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Gene Collection (page 3)

"Unlocking the Secrets of Life: Exploring the Fascinating World of Gene" Genes, those tiny but mighty units of heredity encoded in our DNA

Background imageGene Collection: Biomedical illustration of DNA Replication

Biomedical illustration of DNA Replication

Background imageGene Collection: Biomedical illustration of protein synthesis within DNA

Biomedical illustration of protein synthesis within DNA

Background imageGene Collection: DREISER & OPPENHEIM, c1923. Caricatures of Theodore Dreiser (1871-1945), American writer, and E

DREISER & OPPENHEIM, c1923. Caricatures of Theodore Dreiser (1871-1945), American writer, and E. Phillips Oppenheim (1866-1946), English writer, by Gene Markey, c1923

Background imageGene Collection: BOOTH TARKINGTON, 1923. Full name, Newton Booth Tarkington (1869-1946). American novelist

BOOTH TARKINGTON, 1923. Full name, Newton Booth Tarkington (1869-1946). American novelist. Caricature, 1923 by Gene Markey

Background imageGene Collection: Gene Gauntier - US Screenwriter, Director and Actress

Gene Gauntier - US Screenwriter, Director and Actress
Gene Gauntier (1885-1961) - US Screenwriter, Director and Actress. Star of the Kalem Studio Date: circa 1910

Background imageGene Collection: Sheep farming, shepherd using sterile single use pin on Texel ram nose to extract blood for

Sheep farming, shepherd using sterile single use pin on Texel ram nose to extract blood for Scrapie genotype testing, England, May

Background imageGene Collection: Tumour suppressor protein and DNA C017 / 3647

Tumour suppressor protein and DNA C017 / 3647
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 imageGene Collection: DNA molecule, artwork C017 / 7217

DNA molecule, artwork C017 / 7217
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageGene Collection: DNA molecule, artwork C017 / 0616

DNA molecule, artwork C017 / 0616
DNA molecule. Computer artwork looking along the interior of a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageGene Collection: DNA molecule, artwork C017 / 0615

DNA molecule, artwork C017 / 0615
DNA molecule. Computer artwork looking along the interior of a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageGene Collection: GAL4p activator protein C017 / 7009

GAL4p activator protein C017 / 7009
Molecular structure of the Gal4p activator protein. It consists of two Gal4p, bound to a GAL upstream activator sequence (UAS)

Background imageGene Collection: GAL4p activator protein C017 / 7008

GAL4p activator protein C017 / 7008
Molecular structure of the Gal4p activator protein. It consists of two Gal4p, bound to a GAL upstream activator sequence (UAS)

Background imageGene Collection: DNA molecule, artwork C017 / 0617

DNA molecule, artwork C017 / 0617
DNA molecule. Computer artwork looking along the interior of a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageGene Collection: Tumour suppressor protein and DNA C017 / 3644

Tumour suppressor protein and DNA C017 / 3644
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 imageGene Collection: Tumour suppressor protein and DNA C017 / 3646

Tumour suppressor protein and DNA C017 / 3646
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 imageGene Collection: DNA components, artwork C017 / 7350

DNA components, artwork C017 / 7350
DNA components. Computer artwork showing the structure of the two molecules that make up the backbone of DNA (deoxyribonucleic acid), phosphate (left) and deoxyribose (right)

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7088

Circular DNA molecule, artwork F006 / 7088
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: Tablet computer showing a DNA molecule F006 / 6310

Tablet computer showing a DNA molecule F006 / 6310
Tablet computer showing artwork of a DNA molecule

Background imageGene Collection: Circular DNA molecule, space artwork F006 / 7089

Circular DNA molecule, space artwork F006 / 7089
Circular DNA (deoxyribonucleic acid) molecule, computer artwork and space nebula artwork, depicting origin of life

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7072

Circular DNA molecule, artwork F006 / 7072
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: DNA molecule, artwork F006 / 3715

DNA molecule, artwork F006 / 3715
DNA molecule, computer artwork

Background imageGene Collection: DNA molecule, artwork F006 / 7147

DNA molecule, artwork F006 / 7147
DNA (deoxyribonucleic acid) molecule, computer artwork

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7095

Circular DNA molecule, artwork F006 / 7095
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7086

Circular DNA molecule, artwork F006 / 7086
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: DNA molecule, artwork F006 / 3711

DNA molecule, artwork F006 / 3711
DNA molecule, computer artwork

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7083

Circular DNA molecule, artwork F006 / 7083
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: Circular DNA molecule, space artwork F006 / 7077

Circular DNA molecule, space artwork F006 / 7077
Circular DNA (deoxyribonucleic acid) molecule, computer artwork and space nebula artwork, depicting origin of life

Background imageGene Collection: Circular DNA molecule, artwork F006 / 7084

Circular DNA molecule, artwork F006 / 7084
Circular DNA (deoxyribonucleic acid) molecule, computer artwork. Circular DNA has no ends, but consists of a ring structure

