Fraud Blocker Skip to main content

Home > Popular Themes > DNA

DNA Collection (page 26)

3,048 items

Background imageDNA Collection: DNA molecule, artwork C013 / 9974

DNA molecule, artwork C013 / 9974
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: DNA molecule, artwork C013 / 9972

DNA molecule, artwork C013 / 9972
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: DNA molecule, artwork C013 / 9973

DNA molecule, artwork C013 / 9973
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: Damaged chromosome, conceptual artwork C013 / 9970

Damaged chromosome, conceptual artwork C013 / 9970
Damaged chromosome, conceptual computer artwork. Chromosomes are composed of deoxyribonucleic acid (DNA) that contain sections, called genes, which encode the bodys genetic information

Background imageDNA Collection: DNA molecule, artwork C013 / 9971

DNA molecule, artwork C013 / 9971
DNA molecule. Computer artwork showing a double stranded DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: Chromosomes, artwork C013 / 9968

Chromosomes, artwork C013 / 9968
Chromosomes. Computer artwork of human chromosomes. Chromosomes are composed of deoxyribonucleic acid (DNA) that contain sections, called genes, which encode the bodys genetic information

Background imageDNA Collection: Canine parvovirus particle C013 / 9966

Canine parvovirus particle C013 / 9966
Canine parvovirus particle. Computer artwork showing the structure of the outer protein coat (capsid) of a canine parvovirus type 2 particle (virion)

Background imageDNA Collection: DNA polymerase III subunit molecule

DNA polymerase III subunit molecule
DNA polymerase III beta subunits, molecular model. DNA polymerases are enzymes that synthesise new strands of DNA from a complementary template strand during DNA replication

Background imageDNA Collection: DNA polymerase III subunit molecule

DNA polymerase III subunit molecule
DNA polymerase III beta subunits, molecular model. DNA polymerases are enzymes that synthesise new strands of DNA from a complementary template strand during DNA replication

Background imageDNA Collection: DNA polymerase III subunit molecule

DNA polymerase III subunit molecule
DNA polymerase III beta subunits, molecular model. DNA polymerases are enzymes that synthesise new strands of DNA from a complementary template strand during DNA replication

Background imageDNA Collection: DNA polymerase III subunit molecule

DNA polymerase III subunit molecule
DNA polymerase III beta subunits, molecular model. DNA polymerases are enzymes that synthesise new strands of DNA from a complementary template strand during DNA replication

Background imageDNA Collection: A-DNA molecule

A-DNA molecule. Computer model showing the A structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: A-DNA molecule

A-DNA molecule. Computer model showing the A structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: B-DNA molecule

B-DNA molecule. Computer model showing the B structure of a DNA (deoxyribonucleic acid) molecule. DNA is composed of two strands twisted into a double helix

Background imageDNA Collection: Gene activator protein

Gene activator protein. Molecular model of catabolite gene activator protein (CAP, brown and green) bound to a molecule of deoxyribonucleic acid (DNA, across top)

Background imageDNA Collection: Oxoguanine glycosylase complex

Oxoguanine glycosylase complex. Computer model showing a molecule of human aG DNA repair glycosylase (blue) bound to a DNA molecule (red and pink)

Background imageDNA Collection: HIV reverse transcription enzyme

HIV reverse transcription enzyme. Molecular model of the reverse transcriptase enzyme (pink) found in HIV (the human immunodeficiency virus)

Background imageDNA Collection: LAC repressor bound to DNA

LAC repressor bound to DNA. Molecular model of a LAC (lactose) repressor molecule (green and blue) interacting with bacterial DNA (deoxyribonucleic acid, purple and yellow)

Background imageDNA Collection: Ribonuclease with RNA DNA hybrid

Ribonuclease with RNA DNA hybrid
Ribonuclease with RNA/DNA hybrid. Molecular model of Ribonuclease H (RNAse H, yellow and green) complexed with an RNA (ribonucleic acid, blue) and DNA (deoxyribonucleic acid, purple) hybrid

Background imageDNA Collection: Tumour suppressor protein molecular model

Tumour suppressor protein molecular model
Tumour suppressor protein. Molecular model of the tumour suppressor protein p53 (pink, green and purple) bound to a molecule of DNA (deoxyribonucleic acid, blue and orange)

Background imageDNA Collection: RNA polymerase molecule

RNA polymerase molecule
RNA polymerase. Molecular model of RNA polymerase (purple) transcribing a strand of mRNA (messenger ribonucleic acid, green) from a DNA (deoxyribonucleic acid) template (blue and grey/pink)

Background imageDNA Collection: Enzyme catalysing DNA recombination

Enzyme catalysing DNA recombination. Molecular model of the enzyme CRE (cyclization recombination) recombinase (green and pale pink)

Background imageDNA Collection: DNA polymerase molecule

DNA polymerase molecule
DNA polymerase. Molecular model of a molecule of DNA polymerase (green) replicating a strand of DNA (deoxyribonucleic acid, purple and orange). The secondary structure of the DNA polymerase is shown

