflected.
Accessory Pigments
Accessory pigments include all the pigments, other than chlorophyll-a, which can gather light for photosynthesis.
Chlorophyll-b is an accessory pigment and others are carotenoids (carotenes and xanthophylls) and phycobilins.
Occurrence Chlorophyll b and carotenoids are found in plants while phycobilins are found in the red algae and cyanobacteria.
Absorption of light When accessory pigments absorb light, they pass on the energy towards chlorophyll a. It is generally believed that the order of transfer of energy in plants is;
Carotenoids → Chlorophyll b → Chlorophyll a
Action spectrum Photosynthetic pigments absorb different wavelengths of light at different rates. Moreover, the different wavelengths are also differently effective in photosynthesis. The effectiveness of wavelengths of light is determined in terms of photosynthesis action spectrum. For getting action spectrum, a plant is illuminated with different colours of light one by one. While providing each colour, the rate of photosynthesis is measured by measuring the amount of oxygen emitted from leaves. The data is plotted in a graph called action spectrum. The first action spectrum was made by a German biologist, T W Engelmann in 1883. He worked on the photosynthetic pigments of Spirogyra. When the cells of a filament of Spirogyra were illuminated with different wavelengths of light, maximum photosynthesis occurred in the cells which received blue and red spectrum of light and so maximum oxygen was emitted from these cells.
Absorption Spectrum A graph showing different wavelengths absorbed by a pigment, is called absorption spectrum of the pigment. Absorption spectrum of chlorophylls indicates that absorption of blue light (430 nm) and red light (670 nm) is maximum. Absorption peaks of carotenoids are different from those of chlorophylls. Action spectrum of photosynthesis also shows that blue and red parts lights are the most effective. This means that the action spectrum of photosynthesis coincides with the absorption spectrum of photosynthetic pigments.
Some wavelengths not absorbed by chlorophyll-a are very effectively absorbed by chlorophyll-b and vice-versa. Such differences increase the range of light absorbed by both chlorophylls.
Definition For efficient absorption and utilization of solar energy, photosynthetic pigments are organized into clusters, called photosystems. These photosystems are embedded in thylakoid membranes of chloroplasts.
Components Photosystems contain photosynthetic pigments and the carriers of electron transport chain.
Each photosystem consists of a light gathering 'antenna complex' and a 'reaction centre'.
Antenna Complex Antenna complex has many pigment molecules which capture light energy and pass the excitation energy (in the form of high-energy electrons) to the reaction centre.
Reaction Centre The reaction centre has one or more molecules of chlorophyll-a, which pass the high-energy electrons to a primary electron acceptor. The electron acceptor passes them on to the series of electron carriers, collectively called electron transport chain.
Types In chloroplast, there are two photosystems, photosystem-1, (PS-I) and photosystem-II (PS-II). These are named so in order of their discovery.
PS-I PS-I has P700 chlorophyll-a molecule in its reaction centre and it absorbs maximum light of 700 nm.
PS-II The reaction centre of PS-II has P680 chlorophyll-a, which absorbs best the light of 680 nm.
Mechanism of photosynthesis
Photosynthesis is a redox (oxidation-reduction) process. As indicated in the photosynthesis equation below, when water molecules are split apart, they are actually oxidized (they lose electrons and hydrogen ions) and yield oxygen. Meanwhile, CO₂ is reduced to sugar as electrons and hydrogen ions are added to it. In this way oxidation and reduction go hand in hand.
Reduction———
6CO₂ + 12H₂O + light ———→ C₆H₁₂O₆ + 6O₂ + 6H₂O
———Oxidation———
However, it is not a simple, single – step process. Rather, it is a complex metabolic pathway consisting of a series of reactions. The light-dependent reactions take place on the thylakoid membranes of the grana while the light-independent reactions take place in the stroma of the chloroplasts.
Light Dependent Reactions
The key events in the light-dependent reactions of photosynthesis are (1) the absorption of light energy by photosynthetic pigments, (2) the excitation of electrons by that energy, and (3) the formation of ATP and NADPH.
Photophosphorylation The formation of ATP is the most important step of light-dependent reactions. It is called photophosphorylation. This process is either non-cyclic photophosphorylation or cyclic photophosphorylation.
