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Double Helix Collection (page 7)

"The Double Helix: Unraveling the Blueprint of Life" In this captivating journey

Background imageDouble Helix Collection: Human genome, conceptual artwork F008 / 3292

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

Background imageDouble Helix Collection: DNA molecule, artwork F008 / 2036

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

Background imageDouble Helix 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 imageDouble Helix Collection: Chromosomes, SEM

Chromosomes, SEM
Chromosomes. Coloured scanning electron micrograph (SEM) of two chromosomes. The SEM is overlaid on a DNA autoradiogram background

Background imageDouble Helix Collection: DNA molecules, artwork F008 / 3266

DNA molecules, artwork F008 / 3266
Deoxyribonucleic acid (DNA) molecules, computer artwork

Background imageDouble Helix Collection: DNA molecules, artwork F008 / 3265

DNA molecules, artwork F008 / 3265
Deoxyribonucleic acid (DNA) molecules, computer artwork

Background imageDouble Helix Collection: DNA molecule, artwork F008 / 2040

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

Background imageDouble Helix Collection: Human genome, conceptual artwork F008 / 3302

Human genome, conceptual artwork F008 / 3302
Human genome, conceptual computer artwork

Background imageDouble Helix Collection: MicroRNA precursor molecule

MicroRNA precursor molecule
MicroRNA (miRNA) precursor, molecular model. This miRNA (micro ribonucleic acid) precursor will be further processed into an even shorter mature miRNA oligonucleotide that can regulate the expression

Background imageDouble Helix Collection: MicroRNA molecule

MicroRNA molecule
MicroRNA (miRNA), molecular model. This miRNA (micro ribonucleic acid) oligonucleotide regulates the expression of a target gene

Background imageDouble Helix Collection: Human cloning, conceptual artwork F005 / 0397

Human cloning, conceptual artwork F005 / 0397
Human cloning, conceptual computer artwork

Background imageDouble Helix 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 imageDouble Helix Collection: Medical test tube with blood, artwork

Medical test tube with blood, artwork
Computer artwork of a medical test tube with blood samples and a DNA helix, depicting dna profiling, genetic testing and other DNA based tests

Background imageDouble Helix 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 imageDouble Helix 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 imageDouble Helix 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 imageDouble Helix 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 imageDouble Helix 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 imageDouble Helix Collection: Genetics research, conceptual artwork C017 / 7412

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

Background imageDouble Helix 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 imageDouble Helix Collection: Genetics research, conceptual artwork C017 / 7407

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

Background imageDouble Helix Collection: Genetics research, conceptual artwork C017 / 7409

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

Background imageDouble Helix Collection: Gene expression, artwork

Gene expression, artwork
Gene expression. Computer artwork showing the process of transcription, the first stage or gene expression. Here, a chromosome (distance)

Background imageDouble Helix Collection: DNA molecule, artwork F007 / 1996

DNA molecule, artwork F007 / 1996
DNA molecule, computer artwork

Background imageDouble Helix Collection: DNA molecule, artwork F007 / 1994

DNA molecule, artwork F007 / 1994
DNA molecule, computer artwork

Background imageDouble Helix Collection: DNA molecule, artwork F007 / 1995

DNA molecule, artwork F007 / 1995
DNA molecule, computer artwork

Background imageDouble Helix Collection: DNA molecule, artwork F007 / 1991

DNA molecule, artwork F007 / 1991
DNA molecule, computer artwork

Background imageDouble Helix Collection: DNA molecule, artwork F007 / 1992

DNA molecule, artwork F007 / 1992
DNA molecule, computer artwork

Background imageDouble Helix Collection: TATA box-binding protein complex C017 / 7090

TATA box-binding protein complex C017 / 7090
TATA box-binding protein complex. Molecular model showing a TATA box-binding protein (TBP, green) complexed with a strand of DNA (deoxyribonucleic acid, spheres) and transcription factor IIB



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"The Double Helix: Unraveling the Blueprint of Life" In this captivating journey, we delve into the intricate world of the double helix - a mesmerizing DNA molecule that holds the secrets to our existence. As we peer at a computer screen displaying a human genetic sequence, we witness nature's most remarkable code come alive. A double-stranded RNA molecule dances across another computer screen, showcasing its vital role in gene expression and regulation. Computer artwork depicting a beta DNA segment and spheres reminds us of the complex structure that underlies life itself. With awe-inspiring precision, a DNA molecule is meticulously crafted in a computer model, revealing its elegant beauty. A nucleosome molecule stands as an architectural marvel, protecting and organizing our genetic material within cells. An abstract image captures the essence of this extraordinary molecule - its twists and turns hinting at endless possibilities encoded within. Molecular models bring forth vivid representations of DNA nucleosomes, unraveling their crucial function in packaging our genome. As we contemplate these wonders, our minds are drawn to the enigmatic Arecibo message and its decoded key C016/6817. Like Rosalind Franklin, the brilliant British chemist who played an instrumental role in deciphering DNA's structure through X-ray crystallography; we too strive to unlock nature's mysteries hidden within this double helix. The double helix serves as both an emblematic symbol and profound testament to life's complexity. It invites us on an intellectual voyage where science meets artistry—a harmonious blend that continues to shape our understanding of ourselves and all living beings around us.