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Molecular Structure Collection (page 3)

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

Background imageMolecular Structure Collection: Conceptual image of a ubiquitous virus

Conceptual image of a ubiquitous virus. A ubiquitous virus is contagious in early childhood through the respiratory tract

Background imageMolecular Structure Collection: Conceptual image of DNA

Conceptual image of DNA

Background imageMolecular Structure Collection: Cluster of DNA strands

Cluster of DNA strands of human DNA or deoxyribonucleic acid

Background imageMolecular Structure Collection: Model of a glucose molecule, showing the atomic structure of Oxygen

Model of a glucose molecule, showing the atomic structure of Oxygen, Carbon and Hydrogen involved in photosynthesis

Background imageMolecular Structure Collection: Model of Ethanol (C2H5OH) molecule, close-up

Model of Ethanol (C2H5OH) molecule, close-up

Background imageMolecular Structure Collection: Molecular structure of Vitamin D

Molecular structure of Vitamin D

Background imageMolecular Structure Collection: Space-filling Models showing the Molecules in Decomposition of Sugar to Ethanol

Space-filling Models showing the Molecules in Decomposition of Sugar to Ethanol and Carbon Dioxide during Fermentation

Background imageMolecular Structure Collection: Lattice of sodium and chlorine atoms, model

Lattice of sodium and chlorine atoms, model

Background imageMolecular Structure Collection: Ball and Stick Model showing arrangement of Carbon Atoms in Diamond

Ball and Stick Model showing arrangement of Carbon Atoms in Diamond

Background imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure Collection: Diamond structure, artwork C017 / 7074

Diamond structure, artwork C017 / 7074
Diamond structure. Computer artwork of a model representing the molecular structure of diamond, a form of the element carbon. Carbon atoms are shown as gemstones, linked by rigid bonds

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 4200

DNA molecule, artwork F007 / 4200
DNA molecule, computer artwork

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 4196

DNA molecule, artwork F007 / 4196
DNA molecule, computer artwork

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 4203

DNA molecule, artwork F007 / 4203
DNA molecule, computer artwork

Background imageMolecular Structure Collection: DNA molecule, artwork F007 / 4207

DNA molecule, artwork F007 / 4207
DNA molecule, computer artwork

Background imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure 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 imageMolecular Structure Collection: DNA molecule F007 / 6423

DNA molecule F007 / 6423
DNA (deoxyribonucleic acid) molecule

Background imageMolecular Structure Collection: Antibodies attacking a virus, artwork F007 / 6623

Antibodies attacking a virus, artwork F007 / 6623
Antibodies attacking a virus, computer artwork

Background imageMolecular Structure Collection: Antibodies attacking a virus, artwork F007 / 6624

Antibodies attacking a virus, artwork F007 / 6624
Antibodies attacking a virus, computer artwork

Background imageMolecular Structure Collection: Antibodies attacking a virus, artwork F007 / 6622

Antibodies attacking a virus, artwork F007 / 6622
Antibodies attacking a virus, computer artwork

Background imageMolecular Structure Collection: Restriction enzyme and DNA, artwork F007 / 6436

Restriction enzyme and DNA, artwork F007 / 6436
Restriction enzyme. Compute artwork of a restriction enzyme (orange) complexed with DNA (deoxyribonucleic acid, blue). Restriction enzymes, also known as restriction endonucleases

Background imageMolecular Structure Collection: DNA polymerase molecule F007 / 6422

DNA polymerase molecule F007 / 6422
DNA polymerase molecule. DNA polymerases are enzymes that synthesise new strands of DNA from a complementary template strand

Background imageMolecular Structure Collection: Amino acid structures F007 / 6424

Amino acid structures F007 / 6424
Amino acid structures. Chemical structures of 20 of the 22 standard amino acids

Background imageMolecular Structure Collection: DNA nucleosome, artwork F007 / 6435

DNA nucleosome, artwork F007 / 6435
DNA nucleosome. Computer artwork of a nucleosome, the fundamental repeating unit used to package DNA (deoxyribonucleic acid) inside cell nuclei

Background imageMolecular Structure Collection: Sarin nerve gas molecule F007 / 9936

Sarin nerve gas molecule F007 / 9936
Sarin nerve gas, molecular model. Atoms are represented as spheres and are colour-coded: carbon (grey), hydrogen (green), oxygen (red), phosphorous (orange) and fluorine (blue)

Background imageMolecular Structure Collection: Heat shock factor protein F007 / 9885

Heat shock factor protein F007 / 9885
Molecular model of a Heat Shock Protein (HSP).HSPs are a group of proteins whose levels increase when cells are exposed to raised temperatures or other stress

Background imageMolecular Structure Collection: Carbon nanotube F007 / 9900

Carbon nanotube F007 / 9900
Buckytube. Molecular model of part of the cage structure of a bucky- or nanotube. The spheres represent carbon atoms. In this structure hundreds of atoms form hexagon shapes along a tube

Background imageMolecular Structure Collection: Carbon nanotube F007 / 9915

Carbon nanotube F007 / 9915
Buckytube. Molecular model of part of the cage structure of a bucky- or nanotube. The spheres represent carbon atoms. In this structure hundreds of atoms form hexagon shapes along a tube

Background imageMolecular Structure 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 imageMolecular Structure Collection: Heat shock factor 70 protein F007 / 9895

Heat shock factor 70 protein F007 / 9895
Molecular model of the Heat Shock Protein 70 (HSP).HSPs are a group of proteins whose levels increase when cells are exposed to raised temperatures or other stress

Background imageMolecular Structure Collection: Haemagglutinin viral surface protein F007 / 9932

Haemagglutinin viral surface protein F007 / 9932
Haemagglutinin viral surface protein. Molecular model of haemagglutinin, a surface protein from the influenza virus, complexed with a neutralising antibody

Background imageMolecular Structure Collection: Carbon nanotube F007 / 9910

Carbon nanotube F007 / 9910
Buckytube. Molecular model of part of the cage structure of a bucky- or nanotube. The spheres represent carbon atoms. In this structure hundreds of atoms form hexagon shapes along a tube

Background imageMolecular Structure Collection: Haemagglutinin viral surface protein F007 / 9931

Haemagglutinin viral surface protein F007 / 9931
Haemagglutinin viral surface protein. Molecular model of haemagglutinin, a surface protein from the influenza virus, complexed with a neutralising antibody

Background imageMolecular Structure 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 imageMolecular Structure Collection: Immunoglobulin G antibody molecule F007 / 9901

Immunoglobulin G antibody molecule F007 / 9901
Immunoglobulin G antibody molecule. Computer model of the secondary structure of immunoglobulin G (IgG). This is the most abundant immunoglobulin and is found in all body fluids

Background imageMolecular Structure Collection: DNA nucleosome, molecular model F007 / 9883

DNA nucleosome, molecular model F007 / 9883
DNA nucleosome. Molecular model of a nucleosome, the fundamental repeating unit used to package DNA (deoxyribonucleic acid) inside cell nuclei

Background imageMolecular Structure Collection: Caffeine drug molecule F007 / 9899

Caffeine drug molecule F007 / 9899
Caffeine. Computer model of a molecule of the alkaloid, stimulant and legal drug caffeine. Caffeine is most often consumed in drinks like tea and coffee



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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.