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Revision: Biotechnology and Its Applications >> Principles and Processes of Biotechnology Biology (Theory) ISC (Science) ISC Class 12 CISCE

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Definitions [11]

Define.

Biotechnology

The technique of bringing about improvements in living organisms by genetic modifications and hybridization, for the welfare of human beings is known as ‘Biotechnology’.

Definition: Biotechnology

The European Federation of Biotechnology (EFB) defined biotechnology as ‘the integration of natural science and organisms, cells, parts thereof, and molecular analogues for products and services'.

Define genetic engineering.

Genetic engineering is the manipulation and transfer of genes from one organism to another organism to create a new DNA called recombinant DNA (rDNA). Genetic engineering is also called recombinant DNA technology.

Definition: Palindrome

A palindrome in DNA is a sequence of base pairs that reads the same on both strands when read in the same direction (5′ → 3′).

Definition: Plasmids

Plasmids are small, circular, double-stranded DNA molecules found in bacteria that replicate independently of chromosomal DNA and often carry antibiotic-resistance genes.

Definition: Phages (Bacteriophages)

Phages are viruses that infect bacteria and contain linear DNA into which foreign DNA fragments can be inserted for cloning purposes.

Definition: Gene Library

A gene library is a collection of cloned DNA fragments that together represent the complete genome of an organism.

Definition: Cloning

The process of producing an exact genetic replica of a cell, tissue, organ, or entire organism is called cloning.

or

Cloning is the process of producing identical copies of a gene, DNA fragment, cell, or organism.

Definition: Gene Cloning

Gene cloning is a genetic engineering technique in which a single copy of a gene or DNA segment is isolated and multiplied to produce many identical copies.

Definition: Therapeutic Cloning

The technique of producing stem cells from cloned embryos for treatment of diseases is called therapeutic cloning.

Definition: Reproductive Cloning

The production of a complete organism by fusion of a somatic cell nucleus with an enucleated ovum is called reproductive cloning.

