Enzymes and Biological Reactions
5. Enzymes in Industry and Biotechnology
Learning outcomes
- I can describe how enzymes are used in industrial processes.
- I can explain the role of enzymes in food production and biotechnology.
- I can identify examples of enzymes used in detergents and medicine.
- I can evaluate the advantages of using enzymes in industry.
- I can explain how enzyme technology can improve efficiency and sustainability.
From Cells to Factories
Enzymes are biological catalysts. In living organisms, they speed up reactions involved in digestion, respiration, DNA replication, and many other processes.
Humans can also use enzymes to control useful chemical reactions outside living organisms.
This is called enzyme technology.
Enzymes are widely used in:
- food and drink production
- detergents
- textiles
- paper manufacturing
- biofuels
- biotechnology
- medicine
- genetic engineering
- laboratory testing
The global use of enzymes is possible because particular enzymes can catalyze particular reactions efficiently and selectively.
Why Are Enzymes Useful in Industry?
Industrial processes often require chemical reactions to happen:
quickly
reliably
and:
economically
Traditional chemical reactions may require:
- high temperatures
- high pressures
- strong acids or bases
- large amounts of energy
- hazardous chemicals
Enzymes can sometimes perform similar tasks under milder conditions.
For example, an enzyme-controlled process might operate at:
moderate temperature + normal pressure
rather than:
very high temperature + high pressure
This can reduce energy use and operating costs.
Enzymes as Industrial Catalysts
A catalyst increases the rate of a chemical reaction without being consumed as an ordinary reactant.
A simplified enzyme reaction is:
Enzyme + Substrate → Enzyme-Substrate Complex → Enzyme + Product
In industry, the substrate might be:
- starch
- protein
- lipid
- cellulose
- lactose
- DNA
- another organic molecule
The enzyme converts it into a useful product.
Enzyme Specificity Is Extremely Useful
One major advantage of enzymes is their:
specificity
An enzyme usually catalyzes a particular reaction or group of closely related reactions.
This allows manufacturers to produce desired products while reducing unwanted side reactions.
For example:
lactase acts on lactose
while:
proteases act on proteins
and:
lipases act on lipids
Selecting the correct enzyme allows a manufacturer to target a particular substance.
Industrial Enzymes Come from Living Organisms
Many commercially useful enzymes are originally obtained from microorganisms such as:
- bacteria
- fungi
- yeasts
Microorganisms are particularly useful because they can:
- grow rapidly
- be cultured in large quantities
- produce large amounts of enzymes
- be genetically modified
- grow in controlled industrial conditions
Producing Enzymes Using Fermentation
Industrial microorganisms are often grown inside large vessels called:
fermenters or bioreactors
Inside a bioreactor, conditions can be carefully controlled.
These may include:
- temperature
- pH
- oxygen supply
- nutrient concentration
- mixing
- microorganism population
These conditions are controlled to encourage efficient growth and enzyme production.
From Microorganism to Industrial Enzyme
A simplified industrial process is:
Select microorganism
↓
Grow microorganism in bioreactor
↓
Microorganisms produce enzyme
↓
Separate enzyme from culture
↓
Purify enzyme if necessary
↓
Formulate enzyme product
↓
Use enzyme in industrial process
Some applications require highly purified enzymes, while others can use less extensively purified preparations.
Enzymes in Food Production
The food industry is one of the largest users of enzymes.
Enzymes are used in making and processing:
- bread
- cheese
- yoghurt
- juice
- syrups
- lactose-free milk
- brewing products
- confectionery
- processed foods
Different enzymes are selected for different purposes.
Amylase in Food Production
Amylases break down starch.
A simplified reaction is:
starch → smaller sugars
Amylases are used in several industrial processes.
For example, they can help convert starch into sugars for:
- baking
- brewing
- glucose syrup production
- fermentation processes
Amylase in Bread Making
Flour contains starch.
Amylases can convert some starch into smaller sugars.
Yeast can use these sugars during fermentation.
This can help influence:
- dough fermentation
- loaf volume
- texture
- crust development
- freshness
Enzymes therefore contribute to both processing and final food quality.
Lactase and Lactose-Free Milk
Lactase catalyzes the breakdown of lactose.
The reaction is:
lactose + water → glucose + galactose
Milk naturally contains lactose.
