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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
Table 2.28. Psychrophilic enzymes have these distinctive features.
Source
Enzyme
(psychrophile) Applications
Cold temperature range
Cold-adapted
lipases
Psychrophilic
proteases
Cold-active
amylases
Table 2.29. Characteristics of thermophilic enzymes.
Enzyme
Thermostable DNA
polymerases
Thermophilic
proteases
Heat-resistant
amylases
Psychrophilic
bacteria
Psychrophilic
fungi
Psychrophilic
archaea
Source (thermophile) Applications
Thermus
aquatics
Thermophilic
bacteria
Thermophilic
fungi
Organic synthesis, speciality compounds,
and medicinal drugs
Industrial kitchens, detergent creation, and
frigid cleaning agents
Baking resistant to low temperatures and
starch hydrolysis
Below 20 °C
Below 15 °C
Below ten °C
Temperature range
Industrial applications of PCR in the
food and pharmaceutical sectors
Baking and hydrolysis of starch 60 °C–80 °C
Industrial applications of PCR in the
food and pharmaceutical sectors
50 °C–95 °C
70 °C–90 °C
catalyze esterication and transesterication processes well, even at refrigerator temperatures [133] (table 2.28).
2.8.2 Thermophiles (heat-loving)
Thermophiles are a kind of extremophile that can survive at hot temperatures (over 50 °C). These creatures have adapted in unique ways to live in such extreme heat. Because of their remarkable durability and activity at high temperatures, thermo­philic enzymes are an excellent choice for industrial applications that call for high heat. PCR requires thermostable DNA polymerases, which are generated by thermophilic bacteria like Thermus aquaticus (PCR). PCR is a vital tool in molecular biology since it allows for the amplication of DNA sequences. DNA polymerases from thermophiles may continue to operate and keep their catalytic efciency even at the high temperatures required for DNA denaturation during the PCR process [134] (table 2.29).
2.8.3 Acidophiles (acid-loving)
Acidophiles are extremophiles that thrive in environments with a pH level of 3 or below. To thrive in these harsh conditions, these bacteria have evolved remarkably
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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
Table 2.30. Characteristics of acidophilic enzymes.
Source
Enzyme
Acid proteases Aspergillus niger Manufacturing of cleaning products and
Acid cellulases Acidophilic
Acidophilic
amylases
(acidophile) Applications
food
Hydrolysis of cellulose for use in making
bacteria
Acidophilic
archaea
biofuels
Low-pH starch hydrolysis pH < 4
pH range
pH < 3
pH < 4
stable enzymes and are active at low pH levels. Food processing and detergent manufacturing are only two examples of industries that benet from using acid­ophilic enzymes. Fungi that thrive in acidic environments, such as Aspergillus niger, produce acid proteases, which are most active and stable at acidic pH values. In the food industry, these acid proteases play a vital role in cheesemaking, meat tender­ization, and protein breakdown. Their high acidic activity facilitates protein hydrolysis and modication in several food processing contexts [135] (table 2.30).
2.8.4 Alkaliphiles (alkaline-loving)
Alkaliphiles are extremophiles that thrive in environments with a pH greater than 9. Because of the challenges of high alkalinity levels, these microorganisms have evolved to produce alkaliphilic enzymes. The capacity of alkaliphilic enzymes to function normally and remain stable in an alkaline environment sets them apart. Since many manufacturing procedures need an environment with a high pH, they have attracted much attention in biotechnology [136]. Bacillus species, which are alkaliphilic bacteria, produce alkaline proteases, an enzyme. Due to their stability and activity at high pH levels, these enzymes nd widespread application in laundry detergents. Stains on clothes, such as those caused by food and blood, maybe more easily removed with the help of alkaline proteases, which are enzymes that break down proteins. Alkaline protease detergents allow for more eco-friendly, lower­temperature washing without sacricing fabric quality [137 ] (table 2.31).
2.8.5 Halophiles (salt-loving)
Some organisms, called halophiles, can tolerate far higher salt concentrations than is typical, and hence, they thrive in environments like salt ats and salty lakes. These microorganisms produce halophilic enzymes to help them survive in salty con­ditions. Because of their stability and activity in high salt concentrations, halophilic enzymes play a signicant role in various industrial applications. Halophilic archaea generate halophilic-amylases, enzymes that hydrolyze starch efciently in high-salt environments. Enzymes like this are helpful in both the food and textile industries. In the textile industry, halophilic-amylases are used to break down starch-based
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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
Table 2.31. Characteristics of alkaliphilic enzymes.
