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Molecular Collection (page 6)

"Molecular Marvels: Unveiling the Intricate World of Rosalind Franklin and DNA" Delving into the realm wonders, we encounter the brilliant mind of Rosalind Franklin

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

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

Background imageMolecular 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)

Background imageMolecular Collection: DNA molecule, artwork F007 / 1996

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

Background imageMolecular Collection: DNA molecule, artwork F007 / 1994

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

Background imageMolecular Collection: DNA molecule, artwork F007 / 1995

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

Background imageMolecular Collection: DNA molecule, artwork F007 / 1991

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

Background imageMolecular Collection: DNA molecule, artwork F007 / 1992

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

Background imageMolecular Collection: HIV enzyme protein, molecular model

HIV enzyme protein, molecular model
HIV enzyme protein. Computer model showing the structure of the catalytic domain of a molecule of HIV-1 retroviral integrase (IN) from the human immunodeficiency virus (HIV)

Background imageMolecular Collection: Anthrax protective antigen molecule C014 / 0865

Anthrax protective antigen molecule C014 / 0865
Anthrax protective antigen molecule. Computer model showing the structure of a molecule of protective antigen (PA) produced by anthrax (Bacillus anthracis) bacteria

Background imageMolecular Collection: EcoRV restriction enzyme molecule C014 / 2112

EcoRV restriction enzyme molecule C014 / 2112
EcoRV restriction enzyme. Molecular model of the type II restriction enzyme EcoRV (pink) bound to a cleaved section of DNA (deoxyribonucleic acid, yellow)

Background imageMolecular 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

Background imageMolecular Collection: TATA box-binding protein complex C017 / 7085

TATA box-binding protein complex C017 / 7085
TATA box-binding protein complex. Molecular model showing a TATA box-binding protein (TBP, green) complexed with a strand of DNA (deoxyribonucleic acid, yellow) and transcription factor IIB

Background imageMolecular Collection: Structure of matter, artwork C018 / 0948

Structure of matter, artwork C018 / 0948
Structure of matter. Computer artwork representing the Standard Model of particle physics. Shown here is a molecule of water (top centre)

Background imageMolecular Collection: Junk DNA, conceptual image

Junk DNA, conceptual image. Computer artwork of damaged DNA (deoxyribonucleic acid) in a rubbish bin. DNA contains sections called genes that encode the bodys genetic information

Background imageMolecular 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 imageMolecular Collection: EcoRV restriction enzyme molecule C014 / 2114

EcoRV restriction enzyme molecule C014 / 2114
EcoRV restriction enzyme. Molecular model of the type II restriction enzyme EcoRV (white and gold) bound to a cleaved section of DNA (deoxyribonucleic acid, orange and yellow)

Background imageMolecular Collection: Rotaxane, molecular crystal structure C017 / 7014

Rotaxane, molecular crystal structure C017 / 7014
Molecular crystal structure of a rotaxane. A rotaxane is a chemical compound composed of a linear molecular chain passing through a chainlike molecular ring

Background imageMolecular Collection: Genetic code, artwork F006 / 8998

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

Background imageMolecular Collection: EcoRV restriction enzyme molecule C014 / 2116

EcoRV restriction enzyme molecule C014 / 2116
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)

Background imageMolecular Collection: Genetic code, artwork F006 / 8997

Genetic code, artwork F006 / 8997
Genetic code, computer artwork

Background imageMolecular Collection: Triphenylene hydrocarbon molecule F007 / 0202

Triphenylene hydrocarbon molecule F007 / 0202
Triphenylene polycyclic aromatic hydrocarbon (PAH), molecular model. Triphenylene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Triphenylene hydrocarbon molecule F007 / 0201

Triphenylene hydrocarbon molecule F007 / 0201
Triphenylene polycyclic aromatic hydrocarbon (PAH), molecular model. Triphenylene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: DNA molecule, artwork F006 / 8969

