Written by students who passed Immediately available after payment Read online or as PDF Wrong document? Swap it for free 4.6 TrustPilot
logo-home
Document preview thumbnail
Preview 2 out of 6 pages
Summary

Summary Biotechnology class 12th Gene cloning

Document preview thumbnail
Preview 2 out of 6 pages

Gene cloning is a biotechnology technique used to create identical copies of a specific gene. It involves isolating a target gene, inserting it into a vector (like a plasmid), and introducing it into a host cell (usually bacteria). The host cell replicates, producing multiple copies of the gene. This method is widely used in medicine, agriculture, and research, enabling the production of insulin, genetically modified crops, and gene therapy treatments. Gene cloning allows scientists to study gene function, develop new treatments, and improve biotechnological applications, making it a crucial tool in modern genetics and molecular biology.

Content preview

Gene cloning, also known as molecular cloning, is a
fundamental technique in biotechnology and genetic
engineering that involves creating identical copies of a
specific DNA sequence. Here's a detailed summary:

Definition

Gene cloning is the process of isolating a specific gene or
DNA sequence and inserting it into a host organism to
produce multiple copies of the gene and, in many cases,
its encoded protein.

Steps in Gene Cloning

1. Isolation of DNA:

The DNA containing the target gene is extracted from
the organism. This could be genomic DNA or
complementary DNA (cDNA) derived from mRNA.

2. Cutting DNA (Restriction Digestion):

Specific restriction enzymes (endonucleases) are used to
cut the DNA at precise sites, producing fragments with

, "sticky" or "blunt" ends.

The same enzyme is used to cut a vector (plasmid or
viral DNA) to ensure compatibility for insertion.

3. Insertion into a Vector:

The target DNA fragment is inserted into a vector (e.g., a
plasmid, bacteriophage, or artificial chromosome) using
DNA ligase to seal the DNA pieces together.

The vector serves as a carrier for the DNA and allows it
to replicate inside a host cell.

4. Transformation into Host Cells:

The recombinant vector is introduced into host cells
(commonly bacteria such as E. coli) using methods like
heat shock, electroporation, or chemical treatment.

Not all cells take up the vector, so screening is required.

5. Selection and Screening:

Selective markers (e.g., antibiotic resistance genes) are
used to identify host cells that have successfully taken up

Connected book
 image
David P. Clark, Nanette Jean Pazdernik Biotechnology
Publisher: 2012 ISBN: 9780123850638 Edition: Unknown

Document information

Summarized whole book?
Yes
Uploaded on
January 30, 2025
Number of pages
6
Written in
2024/2025
Type
Summary
$10.99

Wrong document? Swap it for free Within 14 days of purchase and before downloading, you can choose a different document. You can simply spend the amount again.
Written by students who passed
Immediately available after payment
Read online or as PDF

Sold
0
Followers
0
Items
234
Last sold
-



Why students choose Stuvia

Created by fellow students, verified by reviews

Quality you can trust: written by students who passed their tests and reviewed by others who've used these notes.

Didn't get what you expected? Choose another document

No worries! You can instantly pick a different document that better fits what you're looking for.

Pay as you like, start learning right away

No subscription, no commitments. Pay the way you're used to via credit card and download your PDF document instantly.

Student with book image

“Bought, downloaded, and aced it. It really can be that simple.”

Alisha Student

Working on your references?

Create accurate citations in APA, MLA and Harvard with our free citation generator.

Working on your references?

Frequently asked questions