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Molecular Structure Collection (page 10)

"Molecular Structure: Unlocking the Secrets of Life's Building Blocks" From anaesthetics inhibiting ion channels to antidepressant molecules

Background imageMolecular Structure Collection: Avian polyomavirus capsid

Avian polyomavirus capsid, molecular model. This virus, one of a range named for their potential to cause multiple tumours, infects birds. Discovered in budgerigars in 1981, it is often fatal

Background imageMolecular Structure Collection: Cytoplasmic polyhedrosis virus capsid

Cytoplasmic polyhedrosis virus capsid, molecular model. Part of the Cypovirus genus and invariably fatal, this insect virus is transmitted by contamination of leaves eaten (examples include silkworms)

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 1996

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

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 1994

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

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 1995

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

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 1991

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

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 1992

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

Background imageMolecular Structure Collection: Theilers encephalomyelitis virus capsid

Theilers encephalomyelitis virus capsid, molecular model. This virus, which causes brain and spinal cord inflammation in mice, is used in research

Background imageMolecular Structure Collection: Lomitapide hypercholesterolemia drug F007 / 0160

Lomitapide hypercholesterolemia drug F007 / 0160
Lomitapide hypercholesterolemia drug, molecular model. Lomitapide is used in the treatment of homozygous familial hypercholesterolemia

Background imageMolecular Structure Collection: Vortioxetine antidepressant drug F007 / 0207

Vortioxetine antidepressant drug F007 / 0207
Vortioxetine antidepressant drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Vortioxetine antidepressant drug F007 / 0206

Vortioxetine antidepressant drug F007 / 0206
Vortioxetine antidepressant drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Tobacco necrosis virus capsid

Tobacco necrosis virus capsid, molecular model. This plant virus infects a wide rage of plants, including the tobacco plant for which it is named. The virus causes tissue death (necrosis)

Background imageMolecular Structure Collection: Vortioxetine antidepressant drug F007 / 0205

Vortioxetine antidepressant drug F007 / 0205
Vortioxetine antidepressant drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Vemurafenib melanoma drug F007 / 0204

Vemurafenib melanoma drug F007 / 0204
Vemurafenib melanoma drug, molecular model. Vemurafenib is a B-Raf enzyme inhibitor used in the treatment of melanoma skin cancer

Background imageMolecular Structure Collection: Vemurafenib melanoma drug F007 / 0203

Vemurafenib melanoma drug F007 / 0203
Vemurafenib melanoma drug, molecular model. Vemurafenib is a B-Raf enzyme inhibitor used in the treatment of melanoma skin cancer

Background imageMolecular Structure 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 Structure 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 Structure Collection: Treprostinil drug, molecular model F007 / 0200

Treprostinil drug, molecular model F007 / 0200
Treprostinil drug, molecular model. Treprostinil is used in the treatment of pulmonary arterial hypertension. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey)

Background imageMolecular Structure Collection: Treprostinil drug, molecular model F007 / 0199

Treprostinil drug, molecular model F007 / 0199
Treprostinil drug, molecular model. Treprostinil is used in the treatment of pulmonary arterial hypertension. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey)

Background imageMolecular Structure Collection: Trametinib melanoma cancer drug F007 / 0198

Trametinib melanoma cancer drug F007 / 0198
Trametinib melanoma cancer drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), fluorine (dark yellow)

Background imageMolecular Structure Collection: Trametinib melanoma cancer drug F007 / 0197

Trametinib melanoma cancer drug F007 / 0197
Trametinib melanoma cancer drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), fluorine (dark yellow)

Background imageMolecular Structure Collection: Tofacitinib rheumatoid arthritis drug F007 / 0196

Tofacitinib rheumatoid arthritis drug F007 / 0196
Tofacitinib rheumatoid arthritis drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Tofacitinib rheumatoid arthritis drug F007 / 0195

Tofacitinib rheumatoid arthritis drug F007 / 0195
Tofacitinib rheumatoid arthritis drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Teriflunomide multiple sclerosis drug F007 / 0194

Teriflunomide multiple sclerosis drug F007 / 0194
Teriflunomide multiple sclerosis drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), fluorine (dark yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Sumatriptan migraine headache drug F007 / 0192

Sumatriptan migraine headache drug F007 / 0192
Sumatriptan migraine headache drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Sumatriptan migraine headache drug F007 / 0190

Sumatriptan migraine headache drug F007 / 0190
Sumatriptan migraine headache drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Sumatriptan migraine headache drug F007 / 0191

Sumatriptan migraine headache drug F007 / 0191
Sumatriptan migraine headache drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), sulfur (yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Riociguat pulmonary hypertension drug F007 / 0189

Riociguat pulmonary hypertension drug F007 / 0189
Riociguat pulmonary hypertension drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), fluorine (dark yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Riociguat pulmonary hypertension drug F007 / 0188

Riociguat pulmonary hypertension drug F007 / 0188
Riociguat pulmonary hypertension drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), fluorine (dark yellow) and nitrogen (blue)

Background imageMolecular Structure Collection: Regorafenib colorectal cancer drug F007 / 0187

Regorafenib colorectal cancer drug F007 / 0187
Regorafenib colorectal cancer drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), chlorine (green)

Background imageMolecular Structure Collection: Regorafenib colorectal cancer drug F007 / 0186