Source
Enzyme
Alkaline
proteases
Alkaliphilic
lipases
Alkaline
amylases
Table 2.32. Characteristics of halophilic enzymes.
Enzyme
Halophilic α-
amylases
Halophilic
proteases
Halophilic
lipases
(alkaliphile) Applications
Bacillus species Cleaning agents, leather tanning pH > 9
Alkaliphilic
bacteria
Alkaliphilic fungi Detergent production and the hydrolysis of
Source (halophile) Applications
Halophilic
archaea
Halophilic
bacteria
Halophilic
fungi
Cleaning product creation and organic
synthesis
starch
Food processing and the de-sizing of
textiles
Protein breakdown and bioprocessing High-salt
Synthetic organic compounds and the
creation of detergents
pH Range
pH > 9
pH > 9
Salt concentration
High-salt
environments
environments
High-salt
environments
sizing agents during the designing process. These enzymes aid in the starch hydrolysis process, improving processed foodstexture and quality [138] (table 2.32).
2.8.6 Applications of extremozymes in biotechnology
Extremozymes, enzymes produced by extremophiles, have several uses in biotech­nological processes because of their unique properties and adaptability to extreme conditions. Several industries, including biofuels, food processing, detergents, and medications, have been revolutionized by these enzymesincreased efciency and selectivity [139] (table 2.33).

2.9 Downstream process intensification

The enzyme synthesis processing steps in the bioprocessing pipeline may be made more efcient and productive using a novel approach known as downstream process intensication. The purication, separation, and recovery of enzymes must be accelerated and improved by incorporating and using state-of-the-art procedures as part of this process optimization. Researchers in biotechnology may be able to increase production output, lower costs, and develop greener production processes by concentrating on the process that follows [140].
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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
Table 2.33. Applications of extremozymes in biotechnology.
Enzyme Application
Cold-adapted lipases Synthetic organic chemistry and detergent development Thermostable DNA polymerases Reverse transcription-PCR Acid proteases Manufacturing of cleaning agents and foods Alkaline proteases Cleaning agents, leather tanning Alkaliphilic lipases Cleaning product creation and organic synthesis Alkaline amylases Detergent production and the hydrolysis of starch Halophilic α-amylases De-sizing in the textile industry, industrial cooking Halophilic proteases Protein breakdown in bioprocessing Halophilic lipases Cleaning product creation and organic synthesis
2.9.1 Continuous chromatography
Ongoing chromatography has some benets over batch chromatography, and is a cutting-edge method for improving downstream processes. Continuous chromatog­raphy was developed in the 1970s. It is a technique that facilitates the uninterrupted purication and segregation of enzymes in a way that allows for a continuous ow, resulting in increased efciency and decreased processing duration [141]. Continuous chromatography, also sometimes called Simulated Moving Bed (SMB) chromatog­raphy, can be used to clean enzymes. SMB chromatography is a constant procedure whereby feed, adsorption, and eluent are continuously transported through a series of static columns. As a result, a counter-current ow pattern is noticed, leading to an improvement in the yield of the chromatographic splitting phase. SMB chromatog­raphy in industrial-scale enzyme manufacturing is benecial since it needs a much lower amount of solvent, which lowers costs and enhances output rates [142]. Some advantages of continuous chromatography are:
method of purication and isolation that occurs continuously;
continuous tracking and regulation;
decreased use of reducing agents;
improvements in output and productivity;
lower infrastructure requirements.
2.9.2 Process integration and optimization
Process integration and optimization include the systematic examination and improvement of various bioprocessing procedures to create a workow that is both more efcient in terms of productivity and more economical in terms of cost. This technique utilizes several unit operations, state-of-the-art analytical techniques, and process modelling to improve enzyme synthesis and subsequent processing. The production of enzymes may be optimized with the use of computer-aided process design and cutting-edge software tools and algorithms. Biotechnologists may enhance process yields and decrease production costs by simulating different process settings and parameters to nd the optimal operating conditions. Computer-aided
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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
process design (CAPD) is advantageous when dealing with complex multistage processes since it allows the exploration of various scenarios without extensive testing [143]. Benets of process integration and optimization are:
enhanced performance and output;
reduced enzyme production costs Rapid prototyping and scaling;
improved steady operation and stability;
methods that do not harm the environment.
