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systemin
EntityQ1044656· pop 10· linked from 5 articles

Also known as Sistemina

thumb|238px|Structures and predicted structures of systemins, HypSys and AtPeps

Key facts

Nonhuman protein.Name
Hydroxyproline-rich systemin
Nonhuman protein.image
Systemin.svg
Nonhuman protein.caption
Structural formula of tomato systemin
Nonhuman protein.Organism
S. lycopersicum (tomato)
Nonhuman protein.TaxID
4081
Nonhuman protein.Symbol
HypSys
Nonhuman protein.EntrezGene
543883
Nonhuman protein.RefSeqmRNA
AY292201
Nonhuman protein.RefSeqProtein
AAQ19087
Nonhuman protein.UniProt
Q7XAD0
Nonhuman protein.AltSymbols
AtPep1
Nonhuman protein.Chromosome
5
Nonhuman protein.EntrezChromosome
NC_003076
Nonhuman protein.GenLoc_start
25937031
Nonhuman protein.GenLoc_end
25938230

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Systemin
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~20 min read

Article

12 sections
Contents
  • Discovery and structure
  • Peptides with similar functions
  • Localisation and precursors
  • Processing of precursors
  • Receptors
  • Signal transduction
  • Functions
  • Defence
  • Abiotic stress resistance
  • Development
  • See also
  • References

thumb|238px|Structures and predicted structures of systemins, HypSys and AtPeps

Systemin is a plant peptide hormone involved in the wound response in the family Solanaceae. It was the first plant hormone that was proven to be a peptide having been isolated from tomato leaves in 1991 by a group led by Clarence A. Ryan. Since then, other peptides with similar functions have been identified in tomato and outside of the Solanaceae. Hydroxyproline-rich glycopeptides were found in tobacco in 2001 and AtPeps (Arabidopsis thaliana Plant Elicitor Peptides) were found in Arabidopsis thaliana in 2006. Their precursors are found both in the cytoplasm and cell walls of plant cells, upon insect damage, the precursors are processed to produce one or more mature peptides. The receptor for systemin was first thought to be the same as the brassinolide receptor but this is now uncertain. The signal transduction processes that occur after the peptides bind are similar to the cytokine-mediated inflammatory immune response in animals. Early experiments showed that systemin travelled around the plant after insects had damaged the plant, activating systemic acquired resistance, now it is thought that it increases the production of jasmonic acid causing the same result. The main function of systemins is to coordinate defensive responses against insect herbivores but they also affect plant development. Systemin induces the production of protease inhibitors which protect against insect herbivores, other peptides activate defensins and modify root growth. They have also been shown to affect plants' responses to salt stress and UV radiation. AtPEPs have been shown to affect resistance against oomycetes and may allow A. thaliana to distinguish between different pathogens. In Nicotiana attenuata, some of the peptides have stopped being involved in defensive roles and instead affect flower morphology.

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