Sandbox Reserved 1613: Difference between revisions
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==ABC Transporter Family== | ==ABC Transporter Family== | ||
In the 1990's, ABC binding cassette transporters became the subject of much discussion as many were found to have links to the inhibition of anti-cancer therapies. All 48 members of the family were studied and several structural aspects were important to the characterization of transporters in this family. The first was the presence of two nucleotide binding domains (NBD) located in the cytoplasm of all cells which bound and hydrolyzed ATP, providing the necessary energy for transport of the substrate to occur. In all 7 subfamilies (A-G) of the ABC family, the NBD's are greatly conserved. Each transporter of this family is made unique by the structure and form of their specific transmembrane binding domain (TMD). Each of the 48 transporters also have 2 transmembrane domains which work to recognize and transport the substrates across the plasma membrane and out of the cell. The residues in the TMD provide the transporters each with specific substrates which they can transport. They also allow for the coupling of transport with ATP hydrolysis to transport molecules regardless of the concentration gradient. | In the 1990's, ABC binding cassette transporters became the subject of much discussion as many were found to have links to the inhibition of anti-cancer therapies. All 48 members of the family were studied and several structural aspects were important to the characterization of transporters in this family. The first was the presence of two nucleotide binding domains (NBD) located in the cytoplasm of all cells which bound and hydrolyzed ATP, providing the necessary energy for transport of the substrate to occur. In all 7 subfamilies (A-G) of the ABC family, the NBD's are greatly conserved. Each transporter of this family is made unique by the structure and form of their specific transmembrane binding domain (TMD). Each of the 48 transporters also have 2 transmembrane domains which work to recognize and transport the substrates across the plasma membrane and out of the cell. The residues in the TMD provide the transporters each with specific substrates which they can transport. They also allow for the coupling of transport with ATP hydrolysis to transport molecules regardless of the concentration gradient. | ||
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One of the causes for multidrug resistant cancers is the excretion of cancer drugs out of the cell, thereby decreasing the effective intracellular concentration. ABCG2, also known as the breast cancer resistance protein (BCRP), effluxes multiple chemotherapeutic agents such as [https://en.wikipedia.org/wiki/Mitoxantrone mitoxantrone] and [https://en.wikipedia.org/wiki/Camptothecin camptothecin] analogies, making the cancerous breast cells resistant to chemotherapy. Competitive inhibitors, such as <scene name='83/832939/Abcg2_bound_to_mz29/3'>MZ29</scene>, that shut down ABCG2 to stop the efflux of cancer drugs in order to combat the resistivity of breast cancer. <ref>[ https://en.wikipedia.org/wiki/ABCG2 "ABCG2 -." Wikipedia, the Free Encyclopedia. Web. 20 Apr. 2020].</ref><ref name=”Jackson”>PMID:29610494</ref> | One of the causes for multidrug resistant cancers is the excretion of cancer drugs out of the cell, thereby decreasing the effective intracellular concentration. ABCG2, also known as the breast cancer resistance protein (BCRP), effluxes multiple chemotherapeutic agents such as [https://en.wikipedia.org/wiki/Mitoxantrone mitoxantrone] and [https://en.wikipedia.org/wiki/Camptothecin camptothecin] analogies, making the cancerous breast cells resistant to chemotherapy. Competitive inhibitors, such as <scene name='83/832939/Abcg2_bound_to_mz29/3'>MZ29</scene>, that shut down ABCG2 to stop the efflux of cancer drugs in order to combat the resistivity of breast cancer. <ref>[ https://en.wikipedia.org/wiki/ABCG2 "ABCG2 -." Wikipedia, the Free Encyclopedia. Web. 20 Apr. 2020].</ref><ref name=”Jackson”>PMID:29610494</ref> | ||
This family has been found as a prevalent piece of multi-drug resistant cancers and therefore became a popular target towards inhibition. Three generations of drugs were made in order to inhibit a similar protein from the same family, ABCC1 at its interior binding site including cyclosporine A (first generation), valspodar (second generation), and Elacridar (3rd generation). Importantly, cyclosporine A and Elacridar were found to inhibit both ABCC1 and ABCG2 and in one trial had success along with chemotherapy in the treatment of acute myeloid leukemia but because of either side effects or experimentation that was not able to be duplicated, this research was mostly shelved. The main issue in their failure to find a drug to inhibit this protein was the failure to develop a high-resolution structure of this protein with the technology available at the time of this drug development. In the mid 2010's, upgrades to cryo-electron microscopy and the use of 2 antigen binding fragments <scene name='83/832939/Abcg2_with_bound_5d3-fab/4'>(5D3-Fab)</scene> allowed for high resolution images to finally be developed for ABCG2 transporter protein. With these recent discoveries, the understanding of this protein has greatly increased in the last several years. | |||
</StructureSection> | </StructureSection> | ||
==References== | ==References== | ||
Revision as of 06:40, 21 April 2020
ABCG2 Transporter Protein
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References
Student Contributors
Shelby Skaggs, Samuel Sullivan, Jaelyn Voyles
