Molecular Genetics

Molecular genetics is the study of how genetic information is stored, copied, expressed, and regulated at the molecular level, providing a foundation for understanding heredity and cellular function. It examines processes such as DNA replication, transcription into RNA, translation into proteins, and gene regulation through interactions among nucleic acids, enzymes, and regulatory molecules. In biochemistry, molecular genetics connects changes in DNA sequence or gene activity to altered proteins, metabolic pathways, and cellular phenotypes. Its principles support research into disease mechanisms, genetic variation, biotechnology, diagnostics, and the development of targeted therapies.

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Research

JoVE Journal - Biology

Molecular Evolution of the Tre Recombinase

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Cited by 4 •

2008

Here we report the generation of Tre recombinase through directed, molecular evolution. Tre recombinase recognizes a pre-defined target sequence within the LTR sequences of the HIV-1 provirus, resulting in the excision and eradication of the provirus from infected human cells. While still in its infancy, directed molecular evolution will allow the creation of custom enzymes that will serve as tools of molecular surgery and molecular medicine.

Genetically-encoded Molecular Probes to Study G Protein-coupled Receptors

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Cited by 15 •

2013

We genetically-encode the unnatural amino acid, p-azido-L-phenylalanine at various targeted positions in GPCRs and show the versatility of the azido group in different applications. These include a targeted photocrosslinking technology to identify residues in the ligand-binding pocket of a GPCR, and site-specific bioorthogonal modification of GPCRs with a peptide-epitope tag or fluorescent probe.

Forward Genetic Approaches in Chlamydia trachomatis

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Cited by 21 •

2013

We describe a methodology to perform genetic analysis in Chlamydia based on chemical mutagenesis and whole genome sequencing. In addition, a system for DNA exchange within infected cells is described that can be used for genetic mapping. This method may be broadly applicable to microbial systems lacking transformation systems and molecular genetic tools.

Education

JoVE Science Education - Advanced Biology

Genetic Screens

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2023

Genetic screens are critical tools for defining gene function and understanding gene interactions. Screens typically involve mutating genes and then assessing the affected organisms for phenotypes of interest. The process can be “forward”, where mutations are generated randomly to identify unknown genes responsible for the phenotypes, or it can be “reverse”, where specific genes are targeted for mutation to observe what phenotypes are produced.Here, JoVE reviews various types of genetic...

Preventing the Spread of Malaria and Dengue Fever Using Genetically Modified Mosquitoes

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Cited by 10 •

2007

In this candid interview, Anthony A. James explains how mosquito genetics can be exploited to control malaria and dengue transmission. Population replacement strategy, the idea that transgenic mosquitoes can be released into the wild to control disease transmission, is introduced as well as the concept of genetic drive and the design criterion for an effective genetic drive system. The ethical considerations of releasing genetically-modified organisms into the wild are also discussed.

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