In lactose-free milk production, manufacturers add lactase to break down much of the lactose before the milk is consumed.
This allows many people with lactose malabsorption to consume the product with fewer symptoms.
Immobilized Lactase
Instead of mixing an enzyme directly into a product, manufacturers can sometimes attach enzymes to a solid material.
This is called:
enzyme immobilization
For example, lactase can be immobilized onto beads.
Milk can then flow past the beads.
Milk containing lactose
↓
immobilized lactase
↓
lactose hydrolyzed
↓
lower-lactose product
What Is an Immobilized Enzyme?
An immobilized enzyme is an enzyme held in place rather than freely dissolved in the reaction mixture.
Enzymes may be:
- attached to surfaces
- trapped inside beads
- enclosed within membranes
- bound to insoluble materials
The substrate flows past or through the immobilized enzymes.
Advantages of Immobilized Enzymes
Immobilization can provide several advantages.
The enzyme can often be:
- separated easily from the product
- reused
- kept out of the final product
- used in continuous processing
- stabilized under some operating conditions
For example:
substrate enters → enzyme reactor → product leaves
while the enzyme remains inside the reactor.
This can reduce costs because the enzyme does not need to be replaced after every batch.
Pectinase in Fruit Juice Production
Plant cell walls contain substances including:
pectin
Pectinases break down pectin.
Fruit juice manufacturers can use pectinases during juice processing.
This can help:
- release more juice
- improve juice yield
- reduce cloudiness
- improve filtration
- clarify the final product
Enzymes in Cheese Production
Enzymes are also important in cheese making.
One important enzyme is:
chymosin
Chymosin causes milk proteins to coagulate.
This helps separate milk into:
curds
and:
whey
Traditionally, chymosin was obtained from animal sources.
Today, much commercial chymosin is produced using biotechnology.
Biotechnology and Chymosin
Scientists can place a gene encoding chymosin into suitable microorganisms.
The microorganisms then produce the enzyme.
The general idea is:
identify useful gene
↓
insert gene into microorganism
↓
grow microorganism
↓
microorganism produces enzyme
↓
collect enzyme
↓
use enzyme in food production
This is an important example of genetic engineering supporting industrial enzyme production.
Enzymes in Detergents
Modern biological detergents often contain enzymes.
Common detergent enzymes include:
- proteases
- lipases
- amylases
- cellulases
Each enzyme targets particular types of stains.
Proteases in Detergents
Proteases break down:
proteins
Protein-containing stains may include:
- blood
- egg
- milk
- some food stains
Proteases break large protein molecules into smaller, more soluble molecules that are easier to remove during washing.
Lipases in Detergents
Lipases break down:
fats and oils
Greasy stains contain lipids.
Lipase helps break these lipids into smaller components that can be removed more effectively by the detergent and water.
Amylases in Detergents
Amylases break down:
starch
Starch-containing stains can come from foods such as:
- sauces
- potatoes
- pasta
- rice
- desserts
Amylase helps break starch into smaller carbohydrates that are easier to wash away.
One Detergent, Several Enzymes
A detergent may contain several different enzymes because stains contain different substances.
For example:
Protein stain → protease
Fat stain → lipase
Starch stain → amylase
This demonstrates why enzyme specificity is useful in commercial products.
Lower-Temperature Washing
Enzymes can allow effective washing at lower temperatures than some traditional high-temperature washing methods.
This can reduce the energy needed to heat water.
Potential benefits include:
- lower electricity use
- reduced household energy costs
- lower associated greenhouse-gas emissions where electricity generation produces emissions
- less thermal damage to some fabrics
However, the enzymes must be designed to remain active under detergent conditions.
Industrial Enzymes Must Be Tough
A normal biological enzyme may not work well under industrial conditions.
For example, detergent enzymes may experience:
- alkaline pH
- different temperatures
- surfactants
- mechanical agitation
- other detergent chemicals
Scientists therefore search for or engineer enzymes that remain active under the required conditions.
Enzymes in Medicine
Enzymes also have important medical uses.
They can be used:
- as medicines
- in diagnostic tests
- in laboratory analysis
- to manufacture pharmaceuticals
- in molecular biology
Enzyme Replacement Therapy
Some diseases result from the body having insufficient activity of a particular enzyme.
In certain conditions, a manufactured enzyme can be given to patients.