Non-Cyclic Photophosphorylation It is the usual way of the production of ATPs during light-dependent reactions. In non-cyclic pathway, both photosystems i.e., PS-I and PS-II participate and two electron-chains are involved. It happens in the following way.
1. Absorption of light by PS-II: When light falls on PS-II, the energy level of chlorophyll molecules of its antenna centre rises. Two excited electrons move from them and pass to different chlorophyll molecules. The excited electrons reach P680 chlorophyll present in the reaction centre. Due to energy boost of P680 chlorophyll, is two excited electrons pass to the primary electron acceptor of photosystem-II. Due to it, an electron "hole" is created in P680 chlorophyll, which has become a strong oxidizing agent.
2. Photolysis of water: The electron "hole" in chlorophyll molecule is filled by the electrons from water. When water molecule reacts with oxidized chlorophyll in PS-II, it breaks into two hydrogen ions, an oxygen atom (which immediately combines with another oxygen atom to form O₂), and two electrons. These two electrons fill the "hole" in P680 chlorophyll. This water splitting step of photosynthesis is called photolysis. The oxygen produced during photolysis is the main source of atmospheric oxygen.
3. Electron flow from PS-II to PS-I: In step 1, the photoexcited electrons of P680 chlorophyll were received by primary electron acceptor of PS-II. Now, these electrons carriers called plastoquinone (PQ), cytochrome complex and plastocyanin (PC). As electrons move down the chain, their energy goes on decreasing and is used by thylakoid membrane to produce ATP through the process of chemiosmosis.
4. Absorption of light by PS-I: In the next step light energy is absorbed by PS-I. The energy level of its chlorophyll molecules boosts to very high level. The excited electrons of P700 chlorophyll of the reaction centre pass to the primary electron acceptor of PS-I. The electrons coming from PS-II fill the electron "hole" of P700 chlorophyll of PS-I.
5. Electron flow from PS-I to NADP+: The primary electron acceptor of PS-I passes the photoexcited electrons to a second electron transport chain. These electrons are received by ferredoxin (FD). An enzyme NADP reductase transfers these electrons from FD to NADP+. When NADP+ gets two electrons and an H+ ion, it is reduced to NADPH. This reaction stores the high-energy electrons in NADPH.
So, the light energy gets converted into chemical energy (ATP and NADPH). The zigzag path taken by electrons through PS-II and PS-II and electron transport chains, is called Z-scheme.
Cyclic Photophosphorylation
Under certain conditions, photoexcited electrons of PS-I take an alternative path called cyclic electron flow. This path uses PS-I but not PS-II. These electrons cycle-back from primary electron acceptor of PS-I to P700 chlorophyll via the electron transport chain. There is no production of NADPH and no release of oxygen. Cyclic flow however generates ATP. It happens when Calvin cycle slows down and NADPH accumulates in chloroplast.
Chemiosmosis
This process use the energy released from electron to synthesize ATP. During light-dependent reaction when electrons are transferred to the series of carriers of electron transport chain, it results in oxidation and reduction reactions. Electrons lose energy during this carrier-to-carrier transport.
Chemiosmosis is the mechanism in which thylakoid membranes couple these redox reactions with the synthesis of ATPs.
Process
• The energy released from electrons is spent for the active transport of H+ ions from the stroma of chloroplast to its inner compartment (lumen).
• In this way many H+ ions are deposited in the lumen. This H+ ion gradient in lumen has potential energy.
• The H+ ions diffuse back from lumen in stroma (from higher concentration in lumen to lower concentration).
• While diffusing, they pass through a special protein of the membrane of thylakoid cells. This protein is an enzyme called ATP synthase.
• This enzyme uses the energy yielded from the flow of H+ ions to make a bond between ADP and inorganic phosphate (Pi).
• So, ADP is converted into ATP and energy is packed in it.
★The electron transport chains in mitochondria and chloroplasts generate. ATP by the same mechanism of chemiosmosis.
Light – Independent Reactions
Light-independent reactions are a series of reactions which happen in the stroma of chloroplast. These reactions use carbon from CO₂, energy from ATP, and hydrogen ions from NADPH to construct energy-rich sugar molecules. These are also called dark reactions.
These reactions can occur in the absence as well as in the presence of light, as long as ATP and NADPH are available.
Discovery The details of dark reactions were discovered by Melvin Calvin and his colleagues at the University of California. That is why, the dark reactions are also called the Calvin cycle. Calvin was awarded Nobel Prize in 1961 for this work.