DNA molecule, artwork F006 / 8969
DNA molecule, computer artwork

Background imageMolecular Collection: Prostaglandin I2 drug molecule F007 / 0185

Prostaglandin I2 drug molecule F007 / 0185
Prostaglandin I2 (PGI2, epoprostenol) pulmonary hypertension drug, molecular model. PGI2 is an eicosanoid drug that inhibits platelet activation and causes vasodilation

Background imageMolecular Collection: Prostaglandin I2 drug molecule F007 / 0184

Prostaglandin I2 drug molecule F007 / 0184
Prostaglandin I2 (PGI2, epoprostenol) pulmonary hypertension drug, molecular model. PGI2 is an eicosanoid drug that inhibits platelet activation and causes vasodilation

Background imageMolecular Collection: Prostaglandin E1 drug molecule F007 / 0179

Prostaglandin E1 drug molecule F007 / 0179
Prostaglandin E1 (alprostadil, PGE1) erectile dysfunction drug, molecular model. PGE1 is a prostaglandin used in the treatment of erectile dysfunction

Background imageMolecular Collection: Prostaglandin E1 drug molecule F007 / 0178

Prostaglandin E1 drug molecule F007 / 0178
Prostaglandin E1 (alprostadil, PGE1) erectile dysfunction drug, molecular model. PGE1 is a prostaglandin used in the treatment of erectile dysfunction

Background imageMolecular Collection: Glycerol phenylbutyrate drug molecule F007 / 0147

Glycerol phenylbutyrate drug molecule F007 / 0147
Glycerol phenylbutyrate urea cycle disorder drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey) and oxygen (red)

Background imageMolecular Collection: Glycerol phenylbutyrate drug molecule F007 / 0148

Glycerol phenylbutyrate drug molecule F007 / 0148
Glycerol phenylbutyrate urea cycle disorder drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey) and oxygen (red)

Background imageMolecular Collection: Dibenzanthracene hydrocarbon molecule F007 / 0142

Dibenzanthracene hydrocarbon molecule F007 / 0142
Dibenzanthracene polycyclic aromatic hydrocarbon (PAH), molecular model. Dibenz(a, h)anthracene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Dibenzanthracene hydrocarbon molecule F007 / 0141

Dibenzanthracene hydrocarbon molecule F007 / 0141
Dibenzanthracene polycyclic aromatic hydrocarbon (PAH), molecular model. Dibenz(a, h)anthracene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Cysteamine bitartrate drug molecule F007 / 0138

Cysteamine bitartrate drug molecule F007 / 0138
Cysteamine bitartrate Huntingtons disease drug, molecular model. Cysteamine increases the levels of the neuroprotective factor BDNF (brain-derived neurotrophic factor)

Background imageMolecular Collection: Cysteamine bitartrate drug molecule F007 / 0137

Cysteamine bitartrate drug molecule F007 / 0137
Cysteamine bitartrate Huntingtons disease drug, molecular model. Cysteamine increases the levels of the neuroprotective factor BDNF (brain-derived neurotrophic factor)

Background imageMolecular Collection: Corannulene polycyclic, molecular model F007 / 0135

Corannulene polycyclic, molecular model F007 / 0135
Corannulene polycyclic aromatic hydrocarbon (PAH), molecular model. Corannulene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Benzoperylene molecular model F007 / 0116

Benzoperylene molecular model F007 / 0116
Benzoperylene polycyclic aromatic hydrocarbon (PAH), molecular model. Benzoperylene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Rotaxane, molecular crystal structure C017 / 7013

Rotaxane, molecular crystal structure C017 / 7013
Molecular crystal structure of a rotaxane. A rotaxane is a chemical compound composed of a linear molecular chain passing through a chainlike molecular ring

Background imageMolecular Collection: Benzoperylene molecular model F007 / 0115

Benzoperylene molecular model F007 / 0115
Benzoperylene polycyclic aromatic hydrocarbon (PAH), molecular model. Benzoperylene is an environmental pollutant and suspected to be carcinogenic, mutagenic and teratogenic