Background imageDNA Collection: DNA nucleosome, molecular model

DNA nucleosome, molecular model. A nucleosome is a complex of DNA (deoxyribonucleic acid, green and purple) and proteins called histones (blue and beige)

Background imageDNA Collection: Integration host factor and DNA

Integration host factor and DNA. Molecular model of integration host factor (IHF, centre) bound to a molecule of DNA (deoxyribonucleic acid, outer semicircle)

Background imageDNA Collection: DNA transcription, molecular model

DNA transcription, molecular model
DNA transcription. Molecular model of the enzyme RNA polymerase II synthesising a mRNA (messenger ribonucleic acid, centre left) strand from a DNA (deoxyribonucleic acid, centre right) template

Background imageDNA Collection: Oxoguanine glycosylase complex

Oxoguanine glycosylase complex. Computer model showing an 8-Oxoguanine glycosylase (OGG1) molecule (blue) bound to a section of DNA (deoxyribonucleic acid, green and yellow)

Background imageDNA Collection: LAC repressor bound to DNA

LAC repressor bound to DNA. Molecular model of a LAC (lactose) repressor molecule (pink and purple) interacting with bacterial DNA (deoxyribonucleic acid, yellow and turquoise)

Background imageDNA Collection: TATA box-binding protein complex

TATA box-binding protein complex. Molecular model showing a TATA box-binding protein (TBP) (pink) complexed with a strand of DNA (deoxyribonucleic acid, green and blue)

Background imageDNA Collection: Proliferating cell nuclear antigen

Proliferating cell nuclear antigen molecule. Molecular model of human proliferating cell nuclear antigen (PCNA), complexed with an end section of the cell-cycle checkpoint protein p21

Background imageDNA Collection: Pit-1 transcription factor bound to DNA

Pit-1 transcription factor bound to DNA. Molecular model showing pituitary-specific positive transcription factor 1 (Pit-1) (green and orange) bound to a strand of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction complex

DNA Holliday junction complex. Molecular model of the enzyme FLP recombinase in complex with a Holliday junction between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: Hepatitis C polymerase enzyme

Hepatitis C polymerase enzyme, molecular model. This protein is the NS5b RNA polymerase found in the virus hepatitis C (genotype-1b, strain J4)

Background imageDNA Collection: HIV reverse transcription enzyme C013 / 9613

HIV reverse transcription enzyme C013 / 9613
HIV reverse transcription enzyme. Molecular model of the reverse transcriptase enzyme found in HIV (the human immunodeficiency virus)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)

Background imageDNA Collection: DNA Holliday junction, molecular model

DNA Holliday junction, molecular model
DNA Holliday junction. Molecular model of a Holliday junction (centre) between homologous strands of DNA (deoxyribonucleic acid)



All Professionally Made to Order for Quick Shipping



-

Why Choose Us?

We are a leading provider of Art Prints and Photo Gifts since 2004, working in partnership with a range of Sporting Clubs, Charities, Museums and Picture Libraries. A large share of profits from any of their images will go directly towards supporting that charity or club. Our archive of images is carefully curated to bring you a wide range of subjects, including landscapes, wildlife, architecture, and more. We ship from our partner labs in the UK, USA, EU (Netherlands) and Australia.
+

How do I place an order?

Ordering is quick & easy - Just follow 5 Simple Steps:
  1. Find your image: Use our search box or browse our online photo Collections to find the image you want.

  2. Choose your print format: Select your desired product and add it to your cart.

  3. Enter your details: If you're a returning customer, simply enter your email address and password, and we'll fill in your billing and shipping address details. All personal details are held securely and are fully GDPR compliant. As standard, we remove all Personally Identifiable Information after 12 months.

  4. Pay for your purchase: We use state-of-the-art security for online shopping and do not have access to your card details.

  5. Sit back and relax: We'll email you confirmation of your order and when it's dispatched. Registered customers can also track orders in the 'My Account' area.

+

How do I pay for an order?

You can pay for your order with most of the major credit and debit cards, or PayPal. For added security, major financial institutions process payment details separately and securely on our behalf. We do not have access to your online payment card details. Online payments are preferred however we do take phone orders. For UK customers only we accept cheques issued against a UK bank.
+

Is my data safe?

We take data security very seriously. We do not have access to your full card details and all payments are requested over a fully secure connection. Additionally, we fully comply with current European and GDPR legislation, and automatically remove all personal data after at most 12 months (unless you have an account with us and have signed in recently). We also have a strict opt-in policy and would never sell your personal details. Your data is only used to fulfill your order promptly and efficiently.
+

Is wall art ready to hang?

For quick and easy installation all wall art, including framed prints, canvas prints and metal prints are supplied with a ready to hang solution on the back. Generally, saw tooth hangers are applied as they allow wall art to hang flush against the wall. The serrated edge of the hanger prevents the frame from shifting or tilting when hung.
+

Are the photo prints fade resistant?

Yes, we use archival quality photo paper photographic paper for vivid reproduction Prints are an accurate representations of the original artwork, which is preserved for artistic character and authenticity. We guarantee they match previews shown on our web site