Background imageGene Collection: Circular DNA molecule, space artwork F006 / 7087

Circular DNA molecule, space artwork F006 / 7087
Circular DNA (deoxyribonucleic acid) molecule, computer artwork and space nebula artwork, depicting origin of life

Background imageGene Collection: DNA molecule, artwork F006 / 7127

DNA molecule, artwork F006 / 7127
DNA (deoxyribonucleic acid) molecule, computer artwork

Background imageGene Collection: Glycine riboswitch molecule F007 / 9921

Glycine riboswitch molecule F007 / 9921
Molecular model of the bacterial glycine riboswitch. This is an RNA element that can bind the amino acid glycine. Glycine riboswitches usually consist of two metabolite-binding aptamer domains tandem

Background imageGene Collection: Glycine riboswitch molecule F007 / 9906

Glycine riboswitch molecule F007 / 9906
Molecular model of the bacterial glycine riboswitch. This is an RNA element that can bind the amino acid glycine. Glycine riboswitches usually consist of two metabolite-binding aptamer domains tandem

Background imageGene Collection: DNA molecule, artwork F008 / 2034

DNA molecule, artwork F008 / 2034
DNA molecule, computer artwork

Background imageGene Collection: DNA molecules, artwork F008 / 3264

DNA molecules, artwork F008 / 3264
Deoxyribonucleic acid (DNA) molecules, computer artwork

Background imageGene Collection: DNA sequence, artwork F008 / 3293

DNA sequence, artwork F008 / 3293
DNA sequence, computer artwork

Background imageGene Collection: Human genome, conceptual artwork F008 / 3292

Human genome, conceptual artwork F008 / 3292
Human genome, conceptual computer artwork

Background imageGene Collection: DNA molecule, artwork F008 / 2036

DNA molecule, artwork F008 / 2036
DNA molecule, computer artwork

Background imageGene Collection: Targeted gene on a chromosome, SEM

Targeted gene on a chromosome, SEM
Targeted gene on a human chromosome. Composite coloured scanning electron micrograph (SEM) of a targeted gene (yellow) on one arm of a human chromosome

Background imageGene Collection: DNA molecule F008 / 3657

DNA molecule F008 / 3657
DNA molecule. Computer artwork of the structure of deoxyribonucleic acid (DNA) with a double helix in the background. DNA is composed of two strands twisted into a double helix

Background imageGene Collection: DNA molecule, artwork F008 / 2040

DNA molecule, artwork F008 / 2040
DNA molecule, computer artwork

Background imageGene Collection: DNA nucleosome molecule

DNA nucleosome molecule
DNA nucleosome, molecular model. This is the fundamental repeating unit used to package DNA (deoxyribonucleic acid) inside cell nuclei

Background imageGene 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 imageGene 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 imageGene 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 imageGene 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 imageGene 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 imageGene Collection: DNA repair, artwork

DNA repair, artwork
DNA repair. Computer artwork of a DNA (deoxyribonucleic acid) ligase enzyme (yellow) repairing damaged DNA (spiral) in a chromosome (upper left)

Background imageGene Collection: Genetic code, artwork F006 / 8998

Genetic code, artwork F006 / 8998
Genetic code, computer artwork



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"Unlocking the Secrets of Life: Exploring the Fascinating World of Gene" Genes, those tiny but mighty units of heredity encoded in our DNA, hold the key to understanding life's intricate mysteries. Like X and Y chromosomes that determine our gender, genes shape who we are at a fundamental level. Just like the majestic Leopard donning its melanistic phase as a black panther resting on a log, genes dictate our physical traits and characteristics. They orchestrate every aspect of our being, from eye color to height. The DNA molecule stands as an elegant blueprint for life itself. Its complex structure reveals the code that makes us unique individuals. A computer model visualizes this intricate dance within our cells, showcasing how genes interact with one another to create a symphony of existence. In abstract images and artwork inspired by the DNA molecule, we witness its beauty and complexity intertwined. Just like Gene Tunney going down for the famous long count in his championship bout with Dempsey, they can sometimes surprise us with their unpredictable nature. Gene Tierney's timeless elegance reminds us that genes not only shape our physical appearance but also influence aspects such as talent and charisma. They play a role behind every star's success story. Gregor Mendel, an Austrian botanist known as "the father of genetics, " laid the foundation for understanding how traits are inherited through his groundbreaking experiments with pea plants. His work paved the way for unraveling gene inheritance patterns across species. Much like a King cheetah coat displaying rare genetic variations due to specific gene combinations, nature constantly surprises us with its diversity driven by these incredible building blocks called genes. Scenes from Madame Sans-Gene starring Gloria Swanson remind us that while some aspects may be predetermined by our genetic makeup, it is ultimately up to each individual to define their own destiny beyond what lies within their genes' reach. From ancient times till now - whether it be in the form of a Panthera pardus or an American boxer.