2.9.3 Advanced ltration techniques
One of the most critical ways cutting-edge ltering techniques contribute to ramping up downstream processes is by improving enzyme separation and purication. These strategies boost ltration output and efciency using modern membrane materials, cutting-edge mediums, and specialized equipment.
2.9.3.1 Tangential flow filtration (TFF)
TFF is a more efcient ltering technology often used in the enzyme purication). It employs a semi-permeable membrane to size-separate enzymes from the other components of the feed solution. Compared to traditional dead-end ltration, TFFs cross-ow mode reduces the likelihood of lter clogging while increasing ltration efciency. TFF may be used to concentrate and purify large volumes of fermentation broth, hence boosting the efciency of the process [144]. Advantages of advanced ltration techniques are:
enzyme purication and isolation at high yields;
lter fouling is reduced, increasing lter life and decreasing processing times;
production of enzymes on a massive scale is feasible;
reduced loss of enzyme activity during ltering;
enzyme purication and isolation at high yields.
2.9.3.2 Depth filtration
Depth ltration is often used in the enzyme industry for purication and down­stream process intensication. This technique involves ltering the enzyme solution through a porous matrix, such as a bre depth lter, which traps particles and impurities while letting the enzymes pass through. Depth ltering is a straightforward and cheap method for clarifying and partially purifying enzyme solutions. Clarifying the fermentation broth often involves depth
ltration as part of the enzyme production process. Most of the time, the fermentation broth has foreign substances like microbial cells or cell debris. During a depth filtering step, the bulk of the solid particles in the broth are removed, leaving a somewhat claried enzyme solution. This partial purication facilitates further downstream processing steps, including chromatogra­phy and ultraltration [145]. Advantages of depth ltration are:
method of inexpensive purication;
strong ability to trap particles;
enzyme breakdown is kept to a minimum during ltration, making it feasible
for industrial enzyme manufacturing;
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Introduction to Pharmaceutical Biotechnology, Volume 2 (Second Edition)
easy to understand and implement procedure;
method of inexpensive purication.
2.9.3.3 Crossflow filtration
Crossow ltration is a sophisticated downstream process intensication strategy for the concentration and purication of enzymes. In contrast to traditional dead-end
ltration, in which the feed is constantly passed through the lter, cross-owltration employs a tangential ow that decreases lter clogging. This technique
isolates and concentrates enzymes by permitting continuous feed circulation across the lter surface. Enzyme production using ultraltration often employs cross-ow ltration. Ultraltration concentrates enzymes by rejecting molecules too small to pass through the ultraltration membrane. This approach is ideal when dealing with enzymes that are easily damaged by heat since it may be used at milder temper­atures. Ultraltrations ability to recover concentrated enzyme solutions aids in subsequent purication steps [146]. Advantages of cross-ow ltration are:
effective and continuous separation method;
reduced lter clogging and increased lter longevity;
heat-sensitive enzymes can function at a low temperature;
effective factor concentration at a high level;
production of enzymes in large quantities.
2.9.4 Automation and robotics in downstream processing
Automation and robotics have made downstream processing more efcient, precise, and repeatable. Complex tasks, including sample management, liquid handling, chromatography, and ltration, may be performed by automated systems with little or no human intervention [147]. Adopting this technology allows scientists to increase enzyme output while decreasing processing times and improving efciency. Automation and robotics have enabled high-throughput screening of enzyme variants to discover mutants with enhanced stability, activity, or substrate selectivity. Scientists can rapidly screen hundreds of mutant enzymes thanks to automated liquid handling systems’ ability to produce and analyze various enzyme variants. These speed up enzyme engineering, allowing for the development of more valuable enzymes [148]. Advantages of automation and robotics in downstream processing are:
increased effectiveness and output in all processes;
prevention of mistakes made by humans;
the engineering of enzymes sped up;
improved ability to replicate studies;
ability to expand manufacturing capacity.

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