This approach is called:
enzyme replacement therapy
The supplied enzyme performs some of the function of the missing or deficient enzyme.
Producing therapeutic enzymes requires careful purification and quality control because they are used medically.
Enzymes in Diagnostic Tests
Enzymes are useful because of their specificity.
A diagnostic test can use an enzyme-controlled reaction to detect or measure a particular substance.
One familiar example is measuring:
glucose
Some glucose-testing systems use enzyme reactions involving glucose to produce a measurable electrical or chemical signal.
This converts:
chemical information → measurable signal
Enzymes in DNA Technology
Enzymes are essential to modern biotechnology because DNA itself is manipulated using enzymes.
Important examples include:
- DNA polymerases
- restriction enzymes
- DNA ligase
- reverse transcriptase
Each performs a different molecular task.
Restriction Enzymes
Restriction enzymes recognize particular DNA sequences and cut DNA at or near those sequences.
They can therefore act like highly specific molecular cutting tools.
Scientists can use them when:
- analyzing DNA
- constructing recombinant DNA
- cloning genes
- performing some genetic-engineering procedures
Their usefulness comes from their high specificity.
DNA Ligase
DNA ligase joins pieces of DNA together.
A simple analogy is:
restriction enzyme = molecular scissors
DNA ligase = molecular glue
The analogy is simplified, but it helps describe their roles.
Together, these enzymes have been important tools in genetic engineering.
DNA Polymerase and PCR
DNA polymerase builds new DNA strands.
A laboratory technique called:
polymerase chain reaction (PCR)
uses DNA polymerase to make many copies of selected DNA regions.
PCR is widely used in:
- biological research
- genetic testing
- medical diagnostics
- forensic science
- biotechnology
Taq Polymerase
PCR repeatedly heats and cools DNA.
Many ordinary enzymes would lose function during repeated high-temperature steps.
A thermostable DNA polymerase called Taq polymerase became important because it can withstand the temperature cycling used in PCR.
This is an excellent example of choosing an enzyme whose properties match an industrial or laboratory process.
Enzymes in Biofuel Production
Plant material contains large amounts of:
cellulose
Cellulose is a carbohydrate polymer.
Enzymes called:
cellulases
can break cellulose into smaller sugars.
These sugars can then be fermented by microorganisms to produce fuels such as ethanol.
A simplified pathway is:
plant biomass → cellulose → sugars → fermentation → ethanol
This is one example of enzymes being investigated and used in more sustainable manufacturing systems.
Enzymes in the Textile Industry
Enzymes can also be used when processing textiles.
For example, cellulases can modify cellulose fibres in cotton.
Applications can include:
- fabric finishing
- removal of surface fibres
- changing the appearance of denim
- improving some fabric properties
Enzyme-based processing can sometimes replace harsher chemical treatments.
Enzymes in the Paper Industry
Enzymes are used in parts of pulp and paper processing.
Different enzymes can assist with:
- modifying fibres
- removing unwanted materials
- improving processing efficiency
- reducing the need for some chemical treatments
The exact enzymes and processes depend on the desired product.
Advantages of Enzymes in Industry
Enzymes can provide several major advantages.
1. They speed up reactions
Enzymes increase reaction rates.
This can increase manufacturing efficiency.
2. They are specific
They often produce fewer unwanted products.
3. They can work under mild conditions
Many enzymes function at moderate temperatures and pressures.
4. They can reduce energy use
Lower operating temperatures can mean less heating.
5. They can reduce harsh chemical use
Some enzyme processes replace or reduce strong chemical treatments.
6. They can be renewable
Enzymes can be produced repeatedly using living microorganisms.
7. Some can be reused
Immobilized enzymes can remain in reactors while products are removed.
Evaluating Enzyme Technology
Enzyme technology has many advantages, but it also has limitations.
| Advantages | Limitations |
|---|---|
| Highly specific | Enzymes can be sensitive to conditions |
| Can reduce unwanted reactions | Extreme temperature can denature enzymes |
| Often work at moderate temperatures | Unsuitable pH can reduce activity |
| Can lower energy requirements | Enzyme production and purification can be costly |
| Can reduce harsh chemical use | Some processes require specialized equipment |
| Can be produced by microorganisms | Contamination must be controlled |
| Immobilized enzymes may be reused | Immobilization itself adds processing costs |
Therefore, enzymes are not automatically the best choice for every industrial reaction.
