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Genetics Collection (page 8)

"Unlocking the Secrets of Life: Exploring the Fascinating World of Genetics" From the intricate DNA molecule to the X and Y chromosomes

Background imageGenetics Collection: Plant research, conceptual image F005 / 0826

Plant research, conceptual image F005 / 0826
Plant research, conceptual image

Background imageGenetics Collection: Genetics research F005 / 0934

Genetics research F005 / 0934
MODEL RELEASED. Genetics research. Researcher using a High pressure liquid chromatography (HPLC) machine

Background imageGenetics Collection: Plant research, conceptual image F005 / 0829

Plant research, conceptual image F005 / 0829
MODEL RELEASED. Plant research, conceptual image

Background imageGenetics Collection: Plant research, conceptual image F005 / 0830

Plant research, conceptual image F005 / 0830
MODEL RELEASED. Plant research, conceptual image

Background imageGenetics Collection: Plant research, conceptual image F005 / 0825

Plant research, conceptual image F005 / 0825
Plant research, conceptual image

Background imageGenetics Collection: Genetics research F005 / 0933

Genetics research F005 / 0933
Genetics research

Background imageGenetics Collection: Genetics research F005 / 0932

Genetics research F005 / 0932
MODEL RELEASED. Genetics research. Researcher using a High pressure liquid chromatography (HPLC) machine

Background imageGenetics Collection: Plant research, conceptual image F005 / 0827

Plant research, conceptual image F005 / 0827
Plant research, conceptual image

Background imageGenetics Collection: Plant research, conceptual image F005 / 0828

Plant research, conceptual image F005 / 0828
MODEL RELEASED. Plant research, conceptual image

Background imageGenetics Collection: Genetics research F005 / 0931

Genetics research F005 / 0931
MODEL RELEASED. Genetics research. Researcher using a High pressure liquid chromatography (HPLC) machine

Background imageGenetics Collection: DNA autoradiogram F005 / 7310

DNA autoradiogram F005 / 7310
DNA autoradiogram

Background imageGenetics Collection: DNA autoradiogram F005 / 7311

DNA autoradiogram F005 / 7311
DNA autoradiogram

Background imageGenetics Collection: Bullets 6 F005 / 7301

Bullets 6 F005 / 7301
Bullets

Background imageGenetics Collection: DNA autoradiogram F005 / 7309

DNA autoradiogram F005 / 7309
DNA autoradiogram

Background imageGenetics Collection: Bullets

Bullets

Background imageGenetics Collection: DNA autoradiogram F005 / 7308

DNA autoradiogram F005 / 7308
DNA autoradiogram

Background imageGenetics Collection: TATA box-binding protein complex C014 / 0867

TATA box-binding protein complex C014 / 0867
TATA box-binding protein complex. Molecular model showing a TATA box-binding protein (TBP, khaki) complexed with a strand of DNA (deoxyribonucleic acid)

Background imageGenetics Collection: E. coli Holliday junction complex C014 / 0878

E. coli Holliday junction complex C014 / 0878
E. coli Holliday junction complex. Molecular model of a RuvA protein (dark pink) in complex with a Holliday junction between homologous strands of DNA (deoxyribonucleic acid)

Background imageGenetics Collection: Genetic research, conceptual image C014 / 1256

Genetic research, conceptual image C014 / 1256
Genetic research. Conceptual image of a molecular model of a strand of DNA (deoxyribonucleic acid) being held on a human hand

Background imageGenetics Collection: Synthetic DNA molecule

Synthetic DNA molecule
Synthetic DNA. Molecule model of a synthetic form of DNA (deoxyribonucleic acid). DNA is composed of two strands twisted into a double helix

Background imageGenetics Collection: DNA supercoil, artwork

DNA supercoil, artwork
DNA supercoils. Computer artwork showing a supercoiled strand of DNA (deoxyribonucleic acid). Supercoiling is important in a number of biological processes

Background imageGenetics Collection: Tyrosyl-tRNA synthetase molecule

Tyrosyl-tRNA synthetase molecule
Tyrosyl-tRNA synthetase protein molecule. Molecular model showing bacterial tyrosyl-tRNA synthetase complexed with tyrosyl tRNA (transfer ribonucleic acid)

Background imageGenetics Collection: Endonuclease IV molecule

Endonuclease IV molecule. Molecular model of the endonuclease IV restriction enzyme EcoRV (grey) bound to a cleaved section of DNA (deoxyribonucleic acid, blue, orange and pink)