Phases The Calvin cycle is divided into the following phases.
Phase I Carbon Fixation
Carbon fixation refers to the initial incorporation of CO₂ into organic material. An enzyme known as ribulose bisphosphate carboxylase (or Rubisco; probably the most abundant protein on Earth) combines three molecules of CO₂ with three molecules of a five-carbon sugar named ribulose bisphosphate (RuBP). It results in the formation of six molecules of a three-carbon compound called 3-phosphoglyceric acid (3-PGA) or 3-phosphoglycerate.
Phase II Reduction
In this phase, six phosphate groups are taken from six ATPs and added to molecules of 3-PGA. In this way, each 3-PGA changes into 1, 3-bisphosphoglyceric acid. Each 1,3-bisphosphoglyceric acid is then reduced to Glyceraldehyde 3-phosphate (G3P). NADPH provides hydrogen for this reduction. During this step, phosphate groups are also detached from 1,3-bisphosphoglyceric acid.
In this way, six molecules of G3P are produced, out of which one molecule leaves the cycle. It combines with another G3P and makes glucose, which may be then converted to other carbohydrates.
★G3P in Glycolysis: G3P is the same three-carbon sugar which is formed in glycolysis (first phase of cellular respiration) by the splitting of glucose.
Phase III Regeneration of RuBp
Through a series of reactions, five molecules of G3P are converted into three molecules of Ribulose phosphate (RuP). One phosphate group is added to each RuP to make three molecules of RuBP by using three ATPs of light reactions. These RuBP receive CO₂ again and the cycle continues.
Definition Cellular respiration is the universal process by which organisms break down complex carbon containing compounds (e.g., glucose) to get useable energy.
Equation Cellular respiration can be summarized as:
C₆H₁₂O₆ + 6O₂ ——→ 6CO₂ + 6H₂O+ Energy
The arrangement of atoms in glucose has more stored energy while there is much less energy in the arrangement of atoms in CO₂ and H₂O. The reason is that there are many C-H bonds in glucose but there are no such bonds in CO₂ and H₂O.
The exchange of CO₂ and O₂ between the organism and its environment is called external respiration or breathing.
Step-by-step oxidation Cellular respiration is the process by which energy is made available to cells in a step-by-step oxidation of food in the cells.
★Many of the reactions that occur in your cells also occur in the cells of frog mice, planaria, mushrooms and radishes.
Respiratory Fuel The basic events in cellular respiration in all cells are much similar. Almost all cells in all organisms use glucose as energy source. That is why, glucose is known as respiratory fuel.
Types There are two main types of cellular respiration:
1. Anaerobic respiration (fermentation) takes place in the absence of oxygen.
2. Aerobic respiration takes place in the presence of oxygen.
In the first step of both these types, glucose is split into two molecules of pyruvic acid (C₃H₆O₃) in a process called glycolysis. The next reactions of pyruvic acid are different in anaerobic and aerobic respiration.
Anaerobic Respiration Anaerobic respiration happens in many microorganisms and in some cells of higher plants. It also happens in the muscle cells of vertebrates. In anaerobic respiration, glucose is not completely oxidized. This type of respiration yields relatively small amount of energy from glucose molecule. As a result of anaerobic respiration, one glucose molecule yields only two ATPs (only about 2% of the energy present in glucose). The energy in two ATPs is equivalent to 14.6 kcal.
Types of Fermentation
Anaerobic respiration consists of glycolysis followed by the reduction of pyruvic acid by NADH to either lactic acid or alcohol and CO₂ i.e., it may again be classified as;
a. Alcoholic Fermentation: In primitive prokaryotic cells (bacteria) and in some eukaryotic cells such as yeast, pyruvic acid is further broken down by alcoholic fermentation into alcohol (C₂H₅OH) and CO₂.
2(C₃H₄O₃) ——————→ 2(C₂H₅OH) + 2CO₂
Pyruvic acid Ethyl alcohol
b. Lactic acid Fermentation: In lactic acid fermentation, each pyruvic acid molecule is converted into lactic acid C₃H₆O₃ in the absence of oxygen gas.