Key Points

Key Points: Biotechnology
  • Biotechnology, a term coined by Karl Ereky in 1919, is the use of biological systems and genetic modifications to develop products and services for human welfare.
  • Traditional biotechnology relies on small-scale, natural processes like fermentation (e.g., producing curd and wine), whereas modern biotechnology operates on a large scale.
  • Modern biotechnology is fundamentally driven by two core techniques: genetic engineering (the targeted alteration of DNA and RNA) and bioprocess engineering.
  • The field experienced a major breakthrough with the development of recombinant DNA technology by Cohen and Boyer in 1973.
  • By integrating disciplines such as molecular biology and biochemistry, biotechnology enables crucial applications in both medicine (antibiotics, vaccines, insulin) and agriculture (high-yield, disease-resistant crops).
Key Points: Principles of Processes of Biotechnology
  • Two Core Techniques – Modern biotechnology is based on (i) genetic engineering and (ii) chemical engineering.
  • Genetic Engineering – Deals with the alteration of DNA and RNA to achieve desired results in a directed, predetermined way using in vitro processes.
  • Chemical Engineering - Maintains a sterile environment for manufacturing useful products like vaccines, antibodies, enzymes, vitamins, and therapeutics.
  • What Genetic Engineering Involves - Repairing/replacing defective genes, synthesising new genes, transferring genes, combining genes from two organisms, and altering the genotype.
  • Other Names for Genetic Engineering – Also called Recombinant DNA (rDNA) Technology or Gene Cloning, as it involves transferring a gene via a suitable vector to a new location or organism.
Key Points: Genetic Engineering
  • Genetic engineering, also known as recombinant DNA technology, involves manipulating and transferring genes from one organism to another to create a new DNA structure.
  • This technology is highly effective because the fundamental genetic code is similar across all living species, allowing genes to be successfully shared and expressed.
  • Scientists utilise these techniques to study how genes function, understand how life processes are regulated, and clone specific DNA fragments.
  • In medicine, it has allowed for the mass production of vital compounds, such as producing human insulin using bacteria or human growth hormone in cow's milk.
  • In agriculture, it is used to create genetically modified foods that possess highly desirable traits, such as improved nutritional value and enhanced resistance to pests and diseases.
Key Points: Recombinant DNA technology
  • Recombinant DNA technology involves combining DNA from two different organisms to form chimeric DNA using genetic engineering techniques.
  • Foreign DNA is cut and joined with vector DNA (usually plasmids) using restriction enzymes, known as molecular scissors.
  • The first recombinant DNA was created in 1972 by Stanley Cohen and Herbert Boyer using an antibiotic resistance gene.
  • The process includes identifying a desired gene, introducing it into a host cell, and ensuring its stable inheritance.
Key Points: Tools of Recombinant DNA Technology
  • Recombinant DNA technology manipulates and joins DNA from different sources using three main tools: enzymes, cloning vectors, and competent hosts.
  • Restriction enzymes act as "molecular scissors" to cut DNA at specific sites, while DNA ligase acts as "glue" to seal the fragments together.
  • Cloning vectors (such as plasmids or bacteriophages) serve as vehicles for carrying, inserting, and replicating foreign DNA within a host cell.
  • Competent hosts are cells that have been specially treated (using techniques such as heat shock or gene guns) so they can successfully take up the foreign recombinant DNA.
Key Points: Restriction Enzymes
  • Restriction enzymes, often called "molecular scissors", are specialised endonucleases that cut DNA at specific internal positions to facilitate genetic engineering.
  • Over 900 restriction enzymes, including the first discovered Hind II, have been successfully isolated from more than 230 strains of bacteria.
  • These enzymes are named using a standard convention based on the genus, species, strain, and discovery order of the source bacterium, such as EcoRI.
  • They function by inspecting DNA to find specific palindromic nucleotide sequences, which are base pair sequences that read the same on both strands in the same orientation.
  • Type II restriction enzymes are the primary ones used in genetic manipulation because they reliably recognise and cut at very specific target sequences.
  • Cutting the DNA slightly away from the centre of a palindrome creates "sticky ends", which are single-stranded overhangs that easily bond with complementary DNA using the enzyme DNA ligase.
  • The resulting DNA fragments are separated by size using gel electrophoresis, where smaller negatively charged fragments move faster through an agarose matrix toward an anode.
  • The separated DNA is visualised as bright orange bands under UV light after ethidium bromide staining and is carefully extracted from the gel through a process called elution.
Key Points: Features of an Ideal Vector
  • An ideal cloning vector must contain an origin of replication to initiate and control the multiplication of the inserted foreign DNA.