Engineers must consider the entire process.
Cost Is Important
An industrial enzyme is useful only if the overall process is practical.
Companies must consider:
- enzyme production costs
- purification costs
- enzyme lifetime
- reaction speed
- operating temperature
- equipment costs
- product value
- waste disposal
- energy consumption
- ability to reuse the enzyme
A more expensive enzyme may still save money if it greatly reduces energy or processing costs.
Enzymes and Sustainability
Sustainability involves meeting current needs while reducing unnecessary environmental impacts and protecting resources for the future.
Enzyme technology can contribute to sustainability when it allows processes to use:
- less energy
- fewer hazardous chemicals
- renewable biological materials
- less water
- fewer processing steps
- lower temperatures
- less raw material
The actual environmental benefit depends on the complete industrial process, not simply on whether an enzyme is used.
Energy Efficiency
Consider two hypothetical processes.
Process A
Operating temperature: 150°C
Process B using an enzyme
Operating temperature: 40°C
If both processes produce the same useful product, Process B may require much less energy for heating.
That can reduce:
energy consumption
and potentially:
production costs and associated emissions
This is one reason enzymes are important in green chemistry.
Reducing Waste
Because enzymes are highly specific, they can sometimes produce fewer unwanted side products.
Suppose a traditional reaction produces:
desired product + several unwanted products
An enzyme might catalyze the desired transformation more selectively:
substrate → desired product
Fewer unwanted products can mean:
- easier purification
- less waste
- better use of raw materials
- reduced disposal costs
Renewable Production
Enzymes themselves can be produced biologically.
Microorganisms can be grown using nutrients in fermenters.
After enzyme extraction, new microorganisms can continue producing more enzyme.
This differs from some catalysts that depend on scarce or non-renewable raw materials.
However, industrial fermentation still requires:
- energy
- water
- nutrients
- equipment
Therefore, its overall sustainability must still be evaluated.
Improving Enzymes
Scientists do not always have to accept naturally occurring enzymes exactly as they are.
Biotechnology can be used to develop enzymes with improved properties.
Desired improvements might include:
- greater heat stability
- activity at lower temperatures
- tolerance of extreme pH
- increased reaction rate
- altered substrate specificity
- longer useful lifetime
Protein Engineering
Because enzyme function depends on protein structure, changing an enzyme's amino acid sequence can sometimes change its properties.
Scientists can modify genes encoding enzymes.
Microorganisms can then produce modified enzyme versions.
Scientists test these enzymes and identify versions with useful properties.
This is called protein engineering.
Directed Evolution
One powerful method of developing enzymes is called:
directed evolution
A simplified process is:
Start with enzyme gene
↓
create many gene variants
↓
produce many enzyme variants
↓
test their performance
↓
select the best variants
↓
repeat
Over several cycles, scientists can obtain enzymes better suited to a particular industrial process.
Example: Better Detergent Enzymes
Suppose a detergent company wants an enzyme that works effectively at low washing temperatures.
Scientists could search for or develop an enzyme that:
- remains active at low temperature
- survives alkaline detergent conditions
- works in the presence of surfactants
- remains stable during storage
A better enzyme could allow effective washing with less hot water.
This demonstrates the connection:
biotechnology → improved enzyme → improved industrial process
Example: A Continuous Enzyme Reactor
Imagine a factory using an immobilized enzyme.
Substrate solution enters
↓
passes through enzyme-containing column
↓
enzyme converts substrate into product
↓
product solution leaves
The enzyme stays behind.
This system can potentially operate continuously rather than as separate batches.
Batch vs Continuous Processing
In batch processing, a fixed amount of material is processed at one time.
After the reaction:
- product is removed
- equipment may be cleaned
- another batch begins
In continuous processing:
- substrate continually enters
- reaction occurs continuously
- product continually leaves
Immobilized enzymes can be particularly useful in continuous systems.
Choosing an Industrial Enzyme
Engineers must consider several properties when selecting an enzyme.
They might ask:
- What substrate does it act on?
- What products does it produce?
- What is its optimum temperature?
- What is its optimum pH?
- How stable is it?
- How quickly does it work?
- Can it be immobilized?
- Can it be reused?
- How much does it cost?
- Can it be produced at large scale?
This shows how several enzyme topics connect together.