Background imageGenetics Collection: Tumour suppressor protein and DNA C017 / 3645

Tumour suppressor protein and DNA C017 / 3645
Tumour suppressor protein and DNA. Computer artwork showing a molecule of the tumour suppressor protein p53 (blue and pink) bound to a molecule of DNA (deoxyribonucleic acid, yellow and orange)

Background imageGenetics Collection: Synthetic biology, conceptual artwork C018 / 0907

Synthetic biology, conceptual artwork C018 / 0907
Synthetic biology, conceptual illustration. Lab set-up inside a yeast cell

Background imageGenetics Collection: DNA 6-way junction, artwork C014 / 2587

DNA 6-way junction, artwork C014 / 2587
DNA 6-way junction. Computer artwork of a synthetic assemblage of nucleic acids which are useful in the design of nanostructures

Background imageGenetics Collection: Tryptophanyl-tRNA synthetase molecule

Tryptophanyl-tRNA synthetase molecule
Tryptophanyl-tRNA synthetase protein molecule. Molecular model showing human tryptophanyl-tRNA synthetase complexed with tryptophan tRNA (transfer ribonucleic acid)

Background imageGenetics Collection: Genetics research, conceptual artwork C017 / 7412

Genetics research, conceptual artwork C017 / 7412
Genetics research. conceptual computer artwork

Background imageGenetics Collection: HeLa cell, SEM C014 / 0371

HeLa cell, SEM C014 / 0371
HeLa cell. Coloured scanning electron micrograph (SEM) of a HeLa cell (centre) grown in a 3D matrix (background). HeLa cells are a continuously cultured cell line of immortal human cancer cells

Background imageGenetics Collection: Pho4 transcription factor bound to DNA C014 / 0861

Pho4 transcription factor bound to DNA C014 / 0861
Pho4 transcription factor bound to DNA. Molecular model showing phosphate system positive regulatory protein (Pho4) (blue and green) bound to a strand of DNA (deoxyribonucleic acid, red and purple)

Background imageGenetics Collection: Meiosis, artwork F006 / 2399

Meiosis, artwork F006 / 2399
Meiosis. Computer artwork of the first meiotic division

Background imageGenetics Collection: Genetics research, conceptual artwork C017 / 7407

Genetics research, conceptual artwork C017 / 7407
Genetics research. conceptual computer artwork

Background imageGenetics Collection: Meiosis, artwork F006 / 2252

Meiosis, artwork F006 / 2252
Meiosis. Computer artwork of the first meiotic division

Background imageGenetics Collection: Genetics research, conceptual artwork C017 / 7409

Genetics research, conceptual artwork C017 / 7409
Genetics research. conceptual computer artwork

Background imageGenetics Collection: EcoRV restriction enzyme molecule C014 / 2117

EcoRV restriction enzyme molecule C014 / 2117
EcoRV restriction enzyme. Molecular model of the type II restriction enzyme EcoRV (purple and blue) bound to a DNA molecule (deoxyribonucleic acid, pink and white)




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"Unlocking the Secrets of Life: Exploring the Fascinating World of Genetics" From the intricate DNA molecule to the X and Y chromosomes, a captivating field that unravels the blueprint of life. As we peer into a computer screen displaying a human genetic sequence, we witness the complexity encoded within our very cells. The double-stranded RNA molecule serves as a messenger, carrying vital information for DNA transcription. Molecular models illustrate how this process shapes our traits and characteristics. It was through their groundbreaking work that Watson and Crick discovered the structure of DNA, forever changing our understanding of genetics. Richard Dawkins, an esteemed British science writer, has played an influential role in popularizing genetics among masses. His insightful writings have shed light on evolutionary biology and its connection to our genetic makeup. Intriguingly captured by scanning electron microscopy (SEM), an embryonic stem cell alongside a needle reminds us of the immense potential held within these tiny building blocks. Mitosis comes alive under a light micrograph, showcasing how cells divide and multiply with precision. Computer artwork depicting beta DNA segments interlaced with spheres hints at ongoing research pushing boundaries in genetic engineering. The nucleotide base matrix acts as a foundation for decoding genetic information - each letter representing crucial instructions embedded within our genes. Genetics holds endless possibilities - from unraveling hereditary diseases to designing personalized medicine based on individual genomes. With every discovery made in this ever-evolving field, humanity inches closer towards harnessing nature's codebook for better health and understanding ourselves more deeply than ever before.