Background imageMolecular Collection: Benzofluoranthene, molecular model F007 / 0114

Benzofluoranthene, molecular model F007 / 0114
Benzofluoranthene molecular model. Benzofluoranthene is a polycyclic aromatic hydrocarbon (PAH). PAHs are environmental pollutants and have carcinogenic, mutagenic and teratogenic effects

Background imageMolecular Collection: Benzofluoranthene, molecular model F007 / 0113

Benzofluoranthene, molecular model F007 / 0113
Benzofluoranthene molecular model. Benzofluoranthene is a polycyclic aromatic hydrocarbon (PAH). PAHs are environmental pollutants and have carcinogenic, mutagenic and teratogenic effects

Background imageMolecular Collection: Antibody molecule F007 / 0109

Antibody molecule F007 / 0109
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Antibody molecule F007 / 0107

Antibody molecule F007 / 0107
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Antibody molecule F007 / 0104

Antibody molecule F007 / 0104
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Antibody molecule F007 / 0105

Antibody molecule F007 / 0105
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Antibody molecule F007 / 0103

Antibody molecule F007 / 0103
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Alemtuzumab Fab fragment molecule F007 / 0100

Alemtuzumab Fab fragment molecule F007 / 0100
Alemtuzumab Fab fragment, crystal structure. Alemtuzumab is a humanized monoclonal antibody that binds the CD52 protein and is used in the treatment of cancer and auto-immune disease

Background imageMolecular Collection: Antibody molecule F007 / 0102

Antibody molecule F007 / 0102
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains

Background imageMolecular Collection: Alemtuzumab Fab fragment molecule F007 / 0099

Alemtuzumab Fab fragment molecule F007 / 0099
Alemtuzumab Fab fragment, crystal structure. Alemtuzumab is a humanized monoclonal antibody that binds the CD52 protein and is used in the treatment of cancer and auto-immune disease

Background imageMolecular Collection: Antibody molecule F007 / 0101

Antibody molecule F007 / 0101
Antibody molecule. Crystal structure of a monoclonal immunoglobulin (IgG2a). IgG antibodies are composed of 2 long heavy chains and 2 shorter light chains



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"Molecular Marvels: Unveiling the Intricate World of Rosalind Franklin and DNA" Delving into the realm wonders, we encounter the brilliant mind of Rosalind Franklin, whose groundbreaking work paved the way for our understanding of life's blueprint. Her pioneering research on X-ray crystallography revealed a mesmerizing image – the double-stranded RNA molecule, unraveling nature's secrets strand by strand. Intriguingly intricate, DNA transcription comes to life as we explore its molecular model, and is through this process that genetic information is transcribed from DNA to RNA, orchestrating the symphony of life itself. James Clerk Maxwell's caricature reminds us of his profound contributions to electromagnetism and how it laid the foundation for comprehending molecular interactions at an atomic level. His genius echoes through time as we marvel at his caricatured presence. Shifting gears towards medicinal breakthroughs, let us not overlook Amitriptyline antidepressant molecule – a tiny compound with enormous potential in alleviating human suffering. Its structure represents hope and relief for those battling mental health challenges. Art meets science when we encounter metabolic enzyme artwork; a visual representation showcasing these powerful catalysts that drive countless biochemical reactions within our bodies. Their elegant complexity highlights their indispensable role in sustaining life's delicate balance. Computer-generated models bring forth a vivid depiction of DNA molecules – intricate helices intertwining like cosmic dancers choreographed by evolution itself. These virtual representations invite us to delve deeper into their mysteries while appreciating their breathtaking beauty. The nucleosome molecule takes center stage as it reveals how DNA wraps around histone proteins forming chromatin structures within our cells' nuclei. This architectural masterpiece ensures proper gene regulation and compaction while offering glimpses into cellular harmony on a microscopic scale. Abstract images portraying DNA molecules captivate our imagination with vibrant colors and patterns reminiscent of unseen universes hidden within each cell nucleus—a testament to nature's artistic prowess.