2(C₃H₄O₃) ————4H———→ 2(C₃H₆O₃)
Pyruvic acid Lactic acid
This form of anaerobic respiration occurs in muscle cells of humans and other animals. It happens during extreme physical activities, when oxygen cannot be transported to the cells as rapidly as it is needed. Many bacteria also use lactic acid fermentation to get energy.
★ Evolution of Aerobic Respiration
When life evolved on planet Earth free O2 was not available. So, only anaerobic respiration was possible. But with the evolution of photosynthesis on Earth, molecular oxygen accums accumulated slowly in the atmosphere. The presence of free oxygen made evolution of aerobic respiration possible.
Mechanism The complete breakdown of glucose molecule occurs only in aerobic respiration. During this process, glucose is broken down to pyruvic acid which is then completely oxidized to CO2 and water and all the energy stored in its C-H bonds, is released.
Stages Cellular respiration is a continuous process, but for study purposes we can divide it into four main stages.
1. Glycolysis 2. Pyruvic acid oxidation
3. Krebs cycle or citric acid cycle 4. Electron transport chain and chemiosmosis
Glycolysis occurs in the cytosol and oxygen is not essential for this stage. The other three stages occur within mitochondria where the presence of oxygen is essential.
Definition Glycolysis is the breakdown of glucose into two molecules of pyruvic acid. Glycolysis takes place in both types of respiration i.e., anaerobic and aerobic.
Enzymes The breakdown of glucose takes place in a series of steps, each catalysed by a specific enzyme. All these enzymes are found dissolved in the cytosol. In addition to the enzymes, ATP and coenzyme NAD+ (nicotinamide adenine dinucleotide) are also essential.
Glycolysis involves following reactions.
1. Preparatory Phase
It involves the expenditure of energy and the breakdown of glucose. It consists of the following steps:
• A phosphate group is transferred from ATP to glucose. As a result, glucose changes into of glucose 6-phosphate.
• Glucose 6-phosphate is converted into its isomer called fructose 6-phosphate.
• Another ATP molecule transfers a second phosphate group to fructose 6-phosphate. So, it becomes fructose 1, 6-biphosphate.
• Fructose 1, 6-biphosphate is highly reactive and breaks into two molecules of three-carbon intermediates i.e., glyceraldehyde 3-phosphate (G3P) and dihydroxy acetone phosphate (DAP). These are inter-converted and result in two molecules of G3P.
2. Oxidative Phase
It involves the removal of hydrogen from G3P and packing of released energy in the form of ATP. It consists of the following steps:
Occurrence Glycolysis occurs in cytosol and oxygen is not essential for it.
• Each G3P is oxidized to its acidic form. In this step, two hydrogen atoms (containing two high-energy electrons) are removed from G3P and transferred to NAD+. At the same time,
Pyruvic acid does not directly participate in Krebs cycle. It has to go through the following changes before entering the Krebs cycle.
• A molecule of carbon dioxide is removed from pyruvic acid. So, it changes into acetaldehyde.
• Acetaldehyde is oxidized (hydrogen is removed) to make acetyl group. A molecule of NAD+ is reduced to NADH.
• Acetyl group combines with coenzyme-A (CoA) to form acetyl-CoA.
Krebs Cycle
This cycle was worked out by British biochemist, Sir Hans Krebs so it is called the Krebs cycle. It is also called the citric acid cycle, after the six-carbon citric acid molecule formed in its first step. All steps of the citric acid cycle occur in mitochondria. It involves following reactions.
• Pyruvic acid formed during glycolysis is first converted into Acetyl CoA. It now enters the cyclic series of chemical reactions of Kreb's cycle.
• Acetyl-CoA splits into CoA and acetyl group. The acetyl group combines with a four-carbon molecule, oxaloacetic acid. As a result, six-carbon citric acid is formed.
• Citric acid undergoes an oxidative decarboxylation reaction. It is decarboxylated (releasing a molecule of CO2) and then oxidized (reducing an NAD+ to NADH). So, a five-carbon molecule called alpha-ketoglutaric acid is formed.
• Alpha-ketoglutaric acid undergoes further oxidation and decarboxylation. It results in the formation of a four-carbon molecule i.e., succinic acid. Succinic acid joins with CoA and makes succinyl CoA.
• The bond between succinic acid and CoA is a high-energy linkage. It again splits into CoA and succinic acid. The energy released in this reaction, is used in making a molecule of ATP.