  • It requires a selectable marker, such as antibiotic resistance genes, to distinguish and isolate successfully transformed cells from non-transformed ones.
  • The vector should ideally possess a single recognition site for common restriction enzymes to easily link the foreign DNA without complicating the cloning process.
  • Insertional inactivation techniques, such as blue-white selection or the loss of antibiotic resistance, are utilised to clearly identify recombinant colonies.
  • The vector must be small in size to ensure easy manipulation and to prevent the DNA from breaking down during laboratory purification procedures.
Key Points: Plasmids
  • Plasmids are small, circular, double-stranded DNA molecules that replicate independently of the host bacterial chromosome and naturally confer antibiotic resistance.
  • Due to their manageable size and precisely mapped DNA sequences, plasmids serve as highly effective and easily isolatable vectors for genetic cloning.
  • A typical plasmid vector includes critical functional regions such as an origin of replication, recognition sites for endonucleases, and antibiotic resistance genes for selection.
  • Recombinant DNA is created by cutting both the target foreign DNA and the plasmid with specific restriction enzymes and joining them together using DNA ligase.
  • This newly formed recombinant plasmid is then inserted into a host bacterium, which multiplies rapidly to produce large quantities of the desired foreign gene.
Key Points: pBR 322 Vectors
Feature Description
Name pBR322
Developers Bolivar and Rodriguez
Source Derived from E. coli plasmid ColE1
Size 4,362 base pairs
Importance Commonly used “workhorse” cloning vector
Origin of replication (ori) Enables independent replication in host cell
Selectable markers ampR (ampicillin resistance) and tetR (tetracycline resistance)
Restriction sites BamHI, HindIII, SalI, PvuII, PstI, EcoRI, ClaI
Special feature The BamHI site lies in tetR gene; insertion here inactivates tetracycline resistance
ROP gene Codes proteins involved in plasmid replication
Selection method Recombinants grow on ampicillin but not on tetracycline; non-recombinants grow on both
Key Points: pUC Vectors
Feature Description
Name pUC series plasmid vectors
Size About 2,700 base pairs
Selectable marker Ampicillin resistance gene (ampR)
Origin of replication Derived from pBR322
Reporter gene lacZ gene from E. coli
Cloning principle Insertional inactivation of lacZ gene
Vector pairs pUC8 & pUC9, pUC18 & pUC19, pUC118 & pUC119
Special feature Paired vectors have reversed orientation of restriction sites
Advantage Allows isolation and study of both DNA strands
Uses Gene cloning, sequencing, mutagenesis
Key Points:
  • Agrobacterium tumefaciens is a bacterial pathogen that specifically infects several types of dicot plants.
  • The bacterium possesses a specialised plasmid, widely known as the Ti plasmid, which contains a transferable DNA segment called T-DNA.
  • During an infection, the pathogen successfully inserts a piece of this T-DNA directly into the DNA of the host plant.
  • This genetic insertion alters normal cellular functions, transforming healthy plant cells into tumour cells.
  • Consequently, the inserted T-DNA directs these newly formed tumour cells to synthesise and produce specific chemicals required by the pathogen.
Key Points: Phages
  • Phages typically possess linear DNA molecules that allow for the insertion of foreign DNA at various specific restriction enzyme sites.
  • Chimeric or recombinant DNA is successfully collected after the phage completes its lytic cycle and produces mature, infective particles.
  • Plasmids and viruses serve as vectors, acting as biological carriers to effectively transport foreign DNA into target organisms.
  • By interchanging plasmid and viral DNA fragments, scientists synthesise new vectors capable of delivering genes into diverse bacterial, yeast, insect, plant, and animal cells.
  • The biological process of successfully introducing these foreign DNA fragments into a suitable host cell is formally known as transformation.
Key Points: Artificial Chromosomes as Vectors
Feature Bacterial Artificial Chromosomes (BACs) Yeast Artificial Chromosomes (YACs)
Source Derived from bacterial F-plasmid Derived from yeast (Saccharomyces cerevisiae) DNA
DNA insert size 100–300 kb (up to 350 kb) Up to 1 million base pairs
Stability More stable Less stable than BACs
Host cell E. coli Yeast cells
Important elements oriS, repE, parA, parB, antibiotic resistance, T7 & SP6 promoters Telomere, centromere, ori, selectable markers
Main use Genome mapping and sequencing Cloning very large eukaryotic genes
Special feature Maintains low copy number Behaves like a true yeast chromosome
Application Used in Human Genome Project (HGP) Used in Human Genome Project (HGP)
Key Points: Cloning Vectors and Gene Libraries
  • The tumour-inducing (Ti) plasmid of Agrobacterium tumefaciens and retroviruses serve as highly effective vectors for cloning genes into plant and animal hosts, respectively.
  • Once a desired DNA fragment is successfully ligated into a suitable vector, it is transferred into a host organism to undergo multiplication.
  • A gene library is a comprehensive collection of cloned DNA fragments that completely represents the entire genome of an organism.
