Genetic Sequence Analysis

Genetic sequence analysis is the study of DNA or RNA nucleotide sequences to identify their structure, similarity, variation, and biological meaning. It works by obtaining sequence data, comparing it with reference sequences or databases, and using alignment, pattern recognition, and variant-calling methods to detect conserved regions, mutations, or other features. In biology, these analyses help characterize genes, infer evolutionary relationships, investigate gene function, and track genetic diversity across organisms. By linking sequence changes with phenotypic or molecular evidence, genetic sequence analysis supports genome annotation, disease research, and the design of experiments in molecular and computational biology.

Genetic Sequence Analysis - Related Videos

Education

JoVE Science Education - Advanced Biology

An Overview of Genetic Analysis

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2023

An organism’s physical traits, or phenotype, are a product of its genotype, which is the combination of alleles (gene variants) inherited from its parents. To varying degrees, genes interact with each other and environmental factors to generate traits. The distribution of alleles and traits within a population is influenced by a number of factors, including natural selection, migration, and random genetic drift.In this video, JoVE introduces some of the foundational discoveries in genetics,...

Research

JoVE Journal - Biology

Mutagenesis and Analysis of Genetic Mutations in the GC-rich KISS1 Receptor Sequence Identified in Humans with Reproductive Disorders

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Cited by 3 •

2011

Mutations in the kisspeptin receptor (KISS1R) are associated with reproductive disorders in patients. Here we describe how to introduce mutations of interest in the GC-rich sequence of KISS1R as well as the use of KISS1R constructs to characterize the degradation pathway of the receptor by immunoprecipitation and western blot.

Comparative Lesions Analysis Through a Targeted Sequencing Approach

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2019

This article describes a method to identify clonal and subclonal alterations among different specimens from a given patient. Although the experiments described here focus on a specific tumor type, the approach is broadly applicable to other solid tumors.

Semiconductor Sequencing for Preimplantation Genetic Testing for Aneuploidy

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Cited by 2 •

2019

Here, we introduce a semiconductor sequencing method for preimplantation genetic testing for aneuploidy (PGT-A) with the advantages of short turnaround time, low cost, and high throughput.

Optimization for Sequencing and Analysis of Degraded FFPE-RNA Samples

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Cited by 19 •

2020

This method describes the steps to improve the quality and quantity of sequence data that can be obtained from formalin-fixed paraffin-embedded (FFPE) RNA samples. We describe the methodology to more accurately assess the quality of FFPE-RNA samples, prepare sequencing libraries, and analyze the data from FFPE-RNA samples.

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