• Succinic acid is oxidized to fumaric acid. When its two hydrogen atoms are removed, the free energy is not enough to reduce NAD+. So, a different electron acceptor i.e., the coenzyme flavin adenine dinucleotide (FAD) is used and is reduced to FADH2.
• In order to regenerate oxaloacetic acid, a molecule of water added to fumaric acid and it is changed to malic acid.
• Malic acid is oxidized to produce oxaloacetic acid. The hydrogen and electrons released from malic acid convert an NAD+ to NADH. This completes the cycle and oxaloacetic acid is now free to bind to another molecule of acetyl CoA to initiate the cycle.
Electron Transport Chain
In electron transport chain the electrons are transferred from the reduced coenzymes i.e., NADH and FADH2 to a series of electron carriers and finally to oxygen. After getting the electrons, the oxygen attaches with hydrogen ions and forms water.
The transfer of electrons to the series of carriers and reduction reactions i.e., a carrier is oxidized when it loses electrons and next carrier is reduced when it gains electrons and next carrier reduction reactions i.e., a carrier is oxidized when it loses electrons and next carrier is reduced when it gains electrons and next carrier is reduced when it gains electrons and next carrier reduction.
Chemiosmosis Chemiosmosis is the mechanism in which membranes are used to couple these redox reactions with the synthesis of ATPs.
Pathway of electrons The electrons transport chain of respiration is built in the inner membrane of the mitochondrion. At the start of electron transport chain, NADH is oxidized, and the released electrons are taken up by coenzyme Q. The reduced CoQ transports electrons to cytochrome 'b' which in turn transports them to cytochrome 'c'. Cytochrome 'c' then transports electrons to cytochrome 'a' complex (a complex of two cytochromes). This complex transports electrons to an atom of oxygen that is present at the bottom end of the chain.
Synthesis of ATP As redox (reduction-oxidation) occurs, the energy released from the electrons is used for the active transport of H+ ions from one side (the matrix of mitochondrion) of the membrane to the other (the inter-membrane space). In this way, many H+ ions are deposited in the inter-membrane space. The resulting H+ ion gradient stores potential energy. The H+ ions diffuse back along their concentration gradient from the inter membrane space to the matrix.
On their way they pass through a special protein known as ATP synthase. As the H+ ions move through this protein, their flow drives the synthesis of ATP. Oxidation of one molecule of NADH in electron transport chain produces three ATP. While oxidation of one FADH2 produces two ATP. At the end, the two hydrogen ions are taken by the oxygen atom which has also taken two electrons to form water.
Cells generate ATP by phosphorylation i.e. adding a phosphate group to ADP. A cell has two ways to do this: chemiosmotic phosphorylation (chemiosmosis) and substrate-level phosphorylation. Substrate-level phosphorylation is much simpler than chemiosmosis. It does not involve any membrane or electron transport chain. In this process, an enzyme transfers a phosphate group from an organic substrate molecule to ADP. The products are a new organic molecule and a molecule of ATP. For example; during the last step of glycolysis, an enzyme transfers phosphate group from phosphoenol pyruvic (PEP) acid to ADP. As a result, ADP becomes ATP and PEP is changed into pyruvic acid. Substrate-level phosphorylation accounts for only a small percentage of the ATP that a cell generates. This reaction can be shown as:
The NADH and FADH2 produced during glycolysis and Krebs cycle pass on their energy-rich electrons to the electron transport chain and ATPs are produced.
The NADH molecule generated in the Krebs cycle causes the production of three ATP molecules, during chemiosmosis.
extracted from the aerobic oxidation of glucose
• Glycolysis takes place in cytoplasm and the NADH produced during glycolysis, have to be transported across the mitochondrial membrane. It costs one ATP molecule per NADH. Thus each NADH of glycolysis produces two ATP molecules in the final balance sheet instead of three.
• Each FADH2 molecule leads to the production of two ATP molecules.
In this way, aerobic oxidation of glucose yields a net profit of 36 ATP molecules. While during the glycolysis of anaerobic oxidation only 2 ATP molecules are generated. Thus, aerobic oxidation is 18 times more efficient than anaerobic.
• Free glucose molecules are not common in our diet. Rather, we consume sucrose and other disaccharides, starch, and fats and proteins.
• Proteins may also be used as fuel but they must be digested to their constituent amino acids.
