Sandbox Reserved 1671

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== Biological relevance and broader implications ==
== Biological relevance and broader implications ==
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The Pseudomonas syringae plant pathogen effects crops, it is relevant because farmers and people that work in the agriculture industry need to know of all the ways that their crops can get infected. Pseudomonas syringae makes the plants defenses against pathogens weak and it is more susceptible to get sick, by producing many different virulence factors such as parahormones, which are chemicals that are similar to the plants natural hormones but are not. Pseudomonas syringae can destroy many different plants in different environments and temperatures, it can also survive and spread through the leaves. IAA (Indole-3-Acetic Acid) is a main plant hormone that is produced in the apical bud of and young leaves of plants and is known to be an inducer of cell division and elongation. IAA is often used in horticulture to promote adventitious root growth and are used commercially to create root stem cuttings and to promote uniform fruit and flowering growth.
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The Pseudomonas syringae plant pathogen effects crops, it is relevant because farmers and people that work in the agriculture industry need to know of all the ways that their crops can get infected.
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To suppress host defenses and promote diseases develop- ment, Pseudomonas syringae produces a variety of virulence factors, including phytohormones or chemical mimics of hormones, to manipulate hormone signaling in its host plants. P. syringae and many other plant-associated microbial pathogens can synthesize the major auxin indole-3-acetic acid (IAA), whose production is implicated in pathogen virulence.
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Pseudomonas syringae can destroy many different plants in different environments and temperatures, it can also survive and spread through the leaves. IAA (Indole-3-Acetic Acid) is a main plant hormone that is produced in the apical bud of and young leaves of plants and is known to be an inducer of cell division and elongation. IAA is often used in horticulture to promote adventitious root growth and are used commercially to create root stem cuttings and to promote uniform fruit and flowering growth.
This research is relevant to more areas in science because if someone want to make a defense chemical for Pseudomonas syringae they can use the chemistry in this paper to do so. There is a lost of valuable information that shows the chemistry, such as binding affinity. If someone is thinking about making a cure against Pseudomonas syringae they will need to know the characteristics of all the things that will bind well to it. This research paper also is useful in identifying superfamilies among different plant pathogens.
This research is relevant to more areas in science because if someone want to make a defense chemical for Pseudomonas syringae they can use the chemistry in this paper to do so. There is a lost of valuable information that shows the chemistry, such as binding affinity. If someone is thinking about making a cure against Pseudomonas syringae they will need to know the characteristics of all the things that will bind well to it. This research paper also is useful in identifying superfamilies among different plant pathogens.

Revision as of 04:59, 19 April 2021

This Sandbox is Reserved from 01/25/2021 through 04/30/2021 for use in Biochemistry taught by Bonnie Hall at Grand View University, Des Moines, USA. This reservation includes Sandbox Reserved 1665 through Sandbox Reserved 1682.
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Ald-C

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References

Lee, S. G., Harline, K., Abar, O., Akadri, S. O., Bastian, A. G., Chen, H. S., Duan, M., Focht, C. M., Groziak, A. R., Kao, J., Kottapalli, J. S., Leong, M. C., Lin, J. J., Liu, R., Luo, J. E., Meyer, C. M., Mo, A. F., Pahng, S. H., Penna, V., Raciti, C. D., … Jez, J. M. (2020). The plant pathogen enzyme AldC is a long-chain aliphatic aldehyde dehydrogenase. The Journal of biological chemistry, 295(40), 13914–13926. https://doi.org/10.1074/jbc.RA120.014747 IAA (Indole-3-Acetic acid). (n.d.). Retrieved April 19, 2021, from https://www.goldbio.com/product/1311/iaa-indole-3-acetic-acid

  1. Hanson, R. M., Prilusky, J., Renjian, Z., Nakane, T. and Sussman, J. L. (2013), JSmol and the Next-Generation Web-Based Representation of 3D Molecular Structure as Applied to Proteopedia. Isr. J. Chem., 53:207-216. doi:http://dx.doi.org/10.1002/ijch.201300024
  2. Herraez A. Biomolecules in the computer: Jmol to the rescue. Biochem Mol Biol Educ. 2006 Jul;34(4):255-61. doi: 10.1002/bmb.2006.494034042644. PMID:21638687 doi:10.1002/bmb.2006.494034042644
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