Enzyme Specificity in Industry
Suppose a factory contains a mixture of molecules:
A, B, C and D.
The manufacturer wants to convert only molecule B.
A highly specific enzyme might catalyze:
B → desired product
while leaving:
A, C and D
mostly unchanged.
This selectivity can greatly simplify manufacturing.
Why Enzyme Conditions Must Be Controlled
Industrial enzymes are affected by the same factors as enzymes inside living organisms.
Important factors include:
- temperature
- pH
- substrate concentration
- enzyme concentration
- inhibitors
Factories therefore monitor conditions carefully.
If temperature becomes too high:
enzyme may denature
If pH moves too far from optimum:
enzyme activity may decrease
Precise control improves consistency and efficiency.
Connecting the Enzyme Topics
The industrial use of enzymes depends on the same concepts we use to understand enzymes in living organisms.
Enzyme specificity
explains why particular enzymes are selected.
Active-site structure
explains how substrates interact with enzymes.
Temperature and pH
determine how effectively enzymes function.
Denaturation
explains why operating conditions must be controlled.
Immobilization
allows enzymes to be retained and reused.
Genetic engineering
allows microorganisms to produce useful enzymes.
Case Study: Lactose-Free Milk
Consider the complete industrial process.
Problem: Some consumers have difficulty digesting lactose.
Enzyme: Lactase
Substrate: Lactose
Products: Glucose + galactose
Process: Milk is treated with lactase.
Result: Lactose concentration is greatly reduced.
Possible improvement: Immobilized lactase can allow enzyme reuse.
This one example connects:
- enzyme specificity
- food production
- immobilization
- industrial efficiency
- biotechnology
Case Study: Biological Detergent
Problem: Clothes contain protein, lipid and starch stains.
Enzymes:
Protease → proteins
Lipase → lipids
Amylase → starch
Benefit: Enzymes help break stains into smaller substances that are easier to remove.
Potential sustainability benefit: Effective washing at lower temperatures can reduce energy used for water heating.
Case Study: Fruit Juice
Problem: Pectin can make juice extraction and clarification more difficult.
Enzyme: Pectinase
Action: Breaks down pectin.
Possible benefits:
- increased juice yield
- improved clarification
- easier filtration
- improved processing efficiency
This shows how an enzyme can improve both production and final-product characteristics.
Case Study: Biotechnology and DNA
Problem: Scientists need to copy or manipulate DNA.
Enzymes:
Restriction enzymes → cut DNA at specific sequences
DNA ligase → joins DNA fragments
DNA polymerase → synthesizes DNA
These enzymes allow scientists to perform precise molecular operations that would otherwise be extremely difficult.
Evaluating an Industrial Claim
Imagine a company says:
"Our enzyme-based process is environmentally friendly."
This statement should be evaluated using evidence.
Questions might include:
- Does it actually use less energy?
- Does it use less water?
- Does it produce less waste?
- Does it reduce hazardous chemicals?
- How is the enzyme manufactured?
- Can the enzyme be reused?
- What resources are required to produce it?
- What happens to the waste?
- How does the entire process compare with the alternative?
This is important because:
using an enzyme does not automatically make a process sustainable.
The complete life cycle should be considered.
Did You Know?
Enzymes are increasingly used as biocatalysts to manufacture complex chemicals.
In some pharmaceutical processes, enzyme specificity can help produce a particular molecular form while generating fewer unwanted products.
This can make purification easier and reduce waste.
The combination of:
biology + chemistry + engineering
is a major part of modern industrial biotechnology.
Key Terms
- Industrial enzyme: Enzyme used to catalyze a commercial or manufacturing process.
- Biotechnology: Use of organisms, cells, biological molecules, or biological systems to produce useful products or processes.
- Biocatalyst: Biological catalyst, often an enzyme.
- Fermentation: Controlled use of microorganisms or cells to produce useful substances.
- Bioreactor: Vessel in which biological processes occur under controlled conditions.
- Immobilized enzyme: Enzyme held in place on or within a material.
- Amylase: Enzyme that breaks down starch.
- Protease: Enzyme that breaks down proteins.
- Lipase: Enzyme that breaks down lipids.
- Lactase: Enzyme that hydrolyzes lactose.
- Pectinase: Enzyme that breaks down pectin.
- Cellulase: Enzyme that breaks down cellulose.