  • Genomic libraries are prepared from total DNA and contain both introns and exons, whereas cDNA libraries represent mRNA populations and contain only exons.
Key Points: Cloning
  • Cloning is the process of producing an exact genetic copy of a gene, cell, tissue, or organism.
  • Gene cloning isolates and multiplies a single DNA segment to produce medically useful proteins.
  • Reproductive cloning fuses a somatic cell nucleus with an enucleated egg to produce a complete organism.
  • Therapeutic cloning derives stem cells from cloned embryos for disease treatment and medical research.
  • Dolly the sheep was the first mammal cloned from an adult somatic cell using somatic cell nuclear transfer (SCNT).
  • Cloning is associated with low technical efficiency, health abnormalities in offspring, and significant ethical concerns.
Key Points: Processes of Recombinant DNA Technology
  • Cells are first broken open using specific enzymes (such as lysozyme for bacteria) to successfully isolate the genetic material.
  • The purified DNA is precisely cut at specific locations using restriction enzymes, which act as "molecular scissors" to extract the desired gene.
  • The resulting DNA fragments are separated by size using gel electrophoresis, and the specific target sequence is extracted.
  • The desired gene is then amplified into millions of copies using the polymerase chain reaction (PCR) technique.
  • The amplified gene is joined to a carrier vector using the enzyme DNA ligase to construct a new molecule called recombinant DNA.
  • This recombinant DNA is introduced into a chemically treated, competent host cell (such as a bacterium) through a process known as transformation.
  • For commercial use, these transformed host cells are cultured on a massive scale inside large, environmentally controlled vessels called bioreactors.
  • The final therapeutic product undergoes downstream processing, which involves rigorous separation, purification, and quality testing before packaging.
Key Points: Applications of Genetic Engineering
  • Genetic engineering facilitates the study of gene structures and allows for the mass production of vital medical therapeutics, such as human insulin.
  • Gene therapy directly treats inherited genetic disorders by replacing or complementing defective genes with functional ones.
  • Genetically modified plants and animals are developed to enhance agricultural efficiency, improve nutritional value, and potentially reduce reliance on chemical fertilisers.
  • Industrial-scale manufacturing of these biological products requires bioreactors, which provide strictly controlled, optimal environments for large cell cultures.
  • The widespread use of genetic modification raises significant ethical, ecological, and health concerns that require careful ongoing evaluation.
Key Points: Moral and Ethical Issues of Genetic Engineering
  • Accessing an individual's genetic information regarding behaviours or predispositions to diseases can lead to severe ethical violations of privacy and human rights.
  • While genetic screening enables beneficial prenatal diagnosis and medical treatments, it simultaneously poses risks of social discrimination in areas such as employment and health insurance.
  • It is crucial for governments to establish strict legal frameworks and regulatory bodies, such as India's GEAC, to carefully oversee genetic research and protect public safety.
  • The prospect of human cloning raises profound moral dilemmas, as the technology could theoretically be exploited to intentionally replicate highly specific human traits or personalities.
  • The creation of cloned human beings introduces unprecedented social complexities, particularly concerning the ethical challenges and family dynamics of raising a child without traditional biological parents.
Key Points: Genetic Transformation in Plants
  • Genetic transformation is the process of introducing foreign DNA into plant cells and integrating it into the plant genome.
  • The process involves four steps: DNA introduction, integration and stabilisation, regeneration of whole plants, and inheritance in future generations.
  • Gene transfer enables movement of genes across sexual barriers, helping develop plants with desirable traits.
  • Vector-dependent gene transfer uses vectors to deliver foreign genes efficiently into plant cells.
  • Agrobacterium tumefaciens and its Ti plasmid are widely used natural vectors for gene transfer in dicot plants.
  • Virus-mediated gene transfer (e.g., Cauliflower Mosaic Virus) is used to introduce genes into plants at high copy numbers.
  • Reporter and selectable marker genes help identify and select transformed plant cells during the transformation process.
Key Points: Genetic Transformation in Animals
  • Genetic transformation in animals is achieved by introducing foreign DNA into fertilised eggs or embryos.
  • Microinjection method involves direct injection of foreign DNA into the pronucleus of a fertilised egg and is widely used to produce transgenic animals.
  • Nuclear replacement transfers a somatic cell nucleus into an enucleated egg to produce genetically identical offspring.
  • Cloning allows multiplication of desirable transformed genomes to produce transgenic animals.

Important Questions [20]

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