• Typically, a cell uses most of the amino acids to make its own proteins.
• Some amino acids are deaminated (amino group detached) and then are converted to other organic compounds.
• These compounds are usually converted to pyruvic acid, acetyl CoA, or the organic acids in the Krebs cycle, and their energy is converted to ATP.
• Lipids are excellent cellular fuel because they contain many carbon-hydrogen bonds. They are first hydrolysed into glycerol and fatty acids.
• Glycerol is converted to glyceraldehyde 3-phosphate, an intermediate in glycolysis.
• While the fatty acids are changed into acetyl CoA. In this way both the fatty acids and the glycerol enter cellular respiration.
Photorespiration
The respiratory activity that occurs in green cells in the presence of light resulting in release of carbon dioxide is termed as photorespiration. It needs oxygen and produces CO2 and H2O like aerobic respiration. However, ATP is not produced during photorespiration.
Mechanism of Photorespiration
RuBP carboxylase (rubisco) catalyses the addition of CO2 to RuBP to make phosphoglyceric acid (phosphoglycerate), which is further reduced to form glucose. However, when the relative concentration of CO2 decreases and there is more oxygen in leaf cells, rubisco acids catalyses the breakdown of RuBP into two molecules i.e., one phosphoglycerate and one phosphoglycolate (a two-carbon molecule). Phosphoglycolate is converted into glycolate, which moves from chloroplast to peroxisome. Here, it is metabolized to glyoxylate by using O2. This reaction also produces toxic hydrogen peroxide (H2O2). Glyoxylate is then converted to glycine, which is transported to mitochondrion. Here, two molecules of glycine form a molecule of serine. Serine is then transported to peroxisome. Here, it is converted to glycerate. From peroxisome, glycerate moves to chloroplast, where it is changed to phosphoglycerate which can re-enter Calvin cycle.
Disadvantages of Photorespiration
• Plants that use Calvin cycle to fix carbon are called C-3 plants. When photorespiration occurs in these plants, they lose between a 25% to 50% of their fixed carbon. It results in reduction in their yields.
• The rate of photorespiration also depends on temperature. At higher temperatures the oxidative activity of rubisco increases than its carbon fixing activity. In tropical climates, especially those in which the temperature is often above 28°C, the problem is a severe and it has a major negative impact on agricultural yields.
• When photosynthesis first evolved, there was little oxygen in the atmosphere. So, there was little or no photorespiration. After millions of years, free O2 accumulated in the atmosphere and competition started between CO2 and O2 for the same active site of rubisco. It led to the problem that photorespiration now poses.
Adaptations to the problems of Photorespiration
Plants of warmer climates evolved the following two ways to deal with the problem of photorespiration.
C-4 Photosynthesis
Some plants including grasses (corn, sugarcane and sorghum) and about two dozen other plant groups run a special pathway called C-4 photosynthesis in addition to the normal Calvin cycle. In their leaves, the mesophyll cells have less air spaces. The enzymes of Calvin cycle are more deposited in specialized cells called bundle- sheath cells, which are impermeable to CO2.
During C-4 photosynthesis in mesophyll cells, CO2, is attached with a 3-carbon molecule called phosphoenol pyruvic acid. It results in the formation of a four-carbon molecule oxaloacetic acid. Due to this first 4-C product, this process is called C-4 photosynthesis and the plants are called C-4 plants. Oxaloacetic acid is then converted to malic acid, by using NADH. Malic acid is broken down to pyruvic acid and CO2. These cells can hold CO2 in high concentration of CO2 increases in these cells and they run Calvin cycle instead of them. So, concentration of CO2 increases in these cells and they run Calvin cycle instead of photorespiration. Pyruvic acid produced in bundle sheath cells returns to mesophyll cell and is converted again to phosphoenol pyruvic acid b using and ATP.
In hot climates, many succulent plant such as Cacti, pineapples and some other plant groups perform Crassulacean acid metabolism or CAM (after the plant family Crassulaceae in which it was first discovered). In these plants, the stomata open during the night and close during the day. Closing stomata during the day prevents water loss and removal of CO2. So, rate of photorespiration is reduced due to high concentration of carbon dioxide. The carbon dioxide necessary for producing sugar is provided from organic molecules made the night before. Like C-4 plants, these plants use both C-4 and C-3 pathways.