- Chymosin: Enzyme used to coagulate milk proteins during cheese production.
- Restriction enzyme: Enzyme that recognizes particular DNA sequences and cuts DNA.
- DNA ligase: Enzyme that joins DNA fragments.
- DNA polymerase: Enzyme that synthesizes DNA.
- PCR: Technique used to amplify selected DNA regions.
- Protein engineering: Modification of proteins to produce desired properties.
- Directed evolution: Process of generating and selecting protein variants for improved properties.
- Sustainability: Meeting needs while reducing unnecessary environmental impacts and preserving resources.
- Enzyme specificity: Tendency of an enzyme to catalyze particular reactions involving particular substrates.
- Denaturation: Loss of the functional three-dimensional structure of a protein.
Key Industrial Examples
| Industry | Enzyme | Main Use |
|---|---|---|
| Baking | Amylase | Converts some starch into smaller sugars |
| Lactose-free foods | Lactase | Breaks lactose into glucose and galactose |
| Fruit juice | Pectinase | Breaks down pectin |
| Cheese | Chymosin | Coagulates milk proteins |
| Detergents | Protease | Breaks down protein stains |
| Detergents | Lipase | Breaks down fatty stains |
| Detergents | Amylase | Breaks down starch stains |
| Biofuels | Cellulase | Helps convert cellulose into fermentable sugars |
| Biotechnology | Restriction enzymes | Cut DNA at specific sequences |
| Biotechnology | DNA ligase | Joins DNA fragments |
| Biotechnology | DNA polymerase | Synthesizes DNA |
| Medicine | Various enzymes | Therapy, diagnosis and pharmaceutical production |
Key Relationships
Food production:
starch → amylase → smaller sugars
lactose → lactase → glucose + galactose
pectin → pectinase → smaller molecules
Detergents:
protein stain → protease
fat stain → lipase
starch stain → amylase
Biotechnology:
restriction enzymes → cut DNA
DNA ligase → joins DNA
DNA polymerase → copies/builds DNA
Industrial sustainability:
enzyme specificity → fewer unwanted reactions
lower operating temperature → potentially lower energy use
immobilization → enzyme reuse
biotechnology → improved enzyme properties
Key Takeaways
- Enzymes are widely used as industrial catalysts.
- Industrial enzymes are used in food production, detergents, medicine, biotechnology, textiles, paper processing, and biofuels.
- Many industrial enzymes are produced using microorganisms.
- Microorganisms can be grown in controlled bioreactors.
- Amylase is used to break down starch.
- Lactase is used to produce lactose-reduced or lactose-free foods.
- Pectinase is useful in fruit-juice processing.
- Chymosin is used during cheese production.
- Proteases, lipases, and amylases are commonly used in biological detergents.
- Proteases help remove protein stains.
- Lipases help remove fatty stains.
- Amylases help remove starch-containing stains.
- Enzyme detergents can support effective washing at lower temperatures, reducing energy used to heat water.
- Enzymes have important applications in medicine and diagnostics.
- Restriction enzymes, DNA ligase, and DNA polymerase are important tools in biotechnology.
- PCR depends on DNA polymerase.
- Taq polymerase is useful because it tolerates the high-temperature cycles used in PCR.
- Cellulases can help convert plant biomass into sugars for biofuel production.
- Immobilized enzymes are held in place rather than freely mixed with the product.
- Immobilized enzymes can often be separated easily and reused.
- Immobilized enzymes are useful in continuous industrial processes.
- Enzyme specificity can reduce unwanted side reactions.
- Enzymes often function under milder conditions than some traditional chemical processes.
- Lower temperatures and pressures can reduce energy requirements.
- Enzyme technology can sometimes reduce the use of harsh chemicals.
- Enzymes can contribute to more sustainable industrial processes.
- Enzyme production itself still requires energy, materials, water, and equipment, so the entire process must be evaluated.
- Industrial enzymes must be selected for appropriate temperature, pH, stability, and substrate specificity.
- Protein engineering and directed evolution can produce enzymes with improved industrial properties.
- Biotechnology allows microorganisms to manufacture useful enzymes at large scale.
- The major advantages of industrial enzymes are specificity, efficiency, mild operating conditions, and the possibility of reducing energy use and waste.
- A useful summary is: enzyme technology uses the catalytic power of biology to make industrial processes faster, more selective, and potentially more sustainable.