Regorafenib colorectal cancer drug F007 / 0186
Regorafenib colorectal cancer drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red), chlorine (green)

Background imageMolecular Structure 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 Structure 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 Structure 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 Structure 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 Structure Collection: Ponatinib leukemia drug F007 / 0176

Ponatinib leukemia drug F007 / 0176
Ponatinib leukemia drug, molecular model. Ponatinib is approved for the treatment of chronic myelogenous leukemia. Atoms are represented as spheres and are colour-coded: hydrogen (white)

Background imageMolecular Structure Collection: Pomalidomide cancer drug F007 / 0175

Pomalidomide cancer drug F007 / 0175
Pomalidomide cancer drug, molecular model. Pomalidomide is a derivative of the notorious drug thalidomide and inhibits angiogenesis, the formation of new blood vessels

Background imageMolecular Structure Collection: Pomalidomide cancer drug F007 / 0174

Pomalidomide cancer drug F007 / 0174
Pomalidomide cancer drug, molecular model. Pomalidomide is a derivative of the notorious drug thalidomide and inhibits angiogenesis, the formation of new blood vessels

Background imageMolecular Structure Collection: Pomalidomide cancer drug F007 / 0173

Pomalidomide cancer drug F007 / 0173
Pomalidomide cancer drug, molecular model. Pomalidomide is a derivative of the notorious drug thalidomide and inhibits angiogenesis, the formation of new blood vessels

Background imageMolecular Structure Collection: Perampanel antiepileptic drug F007 / 0172

Perampanel antiepileptic drug F007 / 0172
Perampanel antiepileptic drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Perampanel antiepileptic drug F007 / 0171

Perampanel antiepileptic drug F007 / 0171
Perampanel antiepileptic drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Perampanel antiepileptic drug F007 / 0170

Perampanel antiepileptic drug F007 / 0170
Perampanel antiepileptic drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Ocriplasmin vitreomacular adhesion drug F007 / 0165

Ocriplasmin vitreomacular adhesion drug F007 / 0165
Ocriplasmin (microplasmin) vitreomacular adhesion drug, molecular model. Ocriplasmin is a protease enzyme that dissolves the proteins holding the eye vitreous and macula together

Background imageMolecular Structure Collection: Omacetaxine mepesuccinate leukemia drug F007 / 0169

Omacetaxine mepesuccinate leukemia drug F007 / 0169
Omacetaxine mepesuccinate leukemia drug, molecular model. This drug inhibits protein synthesis and is used in the treatment of chronic myelogenous leukemia (CML)

Background imageMolecular Structure Collection: Loxapine schizophrenia drug F007 / 0164

Loxapine schizophrenia drug F007 / 0164
Loxapine schizophrenia drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), chlorine (green), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Loxapine schizophrenia drug F007 / 0163

Loxapine schizophrenia drug F007 / 0163
Loxapine schizophrenia drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), chlorine (green), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Loxapine schizophrenia drug F007 / 0162

Loxapine schizophrenia drug F007 / 0162
Loxapine schizophrenia drug, molecular model. Atoms are represented as spheres and are colour-coded: hydrogen (white), carbon (grey), chlorine (green), oxygen (red) and nitrogen (blue)

Background imageMolecular Structure Collection: Lomitapide hypercholesterolemia drug F007 / 0161

Lomitapide hypercholesterolemia drug F007 / 0161
Lomitapide hypercholesterolemia drug, molecular model. Lomitapide is used in the treatment of homozygous familial hypercholesterolemia



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"Molecular Structure: Unlocking the Secrets of Life's Building Blocks" From anaesthetics inhibiting ion channels to antidepressant molecules, the intricate world holds endless wonders. The C015 / 6718 anaesthetic molecule delicately interacts with ion channels, altering their function and providing relief from pain. Meanwhile, Amitriptyline, an antidepressant molecule, works its magic by modulating neurotransmitters in our brains. In the realm of immunity, Immunoglobulin G antibody F007 / 9894 stands tall as a defender against pathogens. Its unique structure allows it to recognize and neutralize foreign invaders effectively. On another front, DNA artwork showcases the elegance and complexity that underlies all life forms on Earth. Creatine amino acid molecule fuels our muscles during intense physical activities while nanotube technology revolutionizes various industries with its exceptional properties. These tiny tubes hold immense potential for advancements in medicine and materials science alike. Zinc fingers bound to a DNA strand demonstrate how proteins can precisely interact with genetic material. This interaction plays a crucial role in gene regulation and expression. Carbon nanotubes take center stage once again as they exhibit remarkable strength and conductivity at the nano-scale level. Oxytocin neurotransmitter molecule reminds us of love's powerful influence on human connections—its presence promotes bonding between individuals. Manganese superoxide dismutase enzyme F006 / 9423 safeguards our cells by combating harmful free radicals that contribute to aging and disease. Even viruses have their own molecular structures; SARS coronavirus protein represents one such example—a key player in viral replication within host cells. Conceptual artwork further explores nanotube technology's limitless possibilities—the fusion of imagination and scientific innovation knows no bounds here. As we delve deeper into understanding molecular structures, we unravel nature's blueprint for life itself—one atom at a time. These captivating glimpses into the microscopic world remind us of both the fragility and resilience found within the building blocks of existence.