Vector Construction

Vector construction is the process of assembling a recombinant DNA molecule that can carry, maintain, or express a chosen genetic sequence in a host cell. It typically combines an insert with a vector backbone containing functional elements such as an origin of replication, selectable marker, and, when expression is required, a promoter; assembly may use restriction enzyme digestion and ligation or sequence-overlap methods. Researchers use constructed vectors to clone genes, produce proteins, modify cells, and investigate gene regulation and function. Careful design and sequence verification help ensure that the insert is correctly oriented, in frame, and expressed under the intended biological conditions.

Vector Construction - Related Videos

Research

JoVE Journal - Immunology and Infection
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A Simple and Efficient Approach to Construct Mutant Vaccinia Virus Vectors

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Cited by 13 •

2016

Vaccinia virus (VV) has been widely used in biomedical research and the improvement of human health. This article describes a simple, highly efficient method to edit the VV genome using a CRISPR-Cas9 system.

Research

JoVE Journal - Biology

High-throughput CRISPR Vector Construction and Characterization of DNA Modifications by Generation of Tomato Hairy Roots

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Cited by 37 •

2016

Using DNA assembly, multiple CRISPR vectors can be constructed in parallel in a single cloning reaction, making the construction of large numbers of CRISPR vectors a simple task. Tomato hairy roots are an excellent model system to validate CRISPR vectors and generate mutant materials.

Research

JoVE Journal - Biology
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Subcloning Plus Insertion (SPI) - A Novel Recombineering Method for the Rapid Construction of Gene Targeting Vectors

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Cited by 4 •

2015

Gene targeting methodologies can be used to generate transgenic mice with knockout, knock-in and tagged alleles. Here, we describe an improved method of recombineering in E. coli, that we term ‘subcloning plus insertion’, which can be used to generate custom gene targeting vectors rapidly.

Recombineering Homologous Recombination Constructs in Drosophila

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Cited by 9 •

2013

Homologous recombination techniques greatly advance Drosophila genetics by enabling the creation of molecularly precise mutations. The recent adoption of recombineering allows one to manipulate large pieces of DNA and transform them into Drosophila6. The methods presented here combine these techniques to rapidly generate large homologous recombination vectors.

Education

JoVE Science Education - Physics

Vectors in Multiple Directions

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2023

Source: Nicholas Timmons, Asantha Cooray, PhD, Department of Physics & Astronomy, School of Physical Sciences, University of California, Irvine, CA This experiment demonstrates how vectors add and subtract in multiple directions. The goal will be to analytically calculate the addition or subtraction of multiple vectors and then to experimentally confirm the calculations. A vector is an object with both magnitude and direction. The magnitude of a vector is simply